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Cardiac fibroblasts are essential for the adaptive response of the murine heart to pressure overload
Norifumi Takeda, Ichiro Manabe, Yuichi Uchino, Kosei Eguchi, Sahohime Matsumoto, Satoshi Nishimura, Takayuki Shindo, Motoaki Sano, Kinya Otsu, Paige Snider, Simon J. Conway, Ryozo Nagai
Norifumi Takeda, Ichiro Manabe, Yuichi Uchino, Kosei Eguchi, Sahohime Matsumoto, Satoshi Nishimura, Takayuki Shindo, Motoaki Sano, Kinya Otsu, Paige Snider, Simon J. Conway, Ryozo Nagai
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Research Article Cardiology

Cardiac fibroblasts are essential for the adaptive response of the murine heart to pressure overload

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Abstract

Fibroblasts, which are the most numerous cell type in the heart, interact with cardiomyocytes in vitro and affect their function; however, they are considered to play a secondary role in cardiac hypertrophy and failure. Here we have shown that cardiac fibroblasts are essential for the protective and hypertrophic myocardial responses to pressure overload in vivo in mice. Haploinsufficiency of the transcription factor–encoding gene Krüppel-like factor 5 (Klf5) suppressed cardiac fibrosis and hypertrophy elicited by moderate-intensity pressure overload, whereas cardiomyocyte-specific Klf5 deletion did not alter the hypertrophic responses. By contrast, cardiac fibroblast–specific Klf5 deletion ameliorated cardiac hypertrophy and fibrosis, indicating that KLF5 in fibroblasts is important for the response to pressure overload and that cardiac fibroblasts are required for cardiomyocyte hypertrophy. High-intensity pressure overload caused severe heart failure and early death in mice with Klf5-null fibroblasts. KLF5 transactivated Igf1 in cardiac fibroblasts, and IGF-1 subsequently acted in a paracrine fashion to induce hypertrophic responses in cardiomyocytes. Igf1 induction was essential for cardioprotective responses, as administration of a peptide inhibitor of IGF-1 severely exacerbated heart failure induced by high-intensity pressure overload. Thus, cardiac fibroblasts play a pivotal role in the myocardial adaptive response to pressure overload, and this role is partly controlled by KLF5. Modulation of cardiac fibroblast function may provide a novel strategy for treating heart failure, with KLF5 serving as an attractive target.

Authors

Norifumi Takeda, Ichiro Manabe, Yuichi Uchino, Kosei Eguchi, Sahohime Matsumoto, Satoshi Nishimura, Takayuki Shindo, Motoaki Sano, Kinya Otsu, Paige Snider, Simon J. Conway, Ryozo Nagai

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Figure 7

Cardiac fibroblasts are essential for the protective response elicited by severe pressure overload.

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Cardiac fibroblasts are essential for the protective response elicited b...
(A–H) Klf5fl/fl and Klf5fl/fl;Postn-Cre mice were subjected to HI-TAC or sham operation. (A) Kaplan-Meier survival analysis of Klf5fl/fl (n = 16) and Klf5fl/fl;Postn-Cre (n = 10) mice after HI-TAC. *P < 0.05 versus Klf5fl/fl. (B) Representative pictures of lungs 2 weeks after the operations. Note the severe lung edema in Klf5fl/fl;Postn-Cre mice subjected to HI-TAC. (C) Lung weights in Klf5fl/fl (n = 5) and Klf5fl/fl;Postn-Cre (n = 3) mice 2 weeks after the operations. (D) Representative low-magnification views of H&E-stained heart sections 2 weeks after the operations. Scale bar: 1 mm. (E–G) Heart weight/body weight ratios (E), relative cross-sectional areas of cardiomyocytes (F), and fibrotic areas (G) in Klf5fl/fl (n = 5) and Klf5fl/fl;Postn-Cre (n = 3) mice 2 weeks after the HI-TAC operation. *P < 0.01 versus sham control of the same genotype; #P < 0.05 versus Klf5fl/fl mice subjected to HI-TAC. (H) M-mode echocardiographic tracings obtained 2 weeks after the operations.

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

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