mRNA-Encoded Antibodies: An Emerging Paradigm in Antiviral Protection
Abstract
1. Introduction
2. Rationale for Using Recombinant Antibodies in Antiviral Therapy
3. The Structure and Therapeutic Potential of Recombinant Antibodies

| # | International Nonproprietary Name (Alternative Names) | Brand Name | Target; Mechanism of Action | Indication First Approved or Reviewed | Originator; Country | Developer; Country | Format; Fc Modifications; Reason for Fc Modifications | First US Approval Date | First EU Approval Date | First Global Approval (Country, Year) | Reference |
|---|---|---|---|---|---|---|---|---|---|---|---|
| 1 | Ibalizumab (TMB-355, 5A8) | Trogarzo | CD4 receptor on human T-cells; HIV fusion inhibitor | Treatment of HIV infection | Biogen Idec; US | Taimed Biologics/Theratechnologies; Taiwan/Canada | Humanized IgG4 kappa; None | 06.03.2018 | 26.09.2019; withdrawn 01.01.2023 | US, 2018 | [66] |
| 2 | Atoltivimab/Maftivimab/Odesivimab (REGN-EB3; REGN3470/3471/3479) | Inmazeb | Ebola virus glycoprotein (GP); Virus internalisation inhibitor | Treatment of Ebola virus infection | Regeneron Pharmaceuticals; US | NIAID/Regeneron Pharmaceutical; US | Mixture of 3 human IgG1 kappa; None | 14.10.2020 | NA | US, 2020 | [67] |
| 3 | Ansuvimab (EVB114, mAb114) | Ebanga | Ebola virus glycoprotein (GP); Virus internalisation inhibitor | Treatment of Ebola virus infection | Humabs BioMed; Switzerland | Ridgeback Biotherapeutics; US | Human IgG1 kappa; None | 21.12.2020 | NA | US, 2020 | [68] |
| 4 | RAB-1 (SII RMAb, 17C7) | RabiShield | Rabies virus glycoprotein (G protein); Virus internalisation inhibitor | Post-exposure prophylaxis of rabies | CDC; US | Serum Institute of India; India | Human IgG1; None | NA | NA | India, 2016 | [69] |
| 5 | Docaravimab/Miromavimab (M777-16-3/MAb 62-71-3) | TwinRab | Rabies virus glycoprotein (G protein); Virus internalisation inhibitor | Post-exposure prophylaxis of rabies | Zydus Cadila; India | Zydus Cadila; India | Mixture of 2 murine mIgG2b and mIgG1 kappa; None | NA | NA | India, 2019 | [70] |
| 6 | Ormutivimab (NM-57) | rhRIG | Rabies virus glycoprotein (G protein); Virus internalisation inhibitor | Post-exposure prophylaxis of rabies | Thomas Jefferson University; US | Molecular Targeting Technologies/North China Pharmaceutical Corporation; China | Human IgG1 lambda2; None | NA | NA | China, 2022 | [71] |
| 7 | Mazorelvimab/Zamerovimab (SYN023; CTB011/CTB012) | Krebi | Rabies virus glycoprotein (G protein); Virus internalisation inhibitor | Post-exposure prophylaxis of rabies | Synermore Biologics; Taiwan | Synermore Biologics; Taiwan | Mixture of 2 humanized IgG1 kappa; None | NA | NA | China, 2024 | [72] |
| 8 | Palivizumab (MEDI-493) | Synagis | Respiratory syncytial virus F glycoprotein; Viral fusion protein inhibitors | Prevention of respiratory syncytial virus infection | MedImmune; US | MedImmune/AbbVie/AstraZeneca; US/UK | Humanized IgG1 kappa; None | 19.06.1998 | 13.08.1999 | US, 1998 | [46] |
| 9 | Nirsevimab (MEDI8897) | Beyfortus | Respiratory syncytial virus F glycoprotein; Viral fusion protein inhibitor | Prevention of respiratory syncytial virus infection | AIMM Therapeutics; Netherlands | AstraZeneca/Sanofi; UK/France | Human IgG1 kappa; M252Y/S254T/T256E (YTE); Extends half-life | 17.07.2023 | 31.10.2022 | EU, 2022 | [48] |
| 10 | Clesrovimab (MK-1654) | Enflonsia | Respiratory syncytial virus F glycoprotein; Viral fusion protein inhibitor | Prevention of respiratory syncytial virus infection | Merck Sharp & Dohme; US | Merck Sharp & Dohme; US | Human IgG1 kappa; M252Y/S254T/T256E (YTE); Extends half-life | 09.06.2025 | NA | US, 2025 | [35] |
| 11 | Vilobelimab (CaCP29; IFX-1) | Gohibic | C5a receptor on human immune cells; Complement C5a inhibitor | Treatment of COVID-19-induced ARDS | InflaRx; Germany/US | InflaRx/Staidson Beijing BioPharmaceuticals; Germany/US/China | Humanized IgG4 kappa; None | 04.04.2023 (EUA) | 13.01.2025 | US, 2023 | [73] |
| 12 | Pemivibart (VYD222) | Pemgarda | SARS-CoV-2 Spike protein; Virus internalisation inhibitor | Prevention of COVID-19 | Invivyd; US | Invivyd; US | Human IgG1 kappa; M435L/N441A (LA); Extends half-life | 22.03.2024 (EUA) | NA | US, 2024 | [74] |
