Javascript must be enabled to continue!
Agonist-dependent patterns of cytosolic Ca2+ changes in single bovine adrenal chromaffin cells: relationship to catecholamine release.
View through CrossRef
The patterns of agonist-induced elevations of cytosolic free Ca2+ ([Ca2+]i) were characterized and compared by the use of single adrenal chromaffin cells. Initial histamine- or angiotensin II (AII)-induced elevations of [Ca2+]i were equal in magnitude (peaks 329 +/- 20 [SE] and 338 +/- 46 nM, respectively). These initial increases of [Ca2+]i were transient, insensitive to either Gd3+ or removing external Ca2+, and were primarily the result of Ca2+ release from intracellular stores. After the initial peak(s) of [Ca2+]i, a second phase of moderately elevated [Ca2+]i was observed, and this response was sensitive to either Gd3+ or removing external Ca2+, supporting a role for Ca2+ entry. In most cases, the second phase of elevated [Ca2+]i was sustained during histamine stimulation but transient during AII stimulation. Maintenance of the second phase was a property of the agonist rather than of the particular cell being stimulated. Thus, individual cells exposed sequentially to histamine and AII displayed distinct patterns of [Ca2+]i changes to each agonist, regardless of the order of addition. Histamine also stimulated twice as much [3H]catecholamine release as AII, and release was completely dependent on external Ca2+. Therefore, the ability of histamine and AII to sustain (or promote) Ca2+ entry appears to underlie their efficacy as secretagogues. These data provide evidence linking agonist-dependent patterns of [Ca2+]i changes in single cells with agonist-dependent functional responses.
Title: Agonist-dependent patterns of cytosolic Ca2+ changes in single bovine adrenal chromaffin cells: relationship to catecholamine release.
Description:
The patterns of agonist-induced elevations of cytosolic free Ca2+ ([Ca2+]i) were characterized and compared by the use of single adrenal chromaffin cells.
Initial histamine- or angiotensin II (AII)-induced elevations of [Ca2+]i were equal in magnitude (peaks 329 +/- 20 [SE] and 338 +/- 46 nM, respectively).
These initial increases of [Ca2+]i were transient, insensitive to either Gd3+ or removing external Ca2+, and were primarily the result of Ca2+ release from intracellular stores.
After the initial peak(s) of [Ca2+]i, a second phase of moderately elevated [Ca2+]i was observed, and this response was sensitive to either Gd3+ or removing external Ca2+, supporting a role for Ca2+ entry.
In most cases, the second phase of elevated [Ca2+]i was sustained during histamine stimulation but transient during AII stimulation.
Maintenance of the second phase was a property of the agonist rather than of the particular cell being stimulated.
Thus, individual cells exposed sequentially to histamine and AII displayed distinct patterns of [Ca2+]i changes to each agonist, regardless of the order of addition.
Histamine also stimulated twice as much [3H]catecholamine release as AII, and release was completely dependent on external Ca2+.
Therefore, the ability of histamine and AII to sustain (or promote) Ca2+ entry appears to underlie their efficacy as secretagogues.
These data provide evidence linking agonist-dependent patterns of [Ca2+]i changes in single cells with agonist-dependent functional responses.
Related Results
Histamine-induced Ca2+ entry precedes Ca2+ mobilization in bovine adrenal chromaffin cells
Histamine-induced Ca2+ entry precedes Ca2+ mobilization in bovine adrenal chromaffin cells
The relationship between histamine-induced Ca2+ mobilization and Ca2+ entry in bovine adrenal chromaffin cells has been investigated. Stopped-flow fluorimetry of fura-2-loaded chro...
Computational analysis of Ca2+ dynamics in isolated cardiac mitochondria predicts two distinct modes of Ca2+ uptake
Computational analysis of Ca2+ dynamics in isolated cardiac mitochondria predicts two distinct modes of Ca2+ uptake
Key points
Cytosolic, but not matrix, Mg2+ inhibits mitochondrial Ca2+ uptake through the Ca2+ uniporter (CU).
The majority of mitochondrial Ca2+ uptake under physiological levels ...
Loss and Ca2+‐Dependent Retention of Scinderin in Digitonin‐Permeabilized Chromaffin Cells: Correlation with Ca2+‐Evoked Catecholamine Release
Loss and Ca2+‐Dependent Retention of Scinderin in Digitonin‐Permeabilized Chromaffin Cells: Correlation with Ca2+‐Evoked Catecholamine Release
Abstract: Exposure of chromaffin cells to digitonin causes the loss of many cytosolic proteins. Here we report that scinderin (a Ca2+‐dependent actin‐filament‐severing protein), b...
A basic model of calcium homeostasis in non-excitable cells
A basic model of calcium homeostasis in non-excitable cells
AbstractThe level of cytosolic calcium (Ca2+) in cells is tightly regulated to about 100 nM (pCa ≈ 7). Due to external stimuli, the basal cytosolic Ca2+level can temporarily be rai...
The role of caffeine-sensitive Ca2+ stores in agonist- and inositol 1,4,5-trisphosphate-induced Ca2+ release from bovine adrenal chromaffin cells
The role of caffeine-sensitive Ca2+ stores in agonist- and inositol 1,4,5-trisphosphate-induced Ca2+ release from bovine adrenal chromaffin cells
In single bovine adrenal chromaffin cells loaded with fura-2, histamine, angiotensin II (AII) and caffeine elicited large transient increases of intracellular free Ca2+ concentrati...
Regulation of cochlear hair cell function by intracellular calcium stores
Regulation of cochlear hair cell function by intracellular calcium stores
IntroductionMammalian hearing depends on the dual mechanosensory and motor functions of cochlear hair cells. Both these functions may be regulated by Ca2+ release from intracellula...
Protein carbonylation causes sarcoplasmic reticulum Ca2+ overload by increasing intracellular Na+ level in ventricular myocytes
Protein carbonylation causes sarcoplasmic reticulum Ca2+ overload by increasing intracellular Na+ level in ventricular myocytes
Abstract
Diabetes is commonly associated with an elevated level of reactive carbonyl species due to alteration of glucose and fatty acid metabolism. These metabolic changes...
Review on Sodium Calcium Exchanger (Na+-Ca2+X) Electrophysiological Characteristics and its Role in Cardiac Arrhythmias
Review on Sodium Calcium Exchanger (Na+-Ca2+X) Electrophysiological Characteristics and its Role in Cardiac Arrhythmias
Cardiac arrhythmias is one of the cardiovascular diseases that cause more death in today’s industrial world. Among the generation of arrhythmias in cardiac myocytes, Early Afterdep...

