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The molecular chaperone GRP170 protects against ER stress and acute kidney injury in mice
Aidan W. Porter, Diep N. Nguyen, Dennis R. Clayton, Wily G. Ruiz, Stephanie M. Mutchler, Evan C. Ray, Allison L. Marciszyn, Lubika J. Nkashama, Arohan R. Subramanya, Sebastien Gingras, Thomas R. Kleyman, Gerard Apodaca, Linda M. Hendershot, Jeffrey L. Brodsky, Teresa M. Buck
Aidan W. Porter, Diep N. Nguyen, Dennis R. Clayton, Wily G. Ruiz, Stephanie M. Mutchler, Evan C. Ray, Allison L. Marciszyn, Lubika J. Nkashama, Arohan R. Subramanya, Sebastien Gingras, Thomas R. Kleyman, Gerard Apodaca, Linda M. Hendershot, Jeffrey L. Brodsky, Teresa M. Buck
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Research Article Nephrology

The molecular chaperone GRP170 protects against ER stress and acute kidney injury in mice

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Abstract

Molecular chaperones are responsible for maintaining cellular homeostasis, and one such chaperone, GRP170, is an endoplasmic reticulum (ER) resident that oversees both protein biogenesis and quality control. We previously discovered that GRP170 regulates the degradation and assembly of the epithelial sodium channel (ENaC), which reabsorbs sodium in the distal nephron and thereby regulates salt-water homeostasis and blood pressure. To define the role of GRP170 — and, more generally, molecular chaperones in kidney physiology — we developed an inducible, nephron-specific GRP170-KO mouse. Here, we show that GRP170 deficiency causes a dramatic phenotype: profound hypovolemia, hyperaldosteronemia, and dysregulation of ion homeostasis, all of which are associated with the loss of ENaC. Additionally, the GRP170-KO mouse exhibits hallmarks of acute kidney injury (AKI). We further demonstrate that the unfolded protein response (UPR) is activated in the GRP170-deficient mouse. Notably, the UPR is also activated in AKI when originating from various other etiologies, including ischemia, sepsis, glomerulonephritis, nephrotic syndrome, and transplant rejection. Our work establishes the central role of GRP170 in kidney homeostasis and directly links molecular chaperone function to kidney injury.

Authors

Aidan W. Porter, Diep N. Nguyen, Dennis R. Clayton, Wily G. Ruiz, Stephanie M. Mutchler, Evan C. Ray, Allison L. Marciszyn, Lubika J. Nkashama, Arohan R. Subramanya, Sebastien Gingras, Thomas R. Kleyman, Gerard Apodaca, Linda M. Hendershot, Jeffrey L. Brodsky, Teresa M. Buck

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Figure 1

An inducible, kidney tubule specific, GRP170-KO mouse.

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An inducible, kidney tubule specific, GRP170-KO mouse.
(A) Illustration ...
(A) Illustration of the strategy to generate a floxed GRP170 allele using CRISPR/Cas9 technology. Location of single-stranded oligo donors (ssODN) primers used for genotyping are noted (a, b, c, d). (B) PCR analysis from tail samples was used to confirm the genotype of WT, control, and experimental animals. (C) Experimental timeline used to study the GRP170-KO mice. (D and E) qPCR or Western blot analysis (day 21) of kidney lysates for Cre recombinase expression following Dox treatment was performed for the indicated times in indicated tissues. GAPDH served as a loading control. (F) A PCR analysis with primers a and d (designated in A) using whole kidney lysates from either control (lanes 1–5) or experimental (lanes 6–10) mice treated with Dox was performed to confirm genetic editing. (G and H)Mice were sacrificed on the indicated days. Kidney lysates from control or GRP170-KO mice were subject to either qPCR (G) or SDS-PAGE and Western blotting (H) to detect GRP170 levels (western blots from day 14 lysates). In H, blots were probed with anti-GRP170 antibody or GAPDH as a loading control. Data presented are the means ± SD; *P < 0.05, **P < 0.01, ***P < 0.001, ****P < 0.0001. Statistical significance determined by 1-way ANOVA followed by Tukey’s multiple-comparison test (3 or more data sets) or 2-tailed Student’s t test (2 data sets). Data presented are the means ± SD.

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