z-logo
open-access-imgOpen Access
SYP-5 regulates meiotic thermotolerance in Caenorhabditis elegans
Author(s) -
Yuanyuan Liu,
Qiuchen Zhao,
Hui Nie,
Fengguo Zhang,
Tingting Fu,
Zhenguo Zhang,
Feifei Qi,
Ruoxi Wang,
Jun Zhou,
Jinmin Gao
Publication year - 2021
Publication title -
journal of molecular cell biology
Language(s) - English
Resource type - Journals
SCImago Journal Rank - 1.825
H-Index - 62
eISSN - 1759-4685
pISSN - 1674-2788
DOI - 10.1093/jmcb/mjab035
Subject(s) - meiosis , biology , bivalent (engine) , synaptonemal complex , mutant , caenorhabditis elegans , homologous chromosome , prophase , microbiology and biotechnology , genetics , ploidy , homologous recombination , dna , gene , chemistry , metal , organic chemistry
Meiosis produces the haploid gametes required by all sexually reproducing organisms, occurring in specific temperature ranges in different organisms. However, how meiotic thermotolerance is regulated remains largely unknown. Using the model organism Caenorhabditis elegans, here, we identified the synaptonemal complex (SC) protein SYP-5 as a critical regulator of meiotic thermotolerance. syp-5-null mutants maintained a high percentage of viable progeny at 20°C but produced significantly fewer viable progeny at 25°C, a permissive temperature in wild-type worms. Cytological analysis of meiotic events in the mutants revealed that while SC assembly and disassembly, as well as DNA double-strand break repair kinetics, were not affected by the elevated temperature, crossover designation, and bivalent formation were significantly affected. More severe homolog segregation errors were also observed at elevated temperature. A temperature switching assay revealed that late meiotic prophase events were not temperature-sensitive and that meiotic defects during pachytene stage were responsible for the reduced viability of syp-5 mutants at the elevated temperature. Moreover, SC polycomplex formation and hexanediol sensitivity analysis suggested that SYP-5 was required for the normal properties of the SC, and charge-interacting elements in SC components were involved in regulating meiotic thermotolerance. Together, these findings provide a novel molecular mechanism for meiotic thermotolerance regulation.

The content you want is available to Zendy users.

Already have an account? Click here to sign in.
Having issues? You can contact us here
Accelerating Research

Address

John Eccles House
Robert Robinson Avenue,
Oxford Science Park, Oxford
OX4 4GP, United Kingdom