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Computational Design of Transmembrane Pores
Protein pores play key roles in fundamental biological processes(1) and biotechnological applications such as DNA nanopore sequencing(2–4), and hence the design of pore-containing proteins is of considerable scientific and biotechnological interest. Synthetic amphiphilic peptides have been found to...
Autores principales: | , , , , , , , , , , , , , , , , , , , , , , , , |
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Formato: | Online Artículo Texto |
Lenguaje: | English |
Publicado: |
2020
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Acceso en línea: | https://www.ncbi.nlm.nih.gov/pmc/articles/PMC7483984/ https://www.ncbi.nlm.nih.gov/pubmed/32848250 http://dx.doi.org/10.1038/s41586-020-2646-5 |
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author | Xu, Chunfu Lu, Peilong El-Din, Tamer M. Gamal Pei, Xue Y. Johnson, Matthew C. Uyeda, Atsuko Bick, Matthew J. Xu, Qi Jiang, Daohua Bai, Hua Reggiano, Gabriella Hsia, Yang Brunette, TJ Dou, Jiayi Ma, Dan Lynch, Eric Boyken, Scott E. Huang, Po-Ssu Stewart, Lance DiMaio, Frank Kollman, Justin M. Luisi, Ben F. Matsuura, Tomoaki Catterall, William A. Baker, David |
author_facet | Xu, Chunfu Lu, Peilong El-Din, Tamer M. Gamal Pei, Xue Y. Johnson, Matthew C. Uyeda, Atsuko Bick, Matthew J. Xu, Qi Jiang, Daohua Bai, Hua Reggiano, Gabriella Hsia, Yang Brunette, TJ Dou, Jiayi Ma, Dan Lynch, Eric Boyken, Scott E. Huang, Po-Ssu Stewart, Lance DiMaio, Frank Kollman, Justin M. Luisi, Ben F. Matsuura, Tomoaki Catterall, William A. Baker, David |
author_sort | Xu, Chunfu |
collection | PubMed |
description | Protein pores play key roles in fundamental biological processes(1) and biotechnological applications such as DNA nanopore sequencing(2–4), and hence the design of pore-containing proteins is of considerable scientific and biotechnological interest. Synthetic amphiphilic peptides have been found to form ion channels(5,6), and there have been recent advances in de novo membrane protein design(7,8) and in redesigning naturally occurring channel-containing proteins(9,10). However, the de novo design of stable, well-defined transmembrane protein pores capable of conducting ions selectively or large enough to allow passage of small-molecule fluorophores remains an outstanding challenge(11,12). Here, we report the computational design of protein pores formed by two concentric rings of ɑ-helices that are stable and mono-disperse in both water-soluble and transmembrane forms. Crystal structures of the water-soluble forms of a 12 helical and a 16 helical pore are close to the computational design models. Patch-clamp electrophysiology experiments show that the transmembrane form of the 12-helix pore expressed in insect cells allows passage of ions across the membrane with high selectivity for potassium over sodium, which is blocked by specific chemical modification at the pore entrance. The transmembrane form of the 16-helix pore, but not the 12-helix pore, allows passage of biotinylated Alexa Fluor 488 when incorporated into liposomes using in vitro protein synthesis. A cryo-EM 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 pores for a wide variety of applications. |
format | Online Article Text |
id | pubmed-7483984 |
institution | National Center for Biotechnology Information |
language | English |
publishDate | 2020 |
record_format | MEDLINE/PubMed |
spelling | pubmed-74839842021-02-26 Computational Design of Transmembrane Pores Xu, Chunfu Lu, Peilong El-Din, Tamer M. Gamal Pei, Xue Y. Johnson, Matthew C. Uyeda, Atsuko Bick, Matthew J. Xu, Qi Jiang, Daohua Bai, Hua Reggiano, Gabriella Hsia, Yang Brunette, TJ Dou, Jiayi Ma, Dan Lynch, Eric Boyken, Scott E. Huang, Po-Ssu Stewart, Lance DiMaio, Frank Kollman, Justin M. Luisi, Ben F. Matsuura, Tomoaki Catterall, William A. Baker, David Nature Article Protein pores play key roles in fundamental biological processes(1) and biotechnological applications such as DNA nanopore sequencing(2–4), and hence the design of pore-containing proteins is of considerable scientific and biotechnological interest. Synthetic amphiphilic peptides have been found to form ion channels(5,6), and there have been recent advances in de novo membrane protein design(7,8) and in redesigning naturally occurring channel-containing proteins(9,10). However, the de novo design of stable, well-defined transmembrane protein pores capable of conducting ions selectively or large enough to allow passage of small-molecule fluorophores remains an outstanding challenge(11,12). Here, we report the computational design of protein pores formed by two concentric rings of ɑ-helices that are stable and mono-disperse in both water-soluble and transmembrane forms. Crystal structures of the water-soluble forms of a 12 helical and a 16 helical pore are close to the computational design models. Patch-clamp electrophysiology experiments show that the transmembrane form of the 12-helix pore expressed in insect cells allows passage of ions across the membrane with high selectivity for potassium over sodium, which is blocked by specific chemical modification at the pore entrance. The transmembrane form of the 16-helix pore, but not the 12-helix pore, allows passage of biotinylated Alexa Fluor 488 when incorporated into liposomes using in vitro protein synthesis. A cryo-EM 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 pores for a wide variety of applications. 2020-08-26 2020-09 /pmc/articles/PMC7483984/ /pubmed/32848250 http://dx.doi.org/10.1038/s41586-020-2646-5 Text en Users may view, print, copy, and download text and data-mine the content in such documents, for the purposes of academic research, subject always to the full Conditions of use:http://www.nature.com/authors/editorial_policies/license.html#terms |
spellingShingle | Article Xu, Chunfu Lu, Peilong El-Din, Tamer M. Gamal Pei, Xue Y. Johnson, Matthew C. Uyeda, Atsuko Bick, Matthew J. Xu, Qi Jiang, Daohua Bai, Hua Reggiano, Gabriella Hsia, Yang Brunette, TJ Dou, Jiayi Ma, Dan Lynch, Eric Boyken, Scott E. Huang, Po-Ssu Stewart, Lance DiMaio, Frank Kollman, Justin M. Luisi, Ben F. Matsuura, Tomoaki Catterall, William A. Baker, David Computational Design of Transmembrane Pores |
title | Computational Design of Transmembrane Pores |
title_full | Computational Design of Transmembrane Pores |
title_fullStr | Computational Design of Transmembrane Pores |
title_full_unstemmed | Computational Design of Transmembrane Pores |
title_short | Computational Design of Transmembrane Pores |
title_sort | computational design of transmembrane pores |
topic | Article |
url | https://www.ncbi.nlm.nih.gov/pmc/articles/PMC7483984/ https://www.ncbi.nlm.nih.gov/pubmed/32848250 http://dx.doi.org/10.1038/s41586-020-2646-5 |
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