Characterization of two neutralizing monoclonal antibodies with conformational epitopes against porcine deltacoronavirus

Wan Lu, Hongtao Cao, Yongle Yang, Yangyang Sun, Dong Yang, Priscilla F. Gerber, Xiangdong Li, Yaowei Huang, Bin Wang

Animal Diseases ›› 2025, Vol. 5 ›› Issue (1) : 2.

Animal Diseases ›› 2025, Vol. 5 ›› Issue (1) : 2. DOI: 10.1186/s44149-025-00156-z
Original Article

Characterization of two neutralizing monoclonal antibodies with conformational epitopes against porcine deltacoronavirus

Author information +
History +

Abstract

Porcine deltacoronavirus (PDCoV) is a globally distributed swine enteropathogenic virus that emerged in the last decade. A recent report of PDCoV infection in Haitian children also highlights potential public health implications. In this study, two monoclonal antibodies (mAbs), 1C2 and 5H5, were generated and showed high specificity for the PDCoV S protein. Both mAbs displayed high-titer neutralizing capabilities, suggesting their potential for passive immunotherapy. Epitope mapping revealed that the mAbs likely recognized conformational epitopes in the S1 subunit domains A and B of the native S protein, thereby blocking the interaction between the S1 receptor-binding domain and the cellular receptor, which could inhibit viral entry into host cells. This study offers new biological tools for PDCoV detection and lays the groundwork for the future development of porcine-specific antibodies for the prevention and treatment of PDCoV in piglets.

Cite this article

Download citation ▾
Wan Lu, Hongtao Cao, Yongle Yang, Yangyang Sun, Dong Yang, Priscilla F. Gerber, Xiangdong Li, Yaowei Huang, Bin Wang. Characterization of two neutralizing monoclonal antibodies with conformational epitopes against porcine deltacoronavirus. Animal Diseases, 2025, 5(1): 2 https://doi.org/10.1186/s44149-025-00156-z

References

[]
Adams MJ, Carstens EB. Ratification vote on taxonomic proposals to the International Committee on Taxonomy of Viruses (2012) Archives of Virology, 2012, 157(7): 1411-1422.
CrossRef Google scholar
[]
Barcena M, Oostergetel GT, Bartelink W, Faas FG, Verkleij A, Rottier PJ, Koster AJ, Bosch BJ. Cryo-electron tomography of mouse hepatitis virus: Insights into the structure of the coronavirion Proc Natl Acad Sci U S A, 2009, 106(2): 582-587.
CrossRef Google scholar
[]
Boley PA, Alhamo MA, Lossie G, Yadav KK, Vasquez-Lee M, Saif LJ, Kenney SP. Porcine deltacoronavirus infection and transmission in poultry United States. Emerg Infect Dis, 2020, 26(2): 255-265.
CrossRef Google scholar
[]
Bosch BJ, Van Der Zee R, De Haan CA, Rottier PJ. The coronavirus spike protein is a class I virus fusion protein: Structural and functional characterization of the fusion core complex Journal of Virology, 2003, 77(16): 8801-8811.
CrossRef Google scholar
[]
Chen Y, Liu Q, Guo D. Emerging coronaviruses: Genome structure, replication, and pathogenesis Journal of Medical Virology, 2020, 92(10): 2249.
CrossRef Google scholar
[]
Fang, P., Zhang, H., Sun, H., Wang, G., Xia, S., Ren, J., Zhang, J., Tian, L., Fang, L., Xiao, S., 2021. Construction, characterization and application of recombinant porcine deltacoronavirus expressing nanoluciferase. Viruses 13 (10). https://doi.org/10.3390/v13101991.
[]
Ge XY, Li JL, Yang XL, Chmura AA, Zhu G, Epstein JH, Mazet JK, Hu B, Zhang W, Peng C, Zhang YJ, Luo CM, Tan B, Wang N, Zhu Y, Crameri G, Zhang SY, Wang LF