Literature DB >> 22543002

A research strategy to discover the environmental causes of autism and neurodevelopmental disabilities.

Philip J Landrigan, Luca Lambertini, Linda S Birnbaum.   

Abstract

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Year:  2012        PMID: 22543002      PMCID: PMC3404655          DOI: 10.1289/ehp.1104285

Source DB:  PubMed          Journal:  Environ Health Perspect        ISSN: 0091-6765            Impact factor:   9.031


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Autism, attention deficit/hyperactivity disorder (ADHD), mental retardation, dyslexia, and other biologically based disorders of brain development affect between 400,000 and 600,000 of the 4 million children born in the United States each year. The Centers for Disease Control and Prevention (CDC) has reported that autism spectrum disorder (ASD) now affects 1.13% (1 of 88) of American children (CDC 2012) and ADHD affects 14% (CDC 2005; Pastor and Reuben 2008). Treatment of these disorders is difficult; the disabilities they cause can last lifelong, and they are devastating to families. In addition, these disorders place enormous economic burdens on society (Trasande and Liu 2011). Although discovery research to identify the potentially preventable causes of neuro-develop-mental disorders (NDDs) has increased in recent years, more research is urgently needed. This research encompasses both genetic and environ-mental studies. Genetic research has received particular investment and attention (Autism Genome Project Consortium et al. 2007; Buxbaum and Hof 2011; Fernandez et al. 2012; O’Roak et al. 2011; Sakurai et al. 2011) and has demonstrated that ASD and certain other NDDs have a strong hereditary component (Buxbaum and Hof 2011; Sakurai et al. 2011). Linkage studies have identified candidate autism susceptibility genes at multiple loci, most consistently on chromosomes 7q, 15q, and 16p (Autism Genome Project Consortium et al. 2007; Sakurai et al. 2011). Exome sequencing in sporadic cases of autism has detected new mutations (O’Roak et al. 2011), and copy number variant studies have identified several hundred copy number variants putatively linked to autism (Fernandez et al. 2012). The candidate genes most strongly implicated in NDD causation encode for proteins involved in synaptic architecture, neuro-transmitter synthesis (e.g., ©-amino-butyric acid serotonin), oxytocin receptors, and cation trafficking (Sakurai et al. 2011). No single anomaly predominates. Instead, autism appears to be a family of diseases with common pheno-types linked to a series of genetic anomalies, each of which is responsible for no more than 2–3% of cases. The total fraction of ASD attributable to genetic inheri-tance may be about 30–40%. Exploration of the environmental causes of autism and other NDDs has been catalyzed by growing recognition of the exquisite sensitivity of the developing human brain to toxic chemicals (Grandjean and Landrigan 2006). This susceptibility is greatest during unique “windows of vulnerability” that open only in embryonic and fetal life and have no later counter-part (Miodovnik 2011). “Proof of the principle” that early exposures can cause autism comes from studies linking ASD to medications taken in the first trimester of pregnancy—thalidomide, misoprostol, and valproic acid—and to first-trimester rubella infection (Arndt et al. 2005; Daniels 2006). This “proof-of-principle” evidence for environmental causation is supported further by findings from prospective birth cohort epidemio-logical studies, many of them supported by the National Institute of Environmental Health Sciences (NIEHS). These studies enroll women during pregnancy, measure prenatal exposures in real time as they occur, and then follow children longitudinally with periodic direct examinations to assess growth, development, and the presence of disease. Prospective studies are powerful engines for the discovery of etiologic associations between prenatal exposures and NDDs. They have linked autistic behaviors with prenatal exposures to the organophosphate insecticide chlorpyrifos (Eskenazi et al. 2007) and also with prenatal exposures to phthalates (Miodovnik et al. 2011). Additional prospective studies have linked loss of cognition (IQ), dyslexia, and ADHD to lead (Jusko et al. 2008), methyl-mercury (Oken et al. 2008), organophosphate insecticides (London et al. 2012), organo-chlorine insecticides (Eskenazi et al. 2008), polychlorinated biphenyls (Winneke 2011), arsenic (Wasserman et al. 2007), manganese (Khan et al. 2011), polycyclic aromatic hydrocarbons (Perera et al. 2009), bisphenol A (Braun et al. 2011), brominated flame retardants (Herbstman et al. 2010), and perfluorinated compounds (Stein and Savitz 2011). Toxic chemicals likely cause injury to the developing human brain either through direct toxicity or inter-actions with the genome. An expert committee convened by the U.S. National Academy of Sciences (NAS) estimated that 3% of neuro-behavioral disorders are caused directly by toxic environ-mental exposures and that another 25% are caused by inter-actions between environmental factors, defined broadly, and inherited susceptibilities (National Research Council 2000). Epigenetic modification of gene expression by toxic chemicals that results in DNA methyla-tion, histone modification, or changes in activity levels of non-protein-coding RNA (ncRNAs) may be a mechanism of such gene–environment interaction (Grafodatskaya et al. 2010). Epigenetic “marks” have been shown to be able to influence gene expression and alter high-order DNA structure (Anway and Skinner 2006; Waterland and Jirtle 2004). A major unanswered question is whether there are still undiscovered environ-mental causes of autism or other NDDs among the thousands of chemicals currently in wide use in the United States. In the past 50 years, > 80,000 new synthetic chemicals have been developed (Landrigan and Goldman 2011). The U.S. Environmental Protection Agency has identified 3,000 “high production volume” (HPV) chemicals that are in widest use and thus pose greatest potential for human exposure (Goldman 1998). These HPV chemicals are used today in millions of consumer products. Children and pregnant women are exposed extensively to them, and CDC surveys detect quantifiable levels of nearly 200 HPV chemicals in the bodies of virtually all Americans, including pregnant women (Woodruff et al. 2011). The significance of early chemical exposures for children’s health is not yet fully understood. A great concern is that a large number of the chemicals in widest use have not undergone even minimal assessment of potential toxicity, and only about 20% have been screened for potential toxicity during early development (Landrigan and Goldman 2011). Unless studies specifically examine develop-mental consequences of early exposures to untested chemicals, sub-clinical dysfunction caused by these exposures can go unrecognized for years. One example is the “silent epidemic” of childhood lead poisoning: From the 1940s to the 1980s, millions of American children were exposed to excessive levels of lead from paint and gasoline, resulting in reduced average intelligence by 2–5 IQ points (Grosse et al. 2002). The late David Rall, former director of NIEHS, once observed that “If thalidomide had caused a 10-point loss of IQ instead of birth defects of the limbs, it would likely still be on the market” (Weiss 1982). To begin formulation of a systematic strategy for discovery of potentially preventable environmental causes of autism and other NDDs, the Mount Sinai Children’s Environmental Health Center, with the support of the NIEHS and Autism Speaks, convened a workshop on “Exploring the Environmental Causes of Autism and Learning Disabilities.” This workshop produced a series of papers by leading researchers, some of which are published in this issue of Environmental Health Perspectives. It also generated a list of 10 chemi-cals and mixtures widely distributed in the environment that are already suspected of causing develop-mental neuro-toxicity: Lead (Jusko et al. 2008) Methylmercury (Oken et al. 2008) Polychlorinated biphenyls (Winneke 2011) Organophosphate pesticides (Eskenazi et al. 2007; London et al. 2012) Organochlorine pesticides (Eskenazi et al. 2008) Endocrine disruptors (Braun et al. 2011; Miodovnik et al. 2011) Automotive exhaust (Volk et al. 2011) Polycyclic aromatic hydrocarbons (Perera et al. 2009) Brominated flame retardants (Herbstman et al. 2010) Perfluorinated compounds (Stein and Savitz 2011). This list is not exhaustive and will almost certainly expand in the years ahead as new science emerges. It is intended to focus research in environmental causation of NDDs on a short list of chemicals where concentrated study has high potential to generate actionable findings in the near future. Its ultimate purpose is to catalyze new evidence-based programs for prevention of disease in America’s children.
  34 in total

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Journal:  Neurotoxicology       Date:  2012-01-17       Impact factor: 4.294

Review 2.  Epigenetic transgenerational actions of endocrine disruptors.

