1.Multimerization through PEGylation improves properties of a single-chain variable fragment against West Nile virus
Wanlu ZHU ; Lingli WU ; Huihui JIA ; Beifen SHEN ; Jiannan FENG ; Jun ZHANG ; He XIAO
Chinese Journal of Microbiology and Immunology 2025;45(11):914-919
Objective:To obtain a polyvalent single-chain variable fragment(scFv)against West Nile virus through PEGylation in order to improve its antigen-binding ability and neutralizing activity.Methods:A scFv carrying a C-terminal cysteine residue(scFvC)was constructed by introducing Cys into the C-terminal of scFv against West Nile virus. Then the multimerization of scFvC was achieved by targeting the thiol group of Cys with maleimide-activated polyethylene glycol. ELISA was used to detect the antigen-binding activity of the multivalent scFvC. Pseudovirus-based neutralization assay was used to evaluate the neutralizing activity of the multivalent scFvC in vitro. One-way analysis of variance was used for statistical analysis. Results:The PEGylated scFvC multimers showed higher antigen-binding ability than the monomeric scFvC. In the pseudovirus-based neutralization assay,both monomeric scFvC and PEGylated scFvC multimers showed good neutralizing activity compared with the control group( P<0.000 1). Moreover,the PEGylated scFvC multimers showed a more effective ability to block the pseudovirus infection in target cells( P<0.05),suggesting that the PEGylated scFvC multimers could enhance their function in vitro through avidity effect. Conclusion:In this study,a scFvC targeting West Nile virus is successfully constructed and its polyvalent form is generated through PEGylation,which improves the antigen-binding and neutralizing activity of the parental scFv.
2.Sesamin induced ferroptosis in triple negative breast cancer cells through P53/SLC7A11/GPX4 pathway
Mingmei Zhu ; Wanlu Yu ; Hongyue Xu ; Xinhua Cui ; Danping Peng ; Lu Yu
Acta Universitatis Medicinalis Anhui 2025;60(11):2019-2025
Objective:
To investigate the ferroptosis induced by sesamin in triple-negative breast cancer ( TNBC) 4T1 cells and its underlying mechanism .
Methods:
The binding energy of sesamin with glutathione peroxidase 4 (GPX4) , solute carrier family 7 member 11 ( SLC7A11) , and P53 was analyzed by molecular docking. Mouse TNBC cell line 4T1 was used as a model . Different concentrations of sesamin were administered to 4T1 cells . The effect of sesamin on cell viability was assessed using the cell counting kit 8 (CCK-8) . Transwell assay was used to evaluate the effect of sesamin on cell migration and invasion . The contents of Fe2 + , malondialdehyde (MDA) , and reduced glutathione (GSH) in the cells were measured using kits . 2 ′,7 ′-dichlorofluorescein diacetate (DCFH-DA) probe was employed to detect the content of reactive oxygen species (ROS) in cells . Real-time quantitative reverse transcription polymerase chain reaction (RT-qPCR) and Western blot were performed to evaluate the expression of GPX4 , SLC7A11 , and P53 at mRNA and protein levels .
Results:
The binding energies of sesamin with GPX4 , SLC7A11 and P53 were - 21 . 46 , - 21 . 67 , and - 27 . 03 kJ/mol , respectively . Compared with the control group , the viability of 4T1 cells in different concentrations of sesamin groups decreased gradually ( P < 0. 001) , and the migration and invasion ability of 4T1 cells in 20 , 40 , and 80 μmol/L sesamin groups decreased gradually (all P < 0. 001) . Compared with the control group , the contents of Fe2 + , MDA , and ROS in 4T1 cells of 20 , 40 , and 80 μmol/L sesamin groups increased , and the content of GSH decreased . Compared with the control group , the mRNA and protein expression of GPX4 and SLC7A11 in 4T1 cells in the sesamin treatment group decreased , and the mRNA and protein expression of P53 increased ( all P < 0. 001) .
Conclusion
Sesamin may induce the ferroptosis in 4T1 cells through P53/SLC7A11 /GPX4 pathway .
