박사

Role of Li+-permeable Na+/Ca2+ exchanger, NCLX, in the regulation of cytosolic Ca2+ and exocytosis in pancreatic β-cell : 췌장 베타세포의 세포내 칼슘과 인슐린 분비 조절에 대한 리튬 투과성 소디움/칼슘 교환 기전의 역할

한영은 2015년
논문상세정보
' Role of Li+-permeable Na+/Ca2+ exchanger, NCLX, in the regulation of cytosolic Ca2+ and exocytosis in pancreatic β-cell : 췌장 베타세포의 세포내 칼슘과 인슐린 분비 조절에 대한 리튬 투과성 소디움/칼슘 교환 기전의 역할' 의 주제별 논문영향력
논문영향력 선정 방법
논문영향력 요약
주제
  • ca2+ transport
  • capacitance
  • exocytosis
  • na+/ca2+ exchanger
  • pancreatic β-cell
동일주제 총논문수 논문피인용 총횟수 주제별 논문영향력의 평균
47 0

0.0%

' Role of Li+-permeable Na+/Ca2+ exchanger, NCLX, in the regulation of cytosolic Ca2+ and exocytosis in pancreatic β-cell : 췌장 베타세포의 세포내 칼슘과 인슐린 분비 조절에 대한 리튬 투과성 소디움/칼슘 교환 기전의 역할' 의 참고문헌

