A stabilized MERS-CoV spike ferritin nanoparticle vaccine elicits robust and protective neutralizing antibody responses

A Abigail E. Powell H Hannah Caruso S Soyoon Park J Jui-Lin Chen J Jessica O’Rear B Brian J. Ferrer D Daniel J. Stieh A Adam M. Weiss (The Department of Chemistry, University of Chicago) D David M. Belnap (School of Biological Sciences and Department of Biochemistry) A Audrey Walker A Anneliese Bruening A Airn Hartwig K Kaitlin R. Sprouse A Amin Addetia A Abeer N. Alshukairi V Vida Ahyong C Cristy S. Dougherty D David Veesler R Richard Bowen J Julie E. Ledgerwood M Michael S. Kay P Payton A.-B. Weidenbacher B Brad A. Palanski

Abstract

Abstract Middle East respiratory syndrome coronavirus (MERS-CoV) was identified as a human pathogen in 2012 and causes ongoing sporadic infections and outbreak clusters. Despite case fatality rates (CFRs) of over 30% and considerable pandemic potential, a safe and efficacious vaccine has not been developed. Here we report the design, characterization, and preclinical evaluation of MERS-CoV antigens. Our lead candidate comprises a stabilized spike displayed on a self-assembling ferritin nanoparticle that can be produced from a high-expressing, stable cell pool. This vaccine elicits robust MERS-CoV pseudovirus and authentic virus neutralizing antibody titers in BALB/c mice. Immunization of male non-human primates (NHPs) with one dose of Alhydrogel-adjuvanted vaccine elicited a > 10 3 geometric mean titer of pseudovirus neutralizing antibodies that was boosted with a second dose. Sera from these NHPs exhibited cross-reactivity against spike-pseudotyped lentiviruses from MERS-CoV clades A, B, and C as well as a distant pangolin merbecovirus. In human DPP4 transgenic mice, immunization provided dose-dependent protection against MERS-CoV lethal challenge, and in an established alpaca challenge model using female alpacas, immunization fully protected against MERS-CoV infection. This MERS-CoV nanoparticle vaccine is a promising candidate for clinical advancement to protect at-risk individuals and for future use in a potential outbreak setting.

Article Details

Volume / Issue Vol. 17, Issue 1
Published February 05, 2026
ISSN 2041-1723
Publisher Nature Portfolio

Journal Info

Nature Communications

Nature Portfolio

ISSN: 2041-1723 Open Access Life Sciences

Authors (23)

A

Abigail E. Powell

H

Hannah Caruso

S

Soyoon Park

J

Jui-Lin Chen

J

Jessica O’Rear

B

Brian J. Ferrer

D

Daniel J. Stieh

A

Adam M. Weiss

The Department of Chemistry, University of Chicago

D

David M. Belnap

School of Biological Sciences and Department of Biochemistry

A

Audrey Walker

A

Anneliese Bruening

A

Airn Hartwig

K

Kaitlin R. Sprouse

A

Amin Addetia

A

Abeer N. Alshukairi

V

Vida Ahyong

C

Cristy S. Dougherty

D

David Veesler

R

Richard Bowen

J

Julie E. Ledgerwood

M

Michael S. Kay

P

Payton A.-B. Weidenbacher

B

Brad A. Palanski