Saturday, December 8, 2012

THE GREAT AND POWERFUL OZ HAS FLIP-FLOPPED ON GMO'S


Anthony Gucciardi
by Anthony Gucciardi
December 7th, 2012 | Updated 12/07/2012 at 2:28 am
drozgarynull 260x162 Dr. Gary Null, Mike Adams, Organic Consumers, Others Speak Out Against Dr. Ozs Organic Food Lies Dr. Oz’s attack on informed individuals who choose to eat high quality organic foods free of genetically modified organisms and IQ-damaging pesticides has led to serious outcry over the past week. Many more health advocates are now joining independent journalists highlighting the many errors in Dr. Oz’s claims. This is great news as far as I’m concerned, having written my own piece detailing Dr. Oz’s lies regarding the consumption of GMOs and pesticides in conventional food.
Following the Time Magazine article piece in which Dr. Oz stated that GMO-laden conventional food is comparable to organic, full of nutritional value, and even that those that choose real organic food are ‘elitists’ and ‘snobs’, leading health experts have come out against the celebrity doctor’s claims. Groups like Organic Consumers Association, Mike Adams of NaturalNews, and Dr. Gary Null have spoken out publicly regarding Dr. Oz’s bogus claims.
Dr. Oz Facing Mass Response from Real Informed Consumers and Experts
Ronnie Cummins of the Organic Consumers Associated has authored a piece appearing on Alternet detailing how Dr. Oz, a man who has actually had shows which placed GMOs and pesticides in a negative light, has taken a card from politicians and flip-flopped on the issue. Whether due to the failure of Prop 37, a big financial incentive, or who knows what, Dr. Oz has effectively betrayed his informed fan base. The article is appropriately entitled ‘Dr. Oz Flip-Flops as High-Profile Attacks on Organic Food Intensify’.
The piece comes after Mike Adams addressed Dr. Oz’s attack on the day the article hit the news, in which Mike points out how Dr. Oz has sold out to Big Agriculture by siding with Monsanto and others. He also goes on to offer a possibility that I agree with, which is the likely possibility that Dr. Oz didn’t actually even author the article. Instead, he simply signed off on it — perhaps for a large financial incentive from a third party. The reasons for this are many, but the most important is the fact that the piece has too many similarities with recent organic assault pieces straight out of Time Magazine itself.
Outside of that, it’s very common for celebrities and major personalities to simply hire on a team of ghostwriters to generate stories for certain gigs. But even if Dr. Oz did not write the piece himself, he is still sticking up for it. On his Facebook page, Dr. Oz has tried many times to ‘set the record straight’ by literally repeating what was stated in his article. In the latest post he says that ‘critics’ of his post, which literally means those who are against GMOs and pesticides, just don’t seem to get it:
“Critics of the Time Magazine piece argue that my use of the phrase “food snob” (which describes me as well) undermines their fight to preserve the integrity of the American food supply.”
Immediately grouping everyone with informed opinions on food additives as ‘critics’ of Dr. Oz, Oz separates himself from millions of concerned consumers around the globe who were concerned with his organic food lies. Instead of apologizing, Dr. Oz continues to defend his statements.
And in case you’re doubting just how many people are fighting against GMOs (a number of which I am very grateful follow my work on a regular basis), you need to look no farther than Dr. Oz’s Facebook comments page. Over the past several days, the comments section has been almost 100% related to the Time piece. From demands for apology to accusations of being bought out by Monsanto, fans are not happy.
Dr. Oz’s loss of countless fans due to his organic food lies and failure to tell the truth about GMOs and other conventional food concerns shows how the element of truth works. Even if you’re a celebrity doctor with millions of fans, covering up information on such serious issues will not be forgotten. The new media, the alternative media, is entirely centered around exposing the truth in regards to topics that the mainstream media will not touch. Alternative media outlets make mistakes sometimes as we all do, but legitimate outlets push for truth. Dr. Oz appears to be pushing for the opposite.

Read more: http://naturalsociety.com/dr-gary-null-mike-adams-organic-consumers-others-dr-oz-organic-food-lies/#ixzz2ETFjGGDb

Friday, December 7, 2012

120 SCIENTISTS BACK SERALINI GMO STUDY

Seralini and Science: an Open Letter
October 2, 2012
(Authors listed below) (Traduction Francaise)        


A new paper by the French group of Gilles-Eric Seralini describes harmful effects on rats fed diets containing genetically modified maize (variety NK603), with and without the herbicide Roundup, as well as Roundup alone. This peer-reviewed study (Seralini et al., 2012), has been criticized by some scientists whose views have been widely reported in the popular press (Carmen, 2012; Mestel, 2012; Revkin, 2012; Worstall, 2012). Seralini et al. (2012) extends the work of other studies demonstrating toxicity and/or endocrine-based impacts of Roundup (Gaivão et al., 2012; Kelly et al., 2010; Paganelli et al., 2010; Romano et al., 2012), as reviewed by Antoniou et al. (2010).

The Seralini publication, and resultant media attention, raise the profile of fundamental challenges faced by science in a world increasingly dominated by corporate influence. These challenges are important for all of science but are rarely discussed in scientific venues.


GILLES-ERIC SERALINI

1) History of Attacks on Risk-finding Studies. Seralini and colleagues are just the latest in a series of researchers whose findings have triggered orchestrated campaigns of harassment. Examples from just the last few years include Ignacio Chapela, a then untenured Assistant Professor at Berkeley, whose paper on GM contamination of maize in Mexico (Quist and Chapela, 2001) sparked an intensive internet-based campaign to discredit him. This campaign was reportedly masterminded by the Bivings Group, a public relations firm specializing in viral marketing – and frequently hired by Monsanto (Delborne, 2008).

The distinguished career of biochemist Arpad Pusztai, came to an effective end when he attempted to report his contradictory findings on GM potatoes (Ewen and Pusztai, 1999a). Everything from a gag order, forced retirement, seizure of data, and harassment by the British Royal Society were used to forestall his continued research (Ewen and Pusztai, 1999b; Laidlaw, 2003). Even threats of physical violence have been used, most recently against Andres Carrasco, Professor of Molecular Embryology at the University of Buenos Aires, whose research (Paganelli et al. 2010) identified health risks from glyphosate, the active ingredient in Roundup (Amnesty International, 2010).

It was no surprise therefore, that when in 2009, 26 corn entomologists took the unprecedented step of writing directly to the US EPA to complain about industry control of access to GM crops for research, the letter was sent anonymously (Pollack, 2009).

2) The Role of the Science Media. An important but often unnoticed aspect of this intimidation is that it frequently occurs in concert with the science media (Ermakova, 2007; Heinemann and Traavik, 2007; Latham and Wilson, 2007). Reporting of the Seralini paper in arguably the most prestigious segments of the science media: Science, the New York Times, New Scientist, and the Washington Post uniformly failed to “balance” criticism of the research, with even minimal coverage of support for the Seralini paper (Carmen, 2012; Enserink, 2012; MacKenzie, 2012; Pollack, 2012). Nevertheless, less well-resourced media outlets, such as the UK Daily Mail appeared to have no trouble finding a positive scientific opinion on the same study (Poulter, 2012).

3) Misleading Media Reporting. A key pattern with risk-finding studies is that the criticisms voiced in the media are often red herrings, misleading, or untruthful. Thus, the use of common methodologies was portrayed as indicative of shoddy science when used by Seralini et al. (2012) but not when used by industry (see refs above and Science Media Centre, 2012). The use of red herring arguments appears intended to sow doubt and confusion among non-experts. For example, Tom Sanders of Kings College, London was quoted as saying: “This strain of rat is very prone to mammary tumors particularly when food intake is not restricted” (Hirschler and Kelland, 2012 ). He failed to point out, or was unaware, that most industry feeding studies have used Sprague-Dawley rats (e.g. Hammond et al., 1996, 2004, 2006; MacKenzie et al., 2007). In these and other industry studies (e.g. Malley et al. 2007), feed intake was unrestricted. Sanders’ comments are important because they were widely quoted and because they were part of an orchestrated response to the Seralini study by the Science Media Centre of the British Royal Institution. The Science Media Centre has a long history of quelling GMO controversies and its funders include numerous companies that produce GMOs and pesticides.

