The immobilization of human spermatozoa by STAT3 inhibitory compound V results from an excessive intracellular amount of reactive oxygen species
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R. Tremblay | P. Leclerc | C. Lachance | S. Goupil | Pierre Leclerc | Catherine Lachance | Roland R. Tremblay
[1] T. Velkov,et al. Analysis of Protein Thiol Changes Occurring During Rat Sperm Epididymal Maturation1 , 2015, Biology of reproduction.
[2] P. Houghton,et al. A Novel Small Molecular STAT3 Inhibitor, LY5, Inhibits Cell Viability, Cell Migration, and Angiogenesis in Medulloblastoma Cells* , 2014, The Journal of Biological Chemistry.
[3] G. Pandey,et al. Design and synthesis of γ-butyrolactone derivatives as potential spermicidal agents. , 2014, Bioorganic & medicinal chemistry letters.
[4] I. Martínez-Reyes,et al. The H(+)-ATP synthase: a gate to ROS-mediated cell death or cell survival. , 2014, Biochimica et biophysica acta.
[5] P. Shukla,et al. A unique dithiocarbamate chemistry during design & synthesis of novel sperm-immobilizing agents. , 2014, Organic and biomolecular chemistry.
[6] G. Heusch,et al. The STAT3 inhibitor stattic impairs cardiomyocyte mitochondrial function through increased reactive oxygen species formation. , 2013, Current pharmaceutical design.
[7] Michael Berk,et al. The chemistry and biological activities of N-acetylcysteine. , 2013, Biochimica et biophysica acta.
[8] S. T. Lee,et al. Effects of combined antioxidant supplementation on human sperm motility and morphology during sperm manipulation in vitro. , 2013, Fertility and sterility.
[9] P. Leclerc,et al. Stattic V, a STAT3 inhibitor, affects human spermatozoa through regulation of mitochondrial activity , 2013, Journal of cellular physiology.
[10] Kate S. Carroll,et al. Cysteine-Mediated Redox Signaling: Chemistry, Biology, and Tools for Discovery , 2013, Chemical reviews.
[11] C. O’Flaherty,et al. Low amounts and high thiol oxidation of peroxiredoxins in spermatozoa from infertile men. , 2012, Journal of andrology.
[12] R. Aitken,et al. Sperm Motility Is Lost In Vitro as a Consequence of Mitochondrial Free Radical Production and the Generation of Electrophilic Aldehydes but Can Be Significantly Rescued by the Presence of Nucleophilic Thiols1 , 2012, Biology of reproduction.
[13] S. King. Integrated control of axonemal dynein AAA(+) motors. , 2012, Journal of structural biology.
[14] R. Aitken,et al. Electrophilic Aldehydes Generated by Sperm Metabolism Activate Mitochondrial Reactive Oxygen Species Generation and Apoptosis by Targeting Succinate Dehydrogenase* , 2012, The Journal of Biological Chemistry.
[15] P. Leclerc,et al. Mediators of the JAK/STAT Signaling Pathway in Human Spermatozoa1 , 2011, Biology of reproduction.
[16] M. Monclus,et al. Characterization of flagellar cysteine‐rich sperm proteins involved in motility, by the combination of cellular fractionation, fluorescence detection, and mass spectrometry analysis , 2011, Cytoskeleton.
[17] Xin-Yuan Fu,et al. Osteoblast/osteocyte-specific inactivation of Stat3 decreases load-driven bone formation and accumulates reactive oxygen species. , 2011, Bone.
[18] Marta Derecka,et al. Mitochondrial-targeted Signal Transducer and Activator of Transcription 3 (STAT3) Protects against Ischemia-induced Changes in the Electron Transport Chain and the Generation of Reactive Oxygen Species* , 2011, The Journal of Biological Chemistry.
[19] D. Geschwind,et al. Disruption of Astrocyte STAT3 Signaling Decreases Mitochondrial Function and Increases Oxidative Stress In Vitro , 2010, PloS one.
[20] W. Yeung,et al. Effect of leptin on motility, capacitation and acrosome reaction of human spermatozoa. , 2009, International journal of andrology.
[21] S. Grunewald,et al. Interactions between apoptotic signal transduction and capacitation in human spermatozoa. , 2009, Human reproduction.
