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Background/objectives: For viral entry into host cells, the spike (S) protein of coronavirus (CoV) uses its S1 domain to bind to the host receptor and S2 domain to mediate the fusion between virion and cellular membranes. The S1 domain acquired multiple mutations as the severe acute respiratory syndrome coronavirus 2 (SARS-CoV-2) evolved to give rise to Variant of Concerns (VOCs) but the S2 domain has limited changes. In particular, the stem helix in S2 did not change significantly and it is fairly well-conserved across multiple beta-CoVs. In this study, we generated a murine mAb 7B2 binding to the stem helix of SARS-CoV-2.
Methods: MAb 7B2 was isolated from immunized mouse and its neutralization activity was evaluated using microneutralization, plaque reduction and cell-cell fusion assays. Bio-layer interferometry was used to measure binding affinity and AlphaFold3 was used to model the antibody-antigen interface.
Results: MAb 7B2 has lower virus neutralizing and membrane block activities when compared to a previously reported stem helix-binding human mAb S2P6. Alanine scanning and AlphaFold3 modeling reveals that residues K1149 and D1153 in S form a network of polar interactions with the heavy chain of 7B2. Conversely, S2P6 binding to S is not affected by alanine substitution at K1149 and D1153 as indicated by the high ipTM scores in the predicted S2P6-stem helix structure.
Conclusions: Our detailed characterization of the mechanism of inhibition of 7B2 reveals its distinctive binding model from S2P6 and yields insights on multiple neutralizing and highly conserved epitopes in the S2 domain which could be key components for pan-CoV vaccine development.
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http://dx.doi.org/10.3390/vaccines13070688 | DOI Listing |
Plant J
September 2025
Temasek Life Sciences Laboratory, 1 Research Link, National University of Singapore, Singapore, 117604, Singapore.
Salicylic acid (SA), a long-characterized defense hormone, is increasingly recognized for its roles in plant growth and development. However, its involvement in mediating plant growth responses to environmental cues remains less understood. Here, we show that SA negatively affects thermomorphogenic growth in Arabidopsis thaliana.
View Article and Find Full Text PDFPlanta
September 2025
Department of Life Sciences, Jeonbuk National University, 567 Baekje-daero, Deokjin-gu, Jeonju, 54896, Jeonbuk State, Korea.
PHYTOCHROME INTERACTING FACTOR4 (PIF4) plays an important role in regulating plant thermomorphogenesis. In this study, two PIF4 homologous genes, BcPIF4-1 and BcPIF4-2 (Brassica rapa subsp. CHINENSIS PIF4-1 and PIF4-2), were investigated.
View Article and Find Full Text PDFAdv Sci (Weinh)
September 2025
Shanghai Key Laboratory of Maternal Fetal Medicine, Shanghai Institute of Maternal-Fetal Medicine and Gynecologic Oncology, Shanghai First Maternity and Infant Hospital, School of Medicine, Tongji University, Shanghai, 201204, China.
Syncytiotrophoblasts (STBs) constitute one of the core components of the placenta, responsible for synthesizing pregnancy-sustaining hormones such as human chorionic gonadotropin (HCG). Deficient syncytialization of cytotrophoblasts affects the hormonal secretion and placental development, contributing to pregnancy-associated disorders, including spontaneous miscarriage. To date, the molecular mechanisms, particularly the role of transcription factors (TFs), in STB lineage specification remain incompletely understood.
View Article and Find Full Text PDFThe branch helix is a structure that forms when U2 snRNP engages with introns to initiate spliceosome assembly, and its formation is mutually exclusive with the branchpoint interacting stem loop (BSL) present in U2 snRNA. While BSL structure impacts splicing with the constrained branchpoint sequence in yeast introns, its influence in the flexible context of human branchpoints is unknown. We employed an orthogonal U2 snRNA and splicing reporter to examine effects of perturbing BSL sequence.
View Article and Find Full Text PDFCell Mol Life Sci
September 2025
Department of Orthopedics, The Seventh Affiliated Hospital of Sun Yat-sen University, Sun Yat-sen University, Shenzhen, 410000, Shenzhen, China.
Non-obstructive azoospermia (NOA) is a leading cause of male infertility, characterized by impaired spermatogenesis. Recent studies suggest that ferroptosis, an iron-dependent form of cell death, may contribute to testicular dysfunction, however, its role in NOA remains underexplored. In this study, we investigated the roles of NUPR1 and MYC in regulating ferroptosis in human spermatogonial stem cells (SSCs) and evaluated their potential as therapeutic targets for NOA.
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