TY - JOUR
T1 - Convergent evolution of complex genomic rearrangements in two fungal meiotic drive elements
AU - Svedberg, Jesper
AU - Hosseini, Sara
AU - Chen, Jun
AU - Vogan, Aaron A.
AU - Mozgova, Iva
AU - Hennig, Lars
AU - Manitchotpisit, Pennapa
AU - Abusharekh, Anna
AU - Hammond, Thomas M.
AU - Lascoux, Martin
AU - Johannesson, Hanna
PY - 2018
Y1 - 2018
N2 - Meiotic drive is widespread in nature. The conflict it generates is expected to be an important motor for evolutionary change and innovation. In this study, we investigated the genomic consequences of two large multi-gene meiotic drive elements, Sk-2 and Sk-3, found in the filamentous ascomycete Neurospora intermedia. Using long-read sequencing, we generated the first complete and well-annotated genome assemblies of large, highly diverged, non-recombining regions associated with meiotic drive elements. Phylogenetic analysis shows that, even though Sk-2 and Sk-3 are located in the same chromosomal region, they do not form sister clades, suggesting independent origins or at least a long evolutionary separation. We conclude that they have in a convergent manner accumulated similar patterns of tandem inversions and dense repeat clusters, presumably in response to similar needs to create linkage between genes causing drive and resistance.
AB - Meiotic drive is widespread in nature. The conflict it generates is expected to be an important motor for evolutionary change and innovation. In this study, we investigated the genomic consequences of two large multi-gene meiotic drive elements, Sk-2 and Sk-3, found in the filamentous ascomycete Neurospora intermedia. Using long-read sequencing, we generated the first complete and well-annotated genome assemblies of large, highly diverged, non-recombining regions associated with meiotic drive elements. Phylogenetic analysis shows that, even though Sk-2 and Sk-3 are located in the same chromosomal region, they do not form sister clades, suggesting independent origins or at least a long evolutionary separation. We conclude that they have in a convergent manner accumulated similar patterns of tandem inversions and dense repeat clusters, presumably in response to similar needs to create linkage between genes causing drive and resistance.
UR - https://res.slu.se/id/publ/96968
U2 - 10.1038/s41467-018-06562-x
DO - 10.1038/s41467-018-06562-x
M3 - Journal article
SN - 2041-1723
VL - 9
JO - Nature Communications
JF - Nature Communications
M1 - 4242
ER -