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Published on: December 20, 2014
Centriole structural integrity defects are a crucial feature of Hydrolethalus Syndrome
Ana Curinha1, Zhaoyu Huang1, Taylor Anglen2
1Department of Molecular Biology and Genetics, Johns Hopkins University School of Medicine, Baltimore, MD, USA.
Insights
Hydrolethalus Syndrome (HLS) is a lethal genetic disorder caused by HYLS1 mutations. This study reveals HYLS1 is crucial for centriole integrity, and its mutation disrupts cilia formation, leading to developmental defects.
Area of Science:
- Cell Biology
- Genetics
- Developmental Biology
Background:
- Hydrolethalus Syndrome (HLS) is a lethal autosomal recessive ciliopathy.
- The underlying genetic cause is mutations in the HYLS1 gene, encoding a centriole protein.
- The precise function of HYLS1 in ciliogenesis remains poorly understood.
Approach:
- A mouse model with the HYLS1 disease mutation was generated.
- Phenotypic analysis of the mouse model revealed developmental defects mirroring human HLS.
- Molecular mechanisms involving HYLS1, CEP120, and centriole structure were investigated.
Key Points:
- HYLS1 is recruited to centrioles by CEP120 and is essential for recruiting inner scaffold proteins.
- Loss of HYLS1 function leads to centriole integrity defects, particularly at the distal end.
- The HLS-associated mutation disrupts the HYLS1-CEP120 interaction, causing HYLS1 displacement and centriole degeneration.
Conclusions:
- Tissue-specific defects in centriole integrity due to HYLS1 mutations impair ciliogenesis.
- These ciliogenesis defects are the primary drivers of the developmental abnormalities observed in Hydrolethalus Syndrome.
Abstract:
Hydrolethalus Syndrome (HLS) is a lethal, autosomal recessive ciliopathy caused by the mutation of the conserved centriole protein HYLS1. However, how HYLS1 facilitates the centriole-based templating of cilia is poorly understood. Here, we show that mice harboring the HYLS1 disease mutation die shortly after birth and exhibit developmental defects that recapitulate several manifestations of the human disease. These phenotypes arise from tissue-specific defects in cilia assembly and function caused by a loss of centriole integrity. We show that HYLS1 is recruited to the centriole by CEP120 and functions to recruit centriole inner scaffold proteins that stabilize the centriolar microtubule wall. The HLS mutation disrupts the interaction of HYLS1 with CEP120 leading to HYLS1 displacement and degeneration of the centriole distal end. We propose that tissue-specific defects in centriole integrity caused by the HYLS1 mutation prevent ciliogenesis and drive HLS phenotypes.
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