4) Regulator Culpability. In our view a large part of the ultimate fault for this controversy lies with regulators. Regulators, such as EFSA (the European Food Safety Authority) in Europe and the EPA (Environmental Protection Agency) and FDA (Food and Drug Administration) in the US, have enshrined protocols with little or no potential to detect adverse consequences of GMOs (Schubert, 2002; Freese and Schubert, 2004; Pelletier, 2005).

GMOs are required to undergo few experiments, few endpoints are examined, and tests are solely conducted by the applicant or their agents. Moreover, current regulatory protocols are simplistic and assumptions-based (RSC, 2001), which by design, will miss most gene expression changes – apart from the target trait - induced by the process of transgene insertion (Heinemann et al., 2011; Schubert, 2002).

Puzstai (2001) and others have consequently argued that well-conducted feeding trials are one of the best ways of detecting such unpredictable changes. Yet feeding trials are not mandatory for regulatory approval, and the scientific credibility of those which have been published to date has been challenged (Domingo, 2007; Pusztai et al., 2003; Spiroux de Vendômois et al., 2009). For example, Snell et al. (2012), who assessed the quality of 12 long term (>96 days) and 12 multigenerational studies, concluded: “The studies reviewed here are often linked to an inadequate experimental design that has detrimental effects on statistical analysis…the major insufficiencies not only include lack of use of near isogenic lines but also statistical power underestimation [and], absence of repetitions…”.

Apparently, the same issues of experimental design and analysis raised about this (Seralini) risk-finding study were not of concern to critics when the studies did not identify risk, resulting in ill-informed decision-makers. In the end, it is a major problem for science and society when current regulatory protocols approve GMO crops based on little to no useful data upon which to assess safety.

5) Science and Politics. Governments have become habituated to using science as a political football. For example, in a study conducted by the Royal Society of Canada at the request of the Canadian government, numerous weaknesses of GM regulation in Canada were identified (RSC, 2001). The failure of the Canadian government to meaningfully respond to the many recommended changes was detailed by Andree (2006). Similarly, the expert recommendations of the international IAASTD report, produced by 400 researchers over 6 years, that GMOs are unsuited to the task of advancing global agriculture have been resolutely ignored by policymakers. Thus, while proclaiming evidence-based decision-making, governments frequently use science solely when it suits them.

6) Conclusion: When those with a vested interest attempt to sow unreasonable doubt around inconvenient results, or when governments exploit political opportunities by picking and choosing from scientific evidence, they jeopardize public confidence in scientific methods and institutions, and also put their own citizenry at risk. Safety testing, science-based regulation, and the scientific process itself, depend crucially on widespread trust in a body of scientists devoted to the public interest and professional integrity. If instead, the starting point of a scientific product assessment is an approval process rigged in favour of the applicant, backed up by systematic suppression of independent scientists working in the public interest, then there can never be an honest, rational or scientific debate.

The Authors: Susan Bardocz (4, Arato Street, Budapest, 1121 Hungary); Ann Clark (University of Guelph, ret.);Stanley Ewen (Consultant Histopathologist, Grampian University Hospital); Michael Hansen (Consumers Union); Jack Heinemann (University of Canterbury); Jonathan Latham (The Bioscience Resource Project); Arpad Pusztai (4, Arato Street, Budapest, 1121 Hungary); David Schubert (The Salk Institute); Allison Wilson (The Bioscience Resource Project)

