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Biology subjects

Zollikofer, C.

Publications and source records attributed to Zollikofer, C..

2 recordsLinked to original sources

Milankovic cycles and Cultural Evolution as Important Catalysts for Hominin Genetic Diversification

Climate variability is widely considered a key driver of human evolution, yet the mechanisms linking long-term climate change driven by Milankovi[c] cycles to hominin demography and genetic diversity remain elusive. Here we couple an agent-based demographic model, incorporating an idealized genetic marker, cultural dynamics, and a realistic Pleistocene climate framework, to quantify how astronomically forced climate and vegetation variability shaped the genetic structure of African hominins over the past 1.9 Myr. We show that warm early Pleistocene climates sustained a continent-wide network of genetically diverse demes until ~900 ka. The subsequent decline in atmospheric CO2, associated cooling, and reduced vegetation during the Mid-Pleistocene Transition triggered widespread demographic collapse, with populations surviving only in southern and eastern Africa. This reorganization in population structure leads to a decline in simulated genetic diversity, consistent in timing with genomic and archeological evidence. Introducing cultural innovations in the model, represented as enhanced carrying capacity, enables hominin populations to recover from this diversity bottleneck, adapt to increasingly harsh late Pleistocene environments and long glacial periods, rapidly expand across Africa during interglacials, and ultimately disperse into Eurasia. Our results identify Milankovi[c]-scale climate forcing and cultural growth as important catalysts of hominin population structure and genetic diversification.

evolutionary biology↗

Interindividual vocal tract diversity influences the phonetic diversification of spoken languages

Vocal tracts, like other physical traits, exhibit extensive interindividual variation. However, little is known about how this variation translates into phonetic diversity between speakers, and ultimately, across languages. We demonstrate that different vocal tract shapes and associated articulatory strategies leave consistent acoustic signatures, which show congruent patterns of phonetic variation both within and across speech communities. Recalling a central tenet of evolutionary biology - that within-group variation feeds processes of between-group diversification - our findings suggest that the sounds of language evolve according to a neutral-like evolutionary process. Our "neutral-like evolution model" serves as a null hypothesis for disentangling the biological versus cultural mechanisms at play in phonetic diversification, where deviations from the neutral expectation indicate culturally mediated processes of language change at work.

evolutionary biology↗