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Updated: Jul 30, 2025

Evaluation of Planar-Cell-Polarity Phenotypes in Ciliopathy Mouse Mutant Cochlea
Published on: February 21, 2016
CFAP45, a heterotaxy and congenital heart disease gene, affects cilia stability
E Deniz1, M Pasha1, M E Guerra1
1Pediatric Genomics Discovery Program, Department of Pediatrics, Yale University School of Medicine, 333 Cedar Street, New Haven, CT, 06510, USA.
Insights
A mutation in CFAP45 causes heterotaxy and congenital heart defects by disrupting cilia stability. This finding reveals a new genetic cause for these common and lethal birth defects.
Area of Science:
- Developmental Biology
- Genetics
- Cell Biology
Background:
- Congenital heart disease (CHD) is a leading cause of infant mortality.
- Heterotaxy (Htx), a defect in left-right patterning, is a major cause of severe CHD.
- The genetic basis for many Htx/CHD cases remains unclear.
Purpose of the Study:
- To identify the genetic cause of Htx/CHD in a family.
- To investigate the role of CFAP45 in embryonic development and cilia function.
Main Methods:
- Whole-exome sequencing was used to identify mutations in affected individuals.
- Xenopus laevis embryos were used to study the function of Cfap45 via depletion.
- Live confocal imaging was employed to visualize cilia structure and localization.
Main Results:
- A homozygous missense mutation in CFAP45 was identified in siblings with Htx/CHD.
- Depletion of Cfap45 in frog embryos caused cardiac looping and LR patterning defects, mimicking patient phenotypes.
- Cfap45 is crucial for maintaining cilia stability in both monociliated and multiciliated cells, with depletion leading to cilia loss.
Conclusions:
- CFAP45 is essential for maintaining cilia stability, which is critical for left-right patterning during embryogenesis.
- Defects in CFAP45 function provide a novel mechanism for heterotaxy and congenital heart disease.
- This study highlights CFAP45 as a potential therapeutic target for Htx/CHD.
Abstract:
Congenital heart disease (CHD) is the most common and lethal birth defect, affecting 1.3 million individuals worldwide. During early embryogenesis, errors in Left-Right (LR) patterning called Heterotaxy (Htx) can lead to severe CHD. Many of the genetic underpinnings of Htx/CHD remain unknown. In analyzing a family with Htx/CHD using whole-exome sequencing, we identified a homozygous recessive missense mutation in CFAP45 in two affected siblings. CFAP45 belongs to the coiled-coil domain-containing protein family, and its role in development is emerging. When we depleted Cfap45 in frog embryos, we detected abnormalities in cardiac looping and global markers of LR patterning, recapitulating the patient's heterotaxy phenotype. In vertebrates, laterality is broken at the Left-Right Organizer (LRO) by motile monocilia that generate leftward fluid flow. When we analyzed the LRO in embryos depleted of Cfap45, we discovered "bulges" within the cilia of these monociliated cells. In addition, epidermal multiciliated cells lost cilia with Cfap45 depletion. Via live confocal imaging, we found that Cfap45 localizes in a punctate but static position within the ciliary axoneme, and depletion leads to loss of cilia stability and eventual detachment from the cell's apical surface. This work demonstrates that in Xenopus, Cfap45 is required to sustain cilia stability in multiciliated and monociliated cells, providing a plausible mechanism for its role in heterotaxy and congenital heart disease.
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