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Restricted epithelial proliferation by lacritin via PKCα-dependent NFAT and mTOR pathways

Renewal of nongermative epithelia is poorly understood. The novel mitogen “lacritin” is apically secreted by several nongermative epithelia. We tested 17 different cell types and discovered that lacritin is preferentially mitogenic or prosecretory for those types that normally contact lacritin durin...

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Autores principales: Wang, Jiahu, Wang, Ningning, Xie, Jinling, Walton, Staci C., McKown, Robert L., Raab, Ronald W., Ma, Peisong, Beck, Shannon L., Coffman, George L., Hussaini, Isa M., Laurie, Gordon W.
Formato: Texto
Lenguaje:English
Publicado: The Rockefeller University Press 2006
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC1761701/
https://www.ncbi.nlm.nih.gov/pubmed/16923831
http://dx.doi.org/10.1083/jcb.200605140
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author Wang, Jiahu
Wang, Ningning
Xie, Jinling
Walton, Staci C.
McKown, Robert L.
Raab, Ronald W.
Ma, Peisong
Beck, Shannon L.
Coffman, George L.
Hussaini, Isa M.
Laurie, Gordon W.
author_facet Wang, Jiahu
Wang, Ningning
Xie, Jinling
Walton, Staci C.
McKown, Robert L.
Raab, Ronald W.
Ma, Peisong
Beck, Shannon L.
Coffman, George L.
Hussaini, Isa M.
Laurie, Gordon W.
author_sort Wang, Jiahu
collection PubMed
description Renewal of nongermative epithelia is poorly understood. The novel mitogen “lacritin” is apically secreted by several nongermative epithelia. We tested 17 different cell types and discovered that lacritin is preferentially mitogenic or prosecretory for those types that normally contact lacritin during its glandular outward flow. Mitogenesis is dependent on lacritin's C-terminal domain, which can form an α-helix with a hydrophobic face, as per VEGF's and PTHLP's respective dimerization or receptor-binding domain. Lacritin targets downstream NFATC1 and mTOR. The use of inhibitors or siRNA suggests that lacritin mitogenic signaling involves Gα(i) or Gα(o)–PKCα-PLC–Ca(2+)–calcineurin–NFATC1 and Gα(i) or Gα(o)–PKCα-PLC–phospholipase D (PLD)–mTOR in a bell-shaped, dose-dependent manner requiring the Ca(2+) sensor STIM1, but not TRPC1. This pathway suggests the placement of transiently dephosphorylated and perinuclear Golgi–translocated PKCα upstream of both Ca(2+) mobilization and PLD activation in a complex with PLCγ2. Outward flow of lacritin from secretory cells through ducts may generate a proliferative/secretory field as a different unit of cellular renewal in nongermative epithelia where luminal structures predominate.
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spelling pubmed-17617012007-11-29 Restricted epithelial proliferation by lacritin via PKCα-dependent NFAT and mTOR pathways Wang, Jiahu Wang, Ningning Xie, Jinling Walton, Staci C. McKown, Robert L. Raab, Ronald W. Ma, Peisong Beck, Shannon L. Coffman, George L. Hussaini, Isa M. Laurie, Gordon W. J Cell Biol Research Articles Renewal of nongermative epithelia is poorly understood. The novel mitogen “lacritin” is apically secreted by several nongermative epithelia. We tested 17 different cell types and discovered that lacritin is preferentially mitogenic or prosecretory for those types that normally contact lacritin during its glandular outward flow. Mitogenesis is dependent on lacritin's C-terminal domain, which can form an α-helix with a hydrophobic face, as per VEGF's and PTHLP's respective dimerization or receptor-binding domain. Lacritin targets downstream NFATC1 and mTOR. The use of inhibitors or siRNA suggests that lacritin mitogenic signaling involves Gα(i) or Gα(o)–PKCα-PLC–Ca(2+)–calcineurin–NFATC1 and Gα(i) or Gα(o)–PKCα-PLC–phospholipase D (PLD)–mTOR in a bell-shaped, dose-dependent manner requiring the Ca(2+) sensor STIM1, but not TRPC1. This pathway suggests the placement of transiently dephosphorylated and perinuclear Golgi–translocated PKCα upstream of both Ca(2+) mobilization and PLD activation in a complex with PLCγ2. Outward flow of lacritin from secretory cells through ducts may generate a proliferative/secretory field as a different unit of cellular renewal in nongermative epithelia where luminal structures predominate. The Rockefeller University Press 2006-08-28 /pmc/articles/PMC1761701/ /pubmed/16923831 http://dx.doi.org/10.1083/jcb.200605140 Text en Copyright © 2006, The Rockefeller University Press This article is distributed under the terms of an Attribution–Noncommercial–Share Alike–No Mirror Sites license for the first six months after the publication date (see http://www.rupress.org/terms). After six months it is available under a Creative Commons License (Attribution–Noncommercial–Share Alike 4.0 Unported license, as described at http://creativecommons.org/licenses/by-nc-sa/4.0/).
spellingShingle Research Articles
Wang, Jiahu
Wang, Ningning
Xie, Jinling
Walton, Staci C.
McKown, Robert L.
Raab, Ronald W.
Ma, Peisong
Beck, Shannon L.
Coffman, George L.
Hussaini, Isa M.
Laurie, Gordon W.
Restricted epithelial proliferation by lacritin via PKCα-dependent NFAT and mTOR pathways
title Restricted epithelial proliferation by lacritin via PKCα-dependent NFAT and mTOR pathways
title_full Restricted epithelial proliferation by lacritin via PKCα-dependent NFAT and mTOR pathways
title_fullStr Restricted epithelial proliferation by lacritin via PKCα-dependent NFAT and mTOR pathways
title_full_unstemmed Restricted epithelial proliferation by lacritin via PKCα-dependent NFAT and mTOR pathways
title_short Restricted epithelial proliferation by lacritin via PKCα-dependent NFAT and mTOR pathways
title_sort restricted epithelial proliferation by lacritin via pkcα-dependent nfat and mtor pathways
topic Research Articles
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC1761701/
https://www.ncbi.nlm.nih.gov/pubmed/16923831
http://dx.doi.org/10.1083/jcb.200605140
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