3.Defucosylation of anti-West Nile virus NS1 antibody enhances ADCC
Wanlu ZHU ; Lingli WU ; Nan CHEN ; Beifen SHEN ; Jiannan FENG ; Jun ZHANG ; He XIAO
Chinese Journal of Microbiology and Immunology 2025;45(9):740-745
Objective:To obtain fucose-free anti-West Nile virus nonstructural protein 1 (NS1) antibody and evaluate its antibody-dependent cell-mediated cytotoxicity (ADCC).Methods:The guanosine diphosphate-fucose transporter SLC35C1 in CHO cells was knocked out using CRISPR/Cas9 gene editing technology to obtain the fucose-free cell line CHO SLC35C1 -/-. CHO SLC35C1 -/- cells were used to produce fucose-free anti-West Nile virus NS1 antibodies. The binding abilities of the antibodies to the target antigen of West Nile virus NS1 protein and the human high-affinity IgG Fc receptor hFcγRⅠ (hCD64) were detected by ELISA and flow cytometry, respectively. The ADCC activity of the antibodies was detected by ADCC reporter gene assay. One-way analysis of variance was used for statistical analysis. Results:CHO SLC35C1 -/- cells expressed green fluorescent protein but not Lens culinaris agglutinin. The anti-West Nile virus NS1 antibodies produced by CHO SLC35C1 -/- cells with a fucose content of 0.22% could bind to West Nile virus NS1 protein in a concentration-dependent manner. Compared with the wild-type antibodies, the fucose-free anti-West Nile virus NS1 antibodies showed a stronger binding ability to hFcγRⅠ(hCD64), as indicated by a significant increase in fluorescence intensity. The ADCC reporter gene assay showed that the fucose-free anti-West Nile virus NS1 antibodies had increased activity as compared with the wild-type antibodies ( P<0.001). Conclusion:The fucose-free anti-West Nile virus NS1 antibodies may be used to protect against West Nile virus infection.
4.Defucosylation of anti-West Nile virus NS1 antibody enhances ADCC
Wanlu ZHU ; Lingli WU ; Nan CHEN ; Beifen SHEN ; Jiannan FENG ; Jun ZHANG ; He XIAO
Chinese Journal of Microbiology and Immunology 2025;45(9):740-745
Objective:To obtain fucose-free anti-West Nile virus nonstructural protein 1 (NS1) antibody and evaluate its antibody-dependent cell-mediated cytotoxicity (ADCC).Methods:The guanosine diphosphate-fucose transporter SLC35C1 in CHO cells was knocked out using CRISPR/Cas9 gene editing technology to obtain the fucose-free cell line CHO SLC35C1 -/-. CHO SLC35C1 -/- cells were used to produce fucose-free anti-West Nile virus NS1 antibodies. The binding abilities of the antibodies to the target antigen of West Nile virus NS1 protein and the human high-affinity IgG Fc receptor hFcγRⅠ (hCD64) were detected by ELISA and flow cytometry, respectively. The ADCC activity of the antibodies was detected by ADCC reporter gene assay. One-way analysis of variance was used for statistical analysis. Results:CHO SLC35C1 -/- cells expressed green fluorescent protein but not Lens culinaris agglutinin. The anti-West Nile virus NS1 antibodies produced by CHO SLC35C1 -/- cells with a fucose content of 0.22% could bind to West Nile virus NS1 protein in a concentration-dependent manner. Compared with the wild-type antibodies, the fucose-free anti-West Nile virus NS1 antibodies showed a stronger binding ability to hFcγRⅠ(hCD64), as indicated by a significant increase in fluorescence intensity. The ADCC reporter gene assay showed that the fucose-free anti-West Nile virus NS1 antibodies had increased activity as compared with the wild-type antibodies ( P<0.001). Conclusion:The fucose-free anti-West Nile virus NS1 antibodies may be used to protect against West Nile virus infection.
5.Multimerization through PEGylation improves properties of a single-chain variable fragment against West Nile virus
Wanlu ZHU ; Lingli WU ; Huihui JIA ; Beifen SHEN ; Jiannan FENG ; Jun ZHANG ; He XIAO
Chinese Journal of Microbiology and Immunology 2025;45(11):914-919
Objective:To obtain a polyvalent single-chain variable fragment(scFv)against West Nile virus through PEGylation in order to improve its antigen-binding ability and neutralizing activity.Methods:A scFv carrying a C-terminal cysteine residue(scFvC)was constructed by introducing Cys into the C-terminal of scFv against West Nile virus. Then the multimerization of scFvC was achieved by targeting the thiol group of Cys with maleimide-activated polyethylene glycol. ELISA was used to detect the antigen-binding activity of the multivalent scFvC. Pseudovirus-based neutralization assay was used to evaluate the neutralizing activity of the multivalent scFvC in vitro. One-way analysis of variance was used for statistical analysis. Results:The PEGylated scFvC multimers showed higher antigen-binding ability than the monomeric scFvC. In the pseudovirus-based neutralization assay,both monomeric scFvC and PEGylated scFvC multimers showed good neutralizing activity compared with the control group( P<0.000 1). Moreover,the PEGylated scFvC multimers showed a more effective ability to block the pseudovirus infection in target cells( P<0.05),suggesting that the PEGylated scFvC multimers could enhance their function in vitro through avidity effect. Conclusion:In this study,a scFvC targeting West Nile virus is successfully constructed and its polyvalent form is generated through PEGylation,which improves the antigen-binding and neutralizing activity of the parental scFv.
