Wang Tianren, Xiao Yuan, Hu Zhe, Gu Jingkai, Hua Renwu, Hai Zhuo, Chen Xueli, Zhang Jian V, Yu Zhiying, Wu Ting, Yeung William S B, Liu Kui, Guo Chenxi
Shenzhen Key Laboratory of Fertility Regulation, Reproductive Medicine Center, The University of Hong Kong-Shenzhen Hospital, Shenzhen, China.
Department of Obstetrics and Gynaecology, Li Ka Shing Faculty of Medicine, The University of Hong Kong, Hong Kong SAR, China.
Front Cell Dev Biol. 2022 Apr 14;10:862506. doi: 10.3389/fcell.2022.862506. eCollection 2022.
Mitochondria are highly dynamic organelles and their activity is known to be regulated by changes in morphology via fusion and fission events. However, the role of mitochondrial dynamics on cellular differentiation remains largely unknown. Here, we explored the molecular mechanism of mitochondrial fusion during spermatogenesis by generating an (mitofusin 2) conditional knock-out (cKO) mouse model. We found that depletion of MFN2 in male germ cells led to disrupted spermatogenesis and meiosis during which the majority of Mfn2 cKO spermatocytes did not develop to the pachytene stage. We showed that in these Mfn2 cKO spermatocytes, oxidative phosphorylation in the mitochondria was affected. In addition, RNA-Seq analysis showed that there was a significantly altered transcriptome profile in the deficient pachytene (or pachytene-like) spermatocytes, with a total of 262 genes up-regulated and 728 genes down-regulated, compared with wild-type (control) mice. Pathway enrichment analysis indicated that the peroxisome proliferator-activated receptor (PPAR) pathway was altered, and subsequent more detailed analysis showed that the expression of PPAR α and PPAR γ was up-regulated and down-regulated, respectively, in the MFN2 deficient pachytene (or pachytene-like) spermatocytes. We also demonstrated that there were more lipid droplets in the cKO cells than in the control cells. In conclusion, our study demonstrates a novel finding that MFN2 deficiency negatively affects mitochondrial functions and alters PPAR pathway together with lipid metabolism during spermatogenesis and meiosis.
线粒体是高度动态的细胞器,其活性已知受融合和裂变事件导致的形态变化调节。然而,线粒体动力学在细胞分化中的作用仍 largely unknown。在此,我们通过构建 Mitofusin 2(MFN2)条件性敲除(cKO)小鼠模型,探索了精子发生过程中线粒体融合的分子机制。我们发现雄性生殖细胞中 MFN2 的缺失导致精子发生和减数分裂中断,在此期间,大多数 Mfn2 cKO 精母细胞无法发育到粗线期。我们表明,在这些 Mfn2 cKO 精母细胞中,线粒体的氧化磷酸化受到影响。此外,RNA 测序分析表明,与野生型(对照)小鼠相比,MFN2 缺陷的粗线期(或类粗线期)精母细胞的转录组谱有显著改变,共有 262 个基因上调,728 个基因下调。通路富集分析表明过氧化物酶体增殖物激活受体(PPAR)通路发生改变,随后更详细的分析表明,在 MFN2 缺陷的粗线期(或类粗线期)精母细胞中,PPARα 和 PPARγ 的表达分别上调和下调。我们还证明,MFN2 cKO 细胞中的脂滴比对照细胞中的更多。总之,我们的研究证明了一个新发现,即 MFN2 缺陷在精子发生和减数分裂过程中对线粒体功能产生负面影响,并改变 PPAR 通路以及脂质代谢。