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本文引用的文献

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Structural Determinants of Redox Conduction Favor Robustness over Tunability in Microbial Cytochrome Nanowires.氧化还原传导的结构决定因素有利于微生物细胞色素纳米线的稳健性而非可调性。
J Phys Chem B. 2023 Aug 17;127(32):7148-7161. doi: 10.1021/acs.jpcb.3c02912. Epub 2023 Aug 8.
2
Power generation from wastewater using microbial fuel cells: A review.利用微生物燃料电池从废水产生电能:综述。
J Biotechnol. 2023 Sep 10;374:17-30. doi: 10.1016/j.jbiotec.2023.07.006. Epub 2023 Jul 22.
3
Phase-Coherent Charge Transport through a Porphyrin Nanoribbon.通过卟啉纳米带的相位相干电荷传输。
J Am Chem Soc. 2023 Jul 19;145(28):15265-15274. doi: 10.1021/jacs.3c02451. Epub 2023 Jul 7.
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Assessing Thermal Response of Redox Conduction for -Arrhenius Kinetics in a Microbial Cytochrome Nanowire.评估微生物细胞色素纳米线中 -Arrhenius 动力学的氧化还原传导的热响应。
J Phys Chem B. 2022 Dec 8;126(48):10083-10097. doi: 10.1021/acs.jpcb.2c06822. Epub 2022 Nov 23.
5
Tailorable Tetrahelical Bundles as a Toolkit for Redox Studies.可定制的四螺旋束作为氧化还原研究的工具包。
J Phys Chem B. 2022 Oct 20;126(41):8177-8187. doi: 10.1021/acs.jpcb.2c05119. Epub 2022 Oct 11.
6
Microbial biofilms as living photoconductors due to ultrafast electron transfer in cytochrome OmcS nanowires.微生物生物膜作为活体光导体,由于细胞色素 OmcS 纳米线中的超快电子转移。
Nat Commun. 2022 Sep 7;13(1):5150. doi: 10.1038/s41467-022-32659-5.
7
A 300-fold conductivity increase in microbial cytochrome nanowires due to temperature-induced restructuring of hydrogen bonding networks.由于氢键网络的温度诱导重组,微生物细胞色素纳米线的电导率增加了300倍。
Sci Adv. 2022 May 13;8(19):eabm7193. doi: 10.1126/sciadv.abm7193. Epub 2022 May 11.
8
Review on microbial fuel cells applications, developments and costs.微生物燃料电池应用、发展与成本研究综述。
J Environ Manage. 2022 Apr 1;307:114525. doi: 10.1016/j.jenvman.2022.114525. Epub 2022 Jan 25.
9
Recent Progress Using De Novo Design to Study Protein Structure, Design and Binding Interactions.利用从头设计研究蛋白质结构、设计及结合相互作用的最新进展。
Life (Basel). 2021 Mar 10;11(3):225. doi: 10.3390/life11030225.
10
Resuscitation After Hemorrhagic Shock in the Microcirculation: Targeting Optimal Oxygen Delivery in the Design of Artificial Blood Substitutes.失血性休克后微循环的复苏:在人工血液替代品设计中靶向最佳氧输送
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通过序列和血红素载量比控制肽两亲纤维中的血红素氧化还原性质。

Controlling heme redox properties in peptide amphiphile fibers with sequence and heme loading ratio.

机构信息

Department of Chemistry and Biochemistry, George Mason University, Fairfax, Virginia.

Thomas Jefferson High School for Science and Technology, Alexandria, Virginia.

出版信息

Biophys J. 2024 Jul 2;123(13):1781-1791. doi: 10.1016/j.bpj.2024.05.021. Epub 2024 May 23.

DOI:10.1016/j.bpj.2024.05.021
PMID:38783603
原文链接:https://pmc.ncbi.nlm.nih.gov/articles/PMC11267424/
Abstract

Controlling the reduction midpoint potential of heme B is a key factor in many bioelectrochemical reactions, including long-range electron transport. Currently, there are a number of globular model protein systems to study this biophysical parameter; however, there are none for large polymeric protein model systems (e.g., the OmcS protein from G. sulfurreducens). Peptide amphiphiles, short peptides with a lipid tail that polymerize into fibrous structures, fill this gap. Here, we show a peptide amphiphile model system where one can tune the electrochemical potential of heme B by changing the loading ratio and peptide sequence. Changing the loading ratio resulted in the most significant increase, with values as high as -22 mV down to -224 mV. Circular dichroism spectra of certain sequences show Cotton effects at lower loading ratios that disappear as more heme B is added, indicating an ordered environment that becomes disrupted if heme B is overpacked. These findings can contribute to the design of functional self-assembling biomaterials.

摘要

控制血红素 B 的还原中点电位是许多生物电化学反应的关键因素,包括长程电子传递。目前,有许多球状模型蛋白体系可用于研究这一生物物理参数;然而,对于大型聚合蛋白模型体系(例如,来自 G. sulfurreducens 的 OmcS 蛋白),尚无此类体系。肽两亲物是带有脂质尾巴的短肽,可聚合形成纤维状结构,填补了这一空白。在这里,我们展示了一个肽两亲物模型体系,可以通过改变加载比和肽序列来调节血红素 B 的电化学势。改变加载比会导致最大的增加,最高可达-22 mV 到-224 mV。某些序列的圆二色光谱在较低的加载比下显示出考顿效应,随着更多血红素 B 的加入,这些效应消失,表明如果血红素 B 过度包装,有序环境会被破坏。这些发现可以为功能自组装生物材料的设计做出贡献。