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Shultz, A.

Publications and source records attributed to Shultz, A..

2 recordsLinked to original sources

Drift drives phenotypic evolution in a rapid island radiation

Understanding the processes that generate phenotypic diversity is central to explaining how new species form1,2. Evolutionary theory predicts that rapid evolution of signaling traits, such as feather coloration, can promote speciation3,4 but empirical support is inconsistent5,6. Phenotypic divergence of such traits is expected during speciation4, but these microevolutionary dynamics are rarely examined at macroevolutionary scales or linked to underlying population demography. Here, we leverage complete taxon sampling across an iconic insular bird radiation that helped shape early theories of allopatric speciation. We integrate whole-genome data with a comprehensive, fine-scale dataset of whole-body plumage coloration to directly test whether signaling trait evolution covaries with lineage diversification and to disentangle the roles of selection and drift. We find that lineages with faster rates of color evolution diversify more rapidly. Strikingly, rates of color evolution accelerate as genomic diversity declines, providing direct evidence that genetic drift--rather than strong sexual or ecological selection--can drive rapid phenotypic change in small, isolated insular populations. Together, these results provide compelling evidence that neutral demographic processes can accelerate the evolution of sexual signals and play a central role in generating phenotypic diversity during island radiations.

zoology↗

Tau endo-lysosomal processing in human iPSC-derived microglia is impacted by tau aggregation state, but not by microglial activation status

Microglia are the tissue resident macrophages of the brain and their contribution to tau pathology progression remains to be fully understood. In this study, we developed a quantitative platform to elucidate the processing of extracellular tau within human induced pluripotent stem cell (iPSC)-derived microglia. We show that iPSC-derived microglia internalize monomeric and fibrillar tau through different cellular mechanisms and with different clearance kinetics. Acute inflammatory activation of microglia alters tau endocytosis, but surprisingly does not impact tau clearance. These results highlight the importance of the microglial endo-lysosome system as a regulator of tau pathology that is decoupled from acute microglial activation. HighlightsO_LIHuman iPSC-derived microglia endocytose tau using divergent cellular mechanisms C_LIO_LINanoBiT system can measure tau endocytosis and degradation in cells C_LIO_LIAggregation of tau impacts the rate of extracellular clearance after endocytosis C_LIO_LIAcute inflammation affects total endocytosed tau, but not clearance in microglia C_LI

cell biology↗