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Mereby, S. A.

Publications and source records attributed to Mereby, S. A..

2 recordsLinked to original sources

Agouti integrates environmental information to regulate natural variation in paternal behavior

Male investment in offspring rearing through paternal care is rare among mammals and the neural mechanisms governing its emergence are poorly understood. We leveraged the natural paternal behavior of African striped mice (Rhabdomys pumilio) in combination with brain-wide cFos quantification, single-nucleus RNA-sequencing, viral-mediated gene manipulation, and environmental manipulation to dissect the neural basis of natural variation in male parenting. We find that socio-environmental conditions drive individual variation in male alloparenting such that post-weaning social isolation increases paternal care while social living in higher density groups increases infanticide. This natural variation in care corresponds to neural activity in the medial preoptic area and changes in correlated activity across brain regions. Within the medial preoptic area, expression of agouti signaling protein (Agouti) in neurons is increased by group housing and is negatively associated with care, and overexpression of Agouti reduces care and enhances infanticide in previously tolerant animals. Naturalistic manipulations further reveal that Agouti integrates long-term housing conditions rather than food availability/hunger. Together, our results demonstrate that Agouti acts as a molecular integrator of socio-environmental information to drive variation in paternal care.

neuroscience↗

Convergent deployment of ancestral programs during the evolution of mammalian flight membranes

Lateral flight membranes, or patagia, have evolved repeatedly in diverse mammalian lineages. While little is known about patagium development, its recurrent evolution may suggest a shared molecular basis. By combining transcriptomics, developmental experiments, and mouse transgenics, we demonstrate that lateral WNT5A expression in the marsupial sugar glider (Petaurus breviceps) promotes the differentiation of its patagium primordium. We further show that this function of WNT5A reprises ancestral roles in skin morphogenesis predating mammalian flight and has been convergently employed during patagium evolution in eutherian bats. Moreover, we find that many genes involved in limb development have been re-deployed during patagium outgrowth in both the sugar glider and bat. Taken together, our findings reveal that deeply conserved molecular toolkits underpin the evolutionary transition to flight in mammals.

developmental biology↗