Computational design of transmembrane pores

被引:0
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作者
Chunfu Xu
Peilong Lu
Tamer M. Gamal El-Din
Xue Y. Pei
Matthew C. Johnson
Atsuko Uyeda
Matthew J. Bick
Qi Xu
Daohua Jiang
Hua Bai
Gabriella Reggiano
Yang Hsia
T J Brunette
Jiayi Dou
Dan Ma
Eric M. Lynch
Scott E. Boyken
Po-Ssu Huang
Lance Stewart
Frank DiMaio
Justin M. Kollman
Ben F. Luisi
Tomoaki Matsuura
William A. Catterall
David Baker
机构
[1] University of Washington,Institute for Protein Design
[2] University of Washington,Department of Biochemistry
[3] University of Washington,Howard Hughes Medical Institute
[4] Westlake University,Zhejiang Provincial Laboratory of Life Sciences and Biomedicine, Key Laboratory of Structural Biology of Zhejiang Province, School of Life Sciences
[5] Westlake Institute for Advanced Study,Institute of Biology
[6] University of Washington,Department of Pharmacology
[7] University of Cambridge,Department of Biochemistry
[8] Osaka University,Department of Biotechnology, Graduate School of Engineering
[9] University of Washington,Department of Biological Structure
[10] Lyell Immunopharma,Department of Bioengineering
[11] Inc.,undefined
[12] Stanford University,undefined
来源
Nature | 2020年 / 585卷
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摘要
Transmembrane channels and pores have key roles in fundamental biological processes1 and in biotechnological applications such as DNA nanopore sequencing2–4, resulting in considerable interest in the design of pore-containing proteins. Synthetic amphiphilic peptides have been found to form ion channels5,6, and there have been recent advances in de novo membrane protein design7,8 and in redesigning naturally occurring channel-containing proteins9,10. However, the de novo design of stable, well-defined transmembrane protein pores that are capable of conducting ions selectively or are large enough to enable the passage of small-molecule fluorophores remains an outstanding challenge11,12. Here we report the computational design of protein pores formed by two concentric rings of α-helices that are stable and monodisperse in both their water-soluble and their transmembrane forms. Crystal structures of the water-soluble forms of a 12-helical pore and a 16-helical pore closely match the computational design models. Patch-clamp electrophysiology experiments show that, when expressed in insect cells, the transmembrane form of the 12-helix pore enables the passage of ions across the membrane with high selectivity for potassium over sodium; ion passage is blocked by specific chemical modification at the pore entrance. When incorporated into liposomes using in vitro protein synthesis, the transmembrane form of the 16-helix pore—but not the 12-helix pore—enables the passage of biotinylated Alexa Fluor 488. A cryo-electron microscopy structure of the 16-helix transmembrane pore closely matches the design model. The ability to produce structurally and functionally well-defined transmembrane pores opens the door to the creation of designer channels and pores for a wide variety of applications.
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页码:129 / 134
页数:5
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