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Biology subjects

Kitajima, T.

Publications and source records attributed to Kitajima, T..

2 recordsLinked to original sources

Tethering NDC80-NUF2 to microparticles is sufficient to enable their biorientation in the spindle

Faithful chromosome segregation requires biorientation, where the pair of kinetochores on the chromosome establish bipolar microtubule attachment. The integrity of the kinetochore, a macromolecular complex built on centromeric DNA, is required for biorientation, but components sufficient for biorientation remain unknown. In this study, we show that tethering the outer kinetochore heterodimer NDC80-NUF2 to the surface of microbeads with no bipolar cue is sufficient for them to establish a biorientation-like state in mouse oocytes. NDC80-NUF2 microbeads efficiently and stably align at the spindle equator, forming bipolar microtubule attachments. Furthermore, they can self-correct alignment errors. They align independently of the outer kinetochore proteins SPC24-SPC25, KNL1, the MIS12 complex, or inner kinetochore proteins. Aurora-mediated NDC80 phosphoregulation promoted microbead alignment under challenging conditions. Interestingly, larger microbeads align more rapidly, suggesting that large platform size enhances NDC80-NUF2-mediated biorientation. This study shows a biohybrid kinetochore design for synthetic biorientation of microscale particles in cells.

cell biology↗

Production of offspring from azoospermic mice with meiotic failure: Precise biparental meiosis within halved oocytes

While the large volume of mammalian oocytes is necessary for embryo development, it can lead to error-prone chromosomal segregation during meiosis. Conversely, we hypothesized that smaller oocytes would have a great unidentified potential to stabilize unstable meiosis and improve the development of the resultant embryos. Here, we show that reducing ooplasmic volume can rescue highly error-prone fertilization using primary spermatocytes by preventing segregation errors of chromosomes during biparental meiosis. High-resolution live-imaging analysis revealed that erroneous chromosome segregation occurred in most (90%) spermatocyte-injected oocytes of normal size, but could be ameliorated to 40% in halved oocytes. The birth rate improved remarkably from 1% to 19% (P < 0.0001). Importantly, this technique enabled the production of offspring from azoospermic mice with spermatocyte arrest caused by STX2 deficiency, an azoospermia factor also found in humans. Thus, contrary to popular opinion, oocytes inherently have a strong potential for precise meiotic divisions, which can be evoked by reduction of the ooplasmic volume. Their potential might help rescue cases of untreatable human azoospermia with spermatocyte arrest.

developmental biology↗