Signatories: Brian Wynne (Professor of Science Studies, UK Economic and Social Research Council (ESRC) Centre for Economic and Social Aspects of Genomics, Cesagen, Lancaster University); Irina Ermakova, Dr of Biology, Russian Academy of Sciences; Jo Cummins (Professor Emeritus University of Western Ontario); Michael Antoniou, (Reader in Molecular Genetics; his university (King’s College, London) has a policy not to allow Dr Antoniou to use his affiliation here); Philip L. Bereano (Professor Emeritus University of Washington & Washington Biotechnology Action Council); Dr P M Bhargava (Former and Founder Director, Centre for Cellular & Molecular Biology, Government of India); Carlo Leifert (Professor for Ecological Agriculture Newcastle University); Peter Romilly (formerly University of Abertay, Dundee); Robert Vint (FRSA); Dr Brian John (Durham University, UK, retired); Professor C. Vyvyan Howard, University of Ulster); Diederick Sprangers (Genethics Foundation); Mariam Mayet (African Centre for Biosafety, South Africa); Eva Novotny (ret. University of Cambridge); Ineke Buskens (Research for the Future); Hector Valenzuela (Professor, University of Hawaii); Ronald Nigh, (Centro de Investigaciones y Estudio Superiores en Antropología Social, Chiapas, Mexico); Marcia Ishii-Eiteman (PhD, Senior Scientist, Pesticide Action Network North America); Naomi Salmon (Dept. of Law, Aberystwyth University, Wales); Michael W, Fox (Minnesota, Veterinarian & Bioethicist, PhD, MRCVS); Neil J. Carman (PhD Sierra Club); Vandana Shiva (India); Hans Herren (President, Millennium Institute, Washington DC, USA); John Fagan (PhD Earth Open Source, UK and USA); Sheila Berry and the Global Environmental Trust; Av Singh (PhD, Perennia); Laurel Hopwood (for the Sierra Club, USA); Philip H. Howard (Associate Professor of Community, Food and Agriculture, Michigan State University); Donald B. Clark (on behalf of Cumberland Countians for Peace & Justice and Network for Environmental & Economic Responsibility, United Church of Christ, Pleasant Hill, TN); Robert Mann (Senior Lecturer in Biochemistry & in Environmental Studies (rtd) University of Auckland, NZ); Chris Williams (PhD, FRSA, University of London); Mae-Wan Ho (PhD Director Institute of Science in Society); Peter Saunders (Prof. Emeritus of Applied Mathematics, King’s College London); Dr. Terje Traavik (Prof. Gene Ecology, Faculty of Health Sciences, University of Tromsö); Oscar B. Zamora (Prof. Crop Science University of the Philippines Los Banos College, Philippines); Adrian Gibbs (Prof. (ret.) Canberra, Australia); Christian Vélot (Senior Lecturer in Molecular Genetics, University Paris-Sud, France); André Cicolella (Scientific adviser INERIS (National Institute of Industrial Environment and Risk) France); Maurizio Pea (Bussolengo General Hospital and University of Verona, Italy) Xiulin Gu (PhD, Yunnan University of Finance and Economics, P.R.China); Brigitta Kurenbach (PhD,University of Canterbury, NZ); Elena Alvarez-Buylla (Instituto de Ecología, CU, Coyoacán, México); Elizabeth Cullen (MB, Ph.D, MD and environmental scientist); Claudia Chaufan, MD, PhD (University of California San Francisco); Marijan Jost (Prof., Croatia); Manuel Ruiz Perez (Dpto. Ecologia, Universidad Autonoma de Madrid-Spain); Rubens Onofre Nodari (Full Professor, Federal University of Santa Catarina Florianópolis, Brazil); Judy Carman (Institute of Health and Environmental Research Inc., Kensington Park, Australia); Florianne Koechlin PhD (Blueridge Institute, Switzerland); Richard Lasker (for Brabant Research, Inc., BioInformatix, Inc., Puget Environmental Group, Inc.); Anita Idel (Dr. med. vet. Mediatorin (MAB) Germany); J.R. Olarieta (PhD, Lecturer in Soil Science, Universitat de Lleida); Svein Anders Noer Lie Associate Prof. University of Tromsoe, Norway); Cathey Falvo, MD, MPH [(retired)Prof & chair, international public health, New York Medical College, NY); Thomas Bøhn (GenØk - Centre for Biosafety, Tromsø, Norway); Jiang Gaoming, PhD, Professor of Institute of Botany, The Chinese Academy of Sciences, Beijing, China); Prof. Enrique Ortega (FEA/Unicamp, Brazil); Gregory Möller (Prof. Environmental Chemistry and Toxicology, The University of Idaho-Washington State University, USA); Dr Paulo Roberto Matins, Coordinator of the Brazilian Research Network in Nanotechnology, Society and Environment); Paulo Cezar Mendes Ramos (PhD ICMBio - Chico Mendes Biodiversity Conservation Institute, Brazil); Henry Kuska (PhD ret. Associate Professor, Depart. of Chemistry, University of Akron, USA); Philipe Baret (Université de Louvain, Louvain-la-Neuve, Belgium); Marco Tulio da Silva Ferreira (MSc, UFMG, Brazil); Facundo Martín Phd (Universidad Nacional de Cuyo, CONICET, Argentina); Jacinta Palerm (Colegio de Postgraduados, Mexico); Dr Maarten Stapper (BioLogic AgFood); Sergio dC Rubin, (Latin Research Center, Bolivian Center of BioScience Research); Dr. Jalcione Almeida (Universidade Federal do Rio Grande do Sul – UFRGS, Porto Alegre, Brasil); Jaime Breilh, Md. MSc. PhD (Universidad Andina Simón Bolívar, Quito, Ecuador); Raquel Maria Rigotto (Profa. Departamento de Saúde Comunitária, Universidade Federal do Ceará, Brasil); John J. Moore, S.J. (D.Sc. ret. Professor of Botany UCD, Dublin and UNZA, Lusaka); Gualter Barbas Baptista (Researcher in Ecological Economics and Political Ecology, Portugal); Prof. José Carlos de Araújo (Federal University of Ceará, Fortaleza, Brazil); Ligia Regina Franco Sansigolo Kerr (Universidade Federal do Ceará, Fortaleza, Brasil); Silvana Suaiden (Professora da PUC-Campinas, Brazil); Prof. Florence Piron (Université Laval, Québec, Canada); Luigi D'Andrea, Biologist, PhD (Biome, Switzerland); Dra. Maria do Céu de Lima (Professora Associada LEAT UFC, Brazil); Tim LaSalle, PhD, (Professor of dairy science,ret., RSA); Profa. Dra. Cecilia Campello do Amaral Mello, Universidade Federal do Rio de Janeiro, Brazil); Randy Wayne (Assoc. Professor, Department of Plant Biology, Cornell University, USA); Pr Marcello Buiatti (University of Florence, Italy); Kathya Orrico, PhD, (Brazil); Gabriel Silva Campos (Universidad Autónoma de Madrid, Espana); Prof. Dr. Andres E. Carrasco MD (Institute of Cell Biology and Neurosciences, School of Medicine Univ. of Buenos Aires, Argentina); Profa Dra. Valéria Cristina Lopes Wilke (Diretora da Faculdade de Filosofia, Universidade Federal do Estado do Rio de Janeiro - UNIRIO, Brazil);Profa Simone Benedet Fontoura (Instituto Federal de Educação, Ciência e Tecnologia do Amazonas, Campus Manaus Zona Leste, Brazil); Prof. Dr. Mauricio Chiarello (Ribeirão Preto - SP, Brazil); Prof. David O. Born (Professor, University of Minnesota School of Dentistry, USA); Isabelle Goldringer (directrice de recherche INRA, UMR de Génétique Végétale, Université Paris-Sud, France); Rueidi Bastos (EMBRAPA, Brazil); Dr Stuart Parkinson (Executive Director, Scientists for Global Responsibility); Jean-Pierre Berlan (Directeur de Recherche INRA (retired)); Marciano Silva (Federal University of Rio Grande do Sul, Brazil); Dr Ulrich Loening (ex-Director of the Centre for Human Ecology, University of Edinburgh); Flávio Fabrini, PhD; Yara Paulina Cerpa Aranda (Universidade Federal do Rio Grande do Sul - Brasil); Thomas Heams (Assistant Professor, AgroParisTech and INRA, France); Donald R. Davis, Ph.D. (Biochemical Institute, The University of Texas, Austin, USA); Pierre M. Stassart (Associate Professor, Université de Liège, Belgium); Rosemary Mason (MB ChB FRCA); Dott. Ernesto Burgio (President of ISDE Scientific Committee, Italy); Dr. Narciso Barrera-Bassols (Investigador Nacional SNI II, Unión de Científicos Comprometidos con la Sociedad (UCCS), México); Jacques Hallard (Ing. CNAM, France); Jérôme Enjalbert (INRA, FRANCE); Rupa Patel, MD,FCFP (Queens University, Canada); Carlos Sonnenschein MD (Tufts University School of Medicine, USA); Bruno Gasparini (Coordenador do Curso de Direito do Instituto Superior do Litoral do Paraná, Paranaguá - Paraguay); Rod Toms (Ret. Lecturer in Biological Sciences Cornwall College); Cristine Carole Muggler (Associate Professor, Soil Science Department, Federal University of Viçosa, Brazil); Valério Pillar (Professor Titular, Departamento de Ecologia, Universidade Federal do Rio Grande do Sul, Brazil); David Quist (Senior Scientist, Centre for Biosafety, Tromsø, Norway); Emilia Wanda Rutkowski, University of Campinas, Brasil); Raoni Japiassu Merisse (Instituto Chico Mendes de Conservação da Biodiversidade - ICMBio, Brazil); Marc Mathieu (Research scientist, Inserm, France); Prof. Jorge A Quillfeldt (Biophysics Dept, IB / UFRGS, Brazil); Adelheid Kresse, PhD (Medical University Graz, Austria); Paul Connett, PhD (Prof. Emeritus of Chemistry, Director, American Environmental Health Studies Project, USA); Thomas Kesteman, MD, MPH (Université Catholique de Louvain, Belgium/Université Aix-Marseille II, France/Institut Pasteur de Madagascar, Madagascar); Juan Carlos Martínez García, PhD (Professor, Advanced Studies and Research Center of the National Polytechnic Institut of Mexico -Cinvestav/IPN-, México); Benjamin Bathfield, (PhD student at El Colegio de la Frontera Sur, Mexico); Jan Diek van Mansvelt, (ret. Wageningen University (NL) and Timirazev University (Moscow, Russia); Anna Milena Zivian, Ph.D (Ocean Conservancy); Dr. Peter Weish (Institut für Zoologie der Universität für Bodenkultur, Wien, Austria); Prof. Fábio Kessler Dal Soglio (Faculdade de Agronomia - UFRGS; Porto Alegre, Brasil); Kristin Vala Ragnarsdottir (Institute of Earth Sciences, University of Iceland); Harald Sverdrup (Professor of Chemical Engineering, Lund University, Sweden).


and if you are a scientist or academic and would like your name added to this list, please email: isneditor (at) bioscienceresource.org and write 'Seralini letter' in the headline, providing an affiliation if you wish.

Footnotes

(1) In addition, US scientists who publish studies finding adverse environmental effects are frequently vehemently attacked by other pro-GM scientists. As a report in Nature, which discusses numerous examples, points out, "Papers suggesting that biotech crops might harm the environment attract a hail of abuse from other scientists. Behind the attacks are scientists who are determined to prevent papers they deem to have scientific flaws from influencing policy-makers. When a paper comes out in which they see problems, they react quickly, criticize the work in public forums, write rebuttal letters, and send them to policy-makers, funding agencies and journal editors" (pg. 27 inWaltz. 2009a. Indeed, when one of us wrote a Commentary in Nature Biotechnology ten years ago suggesting that more attention needs to be paid to the potential unintended effects associated with insertional mutagenesis, we received a flood of responses, and an administrator at the Salk Institute even said that the publication "was jeopardizing funding for his institution" (see Waltz, 2009a). Similar attacks have greeted studies on adverse effects of Bt toxins on ladybird beetles and green lacewing larvae, which were used by German authorities to ban cultivation of Mon810, a Bt corn variety (see: Hilbeck et al. 2012a,b , respectively). In 2009, a group of 26 public sector corn entomologists sent a letter to the US Environmental Protection Agency which stated "No truly independent research can be legally conducted on many critical questions involving these crops [because of company-imposed restrictions]” (pg. 880 in Waltz, 2009b; it was no surprise that the letter was sent anonymously as the scientists feared retribution from the companies that funded their work (Pollack, 2009). Furthermore, industry control over what research can be conducted in the US means that adverse findings can effectively be suppressed. In one example cited in the article, Pioneer was developing a binary Bt toxin, Cry34Ab1/Cry35Ab1, against the corn rootworm. In 2001, Pioneer contracted with some university laboratories to test for unintended effects on a lady beetle. The laboratories found that 100% of the lady beetles died after eight days of feeding. Pioneer forbade the researchers from publicizing the data. Two years later Pioneer received approval for a Bt corn variety with Cry34Ab1/Cry35Ab1 and submitted studies showing that lady beetles fed the toxin for only 7 days were not harmed. The scientists were not allowed to redo the study after the crop was commercialized (Waltz, 2009b). In another example, Dow AgroSciences threatened a researcher with legal action if he published information he had received from US EPA. As the article notes, “The information concerned an insect-resistant variety of maize known as TC1507, made by Dow and Pioneer. The companies suspended sales of TC1507 in Puerto Rico after discovering in 2006 that an armyworm had developed resistance to it. Tabashnik was able to review the report the companies filed with the EPA by submitting a Freedom of Information Act request. “I encouraged an employee of the company [Dow] to publish the data and mentioned that, alternatively, I could cite the data,” says Tabashnik. “He told me that if I cited the information…I would be subject to legal action by the company,” he says. “These kinds of statements are chilling” (pg. 882 in Waltz, 2009b).