| 13 | Sipavibart (AZD3152, Omi-42) | Kavigale | SARS-CoV-2 Spike protein; Virus internalisation inhibitor | Prevention of COVID-19 | RQ Bio; UK | RQ Bio/AstraZeneca; UK | Human IgG1 lambda; L234F/L235E/P331S (TM); Reduce effector function; M252Y/S254T/T256E (YTE); Extends half-life | NA | 20.01.2025 | EU, 2025 | [75] |
| # | Name (Alternative Names) | AdisInsight ID | Target; Mechanism of Action | Active Indications (Highest Phase) | Latest Study Start | Latest Study Status | Originator; Country | Sponsor; Country | ClinicalTrials.gov ID (Chronological) | Reference |
|---|---|---|---|---|---|---|---|---|---|---|
| 1 | Semzuvolimab (UB-421; B4C7) | 800014102 | CD4 receptor on human T-cells; HIV fusion inhibitor | Phase III | 01.03.2024 | Not yet recruiting | United Biomedical; US | United BioPharma/UBP Greater China; Taiwan/China | NCT04406727 (Phase III); NCT04620291 (Phase I); NCT04985890 (Phase II) | [76] |
| 2 | Teropavimab/Zinlirvimab (3BNC117-LS/10-1074-LS; GS-5423/GS-2872) | 800053320/800057114 | HIV-1 envelope protein gp120 (CD4 binding site/V3 loop); Virus internalisation inhibitors | Phase II | 05.09.2024 | Recruiting | Rockefeller University; US | Gilead Sciences/NIAID; US | NCT04319367 (Phase II); NCT05245292 (Phase I); NCT05729568 (Phase II); NCT05612178 (Phase I); NCT06071767 (Phase I/II); NCT05300035 (Phase II); NCT06031272 (Phase I); NCT07054931 (Phase II) | [77,78] |
| 3 | N6LS (VH3810109; GSK3810109) | 800056714 | HIV-1 envelope protein gp120; Virus internalisation inhibitor | Phase II | 10.07.2025 | Recruiting | NIAID; US | ViiV Healthcare; UK | NCT05996471 (Phase II); NCT07053384 (Phase I) | [79] |
| 4 | VRC07-523LS (TMB-380) in mAb combinations (with CAP256V2LS; TMB-365; PGT121.414.LS; PGDM1400LS) | 800057129 (800067844/800057180/800050846) | HIV-1 envelope protein gp120; Virus internalisation inhibitors | Phase II | 15.02.2026 | Not yet recruiting | NIAID (NIAID/ADARC/Theraclone Science/NIAID); US | NIAID/TaiMed Biologics; US/Taiwan | NCT04983030 (Phase I/II); NCT05890963 (Phase I); NCT06812494 (Phase II); NCT07215468 (Phase II); NCT06517693 (Phase I); NCT06987318 (Phase I) | [80,81,82,83,84] |
| 5 | Tobevibart (BRII-877; VIR-3434) | 800056267 | HBsAg; Virus internalisation inhibitor (hepatitis B virus/hepatitis D virus) | Phase II/III | 05.08.2025 | Recruiting | Vir Biotechnology; US | Vir Biotechnology; US | NCT05484206 (Phase II); NCT06216470 (Phase II); NCT06903338 (Phase III); NCT07128550 (Phase III); NCT07142811 (Phase II) | [85] |
| 6 | Silevimig (GR1801) | 800073709 | Rabies virus glycoprotein (G protein); Virus internalisation inhibitor | Phase III | 21.10.2022 | Completed (06.09.2024) | Genrix (Shanghai) Biopharmaceutical; China | Genrix (Shanghai) Biopharmaceutical; China | NCT05846568 (Phase III) | [86] |
| 7 | AV-1 | 800057569 | Dengue virus envelope protein; Viral fusion protein inhibitor | Phase II | 07.01.2025 | Active, not recruiting | AbViro; US | AbViro; US | NCT06799741 (Phase II) | NA |
| 8 | TNM001 | 800071192 | Respiratory syncytial virus F glycoprotein; Viral fusion protein inhibitor | Phase III | 30.11.2024 | Not yet recruiting | Trinomab Biotech; China | Zhuhai Trinomab Pharmaceutical; China | NCT06083623 (Phase II/Phase III); NCT06710925 (Phase III) | NA |
| 9 | AK0610 | 800066806 | Respiratory syncytial virus F glycoprotein; Viral fusion protein inhibitor | Phase II | 30.10.2025 | Recruiting | Ark Biosciences; China | Shanghai Ark Biopharmaceutical; China | NCT06996704 (Phase I/II) | NA |
| 10 | AER002 (P2G3) | 800073917 | SARS-CoV-2 Spike protein; Virus internalisation inhibitor | Phase II | 01.08.2023 | Active, not recruiting | Aerium Therapeutics; US | Michael Peluso, MD; US | NCT05877508 (Phase II) | [87] |
| 11 | SA55 (BD55-5514) | 800075048 | SARS-CoV-2 Spike protein; Virus internalisation inhibitor | Phase II | 31.08.2023 | Recruiting | Sinovac Biotech; China | Sinovac Life Sciences; China | NCT06042764 (Phase II) | [88] |
| 12 | VYD2311 | 800077852 | SARS-CoV-2 Spike protein; Virus internalisation inhibitor | Phase III | 08.01.2026 | Recruiting | Invivyd; US | Invivyd; US | NCT06523153 (Phase I); NCT07298434 (Phase III) | [89] |
4. mRNA-Based Platforms for Antibody Therapeutics
5. Rational Design of Antibody-Encoding mRNAs
6. mRNA-Encoded Recombinant Antibodies in Antiviral Therapy
6.1. mRNA-Encoded Recombinant Antibodies
