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Biology subjects

Love, J. M.

Publications and source records attributed to Love, J. M..

2 recordsLinked to original sources

The genomic basis of local adaptation to photoperiod across altitude in a self-fertilizing monkeyflower

Local adaptation along altitudinal gradients is well documented in many plant species, however the genetic basis of adaptive variation over these steep environmental clines remains poorly understood. Populations of Mimulus laciniatus, a self-fertilizing annual plant, experience highly differentiated seasonal environments throughout the Sierra Nevada, CA, where the length of the growing season and timing of favorable flowering conditions vary with altitude. These differences have driven divergence in critical photoperiod between low- and high-elevation M. laciniatus, an environmental cue that enables populations to initiate flowering at locally appropriate times. To investigate the genetic basis of local adaptation in this key ecological trait, we used a bulk-segregant quantitative trait locus (QTL) analysis approach. We crossed low- and high-elevation populations of M. laciniatus that differ in critical photoperiod to generate an F2 mapping population, phenotyping plants in a short-day common garden. Genomic differentiation (FST and G-statistic) between flowering and non-flowering pools identified 46 regions genome-wide associated with short-day flowering, including a strong peak on chromosome 8 overlapping GA2ox3, a candidate gene in the gibberellin pathway. Another gibberellin gene (GA20ox2) has been implicated in photoperiodic flowering in the close relative Mimulus guttatus. We found additional loci on chromosomes 2 and 11 that appear unique to M. laciniatus. Our findings suggest that local adaptation in reproductive timing may arise through a combination of shared genetic mechanisms and novel alleles in closely related Monkeyflowers, and that the genetic architecture underlying within-species adaptive divergence can be more complex than comparisons across species.

genomics↗

Phenotypic plasticity is broadly adaptive across an elevation gradient in the Cutleaf Monkeyflower

O_LIPhenotypic plasticity is a key mechanism by which organisms can cope with environmental heterogeneity, but its evolutionary consequences depend on how plastic responses align with the broader adaptive landscape. C_LIO_LIWe tested whether plasticity in leaf shape alongside other traits is associated with differential fitness across an elevational gradient in Mimulus laciniatus, an annual wildflower endemic to montane California. Using a reciprocal transplant experiment and recombinant inbred lines (RILs) previously phenotyped for plasticity in controlled conditions, we measured variation in survival and fecundity in native low- and high-elevation habitats. C_LIO_LIBased on previous work, we expected to find selection against leaf shape plasticity at low-elevation and selection for leaf shape plasticity in the high-elevation direction (increased leaf lobing under long-day conditions) at high-elevation. Interestingly, we found that RIL genotypes exhibiting high-elevation plasticity had the greatest survival to seed production at high-elevations, but that low-elevation plasticity (increased leaf lobing under short-day conditions) was associated with greater fecundity in both elevations. RILs with high-elevation plasticity also outperformed non-plastic genotypes at high-elevation. C_LIO_LIThis pattern suggests that plasticity is broadly beneficial across a species geographic range even if local variation in the direction of plasticity is not always adaptive. C_LI

evolutionary biology↗