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Romano M.A., R.M. Romano, L.D. Santos, P. Wisniewski, D.A. Campos, P.B. de Souza, P. Viau, M.M. Bernardi, M.T. Nunes, C.A. de Oliveira. 2012. Glyphosate impairs male offspring reproductive development by disrupting gonadotropin expression. Arch. Toxicol. 86(4):663-73.

RSC (Royal Society of Canada). 2001. Elements of Precaution: Recommendations for the Regulation of Food Biotechnology In Canada

Science Media Centre. 2012. Study on cancer and GM maize – experts respond. Posted 20 Sept 2012.

Schubert, David. 2002. A different perspective on GM food.Nature Biotech. 20: 969

Séralini, G-E., E. Clair, R. Mesnage, S. Gress, N. Defarge, M. Malatesta, D. Hennequin, J. Spiroux de Vendômois. 2012.Long term toxicity of a Roundup herbicide and a Roundup-tolerant genetically modified maize. Food Chem. Toxicol.

Snell, C., A. Bernheim, J-B. Berge, M. Kuntz, G. Pascal, A. Paris, and A.E. Ricroch. 2012. Assessment of the health impact of GM plant diets in long-term and multigenerational animal feeding trials: A literature review. Food Chem. Toxicol.50:1134-1148

Spiroux de Vendômois, J., F. Roullier, D. Cellier, and G.-E. Séralini. 2009. A Comparison of the Effects of Three GM Corn Varieties on Mammalian Health. Int. J. Biol. Sci. 5(7):706–726

Waltz, E. 2009a. Battlefield. Nature 461: 27-32.

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Worstall, Tim. 2012. Proof Perfect That The Seralini Paper On GM Corn And Cancer In Rats Is Rubbish. Forbes 21 Sept 2012.


Source:   http://independentsciencenews.org/health/seralini-and-science-nk603-rat-study-roundup/

SCIENTISTS ON GMO's BE DAMNED - UNLESS THEY COW TOW TO CORPORATE INTERESTS

Corporate Push for GMO Food Puts Independent Science in Jeopardy
by Vandana ShivaPublished on Friday, December 7, 2012 by The Asian Age


Science is considered science when it is independent, when it has integrity and when it speaks the truth about its search. It was the integrity, independence and sovereignty of science that drew me and propelled me to study physics.(Photo: rodale.com)

Today, independent science is threatened with extinction. While this is true in every field, it is the field of food and agriculture that I am most concerned about.

At the heart of the food and agriculture debate are genetically modified organisms, also referred to as GMOs. The agrochemical industry’s new avatar is as the GMO industry. According to the industry, GMOs are necessary to remove hunger and are safe.

But evidence from all independent scientists has established that GMOs do not contribute to food security. The UN-sponsored International Assessment of Agricultural Science and Technology for Development (IAASTD) report — written by 400 scientists after a research of three to four years — concluded that there is no evidence that GMOs increase food security. The Union of Concerned scientists concluded in its report, “A Failure to Yield”, that in the US, genetic engineering had not increased the yield. “The GMO Emperor Has No Clothes” — a Global Citizens’ report on the state of GMOs based on field research across the world — also found that genetic engineering has not increased yields. Yet, the propaganda continues that GMOs are the only solution to hunger because GMOs increase yields.

The Supreme Court of India appointed an independent Technical Expert Committee (TEC) to advise it on issues of biosafety. The committee has some of India’s most eminent scientists, including Dr Imran Siddiqui, director of the Centre for Cellular and Molecular Biology, and Dr P.S. Ramakrishnan, India’s leading biodiversity expert and professor emeritus at the Jawaharlal Nehru University.

One would have expected the government to accept the recommendations of this eminent panel and to throw its weight behind the integrity and independence of science.

The most effective road to reducing hunger and malnutrition is to intensify land use in terms of biodiversity and ecological processes of renewal of soil fertility. Biodiverse ecological farms increase food and nutrition output per acre.

Instead, the government is throwing its weight behind the industry and its fraudulent claims. The Centre has joined the industry in opposing the expert committee’s report recommending moratorium on open field trial of GM crops for 10 years. Responding to a direct query from a bench presided over by Justice Swatanter Kumar and Justice S.J. Mukhopadaya, Attorney General G.E. Vahanvati, appearing for the Centre, said that the Centre does not accept the recommendations of the TEC. With the industry also filing objections to the report, the court directed the expert committee to give a final report after considering objections by various parties.

Stressing on the need to introduce GM crops, the Centre has said it would not be able to meet the first millennium development goal (MDG) of cutting the number of hungry people by half without such technologies. A moratorium of 10 years would take the country 20 years back in scientific research, it added.

These are fallacious arguments. Only two per cent of the GMO soy in the US is eaten by humans. The rest is used as biofuel to run cars and as animal feed. More GMOs do not mean more food.

The most effective road to reducing hunger and malnutrition is to intensify land use in terms of biodiversity and ecological processes of renewal of soil fertility. Biodiverse ecological farms increase food and nutrition output per acre.

The real scientific need for India and the world is to do research on agroecology, on how biodiversity and agro-ecosystems can produce more food while using lesser resources.

In the chemical industrial paradigm, seed and soil are empty containers to add toxic chemicals and genes to, and water is limitless. Industrial agriculture is destroying the natural capital on which food security depends.

All independent research on safety indicates that GMOs have serious biosafety issues. This is why we have a UN biosafety protocol.

The industrial agriculture and GMO paradigm has no understanding of the millions of soil organisms that produce soil fertility, the thousands of crop species that feed us, the amazing work of pollinators like bees and butterflies. And because ecological interactions that produce food are a black hole in the GMO paradigm, the impact of the release of GMOs in the environment is also a black hole. Independent science is vital to fill the gaps in knowledge about the ecology of food production and the ecology of biosafety. This is the knowledge gap that the TEC and independent scientists everywhere are trying to fill.

All independent research on safety indicates that GMOs have serious biosafety issues. This is why we have a UN biosafety protocol.

Beginning with Hungarian-born biochemist and nutritionist Dr Arpad Putzai and continuing with French scientist Dr Seralini, industry and its lobbyists assault every independent scientist whose research shows that GMOs have risks. Dr Putzai’s research, commissioned by the UK government, showed that rats fed with GMO potatoes had shrunken brains, enlarged pancreas and damaged immunity. Dr Putzai was hounded out of his lab and a gag order was put on him.

The publication of a paper in the journal Food and Chemical Toxicology “Long Term Toxicity of a Roundup Herbicide and a Roundup-tolerant GM Maize” by Dr Seralini et al (2012) has generated intense debate on the safety or otherwise of Monsanto’s GM maize NK603.

The European Network of Scientists for Social and Environmental Responsibility (ENSSER) welcomes Dr Seralini’s study. I joined 120 scientists to sign a letter — Seralini and Science: An Open Letter — supporting Dr Seralini’s study.

Independent science is vital to fill the gaps in knowledge about the ecology of food production and the ecology of biosafety.

Russia and Kazakhstan have since halted imports of NK603 maize and, more recently, the Kenyan Cabinet has issued a directive to stop the import of GM foods due to inadequate research done on GMOs and lack of scientific evidence to prove the safety of the food.

This precautionary approach is what India’s Supreme Court-appointed TEC is calling for.