  • Voronina, S.G., Barrow, S.L., Gerasimenko, O.V., Petersen, O.H., and Tepikin, A.V. (2004). Effects of secretagogues and bile acids on mitochondrial membrane potential of pancreatic acinar cells: comparison of different modes of evaluating ΔΨm. J. Biol. Chem. 279, 27327-27338.
  • Van Eylen, F., Svoboda, M., and Herchuelz, A. (1997). Identification, expression pattern and potential activity of Na/Ca exchanger isoforms in rat pancreatic B-cells. Cell Calcium 21, 185-193.
  • Van Eylen, F., Lebeau, C., Albuquerque-Silva, J., and Herchuelz, A. (1998). Contribution of Na/Ca exchange to Ca2+ outflow and entry in the rat pancreatic β-cell: studies with antisense oligonucleotides. Diabetes 47, 1873-1880.
  • Stutzmann, G.E., and Mattson, M.P. (2011). Endoplasmic Reticulum Ca2+ Handling in Excitable Cells in Health and Disease. Pharmacol. Rev. 63, 700- 727.
  • Rorsman, P., and Renstrom, E. (2003). Insulin granule dynamics in pancreatic beta cells. Diabetologia 46, 1029-1045.
  • Rorsman, P., Eliasson, L., Renstrom, E., Gromada, J., Barg, S., and Gopel, S. (2000b). The cell physiology of biphasic insulin secretion. News Physiol. Sci. 15, 72-77.
  • Rorsman, P., Eliasson, L., Renstr m, E., Gromada, J., Barg, S., and G pel, S. (2000a). The cell physiology of biphasic insulin secretion. News Physiol. Sci. 15, 72-77.
  • Park, S.-H., Ryu, S.-Y., Yu, W.-J., Han, Y.E., Ji, Y.-S., Oh, K., Sohn, J.-W., Lim, A., Jeon, J.-P., Lee, H., et al. (2013). Leptin promotes KATP channel trafficking by AMPK signaling in pancreatic β-cells. Proc. Natl. Acad. Sci. U. S. A. 110, 12673-12678.
  • Palty, R., Silverman, W.F., Hershfinkel, M., Caporale, T., Sensi, S.L., Parnis, J., Nolte, C., Fishman, D., Shoshan-Barmatz, V., Herrmann, S., et al. (2010). NCLX is an essential component of mitochondrial Na+/Ca2+ exchange. Proc. Natl. Acad. Sci. U. S. A. 107, 436-441.
  • Palty, R., Ohana, E., Hershfinkel, M., Volokita, M., Elgazar, V., Beharier, O., Silverman, W.F., Argaman, M., and Sekler, I. (2004). Lithium-calcium exchange is mediated by a distinct potassium-independent sodium-calcium exchanger. J. Biol. Chem. 279, 25234-25240.
  • Nita, II, Hershfinkel, M., Fishman, D., Ozeri, E., Rutter, G.A., Sensi, S.L., Khananshvili, D., Lewis, E.C., and Sekler, I. (2012). The mitochondrial Na+/Ca2+ exchanger upregulates glucose dependent Ca2+ signalling linked to insulin secretion. PLoS One 7, e46649.
  • Nita, I.I., Hershfinkel, M., Lewis, E.C., and Sekler, I. (2015). A crosstalk between Na+ channels, Na+/K+ pump and mitochondrial Na+ transporters controls glucose-dependent cytosolic and mitochondrial Na+ signals. Cell Calcium 57, 69-75.
  • MacDonald, P.E., and Rorsman, P. (2006). Oscillations, intercellular coupling, and insulin secretion in pancreatic β cells. PLoS Biol. 4, e49.
  • Lytton, J. (2007). Na+/Ca2+ exchangers: three mammalian gene families control Ca2+ transport. Biochem. J. 406, 365-382.
  • Luciani, D.S., Ao, P., Hu, X., Warnock, G.L., and Johnson, J.D. (2007). Voltage-gated Ca2+ influx and insulin secretion in human and mouse β-cells are impaired by the mitochondrial Na+/Ca2+ exchange inhibitor CGP-37157. Eur. J. Pharmacol. 576, 18-25.
  • Lim, A., Park, S.-H., Sohn, J.-W., Jeon, J.-H., Park, J.-H., Song, D.-K., Lee, S.- H., and Ho, W.-K. (2009). Glucose deprivation regulates KATP channel trafficking via AMP-activated protein kinase in pancreatic β-cells. Diabetes 58, 2813-2819.
  • Leibiger, I.B., Leibiger, B., and Berggren, P.-O. (2008). Insulin signaling in the pancreatic β-cell. Annu. Rev. Nutr. 28, 233-251.
  • Lee, B., Miles, P.D., Vargas, L., Luan, P., Glasco, S., Kushnareva, Y., Kornbrust, E.S., Grako, K.A., Wollheim, C.B., Maechler, P., et al. (2003). Inhibition of mitochondrial Na+-Ca2+ exchanger increases mitochondrial metabolism and potentiates glucose-stimulated insulin secretion in rat pancreatic islets. Diabetes 52, 965-973.
  • Kanno, T., Ma, X., Barg, S., Eliasson, L., Galvanovskis, J., Gopel, S., Larsson, M., Renstrom, E., and Rorsman, P. (2004). Large dense-core vesicle exocytosis in pancreatic β-cells monitored by capacitance measurements. Methods 33, 302-311.
  • Kang, L., He, Z., Xu, P., Fan, J., Betz, A., Brose, N., and Xu, T. (2006). Munc13-1 is required for the sustained release of insulin from pancreatic β cells. Cell Metab. 3, 463-468.
  • Kamagate, A., Herchuelz, A., and Van Eylen, F. (2002). Plasma membrane Ca2+-ATPase overexpression reduces Ca2+ oscillations and increases insulin release induced by glucose in insulin-secreting BRIN-BD11 cells. Diabetes 51, 2773-2788.
