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Published on: September 15, 2023
The Making of a Flight Feather: Bio-architectural Principles and Adaptation
Wei-Ling Chang1, Hao Wu2, Yu-Kun Chiu3
1Integrative Stem Cell Center (ISSC), China Medical University Hospital (CMUH), Taichung 40447, Taiwan; International Center for Wound Repair and Regeneration (iWRR), National Cheng Kung University (NCKU), Tainan 701, Taiwan.
Abstract:
The evolution of flight in feathered dinosaurs and early birds over millions of years required flight feathers whose architecture features hierarchical branches. While barb-based feather forms were investigated, feather shafts and vanes are understudied. Here, we take a multi-disciplinary approach to study their molecular control and bio-architectural organizations. In rachidial ridges, epidermal progenitors generate cortex and medullary keratinocytes, guided by Bmp and transforming growth factor β (TGF-β) signaling that convert rachides into adaptable bilayer composite beams. In barb ridges, epidermal progenitors generate cylindrical, plate-, or hooklet-shaped barbule cells that form fluffy branches or pennaceous vanes, mediated by asymmetric cell junction and keratin expression. Transcriptome analyses and functional studies show anterior-posterior Wnt2b signaling within the dermal papilla controls barbule cell fates with spatiotemporal collinearity. Quantitative bio-physical analyses of feathers from birds with different flight characteristics and feathers in Burmese amber reveal how multi-dimensional functionality can be achieved and may inspire future composite material designs. VIDEO ABSTRACT.
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