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Apical proximal tubule fatty acid uptake–generated ceramides cause endoplasmic reticulum stress from altered membrane fluidity
Zhiyu Liu, Robert J. Gaivin, Shenaz Khan, Vincent Li, Amal Chaba, Fraser J. Moss, Usman Sabir, Takhar Kasumov, Tingwei Mu, Jeffrey R. Schelling
Zhiyu Liu, Robert J. Gaivin, Shenaz Khan, Vincent Li, Amal Chaba, Fraser J. Moss, Usman Sabir, Takhar Kasumov, Tingwei Mu, Jeffrey R. Schelling
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Research Article Cell biology Nephrology

Apical proximal tubule fatty acid uptake–generated ceramides cause endoplasmic reticulum stress from altered membrane fluidity

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Abstract

Circulating fatty acids (FAs) are constitutively taken up by basolateral kidney proximal tubule transporters and are the preferred metabolic substrate. In many chronic kidney diseases, the damaged glomerular filtration barrier permits passage of albumin-bound FAs, which are reabsorbed by apical FA transport protein-2 (FATP2). Bilateral FA uptake leads to lipotoxicity and progressive renal function decline, but the relative apical versus basolateral contribution and intracellular mechanisms are not established. Apical or bilateral (but not basolateral) palmitate incubation with human proximal tubule cells stimulated endoplasmic reticulum (ER) stress gene expression, ER stress pathway activation, and ER fragmentation. Apical or bilateral palmitate was associated with reduced lipid droplets and decreased expression of ER-localized lipid droplet biogenesis transcripts. Inhibition of lipid droplet formation also precipitated ER stress, suggesting diminished sequestration of FA metabolites as the cause. Indeed, C16:0 ceramide was increased in bilateral palmitate-treated cells and in kidneys from mice that phenocopy progressive diabetic kidney disease. Ceramide synthesis inhibition abrogated ER stress, and transfection with C16:0 ceramide decreased ER membrane fluidity and caused ER stress. We conclude that aberrant filtration and uptake of FAs by apical FATP2 exceeded the capacity for lipid droplet incorporation and led to cytotoxicity from ceramide-induced ER lipid bilayer stress.

Authors

Zhiyu Liu, Robert J. Gaivin, Shenaz Khan, Vincent Li, Amal Chaba, Fraser J. Moss, Usman Sabir, Takhar Kasumov, Tingwei Mu, Jeffrey R. Schelling

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Figure 6

Mouse renal cortex ceramide concentrations.

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Mouse renal cortex ceramide concentrations.
Kidney cortex from mice with...
Kidney cortex from mice with the indicated genotypes and exposures was snap-frozen, assayed for ceramides by LC-MS/MS as described in Methods, and normalized to protein content. (A and B) C16:0 ceramide. (C) C18:1 ceramide. (D) Plot illustrating relationship between long-chain ceramides with saturated (C16:0) and monounsaturated acyl chains. (E) C22:0 ceramide. (F) C24:0 ceramide. (G) C24:1 ceramide. (H) Plot illustrating relationship between ceramides with very long (C22:0) and long (C16:0) acyl chains. Data for A–C and E–G are depicted as mean ± SEM and were analyzed by 1-way ANOVA and Tukey’s post hoc test for multiple comparisons. Data from D and H were analyzed by linear regression, and P values indicate that slopes were significantly different. Note different y axis ranges with each ceramide species.

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