Citizens of California had put up Proposition 37 in the recent elections for something as simple as the “Right to Know Genetically Engineered Food” by having a label on GMO foods. This is recognised as a citizen’s right in Europe and now in India. But the California vote was defeated by industry spending — big food industry players are paying big bucks to battle California’s GMO labelling initiative. According to reports, they are spending as much as $1 million a day on false and misleading advertising.

If citizens don’t have the right to know and scientists don’t have the freedom to speak the truth, we are creating societies that are dangerous — both in terms of loss of democratic freedom and in terms of risking biosafety.

Independent scientists, along with the bees and biodiversity of our plants and seeds, could well become a species threatened with extinction if we do not stop the GMO drone.
© 2012 The Asian Age



Dr. Vandana Shiva is a philosopher, environmental activist and eco feminist. She is the founder/director of Navdanya Research Foundation for Science, Technology, and Ecology. She is author of numerous books including, Soil Not Oil: Environmental Justice in an Age of Climate Crisis;Stolen Harvest: The Hijacking of the Global Food Supply; Earth Democracy: Justice, Sustainability, and Peace; and Staying Alive: Women, Ecology, and Development. Shiva has also served as an adviser to governments in India and abroad as well as NGOs, includ

Source:  http://www.commondreams.org/view/2012/12/07-5http://www.commondreams.org/view/2012/12/07-5he International Forum on Globalization, the Women’s Environment and Development Organization and the Third World Network. She has received numerous awards, including 1993 Right Livelihood Award (Alternative Nobel Prize) and the 2010 Sydney Peace Prize.

Sunday, December 2, 2012

BOUGHT AND SOLD ELITIST FOOD FIGHT - THE GREAT AND POWERFUL WIZARD OF OZ HAS SPOKEN?


Organic: Food Justice for the 99% - Dr. Oz in Time Magazine Slandering Families Who Choose Safe, Organic Food for Their Children — Off-Base/Ill Advised
by Charlotte Vallaeys
Published on Saturday,
December 1, 2012 by 
The Cornucopia Institute

As Americans become increasingly aware of the story behind conventional foods—the ecologically destructive monoculture fields, the petrochemical fertilizers, the toxic pesticides and dangerous fumigants—the agrochemical industry has launched an all-out media offensive against the booming organic industry.

The agrochemical industry’s communications specialists have apparently found willing partners in major nationwide media outlets like The New York Times and Time magazine, which have recently published articles discouraging people from buying organic foods. The message is nearly always the same, as industry-friendly researchers and reporters downplay the role and harm caused by agricultural chemicals and focus instead on the differences between a handful of common nutrients. Despite overwhelming scientific evidence to the contrary, the conclusion is always that organic foods are not worth the extra price because the nutritional differences are minimal.

First, we must set the record straight. Scientific studies show that milk from pastured cows contains higher levels of beneficial fats. Beef from grass-fed cattle and eggs from pastured hens are lower in cholesterol and saturated fat and higher in healthy omega-3 fatty acids and Vitamins A and E. Organic strawberries and tomatoes contain more healthy antioxidants. These are all undisputed facts laid out in a myriad of published, peer-reviewed scientific papers.

Consumers increasingly turn to organic and grass-based foods, based on this scientific evidence that has been reported in magazines, including Time, in recent years. Now, the latest issue ofTime mindlessly repeats the agribusiness mantra: “Nutritionally, an egg is an egg.” Milk is milk. And canned peas, with toxic pesticide residues, heated to extreme temperatures during processing, and then placed in a container lined with a suspected endocrine disruptor, are just as healthy as those for sale at a farmer’s market, picked fresh from a local field just hours ago.

The purpose of these media reports and stories seems to be to pull Americans away from thoughtful discourse about our food and back to blissful ignorance. Concern over pesticides, animal welfare, fostering local economies, and pollution turn people toward organic and local foods—and that’s bad for business for the chemical and industrial farming industries. No wonder they want us all to look at an egg, whether produced on a factory farm or laid by a free-range, pastured hen, and see nothing more.

The paternalistic message—to shut up and eat our food—is no longer working. Americans are no longer ignoring the mounting scientific evidence that pesticides, herbicides, fungicides, hormones, antibiotics and other drug residues are harming us, even at extremely low levels, and especially our children.

This scientific evidence about pesticides’ harmful effects, most recently reviewed by the American Academy of Pediatrics and covered in the latest issue of Pediatrics, will continue to be a major driving force behind the booming success and growth of the organic food movement.

The agrochemical industry will not win the hearts and minds (and stomachs) of Americans, especially when the health of our children is on the line. So they have turned their latest attempt to bring Americans back to blind trust in conventional foods by focusing on our collective class resentments. A more sinister message has taken hold, likening a diet of conventional foods to “The 99% Diet” and a chemical-free organic diet as “elitist.”

In Time magazine, Dr. Mehmet Oz, who once told millions of viewers, “I want you to eat organic foods” and “your kids deserve better than to be part of a national chemistry experiment,” has seemingly changed his tune and turned the decision to buy organic foods into a political and class issue.

Not only did Dr. Oz write that conventional foods are nutritionally equal to organic foods (he never mentions pesticide contamination), he calls organic foods “elitist.” Suddenly, a middle-class mother who decides to pay extra for a safe haven from pesticide contamination is called “snooty” and a “food snob” by the very same celebrity physician who once urged her to protect her children from agricultural chemicals by choosing organic.

Of course, the scientific evidence has not changed since Dr. Oz told us to buy organic. The study, for example, that showed statistically significant higher rates of Attention Deficit Hyperactivity Disorder (ADHD) in children with higher levels of dietary pesticide exposure has not disappeared, and is considered as scientifically sound and convincing today as it was when it was first published in 2010 and reported in media outlets including Time.

The conventional food advocates are now attempting to dissuade Americans from buying organic foods by turning the issue into one of class and privilege. The tactic is to paint food as a reflection of one’s position in society, like owning a Mercedes or fancy yacht, rather than a question of health and safety—organic food is painted not as a safe haven from pesticides, but as an elitist food for the “1%.” Would any of us 99%’ers want to be considered a “snob?”

Middle-class Americans who prioritize personal finances and choose to protect their children from harmful pesticide residues should be proud of this decision, and should not be bullied or shamed by Oz. Our children, as Dr. Oz once noted, should not serve as the human equivalents of lab rats. Rather than malign organic foods as elitist, we must recognize the very real and indisputable health benefits of organics and work to make pure, wholesome, uncontaminated foods more accessible and affordable for all.
© 2012 Cornucopia Institute



Charlotte Vallaeys, M.S., M.T.S. is the Director of Farm and Fo
od Policy at The 

Saturday, December 1, 2012

OUR FOOD ON FRACK


Fracking Our Food Supply  

By Elizabeth Royte

In a Brooklyn winery on a sultry July evening, an elegant crowd sips rosé and nibbles trout plucked from the gin-clear streams of upstate New York. The diners are here, with their checkbooks, to support a group called Chefs for the Marcellus, which works to protect the food shed upon which hundreds of regional farm-to-fork restaurants depend. The food shed is coincident with the Marcellus Shale, a geologic formation that arcs northeast from West Virginia through Pennsylvania and into New York State. As everyone invited here knows, the region is both agriculturally and energy rich, with vast quantities of natural gas sequestered deep below its fertile fields and forests. 

