DNA-Mediated Stack Formation of Nanodiscs

Membrane-scaffolding proteins (MSPs) derived from apolipoprotein A-1 have become a versatile tool in generating nano-sized discoidal membrane mimetics (nanodiscs) for membrane protein research. Recent efforts have aimed at exploiting their controlled lipid protein ratio and size distribution to arra...

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Main Authors: Madhumalar Subramanian, Charlotte Kielar, Satoru Tsushima, Karim Fahmy, Jana Oertel
Format: Article
Language:English
Published: MDPI AG 2021-03-01
Series:Molecules
Subjects:
Online Access:https://www.mdpi.com/1420-3049/26/6/1647
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spelling doaj-a35cd789eb9043a9a05ad40fb4f6f16b2021-03-17T00:01:53ZengMDPI AGMolecules1420-30492021-03-01261647164710.3390/molecules26061647DNA-Mediated Stack Formation of NanodiscsMadhumalar Subramanian0Charlotte Kielar1Satoru Tsushima2Karim Fahmy3Jana Oertel4Biophysics Department, Institute of Resource Ecology, Helmholtz-Zentrum Dresden-Rossendorf, Bautzner Landstrasse 400, 01328 Dresden, GermanyBiophysics Department, Institute of Resource Ecology, Helmholtz-Zentrum Dresden-Rossendorf, Bautzner Landstrasse 400, 01328 Dresden, GermanyBiophysics Department, Institute of Resource Ecology, Helmholtz-Zentrum Dresden-Rossendorf, Bautzner Landstrasse 400, 01328 Dresden, GermanyBiophysics Department, Institute of Resource Ecology, Helmholtz-Zentrum Dresden-Rossendorf, Bautzner Landstrasse 400, 01328 Dresden, GermanyBiophysics Department, Institute of Resource Ecology, Helmholtz-Zentrum Dresden-Rossendorf, Bautzner Landstrasse 400, 01328 Dresden, GermanyMembrane-scaffolding proteins (MSPs) derived from apolipoprotein A-1 have become a versatile tool in generating nano-sized discoidal membrane mimetics (nanodiscs) for membrane protein research. Recent efforts have aimed at exploiting their controlled lipid protein ratio and size distribution to arrange membrane proteins in regular supramolecular structures for diffraction studies. Thereby, direct membrane protein crystallization, which has remained the limiting factor in structure determination of membrane proteins, would be circumvented. We describe here the formation of multimers of membrane-scaffolding protein MSP1D1-bounded nanodiscs using the thiol reactivity of engineered cysteines. The mutated positions N42 and K163 in MSP1D1 were chosen to support chemical modification as evidenced by fluorescent labeling with pyrene. Minimal interference with the nanodisc formation and structure was demonstrated by circular dichroism spectroscopy, differential light scattering and size exclusion chromatography. The direct disulphide bond formation of nanodiscs formed by the MSP1D1_N42C variant led to dimers and trimers with low yield. In contrast, transmission electron microscopy revealed that the attachment of oligonucleotides to the engineered cysteines of MSP1D1 allowed the growth of submicron-sized tracts of stacked nanodiscs through the hybridization of nanodisc populations carrying complementary strands and a flexible spacer.https://www.mdpi.com/1420-3049/26/6/1647membrane-scaffolding proteinnanodiscmembrane proteinlipid bilayerlipid protein interactionmultimerization
collection DOAJ
language English
format Article
sources DOAJ
author Madhumalar Subramanian
Charlotte Kielar
Satoru Tsushima
Karim Fahmy
Jana Oertel
spellingShingle Madhumalar Subramanian
Charlotte Kielar
Satoru Tsushima
Karim Fahmy
Jana Oertel
DNA-Mediated Stack Formation of Nanodiscs
Molecules
membrane-scaffolding protein
nanodisc
membrane protein
lipid bilayer
lipid protein interaction
multimerization
author_facet Madhumalar Subramanian
Charlotte Kielar
Satoru Tsushima
Karim Fahmy
Jana Oertel
author_sort Madhumalar Subramanian
title DNA-Mediated Stack Formation of Nanodiscs
title_short DNA-Mediated Stack Formation of Nanodiscs
title_full DNA-Mediated Stack Formation of Nanodiscs
title_fullStr DNA-Mediated Stack Formation of Nanodiscs
title_full_unstemmed DNA-Mediated Stack Formation of Nanodiscs
title_sort dna-mediated stack formation of nanodiscs
publisher MDPI AG
series Molecules
issn 1420-3049
publishDate 2021-03-01
description Membrane-scaffolding proteins (MSPs) derived from apolipoprotein A-1 have become a versatile tool in generating nano-sized discoidal membrane mimetics (nanodiscs) for membrane protein research. Recent efforts have aimed at exploiting their controlled lipid protein ratio and size distribution to arrange membrane proteins in regular supramolecular structures for diffraction studies. Thereby, direct membrane protein crystallization, which has remained the limiting factor in structure determination of membrane proteins, would be circumvented. We describe here the formation of multimers of membrane-scaffolding protein MSP1D1-bounded nanodiscs using the thiol reactivity of engineered cysteines. The mutated positions N42 and K163 in MSP1D1 were chosen to support chemical modification as evidenced by fluorescent labeling with pyrene. Minimal interference with the nanodisc formation and structure was demonstrated by circular dichroism spectroscopy, differential light scattering and size exclusion chromatography. The direct disulphide bond formation of nanodiscs formed by the MSP1D1_N42C variant led to dimers and trimers with low yield. In contrast, transmission electron microscopy revealed that the attachment of oligonucleotides to the engineered cysteines of MSP1D1 allowed the growth of submicron-sized tracts of stacked nanodiscs through the hybridization of nanodisc populations carrying complementary strands and a flexible spacer.
topic membrane-scaffolding protein
nanodisc
membrane protein
lipid bilayer
lipid protein interaction
multimerization
url https://www.mdpi.com/1420-3049/26/6/1647
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