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Issa, J.

Publications and source records attributed to Issa, J..

2 recordsLinked to original sources

Population-specific selective sweeps contribute to the maintenance of genetic structure in Chlamydomonas reinhardtii

Microbial eukaryotes often exhibit large effective population sizes and broad dispersal, yet the extent of population structure and the forces shaping it remain poorly understood. While biogeographic structure is often attributed to limits on dispersal, the role of natural selection in maintaining differentiation has received less attention. We investigated population structure and adaptive evolution in the cosmopolitan soil alga Chlamydomonas reinhardtii. In addition to the 35 available North American genome sequences we have sequenced 38 new isolates from Ontario (Canada). Population genetic structure analyses demonstrate that these new isolates from Ontario represent a second well-sampled genetically distinct cluster, and that this structure persists despite the presence of recent migrants. Using this data set we were able to conduct genome-wide scans for selective sweeps across the species and within each population. Our results conservatively identify 151 species-wide sweeps and 325 population-specific signals, showing that positive selection is widespread and common. The continued presence of the two distinct genetic clusters as well as loci under differential selection, provide evidence that local adaptation persists despite ongoing gene flow. Together, our results demonstrate that selection plays a central role in reinforcing geographic structure in this highly dispersive microbe.

evolutionary biology↗

Distinct brain regions map olfactory and visual spaces

The hippocampus contains a multisensory cognitive map that incorporates spatial cues from across the senses, such as vision and olfaction. However, how primary sensory information transforms along pathways to the hippocampus into this single, combined map is largely unknown. Specifically, does the hippocampus generate or inherit the multisensory map of space? Here, we used multisensory virtual reality and large-scale functional imaging to determine if and how the main input regions to hippocampus, the lateral and medial entorhinal cortices (LEC and MEC, respectively), map olfactory and visual sensory spaces in navigating mice. We discovered that, in contrast to multisensory mapping in the hippocampus, LEC preferentially maps olfactory space while MEC preferentially maps visual space, regardless of the behavioral relevance of the spaces. This establishes the existence of largely independent brain maps for different sensory spaces, suggesting that the hippocampus builds the cognitive map by combining modality-specific maps from pre-synaptic cortical regions.

neuroscience↗