Department of BioSciences, Rice University, 6100 Main Street, MS-140, Houston, Texas 77005, United States.
Department of Chemical and Biomolecular Engineering, Rice University, 6100 Main Street, MS-362, Houston, Texas 77005, United States.
ACS Synth Biol. 2020 Dec 18;9(12):3245-3253. doi: 10.1021/acssynbio.0c00303. Epub 2020 Nov 23.
Recombination can be used in the laboratory to overcome component limitations in synthetic biology by creating enzymes that exhibit distinct activities and stabilities from native proteins. To investigate how recombination affects the properties of an oxidoreductase that transfers electrons in cells, we created ferredoxin (Fd) chimeras by recombining distantly related cyanobacterial and cyanomyophage Fds (53% identity) that present similar midpoint potentials but distinct thermostabilities. Fd chimeras having a wide range of amino acid substitutions retained the ability to coordinate an iron-sulfur cluster, although their thermostabilities varied with the fraction of residues inherited from each parent. The midpoint potentials of chimeric Fds also varied. However, all of the synthetic Fds exhibited midpoint potentials outside of the parental protein range. Each of the chimeric Fds could also support electron transfer between Fd-NADP reductase and sulfite reductase in , although the chimeric Fds varied in the expression required for similar levels of cellular electron transfer. These results show how Fds can be diversified through recombination and reveal differences in the inheritance of thermostability and electrochemical properties. Furthermore, they illustrate how electron transfer efficiencies of chimeric Fds can be rapidly evaluated using a synthetic metabolic pathway.
通过创造具有独特活性和稳定性的酶,可以在实验室中利用重组克服合成生物学中的组件限制。为了研究重组如何影响在细胞中传递电子的氧化还原酶的性质,我们通过重组远缘蓝细菌和蓝藻噬菌体 Fd(53%的同一性)来创建铁氧还蛋白(Fd)嵌合体,它们呈现出相似的中点电位,但具有不同的热稳定性。具有广泛氨基酸取代的 Fd 嵌合体保留了与铁硫簇配位的能力,尽管它们的热稳定性随自每个亲本继承的残基数的变化而变化。嵌合 Fd 的中点电位也有所不同。然而,所有合成的 Fd 的中点电位都超出了亲本蛋白的范围。每个嵌合 Fd 也可以在 中支持 Fd-NADP 还原酶和亚硫酸盐还原酶之间的电子转移,尽管嵌合 Fd 在细胞电子转移相似水平所需的表达方面存在差异。这些结果表明了 Fd 如何通过重组多样化,并揭示了热稳定性和电化学性质的遗传差异。此外,它们说明了如何使用合成代谢途径快速评估嵌合 Fd 的电子转移效率。