4.6 Review

Electrophysiology of Endolysosomal Two-Pore Channels: A Current Account

期刊

CELLS
卷 11, 期 15, 页码 -

出版社

MDPI
DOI: 10.3390/cells11152368

关键词

TPC1; TPC2; TPCN1; TPCN2; NAADP; PI(3; 5)P-2; lysosomes; endosomes

资金

  1. BBSRC [BB/T015853/1, BB/W01551X/1]
  2. DFG [GR4315/2-2, GR4315/4-1, GRK2338 P08, SFB/TRR152 P04]
  3. NCLStiftung
  4. NIH [GM088790]

向作者/读者索取更多资源

This review discusses the electrophysiology of two-pore channels TPC1 and TPC2, including their gating by Ca2+-mobilizing messenger NAADP and/or the lipid PI(3,5)P-2, regulation by H+, Ca2+, and Mg2+, and impact of single-nucleotide polymorphisms. The article also explores the effect of various substances on channel activity, as well as the rerouting of channels to the cell surface for easier recording.
Two-pore channels TPC1 and TPC2 are ubiquitously expressed pathophysiologically relevant proteins that reside on endolysosomal vesicles. Here, we review the electrophysiology of these channels. Direct macroscopic recordings of recombinant TPCs expressed in enlarged lysosomes in mammalian cells or vacuoles in plants and yeast demonstrate gating by the Ca2+-mobilizing messenger NAADP and/or the lipid PI(3,5)P-2. TPC currents are regulated by H+, Ca2+, and Mg2+ (luminal and/or cytosolic), as well as protein kinases, and they are impacted by single-nucleotide polymorphisms linked to pigmentation. Bisbenzylisoquinoline alkaloids, flavonoids, and several approved drugs demonstrably block channel activity. Endogenous TPC currents have been recorded from a number of primary cell types and cell lines. Many of the properties of endolysosomal TPCs are recapitulated upon rerouting channels to the cell surface, allowing more facile recording through conventional electrophysiological means. Single-channel analyses have provided high-resolution insight into both monovalent and divalent permeability. The discovery of small-molecule activators of TPC2 that toggle the ion selectivity from a Ca2+-permeable (NAADP-like) state to a Na+-selective (PI(3,5)P-2-like) state explains discrepancies in the literature relating to the permeability of TPCs. Identification of binding proteins that confer NAADP-sensitive currents confirm that indirect, remote gating likely underpins the inconsistent observations of channel activation by NAADP.

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