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TRPC1 expression and function inhibit ER stress and cell death in salivary gland cells
Author(s) -
Sukumaran Pramod,
Sun Yuyang,
Zangbede Fredice Quenum,
Nascimento da Conceicao Viviane,
Mishra Bibhuti,
Singh Brij B.
Publication year - 2019
Publication title -
faseb bioadvances
Language(s) - English
Resource type - Journals
ISSN - 2573-9832
DOI - 10.1096/fba.1021
Subject(s) - unfolded protein response , endoplasmic reticulum , trpc1 , homeostasis , endocrinology , tunicamycin , medicine , salivary gland , microbiology and biotechnology , apoptosis , transient receptor potential channel , chemistry , biology , receptor , biochemistry
Disturbances in endoplasmic reticulum (ER) Ca 2+ homeostasis have been associated with many diseases including loss of salivary glands. Although significant progress has been accomplished which led to the increase in our understanding of the cellular responses to ER stress, the factors/ion channels that could inhibit ER stress are not yet identified. Here, we show that TRPC1 (transient receptor potential canonical 1) is involved in regulating Ca 2+ homeostasis and loss of TRPC1 decreased ER Ca 2+ levels, inhibited the unfolded protein response (UPR), that induced loss of salivary gland cells. We provide further evidence that ER stress‐inducing agents (Tunicamycin [Tu] and Brefeldin A [BFA]) disrupt Ca 2+ homeostasis by directly inhibiting TRPC1‐mediated Ca 2+ entry, which led to ER stress in salivary gland cells. Moreover, induction of ER stress lead to an increase in C/EBP homologous protein (CHOP) expression, which decreased TRPC1 expression and subsequently attenuated autophagy along with increased apoptosis. Importantly, TRPC1 −/− mice showed increased ER stress, increased immune cell infiltration, loss of Ca 2+ homeostasis, decreased saliva secretion, and decreased salivary gland survival. Finally, restoration of TRPC1 not only maintained Ca 2+ homeostasis but also inhibited ER stress that induced cell survival. Overall these results suggest a significant role of TRPC1 Ca 2+ channels in ER stress and homeostatic function/survival of salivary gland cells.

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