Impact of genistein on the gut microbiome of humanized mice and its role in breast tumor inhibition
暂无分享,去创建一个
C. Skibola | S. Barnes | C. Morrow | M. Stoll | T. Tollefsbol | L. Wilson | Yuanyuan Li | Kendra J. Royston | Bidisha Paul
[1] M. Herbst-Kralovetz,et al. Estrogen-gut microbiome axis: Physiological and clinical implications. , 2017, Maturitas.
[2] E. Krul,et al. Soy compared with milk protein in a Western diet changes fecal microbiota and decreases hepatic steatosis in obese OLETF rats. , 2017, The Journal of nutritional biochemistry.
[3] S. Delgado,et al. Bacterial communities and metabolic activity of faecal cultures from equol producer and non-producer menopausal women under treatment with soy isoflavones , 2017, BMC Microbiology.
[4] L. Lindheim,et al. Alterations in Gut Microbiome Composition and Barrier Function Are Associated with Reproductive and Metabolic Defects in Women with Polycystic Ovary Syndrome (PCOS): A Pilot Study , 2017, PloS one.
[5] Jun Yu,et al. Fecal Bacteria Act as Novel Biomarkers for Noninvasive Diagnosis of Colorectal Cancer , 2016, Clinical Cancer Research.
[6] M. Basavarajappa,et al. Comparison of endpoints relevant to toxicity assessments in 3 generations of CD-1 mice fed irradiated natural and purified ingredient diets with varying soy protein and isoflavone contents. , 2016, Food and chemical toxicology : an international journal published for the British Industrial Biological Research Association.
[7] B. Stecher,et al. The mouse gut microbiome revisited: From complex diversity to model ecosystems. , 2016, International journal of medical microbiology : IJMM.
[8] A. Jemal,et al. Cancer treatment and survivorship statistics, 2016 , 2016, CA: a cancer journal for clinicians.
[9] B. de Las Rivas,et al. Bioactivation of Phytoestrogens: Intestinal Bacteria and Health , 2016, Critical reviews in food science and nutrition.
[10] C. Davis,et al. Consumption of Selected Cruciferous Vegetables and Soy Phytochemical Dietary Supplements Can Alter Gut Microbiome Composition , 2016, The FASEB Journal.
[11] P. Lepage,et al. The human gut microbiome and its dysfunctions through the meta‐omics prism , 2016, Annals of the New York Academy of Sciences.
[12] S. Kulling,et al. Phase II metabolism of the soy isoflavones genistein and daidzein in humans, rats and mice: a cross-species and sex comparison , 2016, Archives of Toxicology.
[13] J. M. Rodriguez,et al. Colonization potential to reconstitute a microbe community in patients detected early after fecal microbe transplant for recurrent C. difficile , 2016, BMC Microbiology.
[14] R. Milo,et al. Revised Estimates for the Number of Human and Bacteria Cells in the Body , 2016, bioRxiv.
[15] C. Skibola,et al. Influences of diet and the gut microbiome on epigenetic modulation in cancer and other diseases , 2015, Clinical Epigenetics.
[16] X. Hua,et al. Investigation of the association between the fecal microbiota and breast cancer in postmenopausal women: a population-based case-control pilot study. , 2015, Journal of the National Cancer Institute.
[17] Solomon Habtemariam,et al. Genistein and cancer: current status, challenges, and future directions. , 2015, Advances in nutrition.
[18] H. Flint,et al. The gut microbiota, bacterial metabolites and colorectal cancer , 2014, Nature Reviews Microbiology.
[19] E. Lefkowitz,et al. Getting Started with Microbiome Analysis: Sample Acquisition to Bioinformatics , 2014, Current protocols in human genetics.
[20] S. Dauchy,et al. Exploring frontiers: use of complementary and alternative medicine among patients with early-stage breast cancer. , 2014, Breast.
[21] T. Tollefsbol,et al. Molecular mechanisms for inhibition of colon cancer cells by combined epigenetic-modulating epigallocatechin gallate and sodium butyrate. , 2014, Experimental cell research.
[22] Qi Xie,et al. Genistein inhibits DNA methylation and increases expression of tumor suppressor genes in human breast cancer cells , 2014, Genes, chromosomes & cancer.
[23] J. Tiedje,et al. Revealing the Bacterial Butyrate Synthesis Pathways by Analyzing (Meta)genomic Data , 2014, mBio.
[24] Rafael S. Costa,et al. Dynamic Flux Balance Analysis for Modeling Lactococcus lactis Mannitol Production , 2014 .
[25] Wancai Yang,et al. Soy isoflavones and prostate cancer: A review of molecular mechanisms , 2014, The Journal of Steroid Biochemistry and Molecular Biology.
[26] M. Yanagisawa,et al. Short-chain fatty acids activate GPR41 and GPR43 on intestinal epithelial cells to promote inflammatory responses in mice. , 2013, Gastroenterology.
[27] C. Landen,et al. Enhancement of Cisplatin-Mediated Apoptosis in Ovarian Cancer Cells through Potentiating G2/M Arrest and p21 Upregulation by Combinatorial Epigallocatechin Gallate and Sulforaphane , 2013, Journal of oncology.
