The sodium-proton exchangers sNHE and NHE1 control plasma membrane hyperpolarization in mouse sperm
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M. Buffone | Carla Ritagliati | D. Krapf | C. Treviño | Cintia Stival | G. Luque | Liza J. Schiavi-Ehrenhaus | Analia G. Novero | Celia M. Santi | A. Darszon | Paulina Torres Rodríguez | J. L. De la Vega Beltrán | Micaela Carruba | Iñaki Gentile | T. Nishigaki | Diego Krapf
[1] Cameron C. Gardner,et al. Na+/H+ Exchangers (NHEs) in Mammalian Sperm: Essential Contributors to Male Fertility , 2023, International journal of molecular sciences.
[2] M. Ninov,et al. Control of intracellular pH and bicarbonate by CO2 diffusion into human sperm , 2023, Nature communications.
[3] Shweta Bhagwat,et al. SLO3: A Conserved Regulator of Sperm Membrane Potential , 2023, International journal of molecular sciences.
[4] P. James,et al. The SLC9C2 Gene Product (Na+/H+ Exchanger Isoform 11; NHE11) Is a Testis-Specific Protein Localized to the Head of Mature Mammalian Sperm , 2023, International journal of molecular sciences.
[5] T. Nishigaki,et al. Hyperpolarization induces cytosolic alkalization of mouse sperm flagellum probably through sperm Na+/H+ exchanger. , 2022, Reproduction.
[6] M. Fushimi,et al. Soluble adenylyl cyclase inhibition prevents human sperm functions essential for fertilization , 2021, bioRxiv.
[7] Chen Chen,et al. Na+/H+ Exchangers Involve in Regulating the pH-Sensitive Ion Channels in Mouse Sperm , 2021, International journal of molecular sciences.
[8] B. Sabatini,et al. The Kinase Specificity of Protein Kinase Inhibitor Peptide , 2021, Frontiers in Pharmacology.
[9] N. Thierry-Mieg,et al. The sodium/proton exchanger SLC9C1 (sNHE) is essential for human sperm motility and fertility , 2021, Clinical genetics.
[10] Xiongwen Chen,et al. Protein Kinase Inhibitor Peptide as a Tool to Specifically Inhibit Protein Kinase A , 2020, Frontiers in Physiology.
[11] Jan F. Jikeli,et al. Molecular Mechanism Underlying the Action of Zona-pellucida Glycoproteins on Mouse Sperm , 2020, Frontiers in Cell and Developmental Biology.
[12] M. Buffone,et al. Everything you ever wanted to know about PKA regulation and its involvement in mammalian sperm capacitation , 2020, Molecular and Cellular Endocrinology.
[13] M. Buffone,et al. Membrane Potential Assessment by Fluorimetry as a Predictor Tool of Human Sperm Fertilizing Capacity , 2020, Frontiers in Cell and Developmental Biology.
[14] C. Treviño,et al. Capacitation-associated alkalization in human sperm is differentially controlled at the subcellular level , 2019, Journal of Cell Science.
[15] M. Buffone,et al. Determination of a Robust Assay for Human Sperm Membrane Potential Analysis , 2019, Front. Cell Dev. Biol..
[16] Chin-Rang Yang,et al. Phosphorylation Changes in Response to Kinase Inhibitor H89 in PKA-Null Cells , 2019, Scientific Reports.
[17] Carla Ritagliati,et al. Regulation mechanisms and implications of sperm membrane hyperpolarization , 2018, Mechanisms of Development.
[18] M. Buffone,et al. Lysine acetylation modulates mouse sperm capacitation , 2018, Scientific Reports.
[19] W. Bönigk,et al. The solute carrier SLC9C1 is a Na+/H+-exchanger gated by an S4-type voltage-sensor and cyclic-nucleotide binding , 2018, Nature Communications.
[20] G. Punzi,et al. Effect of cariporide on ram sperm pH regulation and motility: possible role of NHE1. , 2018, Reproduction.
[21] Matias A. Bustos,et al. The signaling module cAMP/Epac/Rap1/PLCε/IP3 mobilizes acrosomal calcium during sperm exocytosis. , 2016, Biochimica et biophysica acta.
