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Conway, K. W.

Publications and source records attributed to Conway, K. W..

2 recordsLinked to original sources

Habitat impacts the diversification of adhesive discs and skull shape in clingfishes

Specialized suction discs are functional innovations that enable fishes to attach to diverse surfaces and resist hydrodynamic forces. The adhesive discs of clingfishes (Gobiesocidae) vary in size and shape, but it is unclear how ecological factors have influenced their morphological evolution. Here we analyzed the disc and skull shape of 74 clingfish species using micro-CT scanning and 3D geometric morphometrics to investigate the role of habitat and substrate use on patterns of diversification. We also present novel comparisons of adhesive performance for 10 clingfish species. Clingfish interface directly with their environment using their adhesive discs, but we found that the disc and skulls are evolutionary integrated and share similar responses to habitat. Transitions from coastal habitats to coral reefs promoted elevated rates of evolution and morphological disparity across the body, whereas transitions to freshwater did not. Concurrently, repeated shifts from living on hard substrates to softer substrates (i.e., macroalgae and seagrass) were associated with more constrained disc shapes, convergent morphologies, and differences in adhesive performance. We propose that habitat and substrate use make complementary contributions to skeletal diversification in clingfishes, but the adhesive system requires further investigation to disentangle the complex interactions between form and function.

evolutionary biology↗

Convergent genome streamlining accompanies independent miniaturization in the world's smallest fishes

Miniaturization, the reduction of adult body size to an extreme degree, has evolved repeatedly across vertebrates. Yet its genomic underpinnings remain poorly understood. Cypriniformes, the most species-rich order of freshwater fishes, contains multiple miniaturized lineages that have evolved contrasting developmental processes. Proportioned dwarfs are tiny-bodied but otherwise morphologically similar to larger relatives, while progenetic miniatures exhibit developmental truncation thus retaining larval-like anatomical features into adulthood. Using a new time-calibrated phylogeny of 309 cypriniform species and comparative genomic analyses of 33 high-quality genome assemblies, we investigated the evolutionary history and genomic correlates of miniaturization across this order. Ancestral state reconstruction revealed multiple independent origins of both miniature types, with transitions predominantly unidirectional and non-randomly distributed across the phylogeny. The origins of the two types of miniatures differed in their timing. Progenetic miniatures arose predominantly as early as the Eocene while proportioned dwarfs arose mainly within the Miocene period. Genome size variation across Cypriniformes has been overwhelmingly driven by polyploidy. However, progenetic miniatures but not proportioned dwarfs showed consistent genome size reduction. Comparative genomic analyses revealed that all three independently-evolved progenetic miniature lineages share convergent signatures of repeat loss alongside genome-wide intron shortening, patterns absent in proportioned dwarfs. Our study provides the broadest evidence to date that progenetic miniaturization, despite independent origins, is underpinned by predictable structural genomic changes, revealing a fundamental link between developmental truncation and genome architecture in vertebrates.

evolutionary biology↗