| Virus Species | Study Number in Review | Original Antibody (Reference) | mRNA Therapeutic | Viral Target | Antibody Type | Antibody Expression Method | Delivery Method, Vehicle Composition, Route of Administration, Dosing Regimen, Time Before and/or After Infection | Animal Species and Study Design | Reference (Originator) |
|---|---|---|---|---|---|---|---|---|---|
| HIV-1 | 1 | VRC01 [254] | VRC01 mRNA-LNP | Surface Env-gp120 glycoprotein (CD4 binding site) | Full-length IgG antibody | Co-expression of mRNAs encoding HC and LC | LNPs (ionizable cationic lipid/DSPC/cholesterol/PEG-lipid at molar ratios of 50:10:38.5:1.5), i.v., up to 1.4 mg/kg, 24 h prior to infection | BALB/c, C57BL/6, and NSG mice (pharmacokinetic study); humanized CD34-NSG and BLT mice (protective efficacy was demonstrated under a prophylactic mRNA administration regimen in a viral infection model using the primary isolates SF162 and JR-CSF) | [255] (Acuitas Therapeutics) |
| 2 | PGT121 [83] | aPGT121 mRNA, sPGT121 mRNA | Surface Env-gp120 glycoprotein | Full-length IgG antibody: secreted (sPGT121) and GPI-anchored via the heavy chain (aPGT121) | Co-expression of mRNAs encoding HC and LC (for the assembly of both secreted IgG and the GPI-anchored forms) | Unformulated mRNA in nuclease-free water, delivered intravaginally as an aerosol using the MADgic Teleflex aerosolizer, applied to the cervical mucosa, up to 1 mg of mRNA per animal | Katahdin sheep, rhesus macaques (pharmacokinetic study) | [178] | |
| 3 | PGDM1400 [84], PGT121 [83], N6 [79] | PGDM1400 scFv–Fc, PGT121 scFv–Fc, N6 IgG | Surface glycoprotein Env: gp140 (PGDM1400), gp120 (PGT121), CD4 binding site in gp120 (N6) | A cocktail containing two scFv–Fc and one full-length IgG antibody | Co-expression of four mRNAs encoding three antibodies: two mRNA encoding two scFv–Fc antibodies (single-chain constructs) and two mRNA encoding IgG HC and LC | LNPs (ionizable lipid/DSPC/cholesterol/PEG-lipid at molar ratios of 50:10:38.5:1.5), i.v., 1 mg/kg | Hemizygous Tg32 mice (hFcRn; pharmacokinetic study) | [207] (Moderna) | |
| 4 | PGT121 [83], VRC07 [80], 10E8.4 [256], iMab [257], CAP256 [258], PGDM1400 [84], J3-VHH [259] | Multiple strategies and antibodies tested in animal models, including mRNA SC-PGT121 aIgG, SC-VRC07 aIgG; SC-PGT121 aIgA, SC-VRC07 aIgA; SC-PGT121 sIgA, SC-VRC07 sIgA; SC-PGT121 IgM-tail, SC-VRC07 IgM-tail; combinations of SC-PGT121 and SC-VRC07 aIgG, aIgA, sIgA and IgM-tail; aJ3-2×-Fc | Surface glycoprotein Env: gp120 V3 loop (PGT121), CD4 binding site of gp120 (VRC07, J3-VHH) | GPI-anchored IgG (aIgG), secreted IgA dimer (sIgA), GPI-anchored IgA dimer (aIgA), IgM-like multimer by incorporating an IgM tailpiece sequence at the end of IgG-CH (IgM-tail); GPI-anchored VHH–Fc (aVHH–Fc) | In rhesus macaques: single-chain version of the GPI-anchored IgG (SC-aIgG): LC and HC mRNAs merged into a single mRNA strand using (G4S)12 linker, with a GPI anchor at the C-end of HC; SC-sIgA and SC-aIgA: co-expression of mRNA-encoded IgA (LC-linker-HC) and mRNA-encoded JC (a secreted JC (sJC) for secreted IgA (SC-sIgA) and a GPI-anchored JC (aJC) for membrane-bound IgA (SC-aIgA)), at a 1:0.15 ratio; IgM-tail: co-expression of mRNA encoding single-chain IgG fused to a C-terminal IgM tailpiece and mRNA encoding the JC (sJC) at a ratio of 1:0.15; for co-expression of two different antibodies, simultaneous delivery of two separate single-chain aIgG mRNAs at a 1:1 ratio, or, in the case of IgA/IgM-tail formats, additional co-expression of JC mRNA at a ratio of 1:1:0.3; aVHH-2×-Fc: expression of mRNA encoding two repeated VHH domains linked via a (G4S)12 linker, with addition of an IgG heavy-chain constant fragment (Fc) and a C-terminal GPI anchor. In mice: co-expression of mRNA-encoded antibodies in sIgA and IgM-tail formats together with the JC at a ratio of 4:4:2. | In rhesus macaques: unformulated mRNA in nuclease-free water, delivered intravaginally as an aerosol using the MADgic Teleflex aerosolizer, applied to the cervical mucosa, up to 1 mg of mRNA per animal in a total volume of 300 µL (two 150-µL doses administered to different areas); biopsy samples for ex vivo analyses were collected 24 h after administration. In mice: LNPs (cKK-E12/DOPE/cholesterol/C14-PEG 2000-P at molar ratios of 35:16:46.5:2.5); the mRNAs were diluted in 10 mM citrate buffer (pH 3); intravenous, retro-orbital injection, 2 mg/kg, given twice with a 2-day interval; antibody concentrations in serum were measured on day 3 after administration. | Rhesus macaques (ex vivo infection of vaginal explants; preclinical studies of safety, pharmacokinetics, and toxicity; hematological analyses, immunophenotyping, histological evaluation); C57BL/6 mice (pharmacokinetics, serum neutralization assay); SHIV/HIV strains, including isolates from clades A, B, C и AE | [180] | |