6.Research progress in and applications of influenza virus pseudoviruses
Wanlu ZHU ; Jun ZHANG ; He XIAO
Military Medical Sciences 2024;48(11):869-873
Since emergence,the influenza virus has triggered numerous global pandemics and claimed more than ten million lives.This virus poses not only a severe threat to human life and health,but significant challenges to global economy and public health.The research on highly pathogenic influenza virus strains(such as H5 and H7)necessitates the use of biosafety level 3 laboratories,which significantly escalates the experimental risks and costs.The pseudovirus technology,as a relatively safe and effective research technique,has been applied in the studies of various high-risk viruses.Thanks to constant research and refinement,the pseudovirus technology for the influenza virus currently boasts such advantages as user-friendliness and good safety,and has been extensively used antibody neutralization and screening of antiviral drugs.This article reviews the research progress in the pseudovirus technology for the influenza virus.
7.Expression and in vitro activity of a neutralizing antibody against West Nile virus that reduces antibody-dependent enhancement
Xiangjun HAO ; Nan CHEN ; Wanlu ZHU ; Jing WANG ; Guojiang CHEN ; Chunxia QIAO ; Xinying LI ; Beifen SHEN ; Jiannan FENG ; Lihui CHAI ; He XIAO
Chinese Journal of Microbiology and Immunology 2024;44(1):44-49
Objective:To establish an antibody expression system to reduce the antibody-dependent enhancement (ADE) effect of target antibody.Methods:Site-directed mutagenesis was used to mutate the 234 and 235 sites of the Fc region of the mammalian cell antibody expression vector-L234A and L235A to establish the antibody expression vector pFRT-IgG1κ-FcM. An antibody Wt-WNV with significant ADE effect obtained in previous work was selected and expressed by the pFRT-IgG1κ-FcM system to obtain mutant antibody FcM-WNV. The binding ability of FcM-WNV to target antigen West Nile virus envelope protein-DⅢ (WNV E-DⅢ) was detected by ELISA, and the its binding ability to human high-affinity IgG Fc receptor hFcγRⅠ (hCD64 ) was analyzed by flow cytometry. The neutralizing activity of FcM-WNV in vitro was detected by pseudovirus infection of host cells (BHK21 and K562). Results:The expression levels of FcM-WNV and Wt-WNV were comparable, and FcM-WNV could recognize and bind to WNVE-DIII in a concentration-dependent manner. Compared with Wt-WNV, the binding ability of FcM-WNV to hCD64 was significantly weakened, showing a significant decrease in fluorescence intensity. Consistent with the previous experimental results, Wt-WNV at a concentration of 5 μg/ml significantly enhanced the infection of K562 by WNV pseudovirus, while FcM-WNV at a concentration of 5 μg/ml could effectively block pseudovirus infection in both K562 and BHK21 cells.Conclusions:The established antibody expression system can effectively reduce the ADE effect of the target antibody.
8.Establishment and evaluation of a neutralizing antibody detection model for West Nile virus pseudovirus
Wanlu ZHU ; Nan CHEN ; Xiangjun HAO ; Junjuan FENG ; Xing LU ; Jing WANG ; Guojiang CHEN ; Chunxia QIAO ; Xinying LI ; Chenghua LIU ; Beifen SHEN ; Jiannan FENG ; Jun ZHANG ; He XIAO
Chinese Journal of Experimental and Clinical Virology 2024;38(2):188-192
Objective:To establish an in vivo infection model of West Nile virus (WNV) pseudovirus and evaluate the neutralizing activity of antibody WNV-XH1.Methods:A stable cell line that can package the WNV pseudovirus was established in the early stage to prepare the pseudovirus supernatant. The supernatant was concentrated and infected BHK21 cells to detect the titer of the pseudovirus. After intraperitoneal injection of the pseudovirus into C57BL/J mice, bioluminescence imaging was performed to observe the infection status of the pseudovirus in the mice. After simultaneous infection, blood was collected and ELISA was used to detect NS1 levels in mouse serum. The in vivo functional activity of antibody WNV-XH1 was evaluated using the established mouse infection model.Results:Fluorescence was detected in C57BL/J mice infected with WNV pseudovirus, and the NS1 levels in the peripheral blood serum of mice infected with pseudovirus were significantly higher than those of non infected mice (1.453±0.09vs0.305±0.018). After intravenous administration of WNV-XH1 antibody before the attack, the fluorescence signal in the mice decreased and the serum NS1 level decreased (0.384±0.015).Conclusions:A successful in vivo infection model of WNV pseudovirus was established, and it was confirmed that the antibody WNV-XH1 had a protective effect against WNV pseudovirus infection in vivo.


Result Analysis
Print
Save
E-mail