Abstract
The geological history of Africa's Lake Victoria, the second largest freshwater lake in the world, provided the raw materials for investigating one of the most compelling hypotheses for the origin of species: ecological speciation. After drying out three times over its 400,000-year history, the lake refi lled about 15,000 years ago, and the few cichlid fi sh species that had retreated to fl uvial habitats returned, rapidly fanning out into hundreds of new species to fi ll different ecological niches. Though Lake Victoria cichlids appear millions of years younger than their counterparts in nearby Lake Malawi, both groups display an enormous range of physical and behavioral traits. This staggering diversity in such young species provides compelling evidence for adaptive radiation, which occurs when divergent selection operates on ecological traits that favor different gene variants, or alleles, in different environments. When divergent selection on an ecological trait also affects mate choice-promoting reproductive isolation of diverging populations-ecological diversity and speciation may proceed in tandem and quickly generate numerous new species. Despite substantial theoretical and some experimental support for such "by-product speciation," few studies have shown that selection has "fi xed" alleles (that is, driven its frequency in a population to 100%) with different effects on an adaptive trait in closely related populations. But now, Yohey Terai, Norihiro Okada, and their colleagues have bridged that gap by demonstrating divergent selection on a visual system gene that infl uences both ecological adaptation and mate choice in cichlids. Photoreceptors in the retina perceive light with visual pigments that consist of a light-absorbing chromophore (either A1 or A2) that sits inside an opsin protein. The chromophore interacts with several amino acids coating the opsin to determine the pigment's light sensitivity. In cichlids, opsins with the most variable sequences function at the opposite ends of the light spectrum: the short wavelength-sensitive opsin 1 (SWS 1) perceives ultraviolet blue, and the long wavelength-sensitive opsin (LWS) perceives red. Because LWS shows fi ve times more variation in Lake Victoria cichlids than it does in Lake Malawi cichlids-and species' spectral range matches male breeding coloration, a primary determinant in mate choice-the authors suspected the gene might simultaneously affect ecological adaptation and mate choice. The authors sequenced hundreds of LWS alleles from four Lake Victoria cichlid species inhabiting different microhabitats. Both Mbipia mbipi and Neochromis greenwoodi/ N. omnicaeruleus (grouped together based on their similar characteristics) live outside rocky crevices in the lake's turbid depths, though their depth ranges differ. N. rufocaudalis also lives outside rocky crevices, but inhabits shallow waters like Pundamilia pundamilia, which live among the crevices. Transparent waters transmit broad spectra; turbid waters shift the visual spectrum toward red. The authors predicted that populations of the deeper-living species-N. greenwoodi/ N. omnicaeruleus and M. mbipi-would be affected by light transmission with different water clarity (which was not an issue for those living in shallow waters). They focused on LWS polymorphisms in opsin amino acids that would alter light sensitivity, grouping them into L and H alleles. L alleles were fi xed (or nearly so) in turbid-water dwelling populations; H alleles were fi xed in populations accustomed to transparent water. Finding a strong positive correlation between LWS divergence and transparency, the authors determined that signifi cant differentiation in LWS sequences (that is, population variation in allele frequencies) resulted from divergent selection. And, as expected, they found only weak sequence differentiation between the populations in shallow, transparent waters. Divergent selection acted on the LWS alleles only between N. greenwoodi/N. omnicaeruleus and M. mbipi populations from different water transparencies, the authors concluded, "strongly implicating divergent adaptation to different photic environments." To test the adaptive implications of divergence, the authors reconstituted pigments from H and L alleles along with A1 or A2 chromophores and measured their light-absorption range. A1 pigments absorbed the same spectra in H and L alleles, but the A2 pigment caused a red shift only in the L allele-likely refl ecting an adaptation to the longer wavelengths found in turbid waters. And how did divergent light sensitivity compare with male breeding color? The populations that diverged according to water transparency also diverged in male breeding coloration-some N. greenwoodi/N. The rapid evolution of African cichlid fi sh driven by strong divergent selection is revealed in a gene that infl uences both ecological adaptation and mate choice, in keeping with ecological by-product speciation.
Cite
CITATION STYLE
Gross, L. (2006). Demonstrating the Theory of Ecological Speciation in Cichlids. PLoS Biology, 4(12), e449. https://doi.org/10.1371/journal.pbio.0040449
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