| 5 | ePGDM1400v9 (optimized version PGDM1400, [84]) | mRNA-ePGDM1400v9 IgG1, mRNA-ePGDM1400v9 IgA2 | Surface Env glycoprotein: gp140 | Full-length IgG1 antibody containing an LS mutation, full-length IgA2 antibody dimer | Co-expression of mRNAs encoding IgG1 HC and LC; co-expression of mRNAs encoding HC, LC, and the IgA2 JC | LNPs (ionizable lipid/DSPC/cholesterol/PEG-lipid at molar ratios of 50:10:38.5:1.5), i.v., 1 mg/kg | Rhesus macaques (preclinical studies of safety, pharmacokinetics, and biodistribution; evaluation of activity using an HIV-based pseudovirus neutralization assay) | [209] (Moderna) | |
| Hepatitis B virus | 6 | G12 [260] | mL (G12-scFv), mL (G12-scFv–Fc), mL (G12-IgG) | Surface antigen S protein (HBsAg) | Chimeric scFv–Fc antibody and full-length IgG antibody | Expression of mRNA encoding scFv; expression of mRNA encoding scFv–Fc; co-expression of mRNAs encoding HC and LC | LNPs (SM-102/DSPC/cholesterol/DMG-PEG2k at molar ratios of 50:10:38.5:1.5), i.v., 2.5 mg/kg, 2 weeks post-infection | C57BL/6 mice (protective efficacy was demonstrated under a therapeutic mRNA administration regimen in a chronic hepatitis B infection model using an adeno-associated virus) | [261] |
| Ebola virus | 7 | 2G1 [262] | mRNA-2G1-LNP | GP glycoprotein | Full-length IgG antibody | Co-expression of mRNAs encoding HC and LC | LNPs (SM-102/DSPC/cholesterol/PEG-lipid at molar ratios of 50:10:38.5:1.5), i.v., 1 mg/kg, 12 h prior to infection | BALB/c mice (protective efficacy was demonstrated under a therapeutic mRNA administration regimen in an HIV-based Ebola pseudovirus infection model) | [263] |
| Orthopoxviruses: vaccinia virus (VACV), mpox virus (MPXV), variola virus (VARV) | 8 | c7D11 [264], c8A [265], and c6C [266] | c7D11 mRNA, c8A mRNA, and c6C mRNA | VACV-L1 protein of the intracellular mature virion (IMV) (c7D11), VACV-B5 glycoprotein of the extracellular enveloped virion (EEV) (c8A), and VACV-A33 glycoprotein of the EEV (c6C) | Three chimeric full-length IgG antibodies containing human constant regions and variable regions derived from mouse (c7D11) and monkey (c8A and c6C) | Co-expression of mRNAs encoding HC and LC from the c7D11, c8A, and c6C antibodies; expressed both individually and in combinations, administered as separate injections; each antibody was encoded by its own pair of mRNAs (HC and LC), with each pair individually encapsulated in LNPs; mRNAs contained no modified nucleotides | LNPs (proprietary, Arcturus Therapeutics), i.m., up to 0.9 mg/kg | New Zealand White rabbits (pharmacokinetic study) | [267] (CureVac) |
| 9 | mAb22, mAb26 ([268], S1, Table 2) | Mix2a: mRNA-mab22-LNP + mRNA-mAb26-LNP | VACV-A33 EEV glycoprotein (mAb22) and MPXV-M1 IMV (mAb26) protein | A cocktail of two full-length IgG antibodies | Co-expression of mRNAs encoding HC and LC from two antibodies | LNPs (ionizable lipid/DSPC/cholesterol/PEG-lipid at molar ratios of 50:10:38.5:1.5), i.v., 1 mg/kg, 24 h prior to infection | BALB/c mice (protective efficacy was demonstrated under a prophylactic mRNA administration regimen in a lethal VACV-induced infection model) | [268] | |
| Rabies virus | 10 | CR57 [269] | mRNA-LNP encoding anti-rabies mAb | G glycoprotein | Full-length IgG antibody | Co-expression of mRNAs encoding HC and LC; the mRNA did not contain modified nucleotides | LNPs (proprietary, Acuitas Therapeutics), i.v., 2 mg/kg, 24 h prior to infection and 2 h post-infection | Swiss albino mice (protective efficacy was demonstrated under both prophylactic and therapeutic mRNA administration regimens in a lethal rabies infection model) | [270] (CureVac, Acuitas Therapeutics) |
