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1.
Pflugers Arch ; 458(2): 389-401, 2009 Jun.
Article in English | MEDLINE | ID: mdl-19018564

ABSTRACT

Quantal release of adenosine triphosphate (ATP) was monitored in rat pancreatic beta-cells expressing P2X(2) receptors. Stimulation of exocytosis evoked rapidly activating and deactivating ATP-dependent transient inward currents (TICs). The unitary charge (q) of the events recorded at 0.2 microM [Ca(2+)](i) averaged 4.3 pC. The distribution of the 3 square root q of these events could be described by a single Gaussian. The rise times averaged approximately 5 ms over a wide range of TIC amplitudes. In beta-cells preloaded with 5-hydroxytryptamine (5-HT; accumulating in insulin granules), ATP was coreleased with 5-HT during >90% of the release events. Following step elevation of [Ca(2+)](i) to approximately 5 microM by photo release of caged Ca(2+), an increase in membrane capacitance was observed after 33 ms, whereas ATP release first became detectable after 43 ms. The step increase in [Ca(2+)](i) produced an initial large TIC followed by a series of smaller events that echoed the changes in membrane capacitance (DeltaC(m)). Mathematical modeling suggests that the large initial TIC reflects the superimposition of many unitary events. Exocytosis, measured as DeltaC(m) or TICs, was complete within 2 s after elevation of [Ca(2+)](i) with no sign of endocytosis masking the capacitance increase. The relationship between total charge (Q) and DeltaC(m) was linear with a slope of approximately 1.2 pC/fF. The latter value predicts a capacitance increase of 3.6 fF for the observed mean value of q, close to that expected for exocytosis of individual insulin granules. Our results indicate that measurements of ATP release and DeltaC(m) principally (> or =85-95%) report exocytosis of insulin granules.


Subject(s)
Adenosine Triphosphate/metabolism , Exocytosis/physiology , Insulin-Secreting Cells/metabolism , Animals , Electric Capacitance , Insulin/metabolism , Rats , Receptors, Purinergic P2/physiology , Secretory Vesicles/physiology , Serotonin/metabolism
2.
Diabetes ; 57(6): 1618-28, 2008 Jun.
Article in English | MEDLINE | ID: mdl-18390794

ABSTRACT

OBJECTIVE: To characterize the voltage-gated ion channels in human beta-cells from nondiabetic donors and their role in glucose-stimulated insulin release. RESEARCH DESIGN AND METHODS: Insulin release was measured from intact islets. Whole-cell patch-clamp experiments and measurements of cell capacitance were performed on isolated beta-cells. The ion channel complement was determined by quantitative PCR. RESULTS: Human beta-cells express two types of voltage-gated K(+) currents that flow through delayed rectifying (K(V)2.1/2.2) and large-conductance Ca(2+)-activated K(+) (BK) channels. Blockade of BK channels (using iberiotoxin) increased action potential amplitude and enhanced insulin secretion by 70%, whereas inhibition of K(V)2.1/2.2 (with stromatoxin) was without stimulatory effect on electrical activity and secretion. Voltage-gated tetrodotoxin (TTX)-sensitive Na(+) currents (Na(V)1.6/1.7) contribute to the upstroke of action potentials. Inhibition of Na(+) currents with TTX reduced glucose-stimulated (6-20 mmol/l) insulin secretion by 55-70%. Human beta-cells are equipped with L- (Ca(V)1.3), P/Q- (Ca(V)2.1), and T- (Ca(V)3.2), but not N- or R-type Ca(2+) channels. Blockade of L-type channels abolished glucose-stimulated insulin release, while inhibition of T- and P/Q-type Ca(2+) channels reduced glucose-induced (6 mmol/l) secretion by 60-70%. Membrane potential recordings suggest that L- and T-type Ca(2+) channels participate in action potential generation. Blockade of P/Q-type Ca(2+) channels suppressed exocytosis (measured as an increase in cell capacitance) by >80%, whereas inhibition of L-type Ca(2+) channels only had a minor effect. CONCLUSIONS: Voltage-gated T-type and L-type Ca(2+) channels as well as Na(+) channels participate in glucose-stimulated electrical activity and insulin secretion. Ca(2+)-activated BK channels are required for rapid membrane repolarization. Exocytosis of insulin-containing granules is principally triggered by Ca(2+) influx through P/Q-type Ca(2+) channels.


