Related Experiment Video
Updated: May 20, 2026

Enhancing the Engraftment of Human Induced Pluripotent Stem Cell-derived Cardiomyocytes via a Transient Inhibition of Rho Kinase Activity
Published on: July 10, 2019
PRR33 protects against cardiac hypertrophy by regulating myocyte cytoskeleton remodeling
Xuyang Fu1, Feng Zhang2, Linbin Pu2
1Department of Cardiology, State Key Laboratory of Transvascular Implantation Devices, Heart Regeneration and Repair Key Laboratory of Zhejiang Province, Second Affiliated Hospital, Zhejiang University School of Medicine, Hangzhou 310009, China; Transvascular Implantation Devices Research Institute (TIDRI), Hangzhou 310053, China.
Insights
Proline-rich protein 33 (Prr33) restrains cardiac hypertrophy by stabilizing key protein complexes. This discovery offers a new therapeutic target for preventing heart failure and adverse cardiac remodeling.
Area of Science:
- Cardiovascular Biology
- Molecular Cardiology
- Sarcomere Biology
Background:
- Cardiac hypertrophy is regulated by cytoskeletal and Z-disc protein networks.
- Disruption of these networks is linked to cardiomyopathy, but many sarcomere factors remain unknown.
Purpose of the Study:
- To investigate the function and mechanisms of proline-rich protein 33 (Prr33) in cardiac hypertrophy.
- To explore the therapeutic potential of Prr33 in cardiovascular disease.
Main Methods:
- Cloned Prr33 transcript and generated cardiac-specific Prr33 knockout mice (Prr33 cKO).
- Assessed Prr33 function in vitro, ex vivo, and in vivo using cardiomyocytes, AAV9-ShPrr33, and Prr33 cKO models.
- Evaluated cardiac function and remodeling via echocardiography and histology; elucidated mechanisms using RNA sequencing, Turbo-ID-MS, BiFC, and Co-IP assays.
Main Results:
- Identified Prr33 as a cardiac-enriched transcript essential for inhibiting hypertrophy.
- Prr33 deletion worsened cardiomyocyte hypertrophy and ventricular dysfunction; Prr33 overexpression attenuated these responses.
- PRR33 stabilizes the LDB3-MYOZ2-calcineurin complex, suppressing NFAT activation to protect against pathological hypertrophy.
Conclusions:
- Prr33 represents a novel regulatory component of sarcomeric signaling.
- PRR33 is a promising therapeutic target for preventing adverse cardiac remodeling and heart failure.
Introduction:
Cardiac hypertrophy is tightly governed by cytoskeletal and Z-disc-associated protein networks that integrate structural stability with hypertrophic signaling. Although disruption of this structural signaling interface is strongly associated with cardiomyopathy, many sarcomere-associated regulatory factors remain uncharacterized.
Objectives:
This study aims to elucidate the function and mechanism of Prr33 through multiple approaches, focusing on cardiac hypertrophy, while also exploring the therapeutic potential of Prr33.
Methods:
We cloned the full-length transcript of Prr33 in heart using RACE assays. We constructed cardiac-specific Prr33 knockout mice (Prr33 cKO). The role of Prr33 was examined in vitro and ex vivo using isolated cardiomyocytes, and in vivo via AAV9-ShPrr33 injection mice and Prr33 cKO mice. Heart function and pathological remodeling in mice were assessed by echocardiography and histological assessments. The regulatory mechanism of Prr33 in hypertrophy was elucidated through RNA sequencing and Turbo-ID-MS, and further validated by BiFC and Co-IP assays.
Results:
We identified proline-rich protein 33 (Prr33) as a cardiac-enriched transcript, which is essential for restraining hypertrophy. Prr33 deletion exacerbated cardiomyocyte hypertrophy and ventricular dysfunction, whereas its overexpression attenuated hypertrophic responses. PRR33 protects the myocardium against pathological hypertrophy by stabilizing LDB3-MYOZ2-calcineurin complex and suppressing NFAT activation.
Conclusions:
These findings reveal a new regulatory layer within sarcomeric signaling and highlight PRR33 as a promising therapeutic target for preventing adverse cardiac remodeling and heart failure progression.
Related Concept Videos
Cellular Adaptation II: Hypertrophy
Cardiomyopathy III: Hypertrophic Cardiomyopathy

