Mutations in CCNO result in congenital mucociliary clearance disorder with reduced generation of multiple motile cilia
NATURE GENETICS
Authors: Wallmeier, Julia; Al-Mutairi, Dalal A.; Chen, Chun-Ting; Loges, Niki Tomas; Pennekamp, Petra; Menchen, Tabea; Ma, Lina; Shamseldin, Hanan E.; Olbrich, Heike; Dougherty, Gerard W.; Werner, Claudius; Alsabah, Basel H.; Koehler, Gabriele; Jaspers, Martine; Boon, Mieke; Griese, Matthias; Schmitt-Grohe, Sabina; Zimmermann, Theodor; Koerner-Rettberg, Cordula; Horak, Elisabeth; Kintner, Chris; Alkuraya, Fowzan S.; Omran, Heymut
Abstract
Using a whole-exome sequencing strategy, we identified recessive CCNO (encoding cyclin O) mutations in 16 individuals suffering from chronic destructive lung disease due to insufficient airway clearance. Respiratory epithelial cells showed a marked reduction in the number of multiple motile cilia (MMC) covering the cell surface. The few residual cilia that correctly expressed axonemal motor proteins were motile and did not exhibit obvious beating defects. Careful subcellular analyses as well as in vitro ciliogenesis experiments in CCNO-mutant cells showed defective mother centriole generation and placement. Morpholino-based knockdown of the Xenopus ortholog of CCNO also resulted in reduced MMC and centriole numbers in embryonic epidermal cells. CCNO is expressed in the apical cytoplasm of multiciliated cells and acts downstream of multicilin, which governs the generation of multiciliated, cells. To our knowledge, CCNO is the first reported gene linking an inherited human disease to reduced MMC generation due to a defect in centriole amplification and migration.
Knockdown of CCNO decreases the tumorigenicity of gastric cancer by inducing apoptosis
ONCOTARGETS AND THERAPY
Authors: Li, Lan; Cao, Yu; Zhou, Hourong; Li, Yu; He, Bing; Zhou, Xia; Nie, Zhao; Liang, Li; Liu, Ying; Ye, Limin
Abstract
Purpose: Recently, Cyclin O (CCNO) has been reported to be a novel protein of the cyclin family. However, the clinical significance and functional roles of CCNO in human cancer, including gastric cancer (GC), remain largely unexplored. In this study, we investigated the clinical and functional roles of CCNO in GC. Methods: We analyzed CCNO expression patterns in GC patients. To investigate the role of CCNO in malignancy of GC, we used lentivirus-delivered short hairpin RNA to knockdown CCNO expression in GC cell lines. Then multiparametric high-content screening and MTT incorporation assay were used to assess the cell proliferation capability. Cell apoptosis was detected by flow cytometry and Caspase 3/7 assays. Furthermore, the effect of CCNO on tumorigenicity of GC was also determined in vivo. Finally, microarray analysis was performed to elucidate the molecular mechanisms by which shCCNO inhibited the malignancy of GC cells. Results: The analysis from The Cancer Genome Atlas database revealed elevated CCNO m RNA expression in GC tissue than in the adjacent normal tissue. Immunohistochemical studies also showed that stronger cytoplasmic staining of CCNO was detected in GC tissues. Downregulation of CCNO in GC cells efficiently, through infection with the lentivirus-mediated specific short hairpin RNA, could significantly induce cell apoptosis and inhibit the proliferative properties both in vitro and in vivo. Microarray analysis further revealed 652 upregulated genes and 527 downregulated genes in the shCCNO group compared with control, and indicated that CCNO knockdown could inhibit the malignancy of GC cells through inducing genome-wide gene expression changes. Conclusion: Our work is the first to reveal that elevated CCNO expression is closely associated with human GC development and that CCNO knockdown could efficiently inhibit the malignant properties of GC cells by inducing cell apoptosis. Therefore, CCNO could be used as a potential biomarker for prognosis or even as a therapeutic target in human GC.