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15:22, 29 September 2018 Kai ABC 2.gif (file) 761 KB [1]Swan J A, Golden S, Liwang A, et al. Structure, function, and mechanism of the core circadian clock in cyanobacteria.[J]. Journal of Biological Chemistry, 2018, 293(14):5026-5034. 1
15:19, 29 September 2018 KaiC 4 .gif (file) 951 KB [1]Swan J A, Golden S, Liwang A, et al. Structure, function, and mechanism of the core circadian clock in cyanobacteria.[J]. Journal of Biological Chemistry, 2018, 293(14):5026-5034. 1
15:18, 29 September 2018 All Kai.gif (file) 57 KB [1]Shultzaberger R K, Boyd J S, Katsuki T, et al. Single mutations in sasA enable a simpler ΔcikA gene network architecture with equivalent circadian properties.[J]. Proceedings of the National Academy of Sciences of the United States of America, 2014... 1
14:57, 29 September 2018 KaiC 3 .gif (file) 96 KB [1]Akiyama S. Structural and dynamic aspects of protein clocks: how can they be so slow and stable?[J]. Cellular & Molecular Life Sciences Cmls, 2012, 69(13):2147-2160. 1
14:55, 29 September 2018 KaiC 2 .gif (file) 234 KB [1]Akiyama S. Structural and dynamic aspects of protein clocks: how can they be so slow and stable?[J]. Cellular & Molecular Life Sciences Cmls, 2012, 69(13):2147-2160. 1
13:53, 29 September 2018 SAHS 1 Fig2.png (file) 90 KB In our circuit of the build process, we have been doing nucleic acid gel electrophoresis to verify. After the loop is complete, sequencing verification. 2
13:52, 29 September 2018 SAHS 1 Fig3.png (file) 307 KB SAHS is an exogenous protein with a signal peptide in front of it that allows the protein to be secreted outside the membrane. But our site organism is E. coli, because there is a cell wall, so the protein can not be secreted out of the membrane. There... 2
13:43, 29 September 2018 SAHS 1 Fig1.png (file) 187 KB In our circuit of the build process, we have been doing nucleic acid gel electrophoresis to verify. After the loop is complete, sequencing verification. 2
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