Evidence map›Paper›PMID 40136024›Full record

ArticlemBio2025

Neutralization and spike stability of JN.1-derived LB.1, KP.2.3, KP.3, and KP.3.1.1 subvariants.

Pei Li, Julia N Faraone, Cheng Chih Hsu, Michelle Chamblee, Yajie Liu, Yi-Min Zheng, Yan Xu, Claire Carlin, Jeffrey C Horowitz, Rama K Mallampalli and 8 more

Abstract read
In one paragraph

Article in mBio, 2025. The graph could read no effect estimate from its abstract, so it casts no vote on the map. Cited by 38 papers.

0numbers the graph read from it
0cells of the map it votes in
38citing papers in PubMed
–field-weighted citation impact
1 · What the graph read from it

What it found

Each row is one number read from the abstract, on the scale the paper reported it, with its interval. Left of the dashed line favours the treatment, right favours the comparator. Under each row is the sentence it came from. New to these charts? A ten-minute tutorial.

The abstract states no effect estimate the extractor could read, or names no intervention and outcome on the map, so this paper lights no cell and moves no belief. It is still indexed, cited and linked below.

2 · The registry

The trial behind it

Trials whose registry record cites this paper, or whose number appears in the abstract. A trial that started after this paper was published is citing it as background, not reporting it.

Neither the registry nor the abstract names a trial number. If this is a trial report, that itself is worth knowing.

3 · Its place in the literature

Who cites it

38 citing papers in PubMed.

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  8. Spike destabilization attenuates Mink Cluster 5 SARS-CoV-2.Proceedings of the National Academy of Sciences of the United States of America · 2026
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4 · The record

Corrections and comments

5 · Who and what money

Authors and funding

18 authors.

Pei LiCenter for Retrovirus Research, The Ohio State University, Columbus, Ohio, USA.
Julia N FaraoneCenter for Retrovirus Research, The Ohio State University, Columbus, Ohio, USA.
Cheng Chih HsuDepartment of Veterinary Biosciences, The Ohio State University, Columbus, Ohio, USA.
Michelle ChambleeDepartment of Veterinary Biosciences, The Ohio State University, Columbus, Ohio, USA.
Yajie LiuCenter for Retrovirus Research, The Ohio State University, Columbus, Ohio, USA.
Yi-Min ZhengCenter for Retrovirus Research, The Ohio State University, Columbus, Ohio, USA.
Yan XuTexas Therapeutic Institute, Institute of Molecular Medicine, University of Texas Health Science Center at Houston, Houston, Texas, USA.
Claire CarlinDepartment of Internal Medicine, Division of Cardiovascular Medicine, The Ohio State University, Columbus, Ohio, USA.
Jeffrey C HorowitzDepartment of Internal Medicine, Division of Pulmonary, Critical Care, and Sleep Medicine, The Ohio State University, Columbus, Ohio, USA.
Rama K MallampalliDepartment of Internal Medicine, Division of Pulmonary, Critical Care, and Sleep Medicine, The Ohio State University, Columbus, Ohio, USA.
Linda J SaifCenter for Food Animal Health, Animal Sciences Department, OARDC, College of Food, Agricultural and Environmental Sciences, The Ohio State University, Columbus, Ohio, USA.ORCID 0000-0002-3224-9009
Eugene M OltzDepartment of Microbial Infection and Immunity, The Ohio State University, Columbus, Ohio, USA.
Daniel JonesDepartment of Pathology, The Ohio State University Wexner Medical Center, Columbus, Ohio, USA.
Jianrong LiDepartment of Veterinary Biosciences, The Ohio State University, Columbus, Ohio, USA.ORCID 0000-0002-7130-1084
Richard J GuminaDepartment of Internal Medicine, Division of Cardiovascular Medicine, The Ohio State University, Columbus, Ohio, USA.
Joseph S BednashDepartment of Internal Medicine, Division of Pulmonary, Critical Care, and Sleep Medicine, The Ohio State University, Columbus, Ohio, USA.
Kai XuTexas Therapeutic Institute, Institute of Molecular Medicine, University of Texas Health Science Center at Houston, Houston, Texas, USA.
Shan-Lu LiuCenter for Retrovirus Research, The Ohio State University, Columbus, Ohio, USA.ORCID 0000-0003-1620-3817

