未折叠蛋白反应
内质网
平衡
肾单位
远曲小管
细胞生物学
肾
基因剔除小鼠
蛋白质稳态
化学
化学伴侣
生物
内分泌学
内科学
生物化学
医学
受体
作者
Aidan W. Porter,Hannah E. Vorndran,Allison L. Marciszyn,Stephanie M. Mutchler,Arohan R. Subramanya,Thomas R. Kleyman,Linda M. Hendershot,Jeffrey L. Brodsky,Teresa M. Buck
出处
期刊:American Journal of Physiology-renal Physiology
[American Physical Society]
日期:2024-11-18
标识
DOI:10.1152/ajprenal.00192.2024
摘要
The maintenance of fluid and electrolyte homeostasis by the kidney requires proper folding and trafficking of ion channels and transporters in kidney epithelia. Each of these processes requires a specific subset of a diverse class of proteins termed molecular chaperones. One such chaperone is GRP170, which is an Hsp70-like, endoplasmic reticulum (ER)-localized chaperone that plays roles in protein quality control and protein folding in the ER. We previously determined that loss of GRP170 in the mouse nephron leads to hypovolemia, electrolyte imbalance, and rapid weight loss. In addition, GRP170-deficient mice develop an AKI-like phenotype, typified by tubular injury, elevation of kidney injury markers, and induction of the unfolded protein response (UPR). By using an inducible GRP170 knockout cellular model, we confirmed that GRP170 depletion induces the UPR, triggers apoptosis, and disrupts protein homeostasis. Based on these data, we hypothesized that UPR induction underlies hyponatremia and volume depletion in these rodents, and that these and other phenotypes might be rectified by sodium supplementation. To test this hypothesis, control and GRP170 tubule-specific knockout mice were provided a diet containing 8% sodium chloride. We discovered that sodium supplementation improved electrolyte imbalance and kidney injury markers in a sex-specific manner but was unable to restore weight or tubule integrity. These results are consistent with UPR induction contributing to the kidney injury phenotype in the nephron-specific GR170 knockout model and indicate that GRP170 function in kidney epithelia is essential to both maintain electrolyte balance and ER homeostasis.
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