[22] J. Bailey,et al. Modulation of bovine sperm signalling pathways: correlation between intracellular parameters and sperm capacitation and acrosome exocytosis. , 2009, Reproduction, fertility, and development.
[23] G. Schüürmann,et al. Kinetic glutathione chemoassay to quantify thiol reactivity of organic electrophiles--application to alpha,beta-unsaturated ketones, acrylates, and propiolates. , 2009, Chemical research in toxicology.
[24] P. Fawcett,et al. Function of Mitochondrial Stat3 in Cellular Respiration , 2009, Science.
[25] S. D. du Plessis,et al. Insulin and leptin enhance human sperm motility, acrosome reaction and nitric oxide production. , 2008, Asian journal of andrology.
[26] R. Aitken,et al. Significance of mitochondrial reactive oxygen species in the generation of oxidative stress in spermatozoa. , 2008, The Journal of clinical endocrinology and metabolism.
[27] S. Aquila,et al. Leptin and leptin receptor in pig spermatozoa: evidence of their involvement in sperm capacitation and survival. , 2008, Reproduction.
[28] W. Guida,et al. Selective chemical probe inhibitor of Stat3, identified through structure-based virtual screening, induces antitumor activity , 2007, Proceedings of the National Academy of Sciences.
[29] Bianca Sperl,et al. Stattic: a small-molecule inhibitor of STAT3 activation and dimerization. , 2006, Chemistry & biology.
[30] G. Frühbeck,et al. Intracellular signalling pathways activated by leptin. , 2006, The Biochemical journal.
[31] S. Oehninger,et al. Mitochondrial membrane potential integrity and plasma membrane translocation of phosphatidylserine as early apoptotic markers: a comparison of two different sperm subpopulations. , 2006, Fertility and sterility.
[32] W. Ford,et al. Regulation of sperm function by reactive oxygen species. , 2004, Human reproduction update.
[33] R. Patel-King,et al. Redox‐based control of the γ heavy chain ATPase from Chlamydomonas outer arm dynein , 2002 .
[34] R. Patel-King,et al. Redox-based control of the gamma heavy chain ATPase from Chlamydomonas outer arm dynein. , 2002, Cell motility and the cytoskeleton.
[35] S. Oehninger,et al. Analysis of DNA fragmentation, plasma membrane translocation of phosphatidylserine and oxidative stress in human spermatozoa. , 2000, Human reproduction.
[36] C. Gagnon,et al. Paradoxical effect of reagents for sulfhydryl and disulfide groups on human sperm capacitation and superoxide production. , 1998, Free radical biology & medicine.
[37] C. Gagnon,et al. Impact of reactive oxygen species on spermatozoa: a balancing act between beneficial and detrimental effects. , 1995, Human reproduction.
[38] R. Aitken,et al. Redox regulation of tyrosine phosphorylation in human spermatozoa and its role in the control of human sperm function. , 1995, Journal of cell science.
[39] C. Franceschi,et al. A new method for the cytofluorimetric analysis of mitochondrial membrane potential using the J-aggregate forming lipophilic cation 5,5',6,6'-tetrachloro-1,1',3,3'-tetraethylbenzimidazolcarbocyanine iodide (JC-1). , 1993, Biochemical and biophysical research communications.
[40] C. Gagnon,et al. Reactive Oxygen Species and Human Spermatozoa I. Effects on the Motility of Intact Spermatozoa and on Sperm Axonemes , 2022 .
[41] J. Overstreet,et al. Two simple methods for detecting acrosome‐reacted human sperm , 1986 .
[42] A. D. Fleming,et al. Labelling of living mammalian spermatozoa with the fluorescent thiol alkylating agent, monobromobimane (MB): immobilization upon exposure to ultraviolet light and analysis of acrosomal status. , 1986, The Journal of experimental zoology.
[43] H. Towbin,et al. Electrophoretic transfer of proteins from polyacrylamide gels to nitrocellulose sheets: procedure and some applications. , 1979, Proceedings of the National Academy of Sciences of the United States of America.
[44] W K Whitten,et al. The culture of mouse embryos in vitro. , 1971 .
[45] U. K. Laemmli,et al. Cleavage of Structural Proteins during the Assembly of the Head of Bacteriophage T4 , 1970, Nature.