| MERS-CoV | 11 | NbMS10 [271] | LNP-mRNA-NbMS10 | Spike protein receptor-binding domain (RBD) | VHH single-domain antibody fused with the human IgG Fc region (chimeric dimer) | Expression of mRNA encoding the VHH single-domain antibody fused with the human IgG Fc region | LNPs (ionizable lipid/DOPE/cholesterol/PEG-lipid/targeting lipid at molar ratios of 24.5:4.7:20:0.8:50), i.v., 1 mg/kg | BALB/c mice (pharmacokinetic study and activity evaluation in an HIV-based MERS-CoV pseudovirus neutralization assay) | [175] |
| Hendra virus and Nipah virus | 12 | 1E5 [272] | mRNA-1E5-LNPs | G glycoprotein | Full-length IgG antibody | Co-expression of mRNAs encoding HC and LC | LNPs (SM-102/DSPC/cholesterol/DMG-PEG2k at molar ratios of 50:10:38.5:1.5), i.v., up to 0.5 mg/kg, 12 h and 7 days prior to infection | BALB/c mice (protective efficacy was demonstrated under a prophylactic mRNA administration regimen in an infection model using the HIV-based Nipah and Hendra pseudoviruses) | [273] |
| Dengue virus | 13 | VDB11 ([274], Appendix A1) | scIgA mRNA | E glycoprotein | Full-length IgA1 antibody | Expression of mRNA encoding both HC and LC as a single-chain construct | LNPs (113-O10S/cholesterol/DOPC/DMG-PEG2k), i.v., 0.2 μg/kg | C57BL/6 (pharmacokinetic study) | [210] |
| Chikungunya virus | 14 | CHKV-24 [275] | mRNA-1944 | Surface E2 glycoprotein | Full-length IgG antibody | Co-expression of mRNAs encoding HC and LC | LNPs (ionizable lipid/DSPC/cholesterol/DMG-PEG2k at molar ratios of 50:10:38.5:1.5), i.v.; AG129 mice: up to 0.5 mg/kg, 24 h prior to infection; C57BL/6 mice: up to 10 mg/kg, 4 h post-infection; cynomolgus macaques: up to 3 mg/kg; humans: up to 0.6 mg/kg | AG129 mice (protective efficacy was demonstrated under a prophylactic mRNA administration regimen in a lethal infection model); C57BL/6 mice (efficacy was assessed under a therapeutic regimen); cynomolgus macaques (pharmacokinetic studies); humans (Phase I clinical trial for safety, tolerability, pharmacokinetics, and pharmacodynamics) | [275,276] (Moderna) |
| Zika virus | 15 | ZIKV-117 [277] | ZIKV-117 RNA | Surface E protein dimer | Full-length IgG1 antibody or its scFv | Expression of the scFv; co-expression of two saRNAs encoding HC and LC; bicistronic saRNA with HC and LC separated by IRES; bicistronic saRNA with HC and LC separated by the furin cleavage site and the viral T2A peptide; both variants of chain orientations (HC–LC and LC–HC) in a single-chain construct have been tested | Nanostructured LNPs (squalene/Dynasan 114/Span 60/DOTAP), i.m., up to 2 mg/kg, 7, 5, and 1 days before infection or 24 h and 3 days post-infection | C57BL/6 mice (protective efficacy was demonstrated in both prophylactic and therapeutic regimens of saRNA administration in a lethal infection model using a mouse-adapted Zika virus strain, in combination with a single dose of a monoclonal antibody inhibiting IFNAR1) | [214] |
| Rift Valley fever virus | 16 | A38 [278] | A38-mRNA-LNP | Gn glycoprotein | Full-length IgG antibody | Co-expression of mRNAs encoding HC and LC | LNPs (ALC-0315/DSPC/cholesterol/PEG-lipid), i.m., 1 mg/kg | BALB/c mice (pharmacokinetic study) | [279] |
| Severe fever with thrombocytopenia syndrome virus (SFTSV) | 17 | Ab10 (S/A-TEN) [280] | mRNA S/A-TEN | Gn glycoprotein | Full-length IgG antibody | Co-expression of mRNAs encoding HC and LC | LNPs (ALC-0315/DSPC/cholesterol/DMG-PEG2k at molar ratios of 50:10:38.5:1.5), i.v., 3 mg/kg, 24 h post-infection, twice with a 3-day interval | C57BL/6 mice with transient blockade of interferon signaling using anti-IFNAR antibodies, IFNAR-knockout mice (protective efficacy was demonstrated under the therapeutic mRNA administration regimen in a lethal infection model) | [281] |
| Influenza A virus | 18 | — | Human IgG mRNA | — | Full-length IgG antibody | Co-expression of mRNAs encoding HC and LC | LNPs (ionizable lipid/DSPC/cholesterol/PEG-lipid at molar ratios of 50:10:38.5:1.5), i.v., 0.1 mg/kg | Cynomolgus macaques (pharmacokinetic study) | [282] (Moderna) |
