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  1. The evolution of mutation rates: separating causes from consequences.Paul D. Sniegowski, Philip J. Gerrish, Toby Johnson & Aaron Shaver - 2000 - Bioessays 22 (12):1057-1066.
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  • Stress‐induced mutation via DNA breaks in Escherichia coli: A molecular mechanism with implications for evolution and medicine.Susan M. Rosenberg, Chandan Shee, Ryan L. Frisch & P. J. Hastings - 2012 - Bioessays 34 (10):885-892.
    Evolutionary theory assumed that mutations occur constantly, gradually, and randomly over time. This formulation from the “modern synthesis” of the 1930s was embraced decades before molecular understanding of genes or mutations. Since then, our labs and others have elucidated mutation mechanisms activated by stress responses. Stress‐induced mutation mechanisms produce mutations, potentially accelerating evolution, specifically when cells are maladapted to their environment, that is, when they are stressed. The mechanisms of stress‐induced mutation that are being revealed experimentally in laboratory settings provide (...)
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  • Adaptive evolution of highly mutable loci in pathogenic bacteria.E. Richard Moxon, Richard E. Lenski & Paul B. Rainey - 1997 - Perspectives in Biology and Medicine 42 (1):154-155.
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  • Climbing Mount Probable: Mutation as a cause of non-randomness in evolution.Arlin Stoltzfus & Lev Yampolsky - 2009 - Journal of Heredity 100 (5):637-647.
    The classic view of evolution as "shifting gene frequencies" in the Modern Synthesis literally means that evolution is the modulation of existing variation ("standing variation"), as opposed to a "new mutations" view of evolution as a 2-step process of mutational origin followed by acceptance-or-rejection (via selection and drift). The latter view has received renewed attention, yet its implications for evolutionary causation still are not widely understood. We review theoretical results showing that this conception of evolution allows for a role of (...)
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