Literature DB >> 9531565

The tyrosine kinase p56lck mediates activation of swelling-induced chloride channels in lymphocytes.

A Lepple-Wienhues1, I Szabò, T Laun, N K Kaba, E Gulbins, F Lang.   

Abstract

Osmotic cell swelling activates Cl- channels to achieve anion efflux. In this study, we find that both the tyrosine kinase inhibitor herbimycin A and genetic knockout of p56lck, a src-like tyrosine kinase, block regulatory volume decrease (RVD) in a human T cell line. Activation of a swelling-activated chloride current (ICl-swell) by osmotic swelling in whole-cell patch-clamp experiments is blocked by herbimycin A and lavendustin. Osmotic activation of ICl-swell is defective in p56lck-deficient cells. Retransfection of p56lck restores osmotic current activation. Furthermore, tyrosine kinase activity is sufficient for activation of ICl-swell. Addition of purified p56lck to excised patches activates an outwardly rectifying chloride channel with 31 pS unitary conductance. Purified p56lck washed into the cytoplasm activates ICl-swell in native and p56lck-deficient cells even when hypotonic intracellular solutions lead to cell shrinkage. When whole-cell currents are activated either by swelling or by p56lck, slow single-channel gating events can be observed revealing a unitary conductance of 25-28 pS. In accordance with our patch-clamp data, osmotic swelling increases activity of immunoprecipitated p56lck. We conclude that osmotic swelling activates ICl-swell in lymphocytes via the tyrosine kinase p56lck.

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Year:  1998        PMID: 9531565      PMCID: PMC2132720          DOI: 10.1083/jcb.141.1.281

Source DB:  PubMed          Journal:  J Cell Biol        ISSN: 0021-9525            Impact factor:   10.539


  27 in total

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5.  Subset-specific expression of potassium channels in developing murine T lymphocytes.

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  42 in total

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Review 3.  Cell volume regulatory mechanisms in apoptotic cell death.

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Review 10.  Pathophysiology and puzzles of the volume-sensitive outwardly rectifying anion channel.

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