Authors:  Matthew D Anway; Michael K Skinner
Journal:  Endocrinology       Date:  2006-05-11       Impact factor: 4.736

Review 3.  Developmental neurotoxicity of industrial chemicals.

Authors:  P Grandjean; P J Landrigan
Journal:  Lancet       Date:  2006-12-16       Impact factor: 79.321

4.  Mental health in the United States. Prevalence of diagnosis and medication treatment for attention-deficit/hyperactivity disorder--United States, 2003.

Authors: 
Journal:  MMWR Morb Mortal Wkly Rep       Date:  2005-09-02       Impact factor: 17.586

5.  Food additives and environmental chemicals as sources of childhood behavior disorders.

Authors:  B Weiss
Journal:  J Am Acad Child Psychiatry       Date:  1982-03

Review 6.  The teratology of autism.

Authors:  Tara L Arndt; Christopher J Stodgell; Patricia M Rodier
Journal:  Int J Dev Neurosci       Date:  2005 Apr-May       Impact factor: 2.457

7.  Mapping autism risk loci using genetic linkage and chromosomal rearrangements.

Authors:  Peter Szatmari; Andrew D Paterson; Lonnie Zwaigenbaum; Wendy Roberts; Jessica Brian; Xiao-Qing Liu; John B Vincent; Jennifer L Skaug; Ann P Thompson; Lili Senman; Lars Feuk; Cheng Qian; Susan E Bryson; Marshall B Jones; Christian R Marshall; Stephen W Scherer; Veronica J Vieland; Christopher Bartlett; La Vonne Mangin; Rhinda Goedken; Alberto Segre; Margaret A Pericak-Vance; Michael L Cuccaro; John R Gilbert; Harry H Wright; Ruth K Abramson; Catalina Betancur; Thomas Bourgeron; Christopher Gillberg; Marion Leboyer; Joseph D Buxbaum; Kenneth L Davis; Eric Hollander; Jeremy M Silverman; Joachim Hallmayer; Linda Lotspeich; James S Sutcliffe; Jonathan L Haines; Susan E Folstein; Joseph Piven; Thomas H Wassink; Val Sheffield; Daniel H Geschwind; Maja Bucan; W Ted Brown; Rita M Cantor; John N Constantino; T Conrad Gilliam; Martha Herbert; Clara Lajonchere; David H Ledbetter; Christa Lese-Martin; Janet Miller; Stan Nelson; Carol A Samango-Sprouse; Sarah Spence; Matthew State; Rudolph E Tanzi; Hilary Coon; Geraldine Dawson; Bernie Devlin; Annette Estes; Pamela Flodman; Lambertus Klei; William M McMahon; Nancy Minshew; Jeff Munson; Elena Korvatska; Patricia M Rodier; Gerard D Schellenberg; Moyra Smith; M Anne Spence; Chris Stodgell; Ping Guo Tepper; Ellen M Wijsman; Chang-En Yu; Bernadette Rogé; Carine Mantoulan; Kerstin Wittemeyer; Annemarie Poustka; Bärbel Felder; Sabine M Klauck; Claudia Schuster; Fritz Poustka; Sven Bölte; Sabine Feineis-Matthews; Evelyn Herbrecht; Gabi Schmötzer; John Tsiantis; Katerina Papanikolaou; Elena Maestrini; Elena Bacchelli; Francesca Blasi; Simona Carone; Claudio Toma; Herman Van Engeland; Maretha de Jonge; Chantal Kemner; Frederieke Koop; Frederike Koop; Marjolein Langemeijer; Marjolijn Langemeijer; Channa Hijmans; Channa Hijimans; Wouter G Staal; Gillian Baird; Patrick F Bolton; Michael L Rutter; Emma Weisblatt; Jonathan Green; Catherine Aldred; Julie-Anne Wilkinson; Andrew Pickles; Ann Le Couteur; Tom Berney; Helen McConachie; Anthony J Bailey; Kostas Francis; Gemma Honeyman; Aislinn Hutchinson; Jeremy R Parr; Simon Wallace; Anthony P Monaco; Gabrielle Barnby; Kazuhiro Kobayashi; Janine A Lamb; Ines Sousa; Nuala Sykes; Edwin H Cook; Stephen J Guter; Bennett L Leventhal; Jeff Salt; Catherine Lord; Christina Corsello; Vanessa Hus; Daniel E Weeks; Fred Volkmar; Maïté Tauber; Eric Fombonne; Andy Shih; Kacie J Meyer
Journal:  Nat Genet       Date:  2007-02-18       Impact factor: 38.330

