Cl- flux through a non-selective, stretch-sensitive conductance influences the outer hair cell motor of the guinea-pig.
暂无分享,去创建一个
[1] B. Fakler,et al. Expression density and functional characteristics of the outer hair cell motor protein are regulated during postnatal development in rat , 1999, The Journal of physiology.
[2] K. Iwasa. A membrane motor model for the fast motility of the outer hair cell. , 1994, The Journal of the Acoustical Society of America.
[3] W. Brownell,et al. The influence of the subsurface cisterna on the electrical properties of the outer hair cell , 1997, Neuroreport.
[4] J. Santos-Sacchi,et al. Effects of membrane potential on the voltage dependence of motility‐related charge in outer hair cells of the guinea‐pig , 1998, The Journal of physiology.
[5] J. Santos-Sacchi,et al. Harmonics of outer hair cell motility. , 1993, Biophysical journal.
[6] J. Santos-Sacchi,et al. Effects of membrane potential and tension on prestin, the outer hair cell lateral membrane motor protein , 2001, The Journal of physiology.
[7] C. Kros,et al. Developmental expression of the potassium current IK,n contributes to maturation of mouse outer hair cells , 1999, The Journal of physiology.
[8] William E. Brownell,et al. Characterization of the outer hair cell's lateral wall membranes , 1993, Hearing Research.
[9] Apparent change in ion selectivity caused by changes in intracellular K(+) during whole-cell recording. , 2000, Biophysical journal.
[10] F. Sachs,et al. Block of stretch-activated ion channels in Xenopus oocytes by gadolinium and calcium ions. , 1989, Science.
[11] K. Iwasa,et al. A membrane-based force generation mechanism in auditory sensory cells. , 1992, Proceedings of the National Academy of Sciences of the United States of America.
[12] J. Desmedt,et al. Ionic mechanism of the efferent olivo‐cochlear inhibition studied by cochlear perfusion in the cat. , 1975, The Journal of physiology.
[13] P Dallos,et al. Intracellular Anions as the Voltage Sensor of Prestin, the Outer Hair Cell Motor Protein , 2001, Science.
[14] Hong-Bo Zhao,et al. Auditory collusion and a coupled couple of outer hair cells , 1999, Nature.
[15] Joseph Santos-Sacchi,et al. AC receptor potentials from hair cells in the low-frequency region of the guinea pig cochlea , 1983 .
[16] T. Takasaka,et al. Expression and localization of the Na-K-2Cl cotransporter in the rat cochlea , 1997, Brain Research.
[17] Tomonori Takasaka,et al. Density of motility-related charge in the outer hair cell of the guinea pig is inversely related to best frequency , 1998, Neuroscience Letters.
[18] R. Traub,et al. Electrical coupling underlies high-frequency oscillations in the hippocampus in vitro , 1998, Nature.
[19] A. Randall,et al. The diversity in the vanilloid (TRPV) receptor family of ion channels. , 2002, Trends in pharmacological sciences.
[20] K. Iwasa,et al. Fast in vitro movement of outer hair cells in an external electric field: Effect of digitonin, a membrane permeabilizing agent , 1989, Hearing Research.
[21] J. Ashmore,et al. Ionic basis of membrane potential in outer hair cells of guinea pig cochlea , 1986, Nature.
[22] J. Santos-Sacchi,et al. Whole cell currents and mechanical responses of isolated outer hair cells , 1988, Hearing Research.
[23] A. Popel,et al. An analysis of the hydraulic conductivity of the extracisternal space of the cochlear outer hair cell , 2000, Journal of mathematical biology.
[24] Jeffrey R. Balser,et al. A Novel Extracellular Calcium Sensing Mechanism in Voltage-Gated Potassium Ion Channels , 2001, The Journal of Neuroscience.
[25] P Dallos,et al. High-frequency outer hair cell motility: corrections and addendum. , 1995, Science.
[26] Anders Nygren,et al. Excess plasma membrane and effects of ionic amphipaths on mechanics of outer hair cell lateral wall. , 2002, American journal of physiology. Cell physiology.
[27] J. Ashmore. A fast motile response in guinea‐pig outer hair cells: the cellular basis of the cochlear amplifier. , 1987, The Journal of physiology.
[28] M. Valverde,et al. Inhibition of ligand-gated cation-selective channels by tamoxifen. , 1998, European journal of pharmacology.
[29] G. Richardson,et al. Mechano-electrical transducer currents in hair cells of the cultured neonatal mouse cochlea , 1992, Proceedings of the Royal Society of London. Series B: Biological Sciences.
