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Published on: August 13, 2016
Filippi syndrome-associated CKAP2L modulates microtubule dynamics essential for mitosis and ciliary length regulation
Qian Lyu1, Yinghao Wang1, Jun Zhou1,2
1Center for Cell Structure and Function, College of Life Sciences, Shandong Normal University, Jinan 250014, China.
Abstract:
Mutations in the gene encoding cytoskeleton-associated protein 2-like (CKAP2L) have been identified as a causative factor for Filippi syndrome, a rare developmental disorder characterized by facial dysmorphism, syndactyly, and microcephaly. However, the cellular and molecular mechanisms by which CKAP2L contributes to the pathogenesis of this syndrome remain largely unknown. Here, we generated a Ckap2l knockout mouse model to investigate the in vivo and cellular roles of CKAP2L. Interestingly, Ckap2l knockout mice show no overt developmental abnormalities, with the exception of reduced male fertility, evidenced by decreased sperm count, impaired motility, and abnormally elongated flagella. At the cellular level, CKAP2L is a bona fide microtubule-associated protein that localizes to microtubule-based organelles, including the centrosome, mitotic spindle, and ciliary basal body. Depletion of CKAP2L leads to shortened mitotic spindles and cytokinesis failure, resulting in multinucleation. Furthermore, we uncover a conserved function for CKAP2L as a negative regulator of primary cilium length; its loss markedly increases ciliary length in both human and mouse cells. Collectively, these findings position CKAP2L as a multifunctional regulator of microtubule-based organelles and suggest that Filippi syndrome can be classified as a 'centrosomopathy' arising from concurrent defects in cell proliferation and ciliary function.
Insights
Cytoskeleton-associated protein 2-like (CKAP2L) is crucial for male fertility and regulates microtubule-based organelles. Loss of CKAP2L causes abnormal cilia length and cell division defects, classifying Filippi syndrome as a centrosomopathy.
Area of Science:
- Cell Biology
- Genetics
- Developmental Biology
Background:
- Mutations in cytoskeleton-associated protein 2-like (CKAP2L) cause Filippi syndrome, a rare developmental disorder.
- The cellular mechanisms underlying CKAP2L's role in Filippi syndrome pathogenesis are poorly understood.
Purpose of the Study:
- To investigate the in vivo and cellular functions of CKAP2L using a Ckap2l knockout mouse model.
- To elucidate the molecular mechanisms by which CKAP2L influences cell proliferation and ciliary function.
Main Methods:
- Generation and analysis of Ckap2l knockout mice.
- Cellular localization studies of CKAP2L.
- Investigation of mitotic spindle and primary cilium function upon CKAP2L depletion.
Main Results:
- Ckap2l knockout mice exhibit reduced male fertility, characterized by decreased sperm count, impaired motility, and abnormal flagella.
- CKAP2L localizes to microtubule-based organelles, including the centrosome and mitotic spindle.
- CKAP2L depletion results in shortened mitotic spindles, cytokinesis failure, multinucleation, and significantly increased primary cilium length in human and mouse cells.
Conclusions:
- CKAP2L is a multifunctional regulator of microtubule-based organelles, essential for male fertility, cell division, and ciliary length regulation.
- Filippi syndrome can be considered a centrosomopathy due to defects in cell proliferation and ciliary function linked to CKAP2L dysfunction.
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