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Deacetylation via SIRT2 prevents keratin-mutation-associated injury and keratin aggregation
Jingyuan Sun, Pei Li, Honglian Gui, Laure Rittié, David B. Lombard, Katrin Rietscher, Thomas M. Magin, Qing Xie, Li Liu, M. Bishr Omary
Jingyuan Sun, Pei Li, Honglian Gui, Laure Rittié, David B. Lombard, Katrin Rietscher, Thomas M. Magin, Qing Xie, Li Liu, M. Bishr Omary
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Research Article Dermatology Hepatology

Deacetylation via SIRT2 prevents keratin-mutation-associated injury and keratin aggregation

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Abstract

Keratin (K) and other intermediate filament (IF) protein mutations at conserved arginines disrupt keratin filaments into aggregates and cause human epidermolysis bullosa simplex (EBS; K14-R125C) or predispose to mouse liver injury (K18-R90C). The challenge for more than 70 IF-associated diseases is the lack of clinically utilized IF-targeted therapies. We used high-throughput drug screening to identify compounds that normalized mutation-triggered keratin filament disruption. Parthenolide, a plant sesquiterpene lactone, dramatically reversed keratin filament disruption and protected cells and mice expressing K18-R90C from apoptosis. K18-R90C became hyperacetylated compared with K18-WT and treatment with parthenolide normalized K18 acetylation. Parthenolide upregulated the NAD-dependent SIRT2, and increased SIRT2-keratin association. SIRT2 knockdown or pharmacologic inhibition blocked the parthenolide effect, while site-specific Lys-to-Arg mutation of keratin acetylation sites normalized K18-R90C filaments. Treatment of K18-R90C–expressing cells and mice with nicotinamide mononucleotide had a parthenolide-like protective effect. In 2 human K18 variants that associate with human fatal drug-induced liver injury, parthenolide protected K18-D89H– but not K8-K393R–induced filament disruption and cell death. Importantly, parthenolide normalized K14-R125C–mediated filament disruption in keratinocytes and inhibited dispase-triggered keratinocyte sheet fragmentation and Fas-mediated apoptosis. Therefore, keratin acetylation may provide a novel therapeutic target for some keratin-associated diseases.

Authors

Jingyuan Sun, Pei Li, Honglian Gui, Laure Rittié, David B. Lombard, Katrin Rietscher, Thomas M. Magin, Qing Xie, Li Liu, M. Bishr Omary

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Figure 3

Pharmacological inhibition or knockdown of SIRT2 impairs the ability of PN to ameliorate K18-R90C aggregation.

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Pharmacological inhibition or knockdown of SIRT2 impairs the ability of ...
(A) K18-R90C–transduced cells were treated with the SIRT2 inhibitor AGK2 (10 μM, ±PN, 48 hours). Images from the stained cells were quantified for the percentage cells with dots. P = 0.004, comparing DMSO vs. PN; P < 0.05, comparing PN vs. PN + AGK2. (B) Duplicate cells from panel A were then solubilized with Empigen and used for immunoprecipitation with an anti-AcK antibody followed by blotting of the precipitates/input lysate with anti-K18 antibody. Total lysates from duplicate cells were also blotted with the indicated antibodies. (C) K18-R90C–expressing cells were cultured with control or SIRT2 siRNA (24 hours) and then treated with DMSO/PN (48 hours). Images from stained cells were quantified for the percentage cells with dots. (D) Duplicate cells from panel C were used for immunoprecipitation and blotting as in panel B. Coomassie staining is included to show equal loading. Scale bars: 50 μm (A and C). All experiments were repeated at least 3 times with similar results. One-way ANOVA was used for comparison between treatment groups, and Tukey’s post hoc test was used for 2-group comparisons.

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