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Warder, B.

Publications and source records attributed to Warder, B..

2 recordsLinked to original sources

Ectodysplasin signaling via Xedar is required for mammary gland morphogenesis

The Ectodysplasin A2 receptor (XEDAR), is a member of the tumor necrosis factor receptor subfamily and is a mediator of the Ectodysplasin (EDA) signaling pathway. EDA signaling plays evolutionarily conserved roles in the development of the ectodermal appendage organ class that includes hair, eccrine sweat glands, and mammary glands. Loss of function mutations in Eda, which encodes the two major ligand isoforms, EDA-A1 and EDA-A2, result in X-linked hypohidrotic ectodermal dysplasia (XLHED), which is characterized by defects in two or more ectodermal appendage types. EDA-A1 and EDA-A2 signal through the receptors EDAR and XEDAR, respectively. While the contributions of the EDA-A1/EDAR signaling pathway to ectodermal appendage phenotypes have been extensively characterized, the significance of the EDA-A2/XEDAR branch of the pathway has remained obscure. Herein, we report the phenotypic consequences of disrupting the EDA-A2/XEDAR pathway on mammary gland differentiation and growth. Using a mouse Xedar knock-out model, we show that Xedar has a specific and temporally restricted role in promoting post-pubertal growth and branching of the mammary epithelium that can be influenced by genetic background. Our findings are the first to implicate Xedar in ectodermal appendage development and suggest that the EDA-A2/XEDAR signaling axis contributes to the etiology of EDA-dependent mammary phenotypes.

developmental biology↗

An Engrailed1 enhancer underlies human thermoregulatory evolution

Humans rely on sweating to cool off and have the highest eccrine sweat gland density among mammals. We investigated whether altered regulation of the Engrailed 1 (EN1) gene, the levels of which are critical for patterning eccrine glands during development, could underlie the evolution of this defining human trait. First, we identify five EN1 candidate enhancers (ECEs) using comparative genomics and validation of enhancer activity in mouse skin. The human ortholog of one ECE, hECE18, contains multiple derived substitutions that together dramatically increase the activity of this enhancer in keratinocytes. Targeted repression of hECE18 reduces EN1 expression in human keratinocytes, indicating hECE18 upregulates EN1 in this context. Finally, we find that hECE18 increases ectodermal En1 in a humanized knock-in mouse to increase eccrine gland number. Our study uncovers a genetic basis for the evolution of one of the most singular human adaptations and implicates the recurrent mutation of a single enhancer as a novel mechanism for evolutionary change.

evolutionary biology↗