打字猴:1.700002375e+09
1700002375 热 泳
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1700002379 Mast CB, Schink S, Gerland U, Braun D. Escalation of polymerization in a thermal gradient. Proceedings National Academy Sciences USA110: 8030–35 (2013).
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1700002381 碱性喷口环境有机合成的热力学
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1700002383 Amend JP, McCollom TM. Energetics of biomolecule synthesis on early Earth. In Zaikowski L et al. eds. Chemical Evolution II: From the Origins of Life to Modern Society. American Chemical Society (2009).
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1700002385 Ducluzeau A-L, Schoepp-Cothenet B, Baymann F, Russell MJ, Nitschke W. Free energy conversion in the LUCA: Quo vadis? Biochimica et Biophysica Acta Bioenergetics1837: 982–988 (2014).
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1700002387 Martin W, Russell MJ. On the origin of biochemistry at an alkaline hydrothermal vent. Philosophical Transactions Royal Society B367: 1887–1925 (2007).
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1700002389 Shock E, Canovas P. The potential for abiotic organic synthesis and biosynthesis at seafloor hydrothermal systems. Geofluids10: 161–92 (2010).
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1700002391 Sousa FL, Thiergart T, Landan G, Nelson-Sathi S, Pereira IAC, Allen JF, Lane N, Martin WF. Early bioenergetic evolution. Philosophical Transactions Royal Society B368: 20130088 (2013).
1700002392
1700002393 还原电位与二氧化碳还原反应的动力学障壁
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1700002395 Lane N, Martin W. The origin of membrane bioenergetics. Cell 151: 1406–16 (2012).
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1700002397 Maden BEH. Tetrahydrofolate and tetrahydromethanopterin compared: functionally distinct carriers in C1 metabolism. Biochemical Journal350: 609–29 (2000).
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1700002399 Wächtershäuser G. Pyrite formation, the first energy source for life: a hypothesis. Systematic and Applied Microbiology10: 207–10 (1988).
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1700002401 天然质子梯度能驱动二氧化碳还原反应吗?
1700002402
1700002403 Herschy B, Whicher A, Camprubi E, Watson C, Dartnell L, Ward J, Evans JRG, Lane N. An origin-of-life reactor to simulate alkaline hydrothermal vents. Journal of Molecular Evolution79: 213–27 (2014).
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1700002405 Herschy B. Nature’s electrochemical flow reactors: Alkaline hydrothermal vents and the origins of life. Biochemist36: 4–8 (2014).
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1700002407 Lane N. Bioenergetic constraints on the evolution of complex life. Cold Spring Harbor Perspectives in Biology doi: 10.1101/cshperspect.a015982 (2014).
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1700002409 Nitschke W, Russell MJ. Hydrothermal focusing of chemical and chemiosmotic energy, supported by delivery of catalytic Fe, Ni, Mo, Co, S and Se forced life to emerge. Journal of Molecular Evolution69: 481–96 (2009).
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1700002411 Yamaguchi A, Yamamoto M, Takai K, Ishii T, Hashimoto K, Nakamura R. Electrochemical CO2 reduction by Nicontaining iron sulfides: how is CO2 electrochemically reduced at bisulfide-bearing deep sea hydrothermal precipitates? Electrochimica Acta141: 311–18 (2014).
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1700002413 银河系中蛇纹岩化作用发生的概率
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1700002415 de Leeuw NH, Catlow CR, King HE, Putnis A, Muralidharan K, Deymier P, Stimpfl M, Drake MJ. Where on Earth has our water come from? Chemical Communications46: 8923–25 (2010).
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1700002417 Petigura EA, Howard AW, Marcy GW. Prevalence of Earth-sized planets orbiting Sunlike stars. Proceedings National Academy Sciences USA110: 19273–78 (2013).
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1700002419 4 细胞的诞生
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1700002421 水平基因转移的问题与物种形成
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1700002423 Doolittle WF. Phylogenetic classification and the universal tree. Science284: 2124–28 (1999).
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