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Chemico-Biological Interactions|September 9, 2008
Endocrine disrupting alkylphenols: structural requirements for their adverse effects on Ca2+ pumps, Ca2+ homeostasis & Sertoli TM4 cell viabilityFrancesco Michelangeli, Oluseye A Ogunbayo, Laura L Wootton, et al.
The Journal of Rheumatology|October 1, 1984
D-Penicillamine induced toxicity in rheumatoid arthritis: the role of sulphoxidation status and HLA-DR3P Emery, G S Panayi, G Huston, et al.
The Journal of Steroid Biochemistry and Molecular Biology|October 16, 2007
Phytoestrogens and xenoestrogens: the contribution of diet and environment to endocrine disruptionR H Waring, S Ayers, A J Gescher, et al.
Comparative Biochemistry and Physiology. Part A, Molecular & Integrative Physiology|May 3, 2003
Environmental endocrine disrupters dysregulate estrogen metabolism and Ca2+ homeostasis in fish and mammals via receptor-independent mechanismsChristopher J Kirk, Laura Bottomley, Nicholas Minican, et al.
Transplantation|April 9, 2009
Mitochondrial complex activity in donor renal grafts, cold ischemia time, and recovery of graft functionChandrashekhar A Kubal, Robert M Harris, Nicholas G Inston, et al.
Inflammatory Bowel Diseases|July 23, 2013
Analysis of volatile organic compounds of bacterial origin in chronic gastrointestinal diseasesChristopher Walton, Dawn P Fowler, Claire Turner, et al.
FEMS Immunology and Medical Microbiology|February 8, 2012
Diversity and distribution of sulphate-reducing bacteria in human faeces from healthy subjects and patients with inflammatory bowel diseaseWenjing Jia, Rebekah N Whitehead, Lesley Griffiths, et al.
European Journal of Clinical Nutrition|May 12, 2016
Enteral feeding reduces metabolic activity of the intestinal microbiome in Crohn's disease: an observational studyC Walton, M P B Montoya, D P Fowler, et al.
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