In Pennsylvania, the oil and gas industry is already on a tear—drilling thousands of feet into ancient seabeds, then repeatedly fracturing (or “fracking”) these wells with millions of gallons of highly pressurized, chemically laced water, which shatters the surrounding shale and releases fossil fuels. New York, meanwhile, is on its own natural-resource tear, with hundreds of newly opened breweries, wineries, organic dairies and pastured livestock operations—all of them capitalizing on the metropolitan area’s hunger to localize its diet.
But there’s growing evidence that these two impulses, toward energy and food independence, may be at odds with each other. 
Tonight’s guests have heard about residential drinking wells tainted by fracking fluids in Pennsylvania, Wyoming and Colorado. They’ve read about lingering rashes, nosebleeds and respiratory trauma in oil-patch communities, which are mostly rural, undeveloped, and lacking in political influence and economic prospects. The trout nibblers in the winery sympathize with the suffering of those communities. But their main concern tonight is a more insidious matter: the potential for drilling and fracking operations to contaminate our food. The early evidence from heavily fracked regions, especially from ranchers, is not reassuring. 
Jacki Schilke and her sixty cattle live in the top left corner of North Dakota, a windswept, golden-hued landscape in the heart of the Bakken Shale. Schilke’s neighbors love her black Angus beef, but she’s no longer sharing or eating it—not since fracking began on thirty-two oil and gas wells within three miles of her 160-acre ranch and five of her cows dropped dead. Schilke herself is in poor health. A handsome 53-year-old with a faded blond ponytail and direct blue eyes, she often feels lightheaded when she ventures outside. She limps and has chronic pain in her lungs, as well as rashes that have lingered for a year. Once, a visit to the barn ended with respiratory distress and a trip to the emergency room. Schilke also has back pain linked with overworked kidneys, and on some mornings she urinates a stream of blood.
Ambient air testing by a certified environmental consultant detected elevated levels of benzene, methane, chloroform, butane, propane, toluene and xylene—compounds associated with drilling and fracking, and also with cancers, birth defects and organ damage. Her well tested high for sulfates, chromium, chloride and strontium; her blood tested positive for acetone, plus the heavy metals arsenic (linked with skin lesions, cancers and cardiovascular disease) and germanium (linked with muscle weakness and skin rashes). Both she and her husband, who works in oilfield services, have recently lost crowns and fillings from their teeth; tooth loss is associated with radiation poisoning and high selenium levels, also found in the Schilkes’ water.
State health and agriculture officials acknowledged Schilke’s air and water tests but told her she had nothing to worry about. Her doctors, however, diagnosed her with neurotoxic damage and constricted airways. “I realized that this place is killing me and my cattle,” Schilke says. She began using inhalers and a nebulizer, switched to bottled water, and quit eating her own beef and the vegetables from her garden. (Schilke sells her cattle only to buyers who will finish raising them outside the shale area, where she presumes that any chemical contamination will clear after a few months.) “My health improved,” Schilke says, “but I thought, ‘Oh my God, what are we doing to this land?’”
Schilke’s story reminds us that farmers need clean water, clean air and clean soil to produce healthful food. But as the largest private landholders in shale areas across the nation, farmers are disproportionately being approached by energy companies eager to extract oil and gas from beneath their properties. Already, some are regretting it. 
Earlier this year, Michelle Bamberger, an Ithaca veterinarian, and Robert Oswald, a professor of molecular medicine at Cornell’s College of Veterinary Medicine, published the first (and, so far, only) peer-reviewed report to suggest a link between fracking and illness in food animals. The authors compiled case studies of twenty-four farmers in six shale-gas states whose livestock experienced neurological, reproductive and acute gastrointestinal problems. Exposed either accidentally or incidentally to fracking chemicals in the water or air, scores of animals have died. The death toll is insignificant when measured against the nation’s livestock population (some 97 million beef cattle go to market each year), but environmental advocates believe these animals constitute an early warning. 
Exposed animals “are making their way into the food system, and it’s very worrisome to us,” Bamberger says. “They live in areas that have tested positive for air, water and soil contamination. Some of these chemicals could appear in milk and meat products made from these animals.” 
In Louisiana, seventeen cows died after an hour’s exposure to spilled fracking fluid. (Most likely cause of death: respiratory failure.) In north central Pennsylvania, 140 cattle were exposed to fracking wastewater when an impoundment was breached. Approximately seventy cows died; the remainder produced eleven calves, of which only three survived. In western Pennsylvania, an overflowing waste pit sent fracking chemicals into a pond and a pasture where pregnant cows grazed: half their calves were born dead. The following year’s animal births were sexually skewed, with ten females and two males, instead of the usual 50-50 or 60-40 split. 
In addition to the cases documented by Bamberger, hair testing of sick cattle that grazed around well pads in New Mexico found petroleum residues in fifty-four of fifty-six animals. In North Dakota, wind-borne fly ash, which is used to solidify the waste from drilling holes and contains heavy metals, settled over a farm: one cow, which either inhaled or ingested the caustic dust, died, and a stock pond was contaminated with arsenic at double the accepted level for drinking water.
Cattle that die on the farm don’t make it into the nation’s food system. (Though they’re often rendered to make animal feed for chickens and pigs—yet another cause for concern.) But herd mates that appear healthy, despite being exposed to the same compounds, do: farmers aren’t required to prove their livestock are free of fracking contaminants before middlemen purchase them. Bamberger and Oswald consider these animals sentinels for human health. “They’re outdoors all day long, so they’re constantly exposed to air, soil and groundwater, with no break to go to work or the supermarket,” Bamberger says. “And they have more frequent reproductive cycles, so we can see toxic effects much sooner than with humans.”
Fracking a single well requires up to 7 million gallons of water, plus an additional 400,000 gallons of additives, including lubricants, biocides, scale and rust inhibitors, solvents, foaming and defoaming agents, emulsifiers and de-emulsifiers, stabilizers and breakers. About 70 percent of the liquid that goes down a borehole eventually comes up—now further tainted with such deep-earth compounds as sodium, chloride, bromide, arsenic, barium, uranium, radium and radon. (These substances occur naturally, but many of them can cause illness if ingested or inhaled over time.) This super-salty “produced” water, or brine, can be stored on-site for reuse. Depending on state regulations, it can also be held in plastic-lined pits until it evaporates, is injected back into the earth, or gets hauled to municipal wastewater treatment plants, which aren’t designed to neutralize or sequester fracking chemicals (in other words, they’re discharged with effluent into nearby streams). 
At almost every stage of developing and operating an oil or gas well, chemicals and compounds can be introduced into the environment. Radioactive material above background levels has been detected in air, soil and water at or near gas-drilling sites. Volatile organic compounds—including benzene, toluene, ethylene and xylene—waft from flares, engines, compressors, pipelines, flanges, open tanks, spills and ponds. (The good news: VOCs don’t accumulate in animals or plants. The bad news: inhalation exposure is linked to cancer and organ damage.) 
Underground, petrochemicals can migrate along fissures through abandoned or orphaned wells or leaky well casings (the oil and gas industry estimates that 60 percent of wells will leak over a thirty-year period). Brine can spill from holding ponds or pipelines. It can be spread, legally in some places, on roadways to control dust and melt ice. Truck drivers have also been known to illegally dump this liquid in creeks or fields, where animals can drink it or lick it from their fur.
Although energy companies don’t make a habit of telling potential lease signers about the environmental risks they might face, the Securities and Exchange Commission requires them to inform potential investors. In a 2008 filing, Cabot Industries cited “well site blowouts, cratering and explosions; equipment failures; uncontrolled flows of natural gas, oil or well fluids; fires; formations with abnormal pressures; pollution and other environmental risks.” In 2011, oil companies in North Dakota reported more than 1,000 accidental releases of oil, drilling wastewater or other fluids, with many more releases likely unreported. Between 2008 and 2011, drilling companies in Pennsylvania reported 2,392 violations of law that posed a direct threat to the environment and safety of communities. 
* * *
Schilke looks left and right, twice, for oncoming tanker trucks, then scoots down a gravel road in her camo-patterned four-wheeler. She parks alongside a leased pasture about a mile from her house and folds her body through a barbed-wire fence. “These guys are much healthier than those I’ve got at home,” she says, puffing as she hikes up a straw-colored hill. “There’s Judy…that’s Buttercup…those are my little bulls.” The black-faced animals turn to face her; some amble through the tall grass and present their foreheads for rubbing. “We’re upwind of the drill rigs here,” Schilke says. “They’re high enough to miss some of the road dust, and they’ve got good water.” Ever since a heater-treater unit, which separates oil, gas and brine, blew out on a drill pad a half-mile upwind of Schilke’s ranch, her own creek has been clogged with scummy growth, and it regularly burps up methane. “No one can tell me what’s going on,” she says. But since the blowout, her creek has failed to freeze, despite temperatures of forty below. (Testing found sulfate levels of 4,000 parts per million: the EPA’s health goal for sulfate is 250 parts per million.)
Schilke’s troubles began in the summer of 2010, when a crew working at this site continued to force drilling fluid down a well that had sprung a leak. Soon, Schilke’s cattle were limping, with swollen legs and infections. Cows quit producing milk for their calves; they lost from sixty to eighty pounds in a week; and their tails mysteriously dropped off. (Lab rats exposed to the carcinogen 2-butoxyethanol, a solvent used in fracking, have
lost their tails, but a similar connection with cattle hasn’t been shown. In people, breathing, touching or consuming enough of the chemical can lead to pulmonary edema and coma.) 
An inveterate label reader who obsessively tracks her animals’ nutritional intake, Schilke couldn’t figure out what was wrong. Neither could local veterinarians. She nursed individual cows for weeks and, with much sorrow, put a $5,000 bull out of its misery with a bullet. Upon examination, the animal’s liver was found to be full of tunnels and its lungs congested with pneumonia. Before the year was out, five cows had died, in addition to several cats and two dogs. (A feline autopsy came back inconclusive, but subsequent hair testing of cows, cats and dogs revealed sulfate levels high enough to cause polio in cattle.) Inside Schilke’s house today, where the china cabinets are kept empty for fear of a shattering drill-site explosion, nearly a dozen cats sneeze and cough, some with their heads tilted at a creepy angle. 
Before the drilling started, two cars a day traveled down Schilke’s gravel road. Now, it’s 300 trucks hauling sand, fresh water, wastewater, chemicals, drill cuttings and drilling equipment. Most of the tankers are placarded for hazardous or radioactive material. Drilling and fracking a single well requires 2,000 truck trips, and each pass of a vehicle sends a cyclone of dust and exhaust fumes into the air. Mailbox numbers are obliterated, conversations are choked off, and animals die of “dust pneumonia.” (More formally known as bovine respiratory disease, the illness is associated with viral, fungal and bacterial infection.) 
Ordinarily, Schilke hauls her calves to auction when they’re eight months old. “Buyers come from everywhere for Dakota cows,” she says. The animals are then raised on pasture or in feedlots until they are big enough for slaughter. No longer Schilke cattle, they’re soon part of the commodity food system: anonymous steaks and chops on supermarket shelves. Now, Schilke is diffident about selling her animals. “I could get good money for these steers,” she says, cocking her head toward a pair of sleek adolescents. “They seem to be in very good shape and should have been butchered. But I won’t sell them because I don’t know if they’re OK.”
* * *