| 19 | FcγRIV VHH-M2e VHH [283] (FcγRIV VHH-RSVF VHH [284] used as a negative control) | FcγRIV VHH-M2e VHH RiboBiFEs (FcγRIV VHH-RSVF VHH RiboBiFEs) | Influenza virus M2e protein/mouse FcγRIV (RSV F glycoprotein) | Bispecific VHH single-domain antibodies | Expression of mRNA encoding bispecific VHH single-domain antibodies (RiboBiFE) as a single-chain construct | DOTAP/cholesterol-based LNPs at molar ratios of 2:3, i.t., 0.25 mg/kg, 4 h prior to infection | BALB/c mice, wild-type and FcγRIV−/− C57BL/6 mice (protective efficacy was demonstrated under a prophylactic mRNA administration regimen in a lethal influenza A/X47 (H3N2) infection model) | [208] | |
| 20 | HV-B10 [285] | HV-B10 HC-P2A-LC mRNA/LNP | Hemagglutinin | Full-length IgG antibody | Expression of mRNA encoding both HC and LC as a single-chain construct | LNPs (ALC-0315: ALC-0315/DSPC/cholesterol/ALC-0159 at molar ratios of 46.3:9.4:42.7:1.6, i.v., i.m.; or MC3/DOTAP: Dlin-MC3-DMA/DSPC/cholesterol/DSPE-PEG2k/DOTAP at molar ratios of 25:5:19.2:0.8:50, i.n.), i.v., up to 0.5 mg/kg, 24 h prior to infection | C57BL/6 mice (protective efficacy was demonstrated under a prophylactic mRNA administration regimen in a lethal influenza A/California/04/2009 infection model) | [286] | |
| Influenza B virus | 21 | CR8033 [287] | mRNA-LNP encoding anti-influenza B mAb | Hemagglutinin | Full-length IgG antibody | Co-expression of mRNAs encoding HC and LC; the mRNA did not contain modified nucleotides | LNPs (Acuitas Therapeutics), i.v., 2 mg/kg, 24 h prior to infection and 2 h post-infection | Swiss albino mice (used for pharmacokinetic studies and as a negative control for evaluating protective efficacy under prophylactic and therapeutic mRNA administration regimens in a lethal rabies infection model) | [270] (CureVac, Acuitas Therapeutics) |
| RSV | 22 | MEDI-493 (palivizumab) [46], F-VHH-4 [284] | sPali mRNA, aPali mRNA, aVHH mRNA, sVHH mRNA | F glycoprotein in a prefusion conformation | Full-length IgG antibodies: secreted (sPali, palivizumab) and GPI-anchored in HC (aPali); VHH single-domain antibodies: secreted (sVHH) and fused to a GPI anchor (aVHH) | Co-expression of mRNAs encoding HC and LC (for the assembly of both secreted IgG and the GPI-anchored forms); expression of mRNA encoding VHH single-domain antibodies (secreted or fused to a GPI anchor) as a single-chain construct | Viromer RED, in vivo-jetPEI, and unformulated mRNA in nuclease-free water; aerosol delivery using the MicroSprayer IA-1C device (Penn-Century), i.t., up to 5 mg/kg, administered 24 h and 7 days prior to infection | BALB/c mice (protective efficacy was demonstrated under a prophylactic mRNA administration regimen in an RSV infection model) | [177] |
| SARS-CoV-2 | 23 | CB6 [288] | VEEV-VRP-CB6 | Spike protein RBD | Full-length IgG antibody | Expression of saRNA encoding HC and LC separated by a subgenomic promoter; saRNA did not contain modified nucleotides | Virus replicon particles (VRPs), alphaviral particles, i.n., 5 × 105 infectious particles, 24 h prior to infection | BALB/c mice (protective efficacy was demonstrated under a prophylactic saRNA administration regimen in a mouse-adapted coronavirus infection model) | [215] |
| 24 | 3E8 [289] | VEEV-VRP-3E8 | Human angiotensin-converting enzyme 2 (hACE2) | Full-length IgG antibody | Expression of saRNA encoding HC and LC separated by a subgenomic promoter; saRNA did not contain modified nucleotides | Virus replicon particles (VRPs), alphaviral particles, i.n., 5 × 104 infectious particles, 24 h prior to infection | Syrian hamsters (protective efficacy was demonstrated under a prophylactic saRNA administration regimen in an Omicron BA.1 infection model) | [216] | |
| 25 | HB27 [290] | mRNA-HB27-LNP | Spike protein RBD | Full-length IgG antibody | Co-expression of mRNAs encoding HC and LC | LNPs (ionizable lipid/DSPC/cholesterol/PEG-lipid at molar ratios of 50:10:38.5:1.5), i.v., up to 1 mg/kg, 24 h prior to infection | BALB/c mice (protective efficacy was demonstrated under a prophylactic mRNA administration regimen in a coronavirus infection model using the mouse-adapted MASCp36 strain and the SARS-CoV-2 Beta variant); Syrian hamsters (protective efficacy was demonstrated under a prophylactic mRNA administration regimen in a close-contact transmission model) | [291] | |
| 26 | XGv264 [292] | mRNA-XGv264-LNP | Spike protein RBD | Full-length IgG antibody | Co-expression of mRNAs encoding HC and LC | LNPs (novel ionizable lipid/DSPC/cholesterol/PEG-lipid), i.v., up to 1 mg/kg | Aged cynomolgus macaques (protective efficacy was demonstrated under a prophylactic mRNA administration regimen in an Omicron BA.1 coronavirus infection model) | [293] | |
