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Segmental allopolyploidy in action: Increasing diversity through polyploid hybridization and homoeologous recombination
Author(s) -
LealBertioli Soraya C. M.,
Godoy Ignácio J.,
Santos João F.,
Doyle Jeff J.,
Guimarães Patrícia M.,
Abernathy Brian L.,
Jackson Scott A.,
Moretzsohn Márcio C.,
Bertioli David J.
Publication year - 2018
Publication title -
american journal of botany
Language(s) - English
Resource type - Journals
SCImago Journal Rank - 1.218
H-Index - 151
eISSN - 1537-2197
pISSN - 0002-9122
DOI - 10.1002/ajb2.1112
Subject(s) - biology , polyploid , genetic diversity , genetics , introgression , lineage (genetic) , genome , nucleotide diversity , gene flow , backcrossing , genome evolution , allele , gene conversion , genetic variation , evolutionary biology , gene , haplotype , population , demography , sociology
Premise of the Study The genetic bottleneck of polyploid formation can be mitigated by multiple origins, gene flow, and recombination among different lineages. In crop plants with limited origins, efforts to increase genetic diversity have limitations. Here we used lineage recombination to increase genetic diversity in peanut, an allotetraploid likely of single origin, by crossing with a novel allopolyploid genotype and selecting improved lines. Methods Single backcross progeny from cultivated peanut × wild species‐derived allotetraploid cross were studied over successive generations. Using genetic assumptions that encompass segmental allotetraploidy, we used single nucleotide polymorphisms and whole‐genome sequence data to infer genome structures. Key Results Selected lines, despite a high proportion of wild alleles, are agronomically adapted, productive, and with improved disease resistances. Wild alleles mostly substituted homologous segments of the peanut genome. Regions of dispersed wild alleles, characteristic of gene conversion, also occurred. However, wild chromosome segments sometimes replaced cultivated peanut's homeologous subgenome; A. ipaënsis B sometimes replaced A. hypogaea A subgenome (~0.6%), and A. duranensis replaced A. hypogaea B subgenome segments (~2%). Furthermore, some subgenome regions historically lost in cultivated peanut were “recovered” by wild chromosome segments (effectively reversing the “polyploid ratchet”). These processes resulted in lines with new genome structure variations. Conclusions Genetic diversity was introduced by wild allele introgression, and by introducing new genome structure variations. These results highlight the special possibilities of segmental allotetraploidy and of using lineage recombination to increase genetic diversity in peanut, likely mirroring what occurs in natural segmental allopolyploids with multiple origins.

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