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Totsuka, T.

Publications and source records attributed to Totsuka, T..

2 recordsLinked to original sources

Discovery of a Genetic Toxin-Antidote System in Vertebrates

Toxin-antidote (TA) systems are selfish genetic elements that bias their own inheritance by coupling a toxin that kills offspring with an antidote that specifically rescues carriers. Although widespread across bacteria, archaea, fungi, plants, and invertebrates, TA systems have not been described in vertebrates. Here we report the first vertebrate TA system, which sabotages mammalian embryogenesis. We define HEX (Homogenously staining region-mediated Embryo eXecution) as a selfish element that biases its transmission through the female mouse germline. Crosses between HEX heterozygous females and wild-type males result in selective lethality of wild-type embryos, yielding preferential survival of HEX-bearing progeny. Using mouse genetics, embryo transfer, and zygote micromanipulation, we show that HEX operates through a canonical TA mechanism: the maternally deposited toxin SP100 induces genotoxic stress in embryos, while the linked antidote SP110 selectively rescues HEX-positive embryos. Both components are core factors of the interferon signaling pathway, revealing that HEX co-opts innate immune machinery to drive transmission bias. These findings establish a vertebrate TA system and demonstrate that selfish elements can repurpose fundamental cellular pathways to violate Mendelian inheritance, with profound consequences for female fertility.

genetics↗

Ca2+-driven cytoplasmic backflow secures spindle position in fertilized mouse eggs

AbstractFertilization triggers hours-long Ca2+ oscillations in mammalian eggs, but the effects of repeated Ca2+ surges remain unclear. Here, we investigate spindle dynamics and its relationship with cytoplasmic streaming in fertilized mouse eggs. The spindle, initially parallel to the plasma membrane, rotates vertically, in accordance with previously reported results using artificially activated eggs. Intriguingly, it transiently reverses its rotation direction in synchrony with Ca2+ oscillations, regardless of artificially altered frequency. This effect results from cytoplasmic streaming, initially moving from spindle to egg center, displaying a Ca2+-dependent backflow. Streaming also impacts spindle positioning, balancing spindle rotation and cortical localization maintenance. We provide evidence that Ca2+-dependent cortical myosin II activation causes actomyosin contraction, leading to transient streaming towards non-contracting actin cap regions overlaying chromosomes. Our findings underscore the role of Ca2+ oscillations in maintaining spindle position in fertilized eggs, thereby ensuring highly asymmetric division and preservation of maternal stores in zygotes.

cell biology↗