Genetic mutation of Kcnj16 identifies Kir5.1‐containing channels as key regulators of acute and chronic pH homeostasis
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H. Forster | M. Hodges | O. Palygin | A. Staruschenko | V. Levchenko | P. Martino | Anna D. Manis | M. Puissant | C. Muere
[1] G. Funk,et al. CrossTalk proposal: a central hypoxia sensor contributes to the excitatory hypoxic ventilatory response , 2018, The Journal of physiology.
[2] G. Funk,et al. On the existence of a central respiratory oxygen sensor. , 2017, Journal of applied physiology.
[3] H. Jacob,et al. Essential role of Kir5.1 channels in renal salt handling and blood pressure control. , 2017, JCI insight.
[4] Peng-Yuan Liu,et al. Identifying Candidate Genes that Underlie Cellular pH Sensitivity in Serotonin Neurons Using Transcriptomics: A Potential Role for Kir5.1 Channels , 2017, Front. Cell. Neurosci..
[5] O. Palygin,et al. Role and mechanisms of regulation of the basolateral Kir4.1/Kir5.1K+ channels in the distal tubules , 2017, Acta physiologica.
[6] A. Butt,et al. Expression of Kir4.1 and Kir5.1 inwardly rectifying potassium channels in oligodendrocytes, the myelinating cells of the CNS , 2016, Brain Structure and Function.
[7] E. Chuang,et al. Disease-Targeted Sequencing of Ion Channel Genes identifies de novo mutations in Patients with Non-Familial Brugada Syndrome , 2014, Scientific Reports.
[8] S. Zanella,et al. TASK-2 Channels Contribute to pH Sensitivity of Retrotrapezoid Nucleus Chemoreceptor Neurons , 2013, The Journal of Neuroscience.
[9] M. Hodges,et al. Fluoxetine augments ventilatory CO2 sensitivity in Brown Norway but not Sprague Dawley rats , 2013, Respiratory Physiology & Neurobiology.
[10] H. Forster,et al. Acute and chronic effects of carotid body denervation on ventilation and chemoreflexes in three rat strains , 2012, The Journal of physiology.
[11] P. Houillier,et al. Renal phenotype in mice lacking the Kir5.1 (Kcnj16) K+ channel subunit contrasts with that observed in SeSAME/EAST syndrome , 2011, Proceedings of the National Academy of Sciences.
[12] A. Gourine,et al. Respiratory responses to hypercapnia and hypoxia in mice with genetic ablation of Kir5.1 (Kcnj16) , 2011, Experimental physiology.
[13] Steve D. M. Brown,et al. Genetic Inactivation of Kcnj16 Identifies Kir5.1 as an Important Determinant of Neuronal PCO2/pH Sensitivity* , 2010, The Journal of Biological Chemistry.
[14] A. Nishiyama,et al. Astrocytes in the retrotrapezoid nucleus sense H+ by inhibition of a Kir4.1-Kir5.1-like current and may contribute to chemoreception by a purinergic mechanism. , 2010, Journal of neurophysiology.
[15] S. Snyder,et al. H2S mediates O2 sensing in the carotid body , 2010, Proceedings of the National Academy of Sciences.
[16] E. Deneris,et al. Medullary serotonin neurons and central CO2 chemoreception , 2009, Respiratory Physiology & Neurobiology.
[17] Dorothy A. Thompson,et al. Epilepsy, ataxia, sensorineural deafness, tubulopathy, and KCNJ10 mutations. , 2009, The New England journal of medicine.
[18] Murim Choi,et al. Seizures, sensorineural deafness, ataxia, mental retardation, and electrolyte imbalance (SeSAME syndrome) caused by mutations in KCNJ10 , 2009, Proceedings of the National Academy of Sciences.
[19] E. Nattie,et al. Central chemoreception is a complex system function that involves multiple brain stem sites. , 2009, Journal of applied physiology.
[20] K. Omoe,et al. Expression of inwardly rectifying K+ channels in the carotid body of rat. , 2008, Histology and histopathology.
[21] Y. Kurachi,et al. Kir4.1/Kir5.1 channel forms the major K+ channel in the basolateral membrane of mouse renal collecting duct principal cells. , 2008, American journal of physiology. Renal physiology.
[22] W. Shimizu,et al. Genotype‐phenotype correlations of KCNJ2 mutations in Japanese patients with Andersen‐Tawil syndrome , 2007, Human mutation.
[23] D. Bayliss,et al. Respiratory control by ventral surface chemoreceptor neurons in rats , 2004, Nature Neuroscience.
[24] R. Putnam,et al. Cellular mechanisms involved in CO(2) and acid signaling in chemosensitive neurons. , 2004, American journal of physiology. Cell physiology.
[25] G. Richerson,et al. Serotonergic neurons as carbon dioxide sensors that maintain ph homeostasis , 2004, Nature Reviews Neuroscience.
[26] J. Wu,et al. Expression and Coexpression of CO2-sensitive Kir Channels in Brainstem Neurons of Rats , 2004, The Journal of Membrane Biology.
[27] P. Papanek,et al. Ventilatory phenotypes among four strains of adult rats. , 2002, Journal of applied physiology.
[28] Y. Kurachi,et al. PSD-95 Mediates Formation of a Functional Homomeric Kir5.1 Channel in the Brain , 2002, Neuron.
[29] G. Richerson,et al. Chemosensitivity of serotonergic neurons in the rostral ventral medulla. , 2001, Respiration physiology.
[30] N. Cui,et al. Modulation of the heteromeric Kir4.1–Kir5.1 channels by P CO 2 at physiological levels , 2001, Journal of cellular physiology.
[31] S. Tucker,et al. Differential pH sensitivity of Kir4.1 and Kir4.2 potassium channels and their modulation by heteropolymerisation with Kir5.1 , 2001, The Journal of physiology.
[32] N. Cui,et al. Modulation of Kir4.1 and Kir5.1 by hypercapnia and intracellular acidosis , 2000, The Journal of physiology.
[33] G. Aghajanian,et al. Carbon dioxide regulates the tonic activity of locus coeruleus neurons by modulating a proton- and polyamine-sensitive inward rectifier potassium current , 1997, Neuroscience.
[34] J. Adelman,et al. Subunit positional effects revealed by novel heteromeric inwardly rectifying K+ channels. , 1996, The EMBO journal.
[35] J. Pappenheimer,et al. Studies on the respiratory response to disturbances of acid-base balance, with deductions concerning the ionic composition of cerebral interstitial fluid. , 1966, The American journal of physiology.
[36] J. Pappenheimer,et al. ROLE OF CEREBRAL FLUIDS IN CONTROL OF RESPIRATION AS STUDIED IN UNANESTHETIZED GOATS. , 1965, The American journal of physiology.
[37] A. Roos,et al. Specificity of H ion concentration as a carotid chemoreceptor stimulus , 1963, Journal of applied physiology.
[38] Yi Penga,et al. H 2 S mediates O 2 sensing in the carotid body , 2022 .