Ciliary control of meiotic chromosomal pairing mechanics and germ cell morphogenesis
Mytlis, A.; Kumar, V.; Tao, Q.; Deis, R.; Levy, K.; Masek, M.; Eitan, H.; Nather, F.; Shawahny, A.; Bachmann-Gagescu, R.; Roy, S.; Elkouby, Y. M.
10.1101/2021.02.08.430249 bioRxivShow abstract
The hallmark of meiosis is chromosomal pairing and synapsis via synaptonemal complexes, but chromosomal pairing also depends on cytoplasmic counterparts that tether and rotate telomeres on the nuclear envelope. Telomeres slide on perinuclear microtubules, shuffling chromosomes and mechanically driving their homology searches. Pull of telomeres towards the centrosome drives formation of the "zygotene chromosomal bouquet". These telomere dynamics are essential for pairing and fertility, and the bouquet, discovered in 1900, is universally conserved. Nevertheless, how cytoplasmic counterparts of bouquet formation are mechanically regulated has remained enigmatic. Here, we report the "zygotene cilium" - a previously unrecognized cilium, in oocytes. We show in zebrafish that this cilium specifically connects to the bouquet centrosome, constituting a cable system of the cytoplasmic bouquet machinery. Furthermore, zygotene cilia extend throughout the germline cyst, a conserved germ cell organization. Using multiple ciliary mutants and laser-induced excision, we demonstrate that the zygotene cilium is essential for chromosomal bouquet and synaptonemal complex formation, germ cell morphogenesis, ovarian development and fertility. Mechanistically, we provide evidence that the cilium functions at least partly via anchoring the bouquet centrosome in order to counterbalance telomere rotation and pulling. We also show that the zygotene cilium is conserved in both male and female meiosis in zebrafish, as well as in mammals. Our work uncovers the novel concept of a cilium as a critical player in meiosis and sheds new light on reproduction phenotypes in ciliopathies. We propose a cellular paradigm that cilia can control chromosomal dynamics.
Matching journals
The top 4 journals account for 50% of the predicted probability mass.
Similar papers in this journal
Similar papers in this journal
- The PVD neuron has male-specific structure and mating function in C. elegans 96%
- Branched germline cysts and female-specific cyst fragmentation facilitate oocyte determination in mice 96%
- A CUG-initiated CATSPERθ functions in the CatSper channel assembly and serves as a checkpoint for flagellar trafficking 96%
Similar papers in this journal
Similar papers in this journal
- LRRC23 truncation impairs radial spoke 3 head assembly and sperm motility underlying male infertility 97%
- Loss of flavin adenine dinucleotide (FAD) impairs sperm function and male reproductive advantage in C. elegans. 95%
- Competition between kinesin-1 and myosin-V define Drosophila posterior determination 95%
"Similar papers" are the closest papers from that journal in the model's embedding space. They show what the match is built on, but the ranking comes mostly from a classifier over the whole training set, not from these examples alone.