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Virus glycoprotein nanodisc platform for vaccine analytics

delete2026-02-10
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OA
AI
K
Kimmo Rantalainen
A
Alessia Liguori
G
Gabriel Ozorowski
C
Claudia Flynn
J
Jon M. Steichen
O
Olivia Swanson
P
Patrick Madden
S
Sabyasachi Baboo
S
Swastik Phulera
A
Anant Gharpure
D
Danny Lu
O
Oleksandr Kalyuzhniy
P
Patrick Skog
S
Sierra Terada
M
Monolina Shil
J
Jolene K. Diedrich
E
Erik Georgeson
R
Ryan Tingle
S
Saman Eskandarzadeh
W
Wen-Hsin Lee
N
Nushin Alavi
D
Diana Goodwin
M
Michael Kubitz
S
Sonya Amirzehni
S
Sunny Himansu
D
Devin Sok
J
Jeong Hyun Lee
J
John R. Yates
J
James C. Paulson
S
Shane Crotty
T
Torben Schiffner *
A
Andrew B. Ward *
W
William R. Schief *
DOI:10.1038/s41467-026-68985-1delete
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Abstract

Abstract

En 中文
Transmembrane glycoproteins of enveloped viruses are targets of neutralizing antibodies and essential vaccine antigens. mRNA-LNP technology allows in vivo expression of transmembrane glycoproteins, but in vitro biophysical characterization of transmembrane antigens and analysis of post-immunization antibody responses typically rely on soluble proteins. Here, we present a platform for assembling transmembrane glycoprotein vaccine candidates into lipid nanodiscs. We demonstrate the utility of nanodiscs in HIV membrane proximal external region (MPER)-targeting vaccine development by binding assays using surface plasmon resonance (SPR), ex vivo B cell sorting with fluorescence-activated cell sorting (FACS), and by determining the structure of a prototypical HIV MPER-targeting immunogen nanodisc in complex with three broadly neutralizing antibodies (bnAbs), including MPER bnAb 10E8, to 3.5 Å by cryogenic electron microscopy (cryo-EM), providing a template for structure-based immunogen design. To demonstrate general applicability we characterize Ebola virus glycoprotein nanodiscs. Overall, the platform offers a tool for accelerating development of next-generation vaccines. Many viral vaccine antigen candidates are transmembrane glycoproteins, and their development requires methods which allow their biophysical characterization. Here authors present an optimized nanodisc assembly platform which provides reproducible, scalable, and accurate replication of the vaccine candidates for detailed analysis.
Keywords:
Cryoelectron microscopy
Immunological techniques
Membrane proteins
Vaccines
Viral proteins
Science
Humanities and Social Sciences
multidisciplinary
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Journal

Nature Communications cover
Nature Communications
IF:
15.7
Papers:
9.2W
Citations:
91.2W

Organization

M
Moderna Inc.
Scholars:
2
Papers: 2
Citations: 0
S
Scripps Research Institute
Scholars:
1.1W
Papers: 8.3K
Citations: 2.3W