| 27 | COV2-2832 [294], DH1041 [295] | COV2-2832 mRNA, DH1041 mRNA | Spike protein RBD | Two full-length IgG antibodies with the GPI-anchored HC | Co-expression of mRNAs encoding LC and the GPI-anchored HC (two GPI-anchored IgG studied individually) | Polymeric PBATE nanoparticles, i.n. using the Aerogen Solo nebulizer (Tri-anim), 2.5 mg/kg, 48 h prior to infection | Syrian hamsters (protective efficacy was demonstrated under a prophylactic mRNA administration regimen in a WA-1 coronavirus infection model) | [199] | |
| 28 | 8-9D [174] | Liver-LNPs@mRNA8-9D, Lung-LNPs@mRNA8-9Ds, Liver-LNPs@CircRNA8-9D, Lung-LNPs@CircRNA8-9D | Spike protein RBD | Full-length IgG antibody and chimeric scFv–Fc antibody | Co-expression of mRNAs encoding HC and LC; expression of circRNA encoding scFv–Fc antibody | LNPs (Liver-LNPs: ionizable lipid/DSPC/cholesterol/PEG-lipid at molar ratios of 49.1:9.4:40.0:1.5, Lung-LNPs: ionizable lipid/DOPE/cholesterol/PEG-lipid/Cationic targeting lipid at molar ratios of 24.5:4.7:20.0:0.8:50.0), i.v., 0.25 mg/kg, 24 h prior to infection and 24 h post-infection | K18-hACE2 transgenic mice (protective efficacy was demonstrated under both prophylactic and therapeutic mRNA administration regimens in a coronavirus infection model using the SARS-CoV-2 Beta and Omicron BA.2 variants) | [174] | |
| 29 | 2NSP23 [296] | LNP-mRNA-2NSP23 | Non-structural protein NSP9 | VHH single-domain antibody | Expression of mRNA encoding a VHH single-domain antibody | LNPs (C12-200/DOPE/cholesterol/DMG-PEG/DOTAP at molar ratios of 29.8:13.6:39.5:2.1:15), ex vivo, up to 30 ng/μL, 24 h prior to infection | Human airway epithelial 3D cell cultures derived from the upper respiratory tract of healthy donors (viral replication was shown to be inhibited under a prophylactic mRNA administration regimen in a coronavirus infection model using multiple strains) | [297] | |
| 30 | LY1404 (bebtelovimab) [298], 76E1 [299] | LY1404 HC/LC mRNA-LNP, 76E1 HC/LC mRNA-LNP | Spike protein RBD S1 subunit (LY1404), FP fusion peptide of the spike protein S2 subunit (76E1) | Full-length IgG antibodies | Co-expression of mRNAs encoding HC and LC | LNPs (SM-102/DSPC/cholesterol/DMG-PEG2k at molar ratios of 50:10:38.5:1.5), i.m., 0.75 mg/kg, 24 h prior to infection | BALB/c mice (protective efficacy was demonstrated under a prophylactic mRNA administration regimen in a mouse-adapted CMA4 coronavirus infection model); Syrian hamsters (protective efficacy of a prophylactic mRNA administration regimen was demonstrated in two SARS-CoV-2 challenge models: one with the Omicron BQ.1 variant and another with the highly pathogenic Delta variant) | [300] | |
| 31 | PDI 204 [301] | PDI 204 HC-P2A-LC mRNA/LNP | Spike protein RBD | Full-length IgG antibody | Expression of mRNA encoding both HC and LC as a single-chain construct | LNPs (ALC-0315: ALC-0315/DSPC/cholesterol/ALC-0159 at molar ratios of 46.3:9.4:42.7:1.6, i.v., i.m.; or MC3/DOTAP: Dlin-MC3-DMA/DSPC/cholesterol/DSPE-PEG2k/DOTAP at molar ratios of 25:5:19.2:0.8:50, i.n.), i.v., up to 0.5 mg/kg, 7 days prior to infection | K18-hACE2 transgenic mice (protective efficacy was demonstrated under a prophylactic mRNA administration regimen in an Omicron BA.1 coronavirus infection model) | [286] |
6.2. mRNA-Encoded Antibodies Against Viruses Transmitted via Direct Human-to-Human Contact
6.3. mRNA-Encoded Antibodies Against Zoonotic Viruses Transmitted Through Direct Contact
6.4. mRNA-Encoded Antibodies Against Viruses with Vector-Borne Transmission
6.5. mRNA-Encoded Antibodies Against Airborne Viruses
- mRNA-Encoded Antibodies Against SARS-CoV-2
7. Discussion
8. Conclusions
Author Contributions
Funding
Data Availability Statement
Acknowledgments
Conflicts of Interest
Abbreviations
| ADA | Anti-drug antibodies |
| ADARC | Aaron Diamond AIDS Research Center |
| ADE | Antibody-dependent enhancement |
| aIgA | GPI-anchored version of the same IgA |
| BHK | Baby Hamster Kidney |
| BLT | Bone Marrow-Liver-Thymus |
| bnAbs | Broadly neutralizing antibodies |
| CH | Constant domain of Heavy chains (CH1, CH2, CH3) |
| CHO | Chinese Hamster Ovary |
| circRNA | Circular RNA |
| CL | Constant domain of Light chains |
