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de Mello, P. H.

Publications and source records attributed to de Mello, P. H..

2 recordsLinked to original sources

Cell type diversification and phenotype convergence underlying white fin-ornamentation of cyprinid fishes

Neural crest derived cells offer valuable opportunities to dissect mechanisms of cell fate specification and differentiation within individual ontogenies and the underpinnings of cell type diversification over evolutionary time. Particularly useful for such analyses are pigment cells of ectothermic vertebrates that arise from neural crest cells, or via latent neural crest derived stem cells, and comprise several classes with cell-type specific pigmentary phenotypes. Among these are white cells, "leucophores," present in a variety of species that contribute to patterns on the body or ornamentation on the fins. To better understand developmental and evolutionary origins of these cells we have examined leucophores harboring deposits of yellow/orange carotenoids, "xantholeucophores," of zebrafish and leucophores of white cloud minnow, within the same family Cyprinidae. We show that white phenotypes of both cell types require sepiapterin reductase that promotes accumulation of pale and colorless pteridines. We further demonstrate that xantholeucophores develop directly from yellow sepiapterin rich xanthophore-like cells and that this transition requires both gap junctional activity and permeability of the aquaglyceroporin / peroxiporin channel Aquaporin 3. These findings identify these white cells as distinct developmentally, genetically, and biochemically from another type of white cell in zebrafish and other white cells present across phylogenetic lineages. Our results highlight remarkable convergences and parallelisms in the acquisition of white cell phenotypes within and between species and identify this as a rich system for enquiries into the evolutionary individuation of novel cell types. SignificanceUnderstanding how cell types arise is fundamental to explaining animal complexity. Pigment cells offer opportunities to address this question because they display striking variation. We show that white pigment cells comprise multiple classes with independent origins. In zebrafish, white cells on one fin develop from melanophores whereas white cells on another fin develop from yellow precursors that convert their pigments to colorless ones. White cells of a related minnow require the same colorless pigments yet differ in other ways. These findings illuminate remarkable convergence: white cells have arisen repeatedly from different progenitor cell lineages by different mechanisms. This diversity--even within and between closely related species--identifies a powerful model for understanding the evolution of cell types with distinct identities and functions.

developmental biology↗

Widespread male-female expression imbalance of X-linked genes across phrynosomatid lizards

Classic theory on sex chromosome evolution predicts that selection should restore ancestral diploid expression for hemizygous X-linked genes in males. However, this dosage compensation is often incomplete, leaving X enriched for genes with female-biased expression. In this context, iguanian lizards are noteworthy among vertebrates because several species from separate families appear to exhibit both near-complete dosage compensation and male-female expression balance across their ancient, homologous X chromosomes. We tested for this pattern in a phrynosomatid iguanian, Sceloporus undulatus (Eastern Fence Lizard), and instead found that both ancient and more recently sex-linked regions of the X chromosome are enriched for genes with female-biased expression, regardless of age (neonate, maturing, adult) or tissue (brain, liver, muscle). By expanding our analysis across 10 phrynosomatid species spanning 4 genera, we found that male-female expression imbalance on the ancestral region of X is phylogenetically conserved. We also found that an inferred chromosomal rearrangement in the S. jarrovii lineage has resulted in the novel acquisition of female-biased expression by a formerly autosomal region. Whereas sex-biased expression of the ancestral region of X is primarily due to females overexpressing X-linked genes relative to autosomal genes, sex-biased expression of these formerly autosomal genes in S. jarrovii is primarily due to males underexpressing this putative neo-X region. We conclude that male-female expression imbalance on X is widespread across phrynosomatids, potentially reflecting both overexpression in females for ancestral regions that have evolved dosage compensation and underexpression in males for neo-X regions in which dosage compensation has yet to evolve.

evolutionary biology↗