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Farley, E. R.

Publications and source records attributed to Farley, E. R..

2 recordsLinked to original sources

Getting a head start: Craniofacial heterochrony in marsupials involves dynamic changes to molecular and cellular mechanisms underlying neural crest development

The neural crest is a vertebrate innovation central to craniofacial development and evolution. While the gene regulatory networks guiding neural crest development are well characterized, the mechanisms generating species-specific craniofacial diversity remain poorly understood. Marsupials provide a unique model for studying neural crest plasticity, having evolved accelerated patterns of craniofacial development during embryogenesis. This adaptation arises in response to marsupials being born altricial after a short gestation yet require well-developed mouthparts to attach to a teat and continue development in the pouch. However, how marsupials achieve this heterochronic shift in neural crest development is largely unknown. In this study, we investigate the cellular and molecular mechanisms underlying their distinct heterochrony, revealing that marsupials produce dense pre-migratory aggregates of neural crest cells which undergo collective migration as epithelial-like sheets, potentially facilitating rapid establishment of the facial prominences. These cellular behaviours are unique amongst amniotes but resemble patterns in anamniotes which similarly exhibit accelerated craniofacial development to support early feeding. Marsupials appear to have evolved a similar mechanism of neural crest migration to facilitate their developmental heterochrony. These findings suggest that vertebrate neural crest migration may be shaped by the pace of craniofacial development during embryogenesis rather than phylogeny, providing new perspectives on neural crest plasticity and the developmental mechanisms driving craniofacial diversity across vertebrates.

developmental biology↗

Marsupial limb patterning redefines the necessity of lateral plate mesoderm subdivision for limb formation

The tetrapod limb has long served as a model for elucidating molecular and cellular mechanisms driving tissue patterning, development and evolution. While significant advances have been made in understanding the drivers of limb initiation, outgrowth, and patterning, the early morphogenetic processes that transform the lateral plate mesoderm (LPM) into limb fields remain less resolved. Marsupial mammals provide a unique opportunity to investigate these foundational processes due to their accelerated forelimb development, driven by the functional demands of altricial neonates to crawl into the pouch at birth. Heterochronic formation of the forelimbs occurs prior to development of other surrounding structures, offering unparalleled insights into the plasticity of limb field specification. Here, we reveal that marsupial limb initiation and outgrowth bypasses physical subdivision of the LPM, a process previously considered critical for tetrapod limb formation. Instead, limb development proceeds through early activation of LPM-associated genes and proliferation before coelom formation, demonstrating remarkable morphogenetic plasticity. This evolutionary adaptation enables heterochronic limb development, redefining conserved processes to meet extreme functional constraints. These findings challenge previous models of tetrapod limb specification, highlighting the evolutionary plasticity of limb patterning mechanisms and reshaping our understanding of how selective pressures influence foundational developmental events.

developmental biology↗