Modeling buffered Ca2+ diffusion near the membrane: Implications for secretion in neuroendocrine cells

被引:247
作者
Klingauf, J
Neher, E
机构
[1] Department of Membrane Biophysics, Max-Planck-Inst. Biophysical Chem., Am Fassberg
[2] Dept. of Membrane Biophysics, Max-Planck-Inst. Biophysical Chem., Am Fassberg
关键词
D O I
10.1016/S0006-3495(97)78704-6
中图分类号
Q6 [生物物理学];
学科分类号
071011 ;
摘要
Secretion of catecholamines from neuroendocrine cells is relatively slow and it is likely that redistribution and buffering of Ca2+ is a major factor for delaying the response after a stimulus. In fact, in a recent study (Chow, R. H., J. Klingauf, and E. Neher. 1994. Time course of Ca2+ concentration triggering exocytosis in neuroendocrine cells. Proc. Natl. Acad. Sci. U.S.A. 91:12765-12769) Chow et al. concluded that the concentration of free calcium ([Ca2+](i)) at a release site peaks at <10 mu M during short-step depolarizations, and then decays to baseline over tens of milliseconds. To check whether such a time course is consistent with diffusion theory, we modeled buffered diffusion in the vicinity of a Ca2+ channel pore. Peak [Ca2+](i) and the slow decay were well simulated when release-ready granules were randomly distributed within a regular grid of Ca2+ channels with mean interchannel distances of 300-600 nm. For such large spacings, however, the initial rise in [Ca2+](i) was underestimated, suggesting that a small fraction of the release-ready pool (similar to 10%) experiences much higher [Ca2+](i), and thus might be collocalized with Ca2+ channels. A model that accommodates these findings then correctly predicts many recent observations, including the result that single action potentials evoke near-synchronous transmitter release with low quantal yield, whereas trains of action potentials lead to desynchronized release, but with severalfold increased quantal yield. The simulations emphasize the role of Ca2+ not only in triggering, but also in modulating the secretory response: buffers are locally depleted by residual Ca2+ of a preceding stimulus, so that a second pulse leads to a larger peak [Ca2+](i) at the fusion sites.
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页码:674 / 690
页数:17
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