Longitudinal Associations of Phthalate Exposures During Childhood and Body Size Measurements in Young Girls
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A. Deierlein | A. Calafat | G. Windham | L. Kushi | F. Biro | Manori J. Silva | S. Teitelbaum | M. Galvez | M. Wolff | S. Pinney | Maida P Galvez | Ashley S Pajak | MANORI J. Silva
[1] M. Longnecker,et al. Optimal Exposure Biomarkers for Nonpersistent Chemicals in Environmental Epidemiology , 2015, Environmental health perspectives.
[2] T. Woodruff,et al. Changing Trends in Phthalate Exposures: Zota and Woodruff Respond , 2014, Environmental health perspectives.
[3] A. Calafat,et al. Phthalate exposure and pubertal development in a longitudinal study of US girls. , 2014, Human reproduction.
[4] M. Buser,et al. Age and sex differences in childhood and adulthood obesity association with phthalates: analyses of NHANES 2007-2010. , 2014, International journal of hygiene and environmental health.
[5] D. Mattison,et al. Do phthalates act as obesogens in humans? A systematic review of the epidemiological literature , 2014, Critical reviews in toxicology.
[6] T. Woodruff,et al. Temporal Trends in Phthalate Exposures: Findings from the National Health and Nutrition Examination Survey, 2001–2010 , 2014, Environmental health perspectives.
[7] R. Hiatt,et al. Onset of Breast Development in a Longitudinal Cohort , 2013, Pediatrics.
[8] Kyungho Choi,et al. Urinary phthalate metabolites among elementary school children of Korea: sources, risks, and their association with oxidative stress marker. , 2014, The Science of the total environment.
[9] L. Trasande,et al. Urinary Phthalates and Increased Insulin Resistance in Adolescents , 2013, Pediatrics.
[10] Howard Trachtman,et al. Urinary phthalates are associated with higher blood pressure in childhood. , 2013, The Journal of pediatrics.
[11] Yue Chen,et al. Urinary Phthalate Metabolites Are Associated with Body Mass Index and Waist Circumference in Chinese School Children , 2013, PloS one.
[12] L. Trasande,et al. Race/Ethnicity–Specific Associations of Urinary Phthalates with Childhood Body Mass in a Nationally Representative Sample , 2013, Environmental Health Perspectives.
[13] K. Main,et al. Thyroid effects of endocrine disrupting chemicals , 2012, Molecular and Cellular Endocrinology.
[14] Wendee Holtcamp,et al. Obesogens: An Environmental Link to Obesity , 2012, Environmental health perspectives.
[15] D. L'Allemand-Jander,et al. Clinical diagnosis of metabolic and cardiovascular risks in overweight children: early development of chronic diseases in the obese child , 2010, International Journal of Obesity.
[16] Geert Molenberghs,et al. Random Effects Models for Longitudinal Data , 2010 .
[17] P. Succop,et al. Pubertal Assessment Method and Baseline Characteristics in a Mixed Longitudinal Study of Girls , 2010, Pediatrics.
[18] L. Hegedüs,et al. Childhood Exposure to Phthalates: Associations with Thyroid Function, Insulin-like Growth Factor I, and Growth , 2010, Environmental health perspectives.
[19] R. Hiatt,et al. Investigation of Relationships between Urinary Biomarkers of Phytoestrogens, Phthalates, and Phenols and Pubertal Stages in Girls , 2010, Environmental health perspectives.
[20] Erik Ropstad,et al. Reproductive and Developmental Toxicity of Phthalates , 2009, Journal of toxicology and environmental health. Part B, Critical reviews.
[21] S. Swan,et al. Phthalates and other additives in plastics: human exposure and associated health outcomes , 2009, Philosophical Transactions of the Royal Society B: Biological Sciences.
[22] Béatrice Desvergne,et al. PPAR-mediated activity of phthalates: A link to the obesity epidemic? , 2009, Molecular and Cellular Endocrinology.
[23] S. Caudill,et al. Multi‐rule quality control for the age‐related eye disease study , 2008, Statistics in medicine.
[24] Elizabeth E Hatch,et al. Association of urinary phthalate metabolite concentrations with body mass index and waist circumference: a cross-sectional study of NHANES data, 1999–2002 , 2008, Environmental health : a global access science source.
[25] A. Calafat,et al. Temporal variability in urinary concentrations of phthalate metabolites, phytoestrogens and phenols among minority children in the United States. , 2008, Environmental research.
[26] Aurélien Grosdidier,et al. The Endocrine Disruptor Monoethyl-hexyl-phthalate Is a Selective Peroxisome Proliferator-activated Receptor γ Modulator That Promotes Adipogenesis* , 2007, Journal of Biological Chemistry.
[27] K. Hungerbühler,et al. What Are the Sources of Exposure to Eight Frequently Used Phthalic Acid Esters in Europeans? , 2006, Risk analysis : an official publication of the Society for Risk Analysis.
[28] J. Ware,et al. Applied Longitudinal Analysis , 2004 .
[29] L. Moreno,et al. Waist circumference for the screening of the metabolic syndrome in children , 2002, Acta paediatrica.
[30] J. Ware. Linear Models for the Analysis of Longitudinal Studies , 1985 .
[31] J. Ware,et al. Random-effects models for longitudinal data. , 1982, Biometrics.
[32] D. Harville. Maximum Likelihood Approaches to Variance Component Estimation and to Related Problems , 1977 .
[33] M. Marcovecchio,et al. Obesity and growth during childhood and puberty. , 2013, World review of nutrition and dietetics.
[34] Antonia M. Calafat,et al. Associations between phthalate metabolite urinary concentrations and body size measures in New York City children. , 2012, Environmental research.
[35] T. Brüning,et al. Assessing exposure to phthalates - the human biomonitoring approach. , 2011, Molecular nutrition & food research.
[36] T. Collier,et al. The coastal environment and human health: microbial indicators, pathogens, sentinels and reservoirs , 2008, Environmental Health.
[37] G. Bedogni,et al. Crossvalidation of anthropometry against magnetic resonance imaging for the assessment of visceral and subcutaneous adipose tissue in children , 2006, International Journal of Obesity.