8.  Economic gains resulting from the reduction in children's exposure to lead in the United States.

Authors:  Scott D Grosse; Thomas D Matte; Joel Schwartz; Richard J Jackson
Journal:  Environ Health Perspect       Date:  2002-06       Impact factor: 9.031

9.  Autism and the environment.

Authors:  Julie L Daniels
Journal:  Environ Health Perspect       Date:  2006-07       Impact factor: 9.031

10.  Chemicals and children's environment: what we don't know about risks.

Authors:  L R Goldman
Journal:  Environ Health Perspect       Date:  1998-06       Impact factor: 9.031

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  78 in total

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Journal:  ALTEX       Date:  2014       Impact factor: 6.043

2.  Parental Perceptions of Family Centered Care in Medical Homes of Children with Neurodevelopmental Disabilities.

Authors:  Michaela L Zajicek-Farber; Gaetano R Lotrecchiano; Toby M Long; Jon Matthew Farber
Journal:  Matern Child Health J       Date:  2015-08

3.  PCB 136 atropselectively alters morphometric and functional parameters of neuronal connectivity in cultured rat hippocampal neurons via ryanodine receptor-dependent mechanisms.

Authors:  Dongren Yang; Izabela Kania-Korwel; Atefeh Ghogha; Hao Chen; Marianna Stamou; Diptiman D Bose; Isaac N Pessah; Hans-Joachim Lehmler; Pamela J Lein
Journal:  Toxicol Sci       Date:  2014-01-02       Impact factor: 4.849

4.  Sex differences in microglial colonization and vulnerabilities to endocrine disruption in the social brain.

Authors:  Meghan E Rebuli; Paul Gibson; Cassie L Rhodes; Bruce S Cushing; Heather B Patisaul
Journal:  Gen Comp Endocrinol       Date:  2016-04-19       Impact factor: 2.822

5.  Sexually dimorphic effects of ancestral exposure to vinclozolin on stress reactivity in rats.

Authors:  Ross Gillette; Isaac Miller-Crews; Eric E Nilsson; Michael K Skinner; Andrea C Gore; David Crews
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6.  Detection of 3,3'-Dichlorobiphenyl in Human Maternal Plasma and Its Effects on Axonal and Dendritic Growth in Primary Rat Neurons.

Authors:  Sunjay Sethi; Kimberly P Keil; Hao Chen; Keri Hayakawa; Xueshu Li; Yanping Lin; Hans-Joachim Lehmler; Birgit Puschner; Pamela J Lein
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7.  Bifenthrin causes transcriptomic alterations in mTOR and ryanodine receptor-dependent signaling and delayed hyperactivity in developing zebrafish (Danio rerio).

Authors:  Daniel F Frank; Galen W Miller; Danielle J Harvey; Susanne M Brander; Juergen Geist; Richard E Connon; Pamela J Lein
Journal:  Aquat Toxicol       Date:  2018-04-18       Impact factor: 4.964

Review 8.  Neurobehavioural effects of developmental toxicity.

Authors:  Philippe Grandjean; Philip J Landrigan
Journal:  Lancet Neurol       Date:  2014-02-17       Impact factor: 44.182

9.  Association of Prenatal Exposure to Air Pollution With Autism Spectrum Disorder.

Authors:  Lief Pagalan; Celeste Bickford; Whitney Weikum; Bruce Lanphear; Michael Brauer; Nancy Lanphear; Gillian E Hanley; Tim F Oberlander; Meghan Winters
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10.  Sex-specific behavioral effects following developmental exposure to tetrabromobisphenol A (TBBPA) in Wistar rats.

Authors:  Kylie D Rock; Sagi Enicole A Gillera; Pratyush Devarasetty; Brian Horman; Gabriel Knudsen; Linda S Birnbaum; Suzanne E Fenton; Heather B Patisaul
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