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Updated: Apr 30, 2026

Author Spotlight: Integrating BRET-Based Assays and Rare Mutation Analysis to Decipher RAF Kinase Regulation in Live Cells
Published on: March 1, 2024
B-Raf is required for normal murine cardiac development and function
Natasha N Chattergoon1, Katherina P Rees1, Sara Lescher1
1Center for Developmental Health, Knight Cardiovascular Institute, Oregon Health & Science University, Portland, Oregon, United States.
Abstract:
Developing cardiomyocytes grow by proliferative and hypertrophic pathways and can be mediated by the rapidly accelerated fibrosarcoma (RAF)/mitogen-activated protein kinase kinase (MEK)/extracellular regulated kinase (ERK) [mitogen-activated protein kinase (MAPK)] pathway. Dysregulation of Raf-1 in late development causes murine myocardial hypertrophy; however, less is known about B-Raf. We hypothesized that the loss of B-Raf (conditional knockout) would lead to reduced neonatal cardiomyocyte proliferation and accelerate maturation, resulting in impaired function in adulthood. We also determined sex differences to ensure complete interrogation of the model. Murine neonatal hearts undergo a proliferative to terminal differentiation switch that is complete by 2 wk of age and thus studied hearts at four time points in that period (days 1, 3, 8, and 14). Primary cultures of knockout (KO) hearts revealed reduced B-Raf and phosphorylated ERK1/2 by postnatal day 3, even when stimulated with insulin growth factor 1. Histology revealed increased cardiomyocyte volume in KO hearts by 3d and elevated markers of hypertrophy and maturation by 8d [mammalian target of rapamycin (mTOR) and SERC2A]. There were also elevated cell cycle inhibitors p21, p27, and p53, accompanied by increased cyclin levels. Heart weight to body weight ratio was greater in 8d KO compared with age-matched wild-type (WT) animals as well as other KO ages, whereas there was no difference among WT ages. The earliest signs of altered myocardium via echocardiographs were detected by 3 mo. KO mice exhibited dilated cardiomyopathy, thinned myocardial walls, and enlarged left chamber volume. Deletion of B-Raf led to adaptive remodeling of male KO hearts. This adaptation maintains cardiac function; however, future studies will interrogate changes in the face of physiological stress.NEW & NOTEWORTHY Raf-1 and B-Raf are upstream kinases that modulate the activation of ERK1/2. We show that conditional deletion of B-Raf is not compensated for by an increase of Raf-1. This suggests that the two Raf isoforms have distinct functions during cardiac development. In this report, we show early molecular and cellular changes that result in functional changes by adulthood. Developing murine cardiomyocytes are sensitive to loss of B-Raf, resulting in dilated cardiomyopathy in adulthood.
Insights
Loss of B-Raf in mice reduces neonatal cardiomyocyte proliferation, accelerating maturation and causing dilated cardiomyopathy in adulthood. Male hearts showed adaptive remodeling, maintaining function under normal conditions.
Area of Science:
- Cardiovascular Biology
- Developmental Biology
- Molecular Cardiology
Background:
- Cardiomyocyte growth involves proliferative and hypertrophic pathways, often mediated by the RAF/MEK/ERK (MAPK) pathway.
- Raf-1 dysregulation is linked to myocardial hypertrophy, but the role of B-Raf in cardiomyocyte development and maturation is less understood.
Purpose of the Study:
- To investigate the hypothesis that B-Raf loss accelerates neonatal cardiomyocyte maturation and impairs cardiac function in adulthood.
- To determine the impact of B-Raf deletion on cardiomyocyte proliferation, hypertrophy, and cell cycle regulation.
- To explore potential sex differences in response to B-Raf deficiency.
Main Methods:
- Utilized conditional knockout (KO) mice lacking B-Raf, studying hearts at postnatal days 1, 3, 8, and 14.
- Performed primary cardiomyocyte cultures, Western blotting for B-Raf and phosphorylated ERK1/2, histology, and echocardiography.
- Assessed markers of hypertrophy (mTOR, SERC2A), cell cycle inhibitors (p21, p27, p53), and cyclin levels.
Main Results:
- B-Raf KO hearts showed reduced B-Raf and phosphorylated ERK1/2 by postnatal day 3.
- Increased cardiomyocyte volume, elevated hypertrophy and maturation markers, and upregulated cell cycle inhibitors were observed in KO hearts.
- KO mice developed dilated cardiomyopathy with thinned walls and enlarged left chamber volume by 3 months; male hearts exhibited adaptive remodeling.
Conclusions:
- B-Raf is crucial for normal neonatal cardiomyocyte proliferation and maturation.
- Loss of B-Raf leads to accelerated maturation, impaired cardiac structure, and dilated cardiomyopathy.
- While male hearts show adaptive remodeling, the long-term consequences and response to stress require further investigation.

