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Fibroblast deletion of ROCK2 attenuates cardiac hypertrophy, fibrosis, and diastolic dysfunction
Toru Shimizu, Nikhil Narang, Phetcharat Chen, Brian Yu, Maura Knapp, Jyothi Janardanan, John Blair, James K. Liao
Toru Shimizu, Nikhil Narang, Phetcharat Chen, Brian Yu, Maura Knapp, Jyothi Janardanan, John Blair, James K. Liao
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Research Article Cardiology

Fibroblast deletion of ROCK2 attenuates cardiac hypertrophy, fibrosis, and diastolic dysfunction

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Abstract

Although left ventricular (LV) diastolic dysfunction is often associated with hypertension, little is known regarding its underlying pathophysiological mechanism. Here, we show that the actin cytoskeletal regulator, Rho-associated coiled-coil containing kinase-2 (ROCK2), is a critical mediator of LV diastolic dysfunction. In response to angiotensin II (Ang II), mutant mice with fibroblast-specific deletion of ROCK2 (ROCK2Postn–/–) developed less LV wall thickness and fibrosis, along with improved isovolumetric relaxation. This corresponded with decreased connective tissue growth factor (CTGF) and fibroblast growth factor–2 (FGF2) expression in the hearts of ROCK2Postn–/– mice. Indeed, knockdown of ROCK2 in cardiac fibroblasts leads to decreased expression of CTGF and secretion of FGF2, and cardiomyocytes incubated with conditioned media from ROCK2-knockdown cardiac fibroblasts exhibited less hypertrophic response. In contrast, mutant mice with elevated fibroblast ROCK activity exhibited enhanced Ang II–stimulated cardiac hypertrophy and fibrosis. Clinically, higher leukocyte ROCK2 activity was observed in patients with diastolic dysfunction compared with age- and sex-matched controls, and correlated with higher grades of diastolic dysfunction by echocardiography. These findings indicate that fibroblast ROCK2 is necessary to cause cardiac hypertrophy and fibrosis through the induction CTGF and FGF2, and they suggest that targeting ROCK2 may have therapeutic benefits in patients with LV diastolic dysfunction.

Authors

Toru Shimizu, Nikhil Narang, Phetcharat Chen, Brian Yu, Maura Knapp, Jyothi Janardanan, John Blair, James K. Liao

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Figure 5

Decreased gene expression related to cardiac hypertrophy, fibrosis, and fibroblast to myofibroblast differentiation in hearts from fibroblast-specific ROCK2-deficient (ROCK2Postn–/–) mice treated with angiotensin II (Ang II).

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Decreased gene expression related to cardiac hypertrophy, fibrosis, and ...
(A and B) Quantitative PCR analysis mRNA levels of Rock1 and Rock2; (C) a prohypertrophic mediator of Fgf2 (encoding fibroblast growth factor 2); (D) a profibrotic mediator of Ctgf (connective tissue growth factor); (E) a fibroblast-myoblast differentiation marker, Acta2 (α-smooth muscle actin); (F and G) hypertrophic markers of Nppa (atrial natriuretic factor) and Acta1 (skeletal muscle α-actin); and (H and I) fibrotic markers of Col1a (collagen type I) and Fn1 (fibronectin 1) in heart tissues from ROCK2Postn–/– and littermate control (ROCK2flox/flox) mice at 4 wk after saline or Ang II infusion (n = 4–7 each). *P < 0.05, **P < 0.01 vs. saline-treated ROCK2flox/flox mice. #P < 0.05 vs. Ang II-treated ROCK2flox/flox mice. Data are expressed as mean ± SEM. P values were calculated using one-way ANOVA with Tukey’s HSD test.

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