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Jagielska, N.

Publications and source records attributed to Jagielska, N..

2 recordsLinked to original sources

The Longest 3D-preserved Plumage Reveals Stepwise Pennaceous Feather Evolution

Powered flight is a critical innovation associated with the evolutionary transition from non-avialan theropods to birds, yet how early feathers gave rise to modern pennaceous feather structures with optimized aerodynamic performance remains unclear. Here we report a three-dimensionally preserved pennaceous feather from the Burmese amber ([~]99 Ma) that exceeds 105 mm in preserved length, representing the longest known feather preserved in amber. It shows symmetrical vanes with densely packed barbs, indicating a derived pennaceous branching architecture, but lacks interlocking barbules and exhibits incompletely differentiated rachis and barbs, implying limited aerodynamic performance. This combination of advanced branching organization and incomplete tissue differentiation indicates asynchronous evolution of pennaceous feathers, in which branching organization, elongation and vane organization preceded the acquisition of interlocking barbules and fully differentiated cortical and medullary tissues required for aerodynamic function. These findings provide direct fossil evidence for stepwise, modular evolution of pennaceous feathers. They suggest that aerodynamic optimization of flight-related feather structures may not have been the primary driver of pennaceous feather branching. Significance statementHow pennaceous feathers became mechanically specialized for powered flight remains poorly understood. Here we report that the longest known three-dimensionally preserved pennaceous feather from Burmese amber ([~]99 Ma) exhibits a symmetrical but non-interlocking vane and limited tissue differentiation in the rachis and barbs, capturing a previously undocumented transitional stage in pennaceous feather evolution. This structural mosaic provides direct fossil evidence that aerodynamic performance was optimized through stepwise, modular evolution of pennaceous feather structures.

evolutionary biology↗

New soft tissue data of pterosaur tail vane reveals sophisticated, dynamic tensioning usage and expands its evolutionary origins

Pterosaurs were the first vertebrates to achieve powered flight. Early pterosaurs had long stiff tails with a mobile base that could shift their center of mass, potentially benefiting flight control. These tails ended in a tall, thin soft tissue vane that would compromise aerodynamic control and efficiency if it fluttered excessively during flight. Maintaining stiffness in the vane would have been crucial in early pterosaur flight, but how this was achieved has been unclear, especially since vanes were lost in later pterosaurs and are absent in birds and bats. Here we use Laser-Stimulated Fluorescence imaging to reveal a cross-linking lattice within the tail vanes of early pterosaurs. The lattice supported a sophisticated dynamic tensioning system used to maintain vane stiffness, allowing the whole tail to augment flight control and the vane to function as a display structure.

paleontology↗