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Adhikari, D.

Publications and source records attributed to Adhikari, D..

2 recordsLinked to original sources

Redistribution of fragmented mitochondria ensure symmetric organelle partitioning and faithful chromosome segregation in mitotic mouse zygotes

In cleavage-stage embryos, preexisting organelles partition evenly into daughter blastomeres without significant cell growth after symmetric cell division. The presence of mitochondrial DNA within mitochondria and its restricted replication during preimplantation development makes their inheritance particularly important. While chromosomes are precisely segregated by the mitotic spindle, the mechanisms controlling mitochondrial partitioning remain poorly understood. In this study, we investigate the mechanism by which Dynamin-related protein 1 (Drp1) controls the mitochondrial redistribution and partitioning during embryonic cleavage. Depletion of Drp1 in mouse zygotes causes marked mitochondrial aggregation, and the majority of embryos arrest at the 2-cell stage. Clumped mitochondria are located in the center of mitotic Drp1-depleted zygotes with less uniform distribution, thereby preventing their symmetric partitioning. Asymmetric mitochondrial inheritance is accompanied by functionally inequivalent blastomeres with biased ATP and endoplasmic reticulum Ca2+ levels. We also find that marked mitochondrial centration in Drp1-depleted zygotes prevents the assembly of parental chromosomes, resulting in chromosome segregation defects and binucleation. Thus, mitochondrial fragmentation mediated by Drp1 ensure proper organelle positioning and partitioning into functional daughters during the first embryonic cleavage. Impact statementDepletion of Dynamin-related protein 1, a key regulator of mitochondrial fission, in mouse zygotes impair symmetric organelle partitioning and chromosome segregation leading to early developmental arrest.

developmental biology↗

Fertility is compromised after oocyte-specific deletion of Katanin A-subunit, Katna1, but not Katnal1

Katanins are microtubule severing enzymes that play roles in shaping diverse microtubule-based structures during all cell cycle stages. To address the role of katanin A-subunits in mammalian oocytes, we have used the Zp3-CreLox approach to specifically delete katanin A1 (Katna1) and katanin A-like 1 (Katnal1) from the start of oocyte growth in mice. Here, we show that Katnal1 is not required for normal female fertility, but that deletion of Katna1 causes a 50% decrease in fertility. Further investigation in Katna1-/- oocytes revealed no effect on MI spindle morphology but a significant effect on the morphology of MII spindles. This was accompanied by a decreased rate of fertilisation. Resultant Katna1+/- heterozygous embryos that reached the 2-cell stage developed at normal rates to the blastocyst stage. Diploid homozygous parthenotes derived from Katna1-/- oocytes revealed a reduced rate of blastocyst formation, decreased cell number and increased nuclear size. The ability of the paternal allele to rescue preimplantation development suggests the origin of the decrease in the fertility of conditional Katna1-/- mice lies in abnormalities arising in the egg to embryo transition prior to embryonic genome activation.

developmental biology↗