Volume-regulated Cl− current: contributions of distinct Cl− channels and localized Ca2+ signals
pmid: 31242393
Volume-regulated Cl− current: contributions of distinct Cl− channels and localized Ca2+ signals
The swelling-activated chloride current ( ICl,swell) is induced when a cell swells and plays a central role in maintaining cell volume in response to osmotic stress. The major contributor of ICl,swell is the volume-regulated anion channel (VRAC). Leucine-rich repeat containing 8A (LRRC8A; SWELL1) was recently identified as an essential component of VRAC, but the mechanisms of VRAC activation are still largely unknown; moreover, other Cl− channels, such as anoctamin 1 (ANO1), were also suggested to contribute to ICl,swell. In this present study, we investigated the roles of LRRC8A and ANO1 in activation of ICl,swell; we also explored the role of intracellular Ca2+ in ICl,swell activation. We used a CRISPR/Cas9 gene editing approach, electrophysiology, live fluorescent imaging, selective pharmacology, and other approaches to show that both LRRC8A and ANO1 can be activated by cell swelling in HEK293 cells. Yet, both channels contribute biophysically and pharmacologically distinct components to ICl,swell, with LRRC8A being the major component. Cell swelling induced oscillatory Ca2+ transients, and these Ca2+ signals were required to activate both the LRRC8A- and ANO1-dependent components of ICl,swell. Both ICl,swell components required localized rather than global Ca2+ for activation. Interestingly, while intracellular Ca2+ was necessary and sufficient to activate ANO1, it was necessary but not sufficient to activate LRRC8A-mediated currents. Finally, Ca2+ transients linked to the ICl,swell activation were mediated by the G protein-coupled receptor-independent PLC isoforms.
- University of Leeds United Kingdom
- Hebei Medical University China (People's Republic of)
- Qingdao University China (People's Republic of)
- Qingdao Binhai University China (People's Republic of)
- White Rose Consortium: University of Leeds; University of Sheffield; University of York United Kingdom
Ca2+ activated chloride channels (CaCCs), ANO1, Membrane Proteins, Niflumic Acid, volume regulated anion channel (VRAC), CHO Cells, Neoplasm Proteins, Ca2+, Cricetulus, HEK293 Cells, Chloride Channels, Cricetinae, LRRC8A, Animals, Humans, Thapsigargin, Cyclooxygenase Inhibitors, Calcium Signaling, Enzyme Inhibitors, Anoctamin-1, Cell Size
Ca2+ activated chloride channels (CaCCs), ANO1, Membrane Proteins, Niflumic Acid, volume regulated anion channel (VRAC), CHO Cells, Neoplasm Proteins, Ca2+, Cricetulus, HEK293 Cells, Chloride Channels, Cricetinae, LRRC8A, Animals, Humans, Thapsigargin, Cyclooxygenase Inhibitors, Calcium Signaling, Enzyme Inhibitors, Anoctamin-1, Cell Size
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