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Fluorescence-based Measurement of Store-operated Calcium Entry in Live Cells: from Cultured Cancer Cell to Skeletal Muscle Fiber
Published on: February 13, 2012
I(ARC), a novel arachidonate-regulated, noncapacitative Ca(2+) entry channel
1Department of Pharmacology and Physiology, University of Rochester School of Medicine and Dentistry, Rochester, New York 14642, USA.
A novel calcium (Ca2+) entry pathway, arachidonate-regulated calcium current (I(ARC)), is activated by arachidonic acid at physiological levels. This pathway is distinct from store-operated calcium entry and functions independently of intracellular calcium store depletion.
Area of Science:
- Cellular Biology
- Physiology
- Biochemistry
Background:
- Intracellular calcium (Ca2+) signals are crucial for cellular functions, involving both release from stores and entry from extracellular space.
- Receptor-activated Ca2+ entry is essential for generating these signals, particularly via phospholipase C activation.
- Existing models of Ca2+ entry, like capacitative calcium entry, may not fully explain signaling at physiological agonist concentrations.
Purpose of the Study:
- To investigate the mechanism of Ca2+ entry at physiological agonist concentrations.
- To identify and characterize novel Ca2+ entry pathways involved in intracellular Ca2+ signaling.
- To differentiate this pathway from established store-operated Ca2+ entry mechanisms.
Main Methods:
- Whole-cell patch clamp electrophysiology was employed to record Ca2+ currents.
- Cells were stimulated with varying concentrations of arachidonic acid.
- The Ca2+ entry was assessed under conditions of both replete and depleted intracellular Ca2+ stores.
Main Results:
- A novel Ca2+-selective current, termed arachidonate-regulated calcium current (I(ARC)), was identified and activated by low concentrations of arachidonic acid.
- This current exhibits distinct features compared to the store-operated current I(CRAC).
- I(ARC) activation was observed even when intracellular Ca2+ stores were maximally depleted, indicating independence from store content.
Conclusions:
- Arachidonic acid regulates a distinct, non-capacitative Ca2+ entry pathway (I(ARC)) crucial for physiological signaling.
- I(ARC) represents a novel mechanism of Ca2+ influx, separate from store-operated pathways.
- This pathway is specifically activated under physiological stimulation conditions, offering new insights into cellular Ca2+ dynamics.
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