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Caveolin-1 scaffolding domain peptide regulates glucose metabolism in lung fibrosis
Venkadesaperumal Gopu, Liang Fan, Rashmi S. Shetty, M.R. Nagaraja, Sreerama Shetty
Venkadesaperumal Gopu, Liang Fan, Rashmi S. Shetty, M.R. Nagaraja, Sreerama Shetty
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Research Article Pulmonology

Caveolin-1 scaffolding domain peptide regulates glucose metabolism in lung fibrosis

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Abstract

Increased metabolism distinguishes myofibroblasts or fibrotic lung fibroblasts (fLfs) from the normal lung fibroblasts (nLfs). The mechanism of metabolic activation in fLfs has not been fully elucidated. Furthermore, the antifibrogenic effects of caveolin-1 scaffolding domain peptide CSP/CSP7 involving metabolic reprogramming in fLfs are unclear. We therefore analyzed lactate and succinate levels, as well as the expression of glycolytic enzymes and hypoxia inducible factor-1α (HIF-1α). Lactate and succinate levels, as well as the basal expression of glycolytic enzymes and HIF-1α, were increased in fLfs. These changes were reversed following restoration of p53 or its transcriptional target microRNA-34a (miR-34a) expression in fLfs. Conversely, inhibition of basal p53 or miR-34a increased glucose metabolism, glycolytic enzymes, and HIF-1α in nLfs. Treatment of fLfs or mice having bleomycin- or Ad-TGF-β1–induced lung fibrosis with CSP/CSP7 reduced the expression of glycolytic enzymes and HIF-1α. Furthermore, inhibition of p53 or miR-34a abrogated CSP/CSP7-mediated restoration of glycolytic flux in fLfs in vitro and in mice with pulmonary fibrosis and lacking p53 or miR-34a expression in fibroblasts in vivo. Our data indicate that dysregulation of glucose metabolism in fLfs is causally linked to loss of basal expression of p53 and miR-34a. Treatment with CSP/CSP7 constrains aberrant glucose metabolism through restoration of p53 and miR-34a.

Authors

Venkadesaperumal Gopu, Liang Fan, Rashmi S. Shetty, M.R. Nagaraja, Sreerama Shetty

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Figure 8

Inhibition of p53 abrogates the ability CSP or CSP7 to restore glycolysis in lungs.

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Inhibition of p53 abrogates the ability CSP or CSP7 to restore glycolysi...
hfLfs transduced with or without Lv-p53-shRNA or Ctrl shRNA were treated with PBS, CSP7, or CP for 48 hours. Naive hnLfs and hfLfs were used as controls. (A) Cell lysates were immunoblotted for the differential expression of p53, HK2, PKM, PFKP, PFKFB3, and HIF-1α proteins. The experiments were repeated twice. (B) Total RNA isolated from n = 4 hnLfs, and hfLfs treated as in A, were quantified by qPCR for above mentioned mRNA. p53fl/fl and tamoxifen inducible p53cKO mice (n = 6 per group) were exposed to saline or BLM. Two weeks after BLM injury, mice were treated with or without CSP, CSP7, or CP by i.p. injection daily for 7 consecutive days. (C and E) At the end of the treatment, mice were euthanized, and the lung homogenates from p53fl/fl (C) and p53cKO (E) mice were immunoblotted for the differential expression of marker enzymes involved in glycolysis. The experiments were repeated 2 times. (D and F) Total lung RNA from p53fl/fl (D) and p53cKO (F) mice were analyzed for Hk2, Pkm, Pfkp, Pfkfb3, and Hif1a mRNA by qPCR. Data pooled from 2 independent experiments are represented as mean ± SD and analyzed by 1-way ANOVA followed by Tukey’s post hoc test. *P < 0.05, **P < 0.01, ***P < 0.001.

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