4.6 Article

Cell Autonomous and Nonautonomous Function of CUL4B in Mouse Spermatogenesis

期刊

JOURNAL OF BIOLOGICAL CHEMISTRY
卷 291, 期 13, 页码 6923-6935

出版社

AMER SOC BIOCHEMISTRY MOLECULAR BIOLOGY INC
DOI: 10.1074/jbc.M115.699660

关键词

mouse genetics; protein degradation; spermatogenesis; ubiquitin; ubiquitin ligase

资金

  1. NCI Cancer Center Support Grant [P30 CA91842]
  2. National Institutes of Health [ES016597, 1R01 CA 159925, 1R01 CA098210]
  3. U.S. Department of Agriculture National Institute of Food and Agriculture [2011-67015-20025, 2013-67015-20961]
  4. Food for the 21st Century Program of the University of Missouri

向作者/读者索取更多资源

CUL4B ubiquitin ligase belongs to the cullin-RING ubiquitin ligase family. Although sharing many sequence and structural similarities, CUL4B plays distinct roles in spermatogenesis from its homologous protein CUL4A. We previously reported that genetic ablation of Cul4a in mice led to male infertility because of aberrant meiotic progression. In the present study, we generated Cul4b germ cell-specific conditional knock-out (Cul4b(Vasa)),as well as Cul4b global knock-out (Cul4b(Sox2)) mouse, to investigate its roles in spermatogenesis. Germ cell-specific deletion of Cul4b led to male infertility, despite normal testicular morphology and comparable numbers of spermatozoa. Notably, significantly impaired sperm mobility caused by reduced mitochondrial activity and glycolysis level were observed in the majority of the mutant spermatozoa, manifested by low, if any, sperm ATP production. Furthermore, Cul4b(Vasa) spermatozoa exhibited defective arrangement of axonemal microtubules and flagella outer dense fibers. Our mass spectrometry analysis identified INSL6 as a novel CUL4B substrate in male germ cells, evidenced by its direct polyubiquination and degradation by CUL4B E3 ligase. Nevertheless, Cul4b global knock-out males lost their germ cells in an age-dependent manner, implying failure of maintaining the spermatogonial stem cell niche in somatic cells. Taken together, our results show that CUL4B is indispensable to spermatogenesis, and it functions cell autonomously in male germ cells to ensure spermatozoa motility, whereas it functions non-cell-autonomously in somatic cells to maintain spermatogonial stemness. Thus, CUL4B links two distinct spermatogenetic processes to a single E3 ligase, highlighting the significance of ubiquitin modification during spermatogenesis.

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