  • Hughes, E., Lee, A.K., and Tse, A. (2006). Dominant role of sarcoendoplasmic reticulum Ca2+-ATPase pump in Ca2+ homeostasis and exocytosis in rat pancreatic β-cells. Endocrinology 147, 1396-1407.
  • Hern ndez-SanMiguel, E., Vay, L., Santo-Domingo, J., Lobat n, C.D., Moreno, A., Montero, M., and Alvarez, J. (2006). The mitochondrial Na+/Ca2+ exchanger plays a key role in the control of cytosolic Ca2+ oscillations. Cell Calcium 40, 53-61.
  • Herchuelz, A., Kamagate, A., Ximenes, H., and Van Eylen, F. (2007). Role of Na/Ca exchange and the plasma membrane Ca2+–ATPase in β cell function and death. Ann. N. Y. Acad. Sci. 1099, 456-467.
  • Herchuelz, A., Diaz-Horta, O., and Van Eylen, F. (2002). Na/Ca exchange and Ca2+ homeostasis in the pancreatic beta-cell. Diabetes Metab. 28, 3S54-60; discussion 53S108-112.
  • Henquin, J.-C., Ishiyama, N., Nenquin, M., Ravier, M.A., and Jonas, J.-C. (2002). Signals and pools underlying biphasic insulin secretion. Diabetes 51, S60-S67.
  • Hamming, K.S., Soliman, D., Webster, N.J., Searle, G.J., Matemisz, L.C., Liknes, D.A., Dai, X.Q., Pulinilkunnil, T., Riedel, M.J., Dyck, J.R., et al. (2010). Inhibition of β-cell sodium-calcium exchange enhances glucose-dependent elevations in cytoplasmic calcium and insulin secretion. Diabetes 59, 1686- 1693.
  • Hamming, K.S., Riedel, M.J., Soliman, D., Matemisz, L.C., Webster, N.J., Searle, G.J., MacDonald, P.E., and Light, P.E. (2008). Splice variant-dependent regulation of β-cell sodium-calcium exchange by acyl-coenzyme As. Mol. Endocrinol. 22, 2293-2306.
  • Gembal, M., Gilon, P., and Henquin, J.C. (1992). Evidence that glucose can control insulin release independently from its action on ATP-sensitive K+ channels in mouse B cells. J. Clin. Invest. 89, 1288-1295.
  • Gall, D., Gromada, J., Susa, I., Rorsman, P., Herchuelz, A., and Bokvist, K. (1999). Significance of Na/Ca exchange for Ca2+ buffering and electrical activity in mouse pancreatic β-cells. Biophys. J. 76, 2018-2028.
  • Eliasson, L., Renstr m, E., Ding, W.-G., Proks, P., and Rorsman, P. (1997). Rapid ATP-dependent priming of secretory granules precedes Ca2+-induced exocytosis in mouse pancreatic B-cells. The Journal of Physiology 503, 399- 412.
  • Deval, E., Raymond, G., and Cognard, C. (2002). Na+–Ca2+ exchange activity in rat skeletal myotubes: effect of lithium ions. Cell Calcium 31, 37-44.
  • Curry, D.L., Bennett, L., and Grodsky, G.M. (1968). Dynamics of insulin secretion by the perfused rat pancreas. Endocrinology 83, 572-584.
  • Crompton, M., and Heid, I. (1978). The cycling of calcium, sodium, and protons across the inner membrane of cardiac mitochondria. Eur. J. Biochem. 91, 599-608.
  • Chen, L., Koh, D.S., and Hille, B. (2003). Dynamics of calcium clearance in mouse pancreatic beta-cells. Diabetes 52, 1723-1731.
  • Cai, X., and Lytton, J. (2004). Molecular cloning of a sixth member of the K+- dependent Na+/Ca2+ exchanger gene family, NCKX6. J. Biol. Chem. 279, 5867- 5876.
  • Berridge, M.J., Lipp, P., and Bootman, M.D. (2000). The versatility and universality of calciumsignalling. Nat Rev Mol Cell Biol 1, 11-21.
  • Berridge, M.J., Bootman, M.D., and Roderick, H.L. (2003). Calcium signalling: dynamics, homeostasis and remodelling. Nat. Rev. Mol. Cell Biol. 4, 517-529.
  • Bernardi, P. (1999). Mitochondrial transport of cations: channels, exchangers, and permeability transition. Physiol. Rev. 79, 1127-1155.
  • Barg, S., Ma, X., Eliasson, L., Galvanovskis, J., Gopel, S.O., Obermuller, S., Platzer, J., Renstrom, E., Trus, M., Atlas, D., et al. (2001b). Fast exocytosis with few Ca2+ channels in insulin-secreting mouse pancreatic B cells. Biophys. J. 81, 3308-3323.
  • Barg, S., Huang, P., Eliasson, L., Nelson, D.J., Oberm ller, S., Rorsman, P., Th venod, F., and Renstr m, E. (2001a). Priming of insulin granules for exocytosis by granular Cl− uptake and acidification. J. Cell Sci. 114, 2145-2154.
  • Barg, S., Eliasson, L., Renstr m, E., and Rorsman, P. (2002). A subset of 50 secretory granules in close contact with L-type Ca2+ channels accounts for firstphase insulin secretion in mouse β-cells. Diabetes 51 S74-S82.
  • Ashcroft, F.M., and Rorsman, P. (1989). Electrophysiology of the pancreatic β- cell. Prog. Biophys. Mol. Biol. 54, 87-143.
  • Ashcroft, F.M., Proks, P., Smith, P.A., mm l , C., Bokvist, K., and Rorsman, P. (1994). Stimulus–secretion coupling in pancreatic β cells. J. Cell. Biochem. 55, 54-65.