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MATE AVAILABILITY AND FECUNDITY SELECTION IN MULTI‐ALLELIC SELF‐INCOMPATIBILITY SYSTEMS IN PLANTS
Author(s) -
Vekemans Xavier,
Schierup Mikkel H.,
Christiansen Freddy B.
Publication year - 1998
Publication title -
evolution
Language(s) - English
Resource type - Journals
SCImago Journal Rank - 1.84
H-Index - 199
eISSN - 1558-5646
pISSN - 0014-3820
DOI - 10.1111/j.1558-5646.1998.tb05134.x
Subject(s) - biology , fecundity , natural selection , selection (genetic algorithm) , population , reproductive success , pollen , evolutionary biology , pollination , stabilizing selection , frequency dependent selection , ecology , genetic variation , genetics , demography , gene , artificial intelligence , sociology , computer science
We investigate mate availability in different models of multiallelic self‐incompatibility systems in mutation‐selection‐drift balance in finite populations. Substantial differences among self‐incompatibility systems occur in average mate availability, and in variances of mate availability among individual plants. These differences are most pronounced in small populations in which low mate availability may reduce seed set in some types of sporophytic self‐incompatibility. In cases where the pollination system causes a restriction in the number of pollen genotypes available to an individual plant, the fecundity of that plant depends on the availability of compatible pollen, which is determined by its genotype at the incompatibility locus. This leads to an additional component of selection acting on self‐incompatibility systems, which we term “fecundity selection.” Fecundity selection increases the number of alleles maintained in finite populations and increases mate availability in small populations. The strength of fecundity selection is dependent on the type of self‐incompatibility. In some cases, fecundity selection markedly alters the equilibrium dynamics of self‐incompatibility alleles. We discuss the population genetic consequences of mate availability and fecundity selection in the contexts of conservation management of self‐incompatible plant species and experimental investigations on self‐incompatibility in natural populations.

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