Subject(s)
Insulin-Secreting Cells/physiology , Insulin/metabolism , Large-Conductance Calcium-Activated Potassium Channels/physiology , Cells, Cultured , Cobalt/pharmacology , Electrophysiology , Gene Expression Profiling , Humans , Insulin Secretion , Insulin-Secreting Cells/cytology , Insulin-Secreting Cells/drug effects , Insulin-Secreting Cells/metabolism , Islets of Langerhans/metabolism , Islets of Langerhans/physiology , Large-Conductance Calcium-Activated Potassium Channels/genetics , Peptides/pharmacology , Reverse Transcriptase Polymerase Chain Reaction , Scorpion Venoms/pharmacology , omega-Agatoxin IVA/pharmacology , omega-Conotoxin GVIA/pharmacology
3.
J Gen Physiol ; 129(3): 221-31, 2007 Mar.
Article in English | MEDLINE | ID: mdl-17296927

ABSTRACT

The release of gamma-aminobutyric acid (GABA) and ATP from rat beta cells was monitored using an electrophysiological assay based on overexpression GABA(A) or P2X2 receptor ion channels. Exocytosis of LDCVs, detected by carbon fiber amperometry of serotonin, correlated strongly (approximately 80%) with ATP release. The increase in membrane capacitance per ATP release event was 3.4 fF, close to the expected capacitance of an individual LDCV with a diameter of 0.3 microm. ATP and GABA were coreleased with serotonin with the same probability. Immunogold electron microscopy revealed that approximately 15% of the LDCVs contain GABA. Prespike "pedestals," reflecting exit of granule constituents via the fusion pore, were less frequently observed for ATP than for serotonin or GABA and the relative amplitude (amplitude of foot compared to spike) was smaller: in some cases the ATP-dependent pedestal was missing entirely. An inward tonic current, not dependent on glucose and inhibited by the GABA(A) receptor antagonist SR95531, was observed in beta cells in clusters of islet cells. Noise analysis indicated that it was due to the activity of individual channels with a conductance of 30 pS, the same as expected for individual GABA(A) Cl- channels with the ionic gradients used. We conclude that (a) LDCVs accumulate ATP and serotonin; (b) regulated release of GABA can be accounted for by exocytosis of a subset of insulin-containing LDCVs; (c) the fusion pore of LDCVs exhibits selectivity and compounds are differentially released depending on their chemical properties (including size); and (d) a glucose-independent nonvesicular form of GABA release exists in beta cells.


Subject(s)
Adenosine Triphosphate/metabolism , Exocytosis/physiology , Insulin-Secreting Cells/metabolism , Secretory Vesicles/metabolism , Serotonin/metabolism , gamma-Aminobutyric Acid/metabolism , Adenosine Triphosphate/isolation & purification , Animals , GABA-A Receptor Antagonists , Kinetics , Membrane Fusion , Microscopy, Immunoelectron , Models, Biological , Molecular Weight , Purinergic P2 Receptor Antagonists , Pyridazines/pharmacology , Rats , Receptors, Purinergic P2X2
4.
J Cell Sci ; 118(Pt 18): 4271-82, 2005 Sep 15.
Article in English | MEDLINE | ID: mdl-16141231

ABSTRACT

Secretory granules of insulin-secreting cells are used to store and release peptide hormones as well as low-molecular-weight compounds such as nucleotides. Here we have compared the rate of exocytosis with the time courses of nucleotide and peptide release by a combination of capacitance measurements, electrophysiological detection of ATP release and single-granule imaging. We demonstrate that the release of nucleotides and peptides is delayed by approximately 0.1 and approximately 2 seconds with respect to membrane fusion, respectively. We further show that in up to 70% of the cases exocytosis does not result in significant release of the peptide cargo, likely because of a mechanism that leads to premature closure of the fusion pore. Release of nucleotides and protons occurred regardless of whether peptides were secreted or not. These observations suggest that insulin-secreting cells are able to use the same secretory vesicles to release small molecules either alone or together with the peptide hormone.


Subject(s)
Adenine Nucleotides/metabolism , Islets of Langerhans/metabolism , Secretory Vesicles/metabolism , Adenosine Triphosphate/pharmacology , Amyloid/metabolism , Cells, Cultured , Exocytosis/physiology , Hydrogen-Ion Concentration , Insulin/metabolism , Insulin Secretion , Islet Amyloid Polypeptide , Membrane Potentials/physiology , Peptides/metabolism , Receptors, Purinergic P2/metabolism , Receptors, Purinergic P2X2 , Time Factors , Transfection
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