4.6 Article

Properties of Ca2+-dependent exocytosis in cultured astrocytes

期刊

GLIA
卷 46, 期 4, 页码 437-445

出版社

WILEY
DOI: 10.1002/glia.20018

关键词

calcium; regulated exocytosis; membrane capacitance; vesicular glutamate transporter; atrial natriuretic peptide

资金

  1. FIC NIH HHS [R03-TW01293] Funding Source: Medline
  2. NINDS NIH HHS [R37 NS37585, R01 NS43142] Funding Source: Medline

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Astrocytes, a subtype of glial cells, have numerous characteristics that were previously considered exclusive for neurons. One of these characteristics is a cytosolic [Ca2+] oscillation that controls the release of the chemical transmitter glutamate and atrial natriuretic peptide. These chemical messengers appear to be released from astrocytes via Ca2+-dependent exocytosis. In the present study, patch-clamp membrane capacitance measurements were used to monitor changes in the membrane area of a single astrocyte, while the photolysis of caged calcium compounds by a UV flash was used to elicit steps in [Ca2+](i) to determine the exocytotic properties of astrocytes. Experiments show that astrocytes exhibit Ca2+-dependent increases in membrane capacitance, with an apparent K-d value of similar to20 muM [Ca2+](i). The delay between the flash delivery and the peak rate in membrane capacitance increase is in the range of tens to hundreds of milliseconds. The pretreatment of astrocytes by the tetanus neurotoxin, which specifically cleaves the neuronal/neuroendocrine type of SNARE protein synaptobrevin, abolished flash-induced membrane capacitance increases, suggesting that Ca2+-dependent membrane capacitance changes involve tetanus neurotoxin-sensitive SNARE-mediated vesicular exocytosis. Immunocytochemical experiments show distinct populations of vesicles containing glutamate and atrial natriuretic peptide in astrocytes. We conclude that the recorded Ca2+-dependent changes in membrane capacitance represent regulated exocytosis from multiple types of vesicles, about 100 times slower than the exocytotic response in neurons. (C) 2004 Wiley-Liss, Inc.

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