2 Works

Data from: Two-phase increase in the maximum size of life over 3.5 billion years reflects biological innovation and environmental opportunity

Jonathan L. Payne, Alison G. Boyer, James H. Brown, Seth Finnegan, Michal Kowaleski, Krause Jr., Richard A., S. Kathleen Lyons, Craig R. McClain, Daniel W. McShea, Phillip M. Novack-Gottshall, Felisa A. Smith, Jennifer A. Stempien, Steve C. Wang, D. W. McShea, M. Kowalewski, J. L. Payne, R. A. Krause, S. C. Wang, P. M. Novack-Gottshall, A. G. Boyer, J. H. Brown & F. A. Smith
NOTE: See also http://bodysize.nescent.org. ABSTRACT: The maximum size of organisms has increased enormously since the initial appearance of life >3.5 billion years ago (Gya), but the pattern and timing of this size increase is poorly known. Consequently, controls underlying the size spectrum of the global biota have been difficult to evaluate. Our period-level compilation of the largest known fossil organisms demonstrates that maximum size increased by 16 orders of magnitude since life first appeared in...

Data from: Genetic and evolutionary correlates of fine-scale recombination rate variation in Drosophila persimilis

Laurie S. Stevison & Mohamed A. F. Noor
Recombination is fundamental to meiosis in many species and generates variation on which natural selection can act, yet fine-scale linkage maps are cumbersome to construct. We generated a fine-scale map of recombination rates across two major chromosomes in Drosophila persimilis using 181 SNP markers spanning two of five major chromosome arms. Using this map, we report significant fine-scale heterogeneity of local recombination rates. However, we also observed “recombinational neighborhoods,” where adjacent intervals had similar recombination...

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