Nor does anyone else. By design, secrecy shrouds the hydrofracking process, casting a shadow that extends over consumers’ right to know if their food is safe. Federal loopholes crafted under former Vice President Dick Cheney have exempted energy companies from key provisions of the Clean Air, Clean Water and Safe Drinking Water Acts, the Toxics Release Inventory, the Resource Conservation and Recovery Act, and the National Environmental Policy Act, which requires a full review of actions that may cause significant environmental impacts. If scientists and citizens can’t find out precisely what is in drilling or fracking fluids or air emissions at any given time, it’s difficult to test whether any contaminants have migrated into the water, soil or food—and whether they can harm humans. It gets even more complicated: without information on the interactions between these chemicals and others already existing in the environment, an animal’s cause of death, Bamberger says, “is anyone’s guess.” 
Fracking proponents criticize Bamberger and Oswald’s paper as a political, not a scientific, document. “They used anonymous sources, so no one can verify what they said,” Steve Everley, of the industry lobby group Energy In Depth, says. The authors didn’t provide a scientific assessment of impacts—testing what quaternary ammonium compounds might do to cows that drink it, for example—so treating their findings as scientific, he continues, “is laughable at best, and dangerous for public debate at worst.” (Bamberger and Oswald acknowledge this lack of scientific assessment and blame the dearth of funding for fracking research and the industry’s use of nondisclosure agreements.)
No one doubts that fracking fluids have the potential to do serious harm. Theo Colborn, an environmental health analyst and former director of the World Wildlife Fund’s wildlife and contaminants program, identified 632 chemicals used in
natural-gas production. More than 75 percent of them, she said, could affect sensory organs and the respiratory and
gastrointestinal systems; 40 to 50 percent have potential impacts on the kidneys and on the nervous, immune and
cardiovascular systems; 37 percent act on the hormone system; and 25 percent are linked with cancer or mutations.
Thanks to public pressure, several states have started to tighten regulations on the cement casings used to line wells, and the Obama administration recently required energy companies to disclose, on the industry-sponsored website fracfocus
.org, the fracking chemicals used on public land. (States regulate fracking on private land and set different requirements.) Still, information about quantities and concentrations of the chemicals remains secret, as do compounds considered proprietary. Further, no state requires a company to disclose its ingredients until a fracking job is complete. At that point, it’s easy to blame the presence of toxins in groundwater on a landowner’s use of pesticides, fertilizers or even farm equipment. 
Clearly, the technology to extract gas from shale has advanced faster, and with a lot more public funding, than has the study of its various effects. To date, there have been no systematic, peer-reviewed, long-term studies of the health effects of hydraulic fracturing for oil and gas production (one short-term, peer-reviewed study found that fracking emissions may contribute to acute and chronic health problems for people living near drill sites). And the risks to food safety may be even more difficult to parse. 
“Different plants take up different compounds,” says John Stolz, an environmental microbiologist at Duquesne University. For example, rice and potatoes take up arsenic from water, but tomatoes don’t. Sunflowers and rape take up uranium from soil, but it’s unknown if grasses do. “There are a variety of organic compounds, metals and radioactive material that are of human health concern when livestock meat or milk is ingested,” says Motoko Mukai, a veterinary toxicologist at Cornell’s College of Veterinary Medicine. These “compounds accumulate in the fat and are excreted into milk. Some compounds are persistent and do not get metabolized easily.” 
Veterinarians don’t know how long the chemicals may remain in animals, and the Food Safety Inspection Service, part of the US Department of Agriculture, isn’t looking for them in carcasses. Inspectors in slaughterhouses examine organs only if they look diseased. “It’s gross appearance, not microscopic,” Bamberger says of the inspections—which means that animals either tainted or sickened by those chemicals could enter the food chain undetected.
“The USDA focuses mostly on pathogens and pesticide residues,” says Tony Corbo, a senior lobbyist for Food and Water Watch. “We need to do risk assessments for these fracking chemicals and study tolerance levels.” The process, he adds, could take more than five years. In the meantime, fractivists are passing around a food-pyramid chart that depicts chemicals moving from plants into animals, from animals into people, and from people into… zombies. 
* * *
The relatively small number of animals reported sick or dead invites the question: If oil and gas operations are so risky, why aren’t there more cases? There likely are, but few scientists are looking for them. (“Who’s got the money to study this?” Colborn asks rhetorically.) Rural vets won’t speak up for fear of retaliation. And farmers aren’t talking for myriad reasons: some receive royalty checks from the energy companies (either by choice or because the previous landowner leased their farm’s mineral rights); some have signed nondisclosure agreements after receiving a financial settlement; and some are in active litigation. Some farmers fear retribution from community members with leases;
others don’t want to fall afoul of “food disparagement” laws
or get sued by an oil company for defamation (as happened with one Texan after video of his flame-spouting garden hose was posted on the Internet. The oil company won; the
homeowner is appealing).
And many would simply rather not know what’s going on. “It takes a long time to build up a herd’s reputation,” says rancher Dennis Bauste, of Trenton Lake, North Dakota. “I’m gonna sell my calves, and I don’t want them to be labeled as tainted. Besides, I wouldn’t know what to test for. Until there’s a big wipeout, a major problem, we’re not gonna hear much about this.” Ceylon Feiring, an area vet, concurs. “We’re just waiting for a wreck to happen with someone’s cattle,” she says. “Otherwise, it’s just one-offs”—a sick cow here and a dead goat there, easy for regulators, vets and even farmers to shrug off. 
The National Cattlemen’s Beef Association takes no position on fracking, nor has it heard from members either concerned by or in favor of the process. And yet it’s ranchers and farmers—many of them industry-supporting conservatives—who are, increasingly, telling their stories to the media and risking all. These are the people who have watched helplessly as their livestock suffer and die. “It’s not our breeding or nutrition destroying these animals,” Schilke says, her voice rising in anger. “It’s the oilfield industry.” 
However, some institutions that specialize in risk have started to connect the dots. Nationwide Mutual Insurance, which sells agricultural insurance, recently announced that it would not cover damages related to fracking. Rabobank, the world’s largest agricultural bank, reportedly no longer sells mortgages to farmers with gas leases. And in the boldest move yet by a government official, Christopher Portier, director of the National Center for Environmental Health at the Centers for Disease Control and Prevention, called for studies that “include all the ways people can be exposed, such as through air, water, soil, plants and animals.” While the EPA is in the midst of a $1.9 million study of fracking’s impact on water, no government agency has taken up Portier’s challenge to study plants and animals. 
* * *
The possibility of chemical contamination aside, oil and gas operations have already affected food producers. “I lost six acres of hayfields when the gas company put roads in,” says Terry Greenwood, a rancher in western Pennsylvania. “Now I have to buy more feed for my cattle.” (Like other farmers hurt by drilling and fracking, he still pays taxes on his unproductive land.) Others have lost the use of stock ponds or creeks to brine spills. 
“We’ve got 12,000 wells in the Bakken, and they each take up six acres,” says Mark Trechock, former director of the Dakota Resource Council. “That’s 72,000 acres right there, without counting the waste facilities, access roads, stored equipment and man camps that go along with the wells.” Before the drilling boom, that land might have produced durum wheat, barley, oats, canola, flax, sunflowers, pinto beans, lentils and peas. In Pennsylvania, where nearly 6,500 wells have been drilled since 2000, the Nature Conservancy estimates that thirty acres are directly or indirectly affected for every well pad. 
East of the Rockies, intensive drilling and fracking have pushed levels of smog, or ground-level ozone, higher than those of Los Angeles. Ozone significantly diminishes crop yields and reduces the nutritional value of forage. Flaring of raw gas can acidify soil and send fine particulate matter into the air; long-term exposure to this material has been linked to human heart and lung diseases and disruption to the endocrine system. Earlier this year, the Environmental Protection Agency finalized standards that require reductions in airborne emissions from gas wells, although the industry has more than two years to comply.
Besides clean air, farmers need clean water—lots of it. But some farmers now find themselves competing with energy companies for this increasingly precious resource. At water auctions in Colorado, the oil and gas industry has paid utilities up to twenty times the price that farmers typically pay. In Wyoming, ranchers have switched from raising beef to selling their water. Unwilling to risk her animals’ health to creek water that’s possibly tainted, Schilke spent $4,000 last summer hauling safe water from town to her ranch. “I’d wait in line for hours,” she says, “usually behind tanker trucks buying water to frack wells.”  
* * *
Given the absence of studies on the impacts of drilling and fracking in plants and animals, as well as inadequate inspection and scant traceability in the food chain, it’s hard to know what level of risk consumers face when drinking milk or eating meat or vegetables produced in a frack zone. Unless, of course, you’re Jacki Schilke, and you feel marginally healthier when you quit eating the food that you produced downwind or downstream from drill rigs. But many consumers—those intensely interested in where and how their food is grown—aren’t waiting for hard data to tell them what is or isn’t safe. For them, the perception of pollution is just as bad as the real thing. Ken Jaffe, who raises grass-fed cattle in upstate New York, says, “My beef sells itself. My farm is pristine. But a restaurant doesn’t want to visit and see a drill pad on the horizon.” 
Nor do the 16,200 members of the Park Slope Food Co-op in Brooklyn, which buys one cow per week from Jaffe. “If hydrofracking is allowed in New York State, the co-op will have to stop buying from farms anywhere near the drilling because of fears of contamination,” says Joe Holtz, general manager of the co-op. That’s $4 million in direct sales, with economic multipliers up and down the local food chain, affecting seed houses, creameries, equipment manufacturers and so on. 
Already, wary farmers in the Marcellus are seeking land away from the shale. The outward migration is simultaneously raising prices for good farmland in the Hudson River Valley, which lies outside the shale zone, and depressing the price of land over the Marcellus. According to John Bingham, an organic farmer in upstate New York who is involved in regional planning, lower prices entice absentee investors to buy up farmland and gain favorable “farm rate” tax breaks, even as they speculate on the gas boom. “Fracking is not a healthy development for food security in regions near fracking or away from it,” Bingham concludes. 
Only recently has the Northeast’s local-foods movement reached a critical mass, to the point where colleges and caterers trip over themselves in the quest for locally sourced and sustainably grown products. (New York has the fourth-highest number of organic farms in the nation.) But the movement’s lofty ideals could turn out to be, in shale-gas areas, a double-edged sword. “People at the farmers’ market are starting to ask exactly where this food comes from,” says Stephen Cleghorn, a Pennsylvania goat farmer.
With a watchful eye on Pennsylvania’s turmoil, many New York farmers have started to test their water pre-emptively, in the event that Governor Andrew Cuomo lifts the state’s current moratorium on fracking. And in the commercial kitchens of a city obsessed with the provenance of its prosciutto, chefs like Heather Carlucci-Rodriguez, a founder of Chefs for the Marcellus and the executive pastry chef at Manhattan’s Print Restaurant, are keeping careful tabs on their regional suppliers.
“I have a map of the Marcellus and my farmers on my office wall,” Carlucci-Rodriguez says at the Brooklyn winery event. “So far, I haven’t stopped buying from any- one. But I’m a believer in the precautionary principle.” She nods to a colleague who’s dishing up summer squash with peach slices and ricotta. “We shouldn’t have to be defending our land and water,” she says with a sigh. “We should be feeding people.”
This article was published at NationofChange at: http://www.nationofchange.org/fracking-our-food-supply-1354284759. All rights are reserved.
sOURCE:  http://www.nationofchange.org/reader/33556

