The population genetics of ecological specialization in evolving Escherichia coli populations
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[1] Richard E. Lenski,et al. Mechanisms Causing Rapid and Parallel Losses of Ribose Catabolism in Evolving Populations of Escherichia coli B , 2001, Journal of bacteriology.
[2] J. Miller,et al. The consequences of growth of a mutator strain of Escherichia coli as measured by loss of function among multiple gene targets and loss of fitness. , 2000, Genetics.
[3] L. Partridge,et al. A delayed wave of death from reproduction in Drosophila. , 1999, Science.
[4] Green,et al. Clinoenstatite in alpe arami peridotite: additional evidence of very high pressure , 1999, Science.
[5] R. Lenski,et al. Diminishing returns from mutation supply rate in asexual populations. , 1999, Science.
[6] R. Lenski,et al. Evolution of high mutation rates in experimental populations of E. coli , 1997, Nature.
[7] J. Liou,et al. Partial transformation of gabbro to coesite‐bearing eclogite from Yangkou, the Sulu terrane, eastern China , 1997 .
[8] D. H. Davidson,et al. Community analysis by Biolog: curve integration for statistical analysis of activated sludge microbial habitats , 1996 .
[9] T Kibota,et al. Estimate of the genomic mutation rate deleterious to overall fitness in E. coli , 1996 .
[10] S. Ono,et al. Compositional change of majoritic garnet in a MORB composition from 7 to 17 GPa and 1400 to 1600°C , 1996 .
[11] A. E. Ringwood,et al. Subduction of continental crust and terrigenous and pelagic sediments: an experimental study , 1994 .
[12] B. Charlesworth,et al. The genomic mutation rate for fitness in Drosophila , 1994, Nature.
[13] R. Lenski,et al. Dynamics of adaptation and diversification: a 10,000-generation experiment with bacterial populations. , 1994, Proceedings of the National Academy of Sciences of the United States of America.
[14] J. Liou,et al. Petrogenesis of garnet‐bearing ultramafic rocks and associated eclogites in the Su‐Lu ultrahigh‐P metamorphic terrane, eastern China , 1994 .
[15] G. Tilton,et al. Timing of collision of the Sino-Korean and Yangtse cratons: U-Pb zircon dating of coesite-bearing eclogites , 1993 .
[16] A. F. Bennett,et al. EVOLUTIONARY ADAPTATION TO TEMPERATURE II. THERMAL NICHES OF EXPERIMENTAL LINES OF ESCHERICHIA COLI , 1993, Evolution; international journal of organic evolution.
[17] R. Lenski,et al. Long-Term Experimental Evolution in Escherichia coli. I. Adaptation and Divergence During 2,000 Generations , 1991, The American Naturalist.
[18] W. Schreyer,et al. The pyrope-coesite rocks and their country rocks at Parigi, Dora Maira Massif, Western Alps: detailed petrography, mineral chemistry and PT-path , 1991 .
[19] Thomas E. Johnson,et al. Evolutionary biology of aging , 1990 .
[20] J. D. Fry. Trade-Offs in Fitness on Different Hosts: Evidence from a Selection Experiment with a Phytophagous Mite , 1990, The American Naturalist.
[21] V. Sautter,et al. Ultradeep (Greater Than 300 Kilometers), Ultramafic Upper Mantle Xenoliths , 1990, Science.
[22] A. Kondrashov. Deleterious mutations and the evolution of sexual reproduction , 1988, Nature.
[23] Rory O. Moore,et al. Pyroxene solid solution in garnets included in diamond , 1985, Nature.
[24] M. Kimura,et al. The neutral theory of molecular evolution. , 1983, Scientific American.
[25] B. Dupré,et al. Pb–Sr isotope variation in Indian Ocean basalts and mixing phenomena , 1983, Nature.
[26] R. Armstrong,et al. Radiogenic isotopes: the case for crustal recycling on a near-steady-state no-continental-growth Earth , 1981, Philosophical Transactions of the Royal Society of London. Series A, Mathematical and Physical Sciences.
[27] B. Charlesworth,et al. A test of evolutionary theories of senescence , 1980, Nature.
[28] R. Thompson. Is upper-mantle phosphorus contained in sodic garnet? , 1975 .
[29] A. E. Ringwood,et al. Synthesis of majorite and other high pressure garnets and perovskites , 1971 .
[30] N. Sobolev,et al. Isomorphic sodium admixture in garnets formed at high pressures , 1971 .
[31] Rupert G. Miller. Simultaneous Statistical Inference , 1967 .
[32] D. Mills,et al. An extracellular Darwinian experiment with a self-duplicating nucleic acid molecule. , 1967, Proceedings of the National Academy of Sciences of the United States of America.
[33] H. Muller. THE RELATION OF RECOMBINATION TO MUTATIONAL ADVANCE. , 1964, Mutation research.
[34] R. H.J.MULLE. THE RELATION OF RECOMBINATION TO MUTATIONAL ADVANCE , 2002 .
[35] E. Szathmáry,et al. Do deleterious mutations act synergistically? Metabolic control theory provides a partial answer. , 1993, Genetics.
[36] D. Futuyma,et al. The Evolution of Ecological Specialization , 1988 .
[37] A. E. Ringwood,et al. Significance of pyroxene-ilmenite intergrowths among kimberlite xenoliths , 1970 .