Funding

Role of the Non-canonical Inflammasome in SARS-CoV-2-mediated Pathology and CoagulopathyP01AI175399 · NIAID · OHIO STATE UNIVERSITY · PI Amal O Amer, Estelle A Cormet-Boyaka · 2024 to 2026
$12.0M
Project 3: Responding to Changing Serological and Viral Information around COVID-19 (RESPOND)U54CA260582 · NCI · OHIO STATE UNIVERSITY · PI MCALEARNEY, ANN SCHECK, OLTZ, EUGENE M · 2020 to 2024
$10.4M
Project 3: Dr. LiP01AI112524 · NIAID · RESEARCH INST NATIONWIDE CHILDREN'S HOSP · PI PEEPLES, MARK E. · 2015 to 2019
$6.8M
Messenger RNA Capping and Methylation in PneumovirusesR01AI090060 · NIAID · OHIO STATE UNIVERSITY · PI LI, JIANRONG · 2011 to 2023
$4.0M
Structure, function, and antigenicity of emerging henipavirus surface glycoproteinsU01AI173348 · NIAID · UNIVERSITY OF TEXAS HLTH SCI CTR HOUSTON · PI Kai Xu · 2023 to 2026
$2.4M
The impact of vitamin A on the gut-mammary gland-secretory IgA axis during enteric viral infectionsR01HD095881 · NICHD · OHIO STATE UNIVERSITY · PI SAIF, LINDA J., VLASOVA, ANASTASIA NICKOLAEVNA · 2018 to 2022
$2.3M
Interdisciplinary Program in Microbe-Host BiologyT32AI165391 · NIAID · OHIO STATE UNIVERSITY · PI RAJENDAR K DEORA, Daniel J Wozniak · 2022 to 2026
$1.5M
RNA epigenetic modifications in SARS-CoV-2R01AI185617 · NIAID · OHIO STATE UNIVERSITY · PI Jianrong Li, Mark E. Peeples · 2025 to 2026
$1.1M
Transfer RNAs as novel mediators in acute lung injuryK08HL169725 · NHLBI · OHIO STATE UNIVERSITY · PI Joseph Stanley Bednash · 2024 to 2026
$491k
RNA internal 2’-O methylation in SARS-CoV-2R21AI180667 · NIAID · OHIO STATE UNIVERSITY · PI LI, JIANRONG · 2024 to 2025
$453k
Targeting glycoprotein (G) domain-III for pan-lyssavirus nanobody therapeuticsUH2AI171611 · NIAID · UNIVERSITY OF TEXAS HLTH SCI CTR HOUSTON · PI XU, KAI · 2023 to 2024
$423k
HHS | National Institutes of Health (NIH) HD095881HHS | National Institutes of Health (NIH) HL169725HHS | National Institutes of Health (NIH) P01AI175399HHS | National Institutes of Health (NIH) R01AI090060HHS | National Institutes of Health (NIH) T32AI165391HHS | NIH | National Cancer Institute (NCI) U54CA260582NCI NIH HHS U54 CA260582NHLBI NIH HHS K08 HL169725NIAID NIH HHS P01 AI112524NIAID NIH HHS P01 AI175399NIAID NIH HHS R01 AI090060NIAID NIH HHS R01 AI185617NIAID NIH HHS R21 AI180667NIAID NIH HHS T32 AI165391NIAID NIH HHS U01 AI173348NIAID NIH HHS UH2 AI171611NICHD NIH HHS R01 HD095881U.S. Department of Agriculture (USDA) P23OA000000C019
6 · The paper itself

Abstract

During the summer of 2024, coronavirus disease 2019 (COVID-19) cases surged globally, driven by variants derived from JN.1 subvariants of severe acute respiratory syndrome coronavirus 2 that feature new mutations, particularly in the N-terminal domain (NTD) of the spike protein. In this study, we report on the neutralizing antibody (nAb) escape, infectivity, fusion, and spike stability of these subvariants-LB.1, KP.2.3, KP.3, and KP.3.1.1. Our findings demonstrate that all of these subvariants are highly evasive of nAbs elicited by the bivalent mRNA vaccine, the XBB.1.5 monovalent mumps virus-based vaccine, or from infections during the BA.2.86/JN.1 wave. This reduction in nAb titers is primarily driven by a single serine deletion (DelS31) in the NTD of the spike, leading to a distinct antigenic profile compared to the parental JN.1 and other variants. We also found that the DelS31 mutation decreases pseudovirus infectivity in CaLu-3 cells, which correlates with impaired cell-cell fusion. Additionally, the spike protein of DelS31 variants appears more conformationally stable, as indicated by reduced S1 shedding both with and without stimulation by soluble ACE2 and increased resistance to elevated temperatures. Molecular modeling suggests that DelS31 enhances the NTD-receptor-binding domain (RBD) interaction, favoring the RBD down conformation and reducing accessibility to ACE2 and specific nAbs. Moreover, DelS31 introduces an N-linked glycan at N30, shielding the NTD from antibody recognition. These findings underscore the role of NTD mutations in immune evasion, spike stability, and viral infectivity, highlighting the need to consider DelS31-containing antigens in updated COVID-19 vaccines.IMPORTANCEThe emergence of novel severe acute respiratory syndrome coronavirus 2 variants continues to pose challenges for global public health, particularly in the context of immune evasion and viral stability. This study identifies a key N-terminal domain (NTD) mutation, DelS31, in JN.1-derived subvariants that enhances neutralizing antibody escape while reducing infectivity and cell-cell fusion. The DelS31 mutation stabilizes the spike protein conformation, limits S1 shedding, and increases thermal resistance, which possibly contribute to prolonged viral persistence. Structural analyses reveal that DelS31 enhances NTD-receptor-binding domain interactions by introducing glycan shielding, thus decreasing antibody and ACE2 accessibility. These findings emphasize the critical role of NTD mutations in shaping viral evolution and immune evasion, underscoring the urgent need for updated coronavirus disease 2019 vaccines that account for these adaptive changes.

Indexed as

Antibodies, NeutralizingCOVID-19SARS-CoV-2Spike Glycoprotein, CoronavirusAntibodies, ViralCOVID-19 VaccinesHumansMutationProtein StabilityVirus InternalizationAntibodies, NeutralizingAntibodies, ViralCOVID-19 VaccinesSpike Glycoprotein, Coronavirusspike protein, SARS-CoV-2cell-cell fusionCOVID-19 vaccineDelS31 mutationimmune evasionJN.1 subvariantsSARS-CoV-2spike protein stability

Identifiers

PMID40136024
PMCPMC12077133

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Read under generation 80e0d062 · epoch 390. Bibliography from PubMed, PubMed Central and OpenAlex; grants from NIH RePORTER; trial links from ClinicalTrials.gov; estimates, votes and beliefs from the OpenQuestion graph.