[30] J. Santos-Sacchi,et al. Effects of Salicylate and Lanthanides on Outer Hair Cell Motility and Associated Gating Charge , 1996, The Journal of Neuroscience.
[31] J. Santos-Sacchi,et al. Mapping the distribution of the outer hair cell motility voltage sensor by electrical amputation. , 1993, Biophysical journal.
[32] F. Sachs,et al. Stretch-activated ion channels in guinea pig outer hair cells , 1991, Hearing Research.
[33] A. Brading,et al. The role of chloride‐bicarbonate exchange in the regulation of intracellular chloride in guinea‐pig vas deferens. , 1984, The Journal of physiology.
[34] M. Nelson,et al. Swelling‐activated cation channels mediate depolarization of rat cerebrovascular smooth muscle by hyposmolarity and intravascular pressure , 2000, The Journal of physiology.
[35] J. Ashmore,et al. Transducer Motor Coupling in Cochlear Outer Hair Cells , 1989 .
[36] J. Santos-Sacchi,et al. Isolated supporting cells from the organ of Corti: Some whole cell electrical characteristics and estimates of gap junctional conductance , 1991, Hearing Research.
[37] Thomas J. Jentsch,et al. Gating of the voltage-dependent chloride channel CIC-0 by the permeant anion , 1995, Nature.
[38] M O Magnasco,et al. A model for amplification of hair-bundle motion by cyclical binding of Ca2+ to mechanoelectrical-transduction channels. , 1998, Proceedings of the National Academy of Sciences of the United States of America.
[39] W. Boron,et al. An electroneutral sodium/bicarbonate cotransporter NBCn1 and associated sodium channel , 2000, Nature.
[40] Craig C. Bader,et al. Evoked mechanical responses of isolated cochlear outer hair cells. , 1985, Science.
[41] Barbara Canlon,et al. Sound-induced motility of isolated cochlear outer hair cells is frequency-specific , 1989, Nature.
[42] C. Miller,et al. Nonequilibrium gating and voltage dependence of the ClC-0 Cl- channel , 1996, The Journal of general physiology.
[43] I. Russell,et al. Tuned phasic and tonic motile responses of isolated outer hair cells to direct mechanical stimulation of the cell body , 1994, Hearing Research.
[44] J. Santos-Sacchi,et al. Membrane tension directly shifts voltage dependence of outer hair cell motility and associated gating charge. , 1995, Biophysical journal.
[45] J. Santos-Sacchi,et al. On the frequency limit and phase of outer hair cell motility: effects of the membrane filter , 1992, The Journal of neuroscience : the official journal of the Society for Neuroscience.
[46] W Hemmert,et al. Limiting dynamics of high-frequency electromechanical transduction of outer hair cells. , 1999, Proceedings of the National Academy of Sciences of the United States of America.
[47] J. Santos-Sacchi,et al. Voltage-dependent changes in specific membrane capacitance caused by prestin, the outer hair cell lateral membrane motor , 2002, Pflügers Archiv.
[48] J. Santos-Sacchi,et al. Mapping the distribution of outer hair cell voltage-dependent conductances by electrical amputation. , 1997, Biophysical journal.
[49] The Cellular Physiology of Isolated Outer Hair Cells: Implications for Cochlear Frequency Selectivity , 1986 .
[50] E. Neher,et al. Rates of diffusional exchange between small cells and a measuring patch pipette , 1988, Pflügers Archiv.
[51] Thomas Friedrich,et al. KCNQ4, a Novel Potassium Channel Expressed in Sensory Outer Hair Cells, Is Mutated in Dominant Deafness , 1999, Cell.
[52] P. Dallos. The active cochlea , 1992, The Journal of neuroscience : the official journal of the Society for Neuroscience.
[53] A J Ricci,et al. Active Hair Bundle Motion Linked to Fast Transducer Adaptation in Auditory Hair Cells , 2000, The Journal of Neuroscience.
[54] G. Frolenkov,et al. Expression and Localization of Prestin and the Sugar Transporter GLUT-5 during Development of Electromotility in Cochlear Outer Hair Cells , 2000, The Journal of Neuroscience.
[55] R. Bobbin,et al. Volume regulation in cochlear outer hair cells , 1993, Hearing Research.
[56] C. Inagaki,et al. Single-cell RT-PCR demonstrates expression of voltage-dependent chloride channels (ClC-1, ClC-2 and ClC-3) in outer hair cells of rat cochlea , 1999, Brain Research.
