Department of Anatomy and Developmental Biology, Monash Biomedicine Discovery Institute, Monash University, Clayton, VIC 3800, Australia.
Proc Natl Acad Sci U S A. 2024 Jul 2;121(27):e2317316121. doi: 10.1073/pnas.2317316121. Epub 2024 Jun 25.
A dispersed cytoplasmic distribution of mitochondria is a hallmark of normal cellular organization. Here, we have utilized the expression of exogenous in mouse oocytes and embryos to disrupt the dispersed distribution of mitochondria by driving them into a large cytoplasmic aggregate. Our findings reveal that aggregated mitochondria have minimal impact on asymmetric meiotic cell divisions of the oocyte. In contrast, aggregated mitochondria during the first mitotic division result in daughter cells with unequal sizes and increased micronuclei. Further, in two-cell embryos, microtubule-mediated centering properties of the mitochondrial aggregate prevent nuclear centration, distort nuclear shape, and inhibit DNA synthesis and the onset of embryonic transcription. These findings demonstrate the motor protein-mediated distribution of mitochondria throughout the cytoplasm is highly regulated and is an essential feature of cytoplasmic organization to ensure optimal cell function.
线粒体的弥散细胞质分布是正常细胞组织的一个标志。在这里,我们利用外源在小鼠卵母细胞和胚胎中的表达,通过将其驱动到一个大的细胞质聚集体中来破坏线粒体的弥散分布。我们的研究结果表明,聚集的线粒体对卵母细胞的不对称减数分裂细胞分裂影响很小。相比之下,在第一次有丝分裂过程中聚集的线粒体导致子细胞大小不等,并增加微核。此外,在两细胞胚胎中,线粒体聚集体的微管介导的中心特性阻止了核中心,扭曲了核的形状,并抑制了 DNA 合成和胚胎转录的开始。这些发现表明,细胞质中线粒体的运动蛋白介导的分布受到高度调节,是细胞质组织的一个重要特征,以确保最佳的细胞功能。