JUST LABEL GMO's - CINCINNATI LEADS THE WAY!


Cincinnati Passes Resolution
Requiring GE Food Labeling

Food & Water Watch  November 16, 2012

Yesterday, the city of Cincinnati became the first in Ohio to pass a resolution to require the labeling of genetically engineered (GE) foods, citing that consumers should have the right to know what is in their food. The consumer advocacy organization Food & Water Watchbrought the resolution to city council as a part of their “Let Me Decide” campaign to make GE labeling the law. GE foods have not been fully tested for their impacts on human health and the environment.

Alison Auciello, Ohio-based organizer for Food & Water Watch said, “genetically engineered foods are potentially unsafe, and consumers should have the right to decide for themselves if they want to eat GE foods. It took regulation to get food processors to label ingredients and nutrition facts on labels, and now we’re calling for federal lawmakers to require the labeling of GE food.”

The majority of processed foods are genetically engineered, but unlike fat, sodium and sugar content, labels do not disclose which foods contain genetically engineered (GE) ingredients. Biotechnology companies submit their own safety-testing data, and independent research is limited on GE foods because licensing agreements that control the use of patented seeds prohibit cultivation for research purposes.

Genetically engineered foods are made by inserting the genetic material from one organism into another to achieve a desired characteristic such as resistance to herbicides or pesticides. Roundup Ready varieties of corn, for example, are engineered to withstand treatment with the Roundup herbicide. But, the unintended consequence of increased use of herbicides has been a rise in “superweeds,” aggressive weed species like ragweed and pigweed that have become immune to Roundup.

Cincinnati Council Member and resolution co-sponsor Wendell Young said, “this is about transparency, about ensuring that people can make informed choices about what they feed themselves and their families. Consumers have a right to know what is in their food, especially until we know for certain whether genetically engineered foods are truly safe.”

Some of the independent research that has been conducted on biotech crops has revealed troubling health implications, including deteriorating liver and kidney function and impaired embryonic development. However, the Food and Drug Administration has no way to track adverse health effects in people consuming GE foods, and because there is no requirement for labeling GE ingredients, consumers don’t know when they are eating them.

“As consumers, we have a fundamental right to know about the safety of the food we’re eating,” said Vice Mayor Roxanne Qualls, who co-sponsored the resolution. “With so much still unknown about the long-term risks of genetically-engineered products to our health and the environment, labeling of these foods is just common sense.”

Food & Water Watch works to ensure the food, water and fish we consume is safe, accessible and sustainable. So we can all enjoy and trust in what we eat and drink, we help people take charge of where their food comes from; keep clean, affordable, public tap water flowing freely to our homes; protect the environmental quality of oceans; force government to do its job protecting citizens; and educate about the importance of keeping shared resources under public control.