[22] Su-Ren Chen,et al. Sodium–hydrogen exchanger NHA1 and NHA2 control sperm motility and male fertility , 2016, Cell Death and Disease.
[23] A. Salicioni,et al. Biphasic Role of Calcium in Mouse Sperm Capacitation Signaling Pathways , 2015, Journal of cellular physiology.
[24] S. Muench,et al. Mechanism of inhibition of mouse Slo3 (KCa5.1) potassium channels by quinine, quinidine and barium , 2015, British journal of pharmacology.
[25] L. Salkoff,et al. SLO3 K+ Channels Control Calcium Entry through CATSPER Channels in Sperm* , 2014, The Journal of Biological Chemistry.
[26] T. Nishigaki,et al. Intracellular pH in sperm physiology. , 2014, Biochemical and biophysical research communications.
[27] A. Salicioni,et al. Compartmentalization of Distinct cAMP Signaling Pathways in Mammalian Sperm*♦ , 2013, The Journal of Biological Chemistry.
[28] D. Clapham,et al. The control of male fertility by spermatozoan ion channels. , 2012, Annual review of physiology.
[29] A. Darszon,et al. Flow cytometry analysis reveals a decrease in intracellular sodium during sperm capacitation , 2012, Journal of Cell Science.
[30] W. Kühlbrandt,et al. Structure of Human Na+/H+ Exchanger NHE1 Regulatory Region in Complex with Calmodulin and Ca2+♦ , 2011, The Journal of Biological Chemistry.
[31] Ann-Beth Nørholm,et al. The intracellular distal tail of the Na+/H+ exchanger NHE1 is intrinsically disordered: implications for NHE1 trafficking. , 2011, Biochemistry.
[32] C. Lingle,et al. Deletion of the Slo3 gene abolishes alkalization-activated K+ current in mouse spermatozoa , 2011, Proceedings of the National Academy of Sciences.
[33] L. Salkoff,et al. The SLO3 sperm‐specific potassium channel plays a vital role in male fertility , 2010, FEBS letters.
[34] A. Sanjay,et al. Inhibition of Ser/Thr Phosphatases Induces Capacitation-associated Signaling in the Presence of Src Kinase Inhibitors* , 2010, The Journal of Biological Chemistry.
[35] K. Hokamp,et al. The extracellular Leucine-Rich Repeat superfamily; a comparative survey and analysis of evolutionary relationships and expression patterns , 2007, BMC Genomics.
[36] D. Garbers,et al. A sperm-specific Na+/H+ exchanger (sNHE) is critical for expression and in vivo bicarbonate regulation of the soluble adenylyl cyclase (sAC) , 2007, Proceedings of the National Academy of Sciences.
[37] D. Clapham,et al. KSper, a pH-sensitive K+ current that controls sperm membrane potential , 2007, Proceedings of the National Academy of Sciences.
[38] D. Garbers,et al. A new sperm-specific Na+/H+ Exchanger required for sperm motility and fertility , 2003, Nature Cell Biology.
[39] B. Masereel,et al. An overview of inhibitors of Na(+)/H(+) exchanger. , 2003, European journal of medicinal chemistry.
[40] J. Lingrel,et al. Roles of the Na,K‐ATPase α4 isoform and the Na+/H+ exchanger in sperm motility , 2002 .
[41] D. Clapham,et al. A sperm ion channel required for sperm motility and male fertility , 2001, Nature.
[42] C. Vorhees,et al. Targeted disruption of the murine Nhe1 locus induces ataxia, growth retardation, and seizures. , 1999, American journal of physiology. Cell physiology.
[43] W. Linz,et al. Protective effects of HOE642, a selective sodium-hydrogen exchange subtype 1 inhibitor, on cardiac ischaemia and reperfusion. , 1995, Cardiovascular research.
[44] J. Pouysségur,et al. Mutation of calmodulin-binding site renders the Na+/H+ exchanger (NHE1) highly H(+)-sensitive and Ca2+ regulation-defective. , 1994, The Journal of biological chemistry.
[45] Pedro Miguel Figueiredo Amaral. DEPARTMENT OF ELECTRICAL AND COMPUTER ENGINEERING , 2023 .