[28] Tabitha M. Hardy,et al. Epigenetic reactivation of estrogen receptor-α (ERα) by genistein enhances hormonal therapy sensitivity in ERα-negative breast cancer , 2013, Molecular Cancer.
[29] Bridget J. Munro,et al. Self-reported side effects of breast cancer treatment: a cross-sectional study of incidence, associations, and the influence of exercise , 2013, Cancer Causes & Control.
[30] William A. Walters,et al. Ultra-high-throughput microbial community analysis on the Illumina HiSeq and MiSeq platforms , 2012, The ISME Journal.
[31] A. Lampen,et al. Risks and benefits of dietary isoflavones for cancer , 2011, Critical reviews in toxicology.
[32] William A. Walters,et al. Global patterns of 16S rRNA diversity at a depth of millions of sequences per sample , 2010, Proceedings of the National Academy of Sciences.
[33] Rob Knight,et al. PyNAST: a flexible tool for aligning sequences to a template alignment , 2009, Bioinform..
[34] R. Knight,et al. The Effect of Diet on the Human Gut Microbiome: A Metagenomic Analysis in Humanized Gnotobiotic Mice , 2009, Science Translational Medicine.
[35] K. Lee,et al. Lactococcus lactis ssp. lactis Inhibits the Proliferation of SNU‐1 Human Stomach Cancer Cells through Induction of G0/G1 Cell Cycle Arrest and Apoptosis via p53 and p21 Expression , 2009, Annals of the New York Academy of Sciences.
[36] T. Tollefsbol,et al. Genistein depletes telomerase activity through cross‐talk between genetic and epigenetic mechanisms , 2009, International journal of cancer.
[37] X. Shu,et al. Adolescent and adult soy food intake and breast cancer risk: results from the Shanghai Women's Health Study. , 2009, The American journal of clinical nutrition.
[38] Anne Chao,et al. Sufficient sampling for asymptotic minimum species richness estimators. , 2009, Ecology.
[39] S. Mazmanian,et al. A microbial symbiosis factor prevents intestinal inflammatory disease , 2008, Nature.
[40] D. Jonkers,et al. Review article: the role of butyrate on colonic function , 2007, Alimentary pharmacology & therapeutics.
[41] C. Rice-Evans,et al. The intracellular genistein metabolite 5,7,3',4'-tetrahydroxyisoflavone mediates G2-M cell cycle arrest in cancer cells via modulation of the p38 signaling pathway. , 2006, Free radical biology & medicine.
[42] Eoin L. Brodie,et al. Greengenes, a Chimera-Checked 16S rRNA Gene Database and Workbench Compatible with ARB , 2006, Applied and Environmental Microbiology.
[43] D. Faith,et al. Phylogenetic diversity (PD) and biodiversity conservation: some bioinformatics challenges , 2006, Evolutionary bioinformatics online.
[44] R. Knight,et al. UniFrac: a New Phylogenetic Method for Comparing Microbial Communities , 2005, Applied and Environmental Microbiology.
[45] C. Keylock. Simpson diversity and the Shannon–Wiener index as special cases of a generalized entropy , 2005 .
[46] Michael O'Leary,et al. Docetaxel and paclitaxel in the treatment of breast cancer: a review of clinical experience. , 2004, The oncologist.
[47] B. Katzenellenbogen,et al. Equol, a natural estrogenic metabolite from soy isoflavones: convenient preparation and resolution of R- and S-equols and their differing binding and biological activity through estrogen receptors alpha and beta. , 2004, Bioorganic & medicinal chemistry.
[48] M. Kertesz. Riding the sulfur cycle--metabolism of sulfonates and sulfate esters in gram-negative bacteria. , 2000, FEMS microbiology reviews.
[49] F. Arcamone,et al. Adriamycin, 14‐Hydroxydaunomycin, a new antitumor antibiotic from S. peucetius var. caesius , 2000, Biotechnology and bioengineering.
[50] L. J. King,et al. Biotransformation of genistein in the rat: elucidation of metabolite structure by product ion mass fragmentology n , 1999, The Journal of Steroid Biochemistry and Molecular Biology.
[51] F. Arcamone,et al. Adriamycin, 14‐hydroxydaimomycin, a new antitumor antibiotic from S. Peucetius var. caesius , 1969, Biotechnology and bioengineering.
[52] E. Blair,et al. NEW TRANSPORT MEDIUM FOR SHIPMENT OF CLINICAL SPECIMENS I , 1964, Journal of bacteriology.
[53] Jeremy K Nicholson,et al. Gut microbiome interactions with drug metabolism, efficacy, and toxicity. , 2017, Translational research : the journal of laboratory and clinical medicine.
[54] A. Jemal,et al. Cancer statistics, 2016 , 2016, CA: a cancer journal for clinicians.
[55] A. Nicolas,et al. HDAC inhibition does not induce estrogen receptor in human triple-negative breast cancer cell lines and patient-derived xenografts , 2014, Breast Cancer Research and Treatment.
[56] N. Dubrawsky. Cancer statistics , 1989, CA: a cancer journal for clinicians.
[57] E. W. Beals,et al. Bray-curtis ordination: an effective strategy for analysis of multivariate ecological data , 1984 .