GSA Connects 2024 Meeting in Anaheim, California

Paper No. 72-11
Presentation Time: 4:25 PM

A NEW WORKING MODEL FOR CO-EVOLUTION OF PLANT AND ANIMAL SPECIES ON THE BAJA CALIFORNIA PENINSULA FROM GENOMIC AND GEOLOGIC DATA


DOLBY, Greer1, MUNGUIA-VEGA, Adrian2, DORSEY, Rebecca J.3, BENNETT, Scott E.K.4, DARIN, Michael5, GARDNER, Kevin3, ARAYA-DONOSO, Raul6, DAVALOS-DEHULLU, Liz7, BATY, Sarah8, BIDDY, Austin9, ANDREEV, Victor8, LIRA-NORIEGA, Andres10, WILDER, Benjamin T.11, CORTEZ, Diego12, CULVER, Melanie13 and KUSUMI, Kenro8, (1)Biology Department, University of Alabama at Birmingham, 3100 Science and Engineering Complex, Birmingham, AL 35205; Baja GeoGenomics consortium, Tempe, AZ 85281, (2)Baja GeoGenomics consortium, Tempe, AZ 85281; University of Arizona, Conservation Genetics Laboratory, School of Natural Resources and the Environment, 1064 E Lowell St, Tucson, AZ 85721, (3)Department of Earth Sciences, University of Oregon, Cascade Hall, 100, 1275 E 13th Ave, Eugene, OR 97401; Baja GeoGenomics consortium, Tempe, AZ 85281, (4)U.S. Geological Survey, Geology, Minerals, Energy, and Geophysics Science Center, 2130 S.W. Fifth Avenue, Portland, OR 97201; Baja GeoGenomics consortium, Tempe, AZ 85281, (5)U.S. Geological Survey, Geology, Minerals, Energy, and Geophysics Science Center, 1519 SW Fifth Ave., No. 336, Portland, OR 97201; Baja GeoGenomics consortium, Tempe, AZ 85281, (6)Arizona State University, School of Life Sciences, 427 E Tyler Mall, Tempe, AZ 85281; Baja GeoGenomics consortium, Tempe, AZ 85281, (7)universidad nacional autónoma de méxico, Centro de Ciencias Genómicas, Programa de Biología de Sistemas, Cuernavaca, MR 62210, Mexico; Baja GeoGenomics consortium, Tempe, AZ 85281, (8)Baja GeoGenomics consortium, Tempe, AZ 85281; Arizona State University, School of Life Sciences, 427 E Tyler Mall, Tempe, AZ 85281, (9)Baja GeoGenomics consortium, Tempe, AZ 85281; Biology Department, University of Alabama at Birmingham, 3100 Science and Engineering Complex, Birmingham, AL 35205, (10)Instituto de Ecología, A.C., Red de estudios moleculares Avanzados, Xalapa, VL 91073, Mexico; Baja GeoGenomics consortium, Tempe, AZ 85281, (11)Baja GeoGenomics consortium, Tempe, AZ 85281, (12)Baja GeoGenomics consortium, Tempe, AZ 85281; universidad nacional autónoma de méxico, Centro de Ciencias Genómicas, Programa de Biología de Sistemas, Cuernavaca, MR 62210, Mexico, (13)University of Arizona, Conservation Genetics Laboratory, School of Natural Resources and the Environment, 1064 E Lowell St, Tucson, AZ 85721; Baja GeoGenomics consortium, Tempe, AZ 85281

For nearly 30 years, biologists have documented a striking pattern of intra-species genetic divergence on the Baja California peninsula in dozens of disparate species. Evolutionary theory predicts that when such a pattern is shared among species the cause is extrinsic (e.g., environmental, climatic, physiographic, geological). The leading hypothesis within biological literature has been that genetic divergence was facilitated by flooding across the central peninsula by a seaway between ~3-1 Ma, resulting in separation of northern and southern populations. However, new detailed geologic mapping from the Baja GeoGenomics consortium reveals evidence for continuous terrestrial environments during the last ~30 Myr in a ≥40-km-wide ~E-W region of the central peninsula that straddles the modern-day crest, conclusively refuting the seaway hypothesis. Through integration of tectonic, volcanic, and sedimentological evidence with genomic (DNA) and gene expression (RNA) data for plants and animals, we are developing a new working model for Earth-life evolution on the peninsula over the last ~5 Myr. In this model, rift-related uplift drives the growth and dissection of topography, causing increased microenvironmental heterogeneity that populations differentially adapted to in the north and south. This is evidenced by widespread, statistically significant niche divergence in populations between northern and southern Baja in 21 studied taxa. This pattern is supported by strong differences in gene expression in northern and southern populations of two lizard species, particularly in genes relating to metabolism, which may indicate different diet or energy requirements between the regions. Habitats in the north and south then shifted due to glacial and interglacial periods, indicated by hindcasting the estimated niche conditions of those 21 taxa. With ongoing analyses, we expect to find genomic signatures of differential natural selection and adaptation within these species due in part to monsoon-driven rainfall differences. The significance of this work is twofold: it demonstrates the importance of incorporating geological data into evolutionary hypotheses and it cautions how mis-assigning cause-effect relationships in individual Earth-life systems can bias our fundamental understanding of how Earth processes shape biological evolution writ large.