| DAF | Decay-accelerating factor |
| dIgA | IgA antibody dimers |
| DMG-PEG2k | 1,2-dimyristoyl-rac-glycero-3-methoxy(polyethylene glycol)-2000 |
| DOPE | 1,2-Dioleoyl-sn-glycero-3-phosphatidylethanolamine |
| DOTAP | 1,2-Dioleoyl-sn-glycero-3-trimethylammonium-propane |
| DSPC | 1,2-Distearoyl-sn-glycero-3-phosphocholine |
| DSPE-PEG2k | 1,2-Distearoyl-sn-glycero-3-phosphoethanolamine-N-carboxy(polyethylene glycol)-2000 |
| EBOV | Ebola virus |
| EEV | Extracellular enveloped virion |
| EMCV | Encephalomyocarditis virus |
| EU | European Union |
| EUA | Emergency Use Authorization |
| Fab | Fragment antigen-binding |
| Fc | Fragment crystallizable |
| FcγRIV | Fcγ receptor IV |
| FDA | Food and Drug Administration |
| FP | Fusion peptide |
| G4S | poly-Glycine-Serine linker |
| GMII | Golgi α-mannosidase II |
| Gn | Glycoprotein N |
| GP | Glycoprotein |
| GPI | Glycosylphosphatidylinositol |
| hACE2 | Human angiotensin-converting enzyme 2 |
| HBsAg | Hepatitis B surface antigen |
| HBV | Hepatitis B virus |
| HC | Heavy Chain |
| HEK | Human Embryonic Kidney |
| HPV18 | Human papillomavirus type 18 |
| hFcRn | Human neonatal receptor for the Fc fragment of IgG |
| HIV | Human immunodeficiency virus |
| i.m. | intramuscular |
| i.n. | intranasal |
| i.p. | intraperitoneal |
| i.t. | intratracheal |
| i.v. | intravenous |
| ID | Identification Number |
| IFNAR | Interferon-α/β Receptor |
| IgA | Immunoglobulin A |
| IgG | Immunoglobulin G |
| IgM | Immunoglobulin M |
| IMV | Intracellular mature virion |
| IRES | Internal Ribosome Entry Site |
| JC | Joining chain |
| LA | M435L/N441A mutation |
| LC | Light Chain |
| LNPs | Lipid nanoparticles |
| LS | M428L/N434S mutation |
| M2e | Ectodomain of the influenza A virus M2 protein |
| MERS-CoV | Middle East respiratory syndrome coronavirus |
| MPXV | Mpox virus, or monkeypox virus |
| NA | Not Available |
| NIAID | National Institute of Allergy and Infectious Diseases |
| NSG mouse | NOD scid gamma mouse |
| nsP | Nonstructural protein |
| P2A peptide | Porcine Teschovirus-1 2A peptide |
| PBATE | Poly(butylene terephthalate-co-butylene adipate-co-ethylene terephthalate-co-ethylene adipate) |
| PEG | Polyethylene glycol |
| PRRs | Pattern recognition receptors |
| RBD | Receptor-binding domain |
| RIG-I | Retinoic acid-inducible gene 1 |
| RSV | Respiratory Syncytial Virus |
| RTC | Replication-transcription complex |
| S protein | Surface protein |
| saRNA | Self-amplifying RNA |
| SARS-CoV-2 | Severe acute respiratory syndrome coronavirus 2 |
| SC | Single chain |
| SC-mRNA | Single-chain mRNA |
| scBCR-seq | Single B cell receptor sequencing |
| scFv | Single-chain Variable Fragment |
| scFv–Fc | Single-Chain Variable Fragment fused to the Fc region |
| scIgA | Single-chain IgA |
| SFTSV | Severe fever with thrombocytopenia syndrome virus |
| SHIV | Simian-Human Immunodeficiency Virus |
| sIgA | Secreted version of the same IgA |
| SUDV | Sudan virus |
| TLR | Toll-like receptors |
| TM | L234F/L235E/P331S triple mutation |
| UK | United Kingdom |
| US | United States |
| USAMRIID | United States Army Medical Research Institute of Infectious Diseases |
| UTRs | Untranslated regions |
| VACV | Vaccinia virus |
| VARV | Variola virus |
| VEEV | Venezuelan equine encephalitis virus |
| VH | Variable Heavy chain domain |
| VHH | Variable Heavy domain of Heavy chain (single-domain antibody) |
| VL | Variable Light chain domain |
| VRPs | Virus replicon particles |
| YTE | M252Y/S254T/T256E mutation |
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Klotchenko, S.; Plotnikova, M. mRNA-Encoded Antibodies: An Emerging Paradigm in Antiviral Protection. Biomolecules 2026, 16, 297. https://doi.org/10.3390/biom16020297
Klotchenko S, Plotnikova M. mRNA-Encoded Antibodies: An Emerging Paradigm in Antiviral Protection. Biomolecules. 2026; 16(2):297. https://doi.org/10.3390/biom16020297
Chicago/Turabian StyleKlotchenko, Sergey, and Marina Plotnikova. 2026. "mRNA-Encoded Antibodies: An Emerging Paradigm in Antiviral Protection" Biomolecules 16, no. 2: 297. https://doi.org/10.3390/biom16020297
APA StyleKlotchenko, S., & Plotnikova, M. (2026). mRNA-Encoded Antibodies: An Emerging Paradigm in Antiviral Protection. Biomolecules, 16(2), 297. https://doi.org/10.3390/biom16020297