[57] J. Santos-Sacchi,et al. Reversible inhibition of voltage-dependent outer hair cell motility and capacitance , 1991, The Journal of neuroscience : the official journal of the Society for Neuroscience.
[58] S. Komune,et al. Calcium channel in isolated outer hair cells of guinea pig cochlea , 1991, Neuroscience Letters.
[59] R. Miller,et al. Chloride efflux inhibits single calcium channel open probability in vertebrate photoreceptors: Chloride imaging and cell-attached patch-clamp recordings , 2000, Visual Neuroscience.
[60] K. H. Iwasa,et al. Stretch sensitivity of the lateral wall of the auditory outer hair cell from the guinea pig , 1991, Neuroscience Letters.
[61] Jing Zheng,et al. Prestin is the motor protein of cochlear outer hair cells , 2000, Nature.
[62] J. Changeux,et al. Allosteric proteins and cellular control systems. , 1963, Journal of molecular biology.
[63] M. Ruggero,et al. Furosemide alters organ of corti mechanics: evidence for feedback of outer hair cells upon the basilar membrane , 1991, The Journal of neuroscience : the official journal of the Society for Neuroscience.
[64] A. Gummer,et al. Reciprocal electromechanical properties of rat prestin: The motor molecule from rat outer hair cells , 2001, Proceedings of the National Academy of Sciences of the United States of America.
[65] M. Charles Liberman,et al. Prestin is required for electromotility of the outer hair cell and for the cochlear amplifier , 2002, Nature.
[66] A. Verkman,et al. A multifunctional aqueous channel formed by CFTR. , 1992, Science.
[67] J. Ashmore,et al. Forward and reverse transduction in the mammalian cochlea. , 1990, Neuroscience research. Supplement : the official journal of the Japan Neuroscience Society.
[68] W. Shen,et al. Prestin topology: localization of protein epitopes in relation to the plasma membrane , 2001, Neuroreport.
[69] J. Caldwell,et al. How do patch clamp seals form? A lipid bleb model , 1990, Pflügers Archiv.
[70] G. Richardson,et al. The responses of cochlear hair cells to tonic displacements of the sensory hair bundle , 1989, Hearing Research.
[71] H. Murer,et al. Ion channels activated by osmotic and mechanical stress in membranes of opossum kidney cells , 1988, The Journal of Membrane Biology.
[72] P Dallos,et al. Intracellular recordings from cochlear outer hair cells. , 1982, Science.
[73] Peter Dallos,et al. Nature of the motor element in electrokinetic shape changes of cochlear outer hair cells , 1991, Nature.
[74] B. A. Schulte,et al. Immunohistochemical Localization of the Na-K-Cl Co-transporter (NKCC1) in the Gerbil Inner Ear , 1997, The journal of histochemistry and cytochemistry : official journal of the Histochemistry Society.
[75] C. Morris,et al. Stretch-activation and stretch-inactivation of Shaker-IR, a voltage-gated K+ channel. , 2001, Biophysical journal.
[76] S. Frings,et al. Neuronal Ca2+-activated Cl− channels — homing in on an elusive channel species , 2000, Progress in Neurobiology.
[77] J. Russell. Sodium-potassium-chloride cotransport. , 2000, Physiological reviews.
[78] Functional motor microdomains of the outer hair cell lateral membrane , 2002, Pflügers Archiv.
[79] K. Iwasa. Effect of stress on the membrane capacitance of the auditory outer hair cell. , 1993, Biophysical journal.
[80] J. Santos-Sacchi,et al. Non-uniform mapping of stress-induced, motility-related charge movement in the outer hair cell plasma membrane , 2000, Pflügers Archiv.
[81] J. Santos-Sacchi,et al. Asymmetry in voltage-dependent movements of isolated outer hair cells from the organ of Corti , 1989, The Journal of neuroscience : the official journal of the Society for Neuroscience.
[82] William E. Brownell,et al. Electrokinetic shape changes of cochlear outer hair cells , 1986, Nature.
[83] J. Changeux,et al. Allosteric receptors after 30 years , 1998, Neuron.
[84] J. Ashmore,et al. Charge displacement induced by rapid stretch in the basolateral membrane of the guinea-pig outer hair cell , 1994, Proceedings of the Royal Society of London. Series B: Biological Sciences.
[85] V. Stein,et al. Molecular structure and physiological function of chloride channels. , 2002, Physiological reviews.