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Updated: Jun 13, 2025

Modeling Paracrine Noncanonical Wnt Signaling In Vitro
Published on: December 10, 2021
Wnt11 Positively Regulates Neonatal Cardiomyocyte Maturation at the Interphase of Life via Frizzled 4 Receptor
Insights
Wnt11 signaling, crucial for heart development after birth, is disrupted by hypoxia. Frizzled 4 (Fzd4) acts as a key receptor, mediating Wnt11
Area of Science:
- Cardiovascular Biology
- Developmental Biology
- Neonatal Physiology
Background:
- Congenital heart defects (CHDs) are a leading cause of infant mortality, with limited understanding of postnatal environmental influences.
- The perinatal period is critical for heart development, involving a transition from fetal to adult circulation, making the neonate vulnerable to environmental stressors like hypoxia.
- While Wnt11 signaling and its role in postnatal heart development are known, the specific molecular mechanisms and receptors involved, particularly in response to hypoxia, remain unclear.
Purpose of the Study:
- To investigate the role of Frizzled 4 (Fzd4) as an upstream receptor for Wnt11 signaling in neonatal cardiomyocytes.
- To elucidate the gene-environment interaction between Wnt11 signaling and systemic hypoxia in neonatal heart development.
- To understand the molecular basis of right ventricle (RV) specific abnormalities observed in neonatal hearts under hypoxic stress and in certain CHDs.
Main Methods:
- Investigated Fzd4 expression patterns in neonatal hearts under normal and hypoxemic conditions.
- Utilized Fzd4 loss-of-function models in neonatal cardiomyocytes to assess effects on cell cycle activity and Wnt11/Rb1 signaling.
- Performed co-immunoprecipitation assays to confirm the physical interaction between Wnt11 and Fzd4 in cardiomyocytes and intact hearts.
Main Results:
- Fzd4 expression mirrors Wnt11 in neonatal hearts during the perinatal transition, both normally and under hypoxia.
- Loss of Fzd4 in neonatal cardiomyocytes mimics Wnt11 deficiency, increasing cardiomyocyte cell cycle activity and disrupting the Wnt11-Rb1 axis.
- Co-immunoprecipitation confirmed that Fzd4 directly binds to Wnt11 in neonatal cardiomyocytes and intact hearts.
Conclusions:
- Fzd4 is identified as a specific and essential upstream receptor for Wnt11-Rb1 signaling in the neonatal heart.
- This finding provides mechanistic insight into Wnt11's role in regulating the transition of neonatal cardiomyocytes from proliferation to maturation.
- The study highlights a critical gene-environment interaction pathway involving Fzd4 and Wnt11 in neonatal heart adaptation to hypoxia and potential implications for CHDs.
Abstract:
Congenital heart defects (CHDs) affect 1% of live births and remain the leading cause of infant morbidity and early mortality. While most studies focus on the genetic basis of CHDs, relatively little is known about the interplay between intrinsic signaling and external environmental factors in the progression of CHDs after birth during the perinatal circulatory transition window when environmental stress factors are prevalent. We recently explored such interplay through a newly identified gene-environment regulatory circuit involving Wnt11 signaling and systemic hypoxia. Specifically, we demonstrated that activation of the Wnt11/Rb1 axis is critical for normal chamber-specific development after birth. This regulatory switch is disrupted by systemic hypoxia more robustly in the right ventricle (RV) than the left ventricle (LV), leading to enhanced neonatal cardiomyocyte cell cycle activity in an RV-specific manner, resulting in delayed maturation and attenuation of ventricular patterning in response to systemic hypoxia stress in the neonatal heart. Furthermore, we found that the Wnt11/Rb1 axis is also inactivated in infantile hearts with cyanotic CHDs, such as tetralogy of Fallot (TOF), potentially contributing to hypoxia-associated RV abnormalities in this context. However, the molecular players of this signaling cascade in neonatal cardiomyocyte remain largely unknown. Herein, we report that Frizzled 4 (Fzd4) acts as a specific upstream receptor for Wnt11 in neonatal cardiomyocytes. Specifically, Fzd4 exhibited an expression pattern like Wnt11 in neonatal heart perinatal circulatory transition under normal and hypoxemic environments. Furthermore, Fzd4 loss in neonatal cardiomyocytes stimulated cardiomyocyte cell cycle activity and disrupted the Wnt11-Rb1 signaling axis mirroring the impact of the Wnt11-deficient cardiomyocyte phenotype. Finally, co-immunoprecipitation analysis confirmed the Wnt11-Fzd4 binding in isolated neonatal cardiomyocytes and intact hearts. These results demonstrate that Fzd4 is a specific and required upstream receptor for the Wnt11-Rb1 signaling activity in the neonatal heart and provides mechanistic insights into the essential role of Wnt11 as a key positive regulator of neonatal cardiomyocyte transition from proliferative to mature phenotype at the interphase of life.
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