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DNA methyltransferase inhibition restores erythropoietin production in fibrotic murine kidneys
Yu-Ting Chang, Ching-Chin Yang, Szu-Yu Pan, Yu-Hsiang Chou, Fan-Chi Chang, Chun-Fu Lai, Ming-Hsuan Tsai, Huan-Lun Hsu, Ching-Hung Lin, Wen-Chih Chiang, Ming-Shiou Wu, Tzong-Shinn Chu, Yung-Ming Chen, Shuei-Liong Lin
Yu-Ting Chang, Ching-Chin Yang, Szu-Yu Pan, Yu-Hsiang Chou, Fan-Chi Chang, Chun-Fu Lai, Ming-Hsuan Tsai, Huan-Lun Hsu, Ching-Hung Lin, Wen-Chih Chiang, Ming-Shiou Wu, Tzong-Shinn Chu, Yung-Ming Chen, Shuei-Liong Lin
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Research Article Nephrology

DNA methyltransferase inhibition restores erythropoietin production in fibrotic murine kidneys

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Abstract

Renal erythropoietin-producing cells (REPCs) remain in the kidneys of patients with chronic kidney disease, but these cells do not produce sufficient erythropoietin in response to hypoxic stimuli. Treatment with HIF stabilizers rescues erythropoietin production in these cells, but the mechanisms underlying the decreased response of REPCs in fibrotic kidneys to anemic stimulation remain elusive. Here, we show that fibroblast-like FOXD1+ progenitor-derived kidney pericytes, which are characterized by the expression of α1 type I collagen and PDGFRβ, produce erythropoietin through HIF2α regulation but that production is repressed when these cells differentiate into myofibroblasts. DNA methyltransferases and erythropoietin hypermethylation are upregulated in myofibroblasts. Exposure of myofibroblasts to nanomolar concentrations of the demethylating agent 5-azacytidine increased basal expression and hypoxic induction of erythropoietin. Mechanistically, the profibrotic factor TGF-β1 induced hypermethylation and repression of erythropoietin in pericytes; these effects were prevented by 5-azacytidine treatment. These findings shed light on the molecular mechanisms underlying erythropoietin repression in kidney myofibroblasts and demonstrate that clinically relevant, nontoxic doses of 5-azacytidine can restore erythropoietin production and ameliorate anemia in the setting of kidney fibrosis in mice.

Authors

Yu-Ting Chang, Ching-Chin Yang, Szu-Yu Pan, Yu-Hsiang Chou, Fan-Chi Chang, Chun-Fu Lai, Ming-Hsuan Tsai, Huan-Lun Hsu, Ching-Hung Lin, Wen-Chih Chiang, Ming-Shiou Wu, Tzong-Shinn Chu, Yung-Ming Chen, Shuei-Liong Lin

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Figure 2

HIF2α regulates EPO production in kidney pericytes.

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HIF2α regulates EPO production in kidney pericytes.
(A) PCR products usi...
(A) PCR products using kidney genomic DNA and genotyping primers for Hif2afl/fl mice. The knockout band was confirmed in Foxd1Cre/+ Hif2afl/fl mice. Foxd1+/+ Hif2afl/fl control mice only show the Hif2afl/fl band. (B) Analyses of hematocrit in Foxd1+/+ Hif2afl/fl and Foxd1Cre/+ Hif2afl/fl mice. n = 10 per group per time point. (C and D) Expression of renal Hif2a, Hif1a, and Epo and plasma EPO levels in 8-week-old adult mice. (E–G) Hematocrit, renal Epo expression, and plasma EPO levels in 8-week-old adult mice with and without phlebotomy. Student’s t test and 1-way ANOVA were used for analyses of data in B–D and E–G, respectively. *P < 0.05, †P < 0.01, ‡P < 0.001.

Copyright © 2026 American Society for Clinical Investigation
ISSN: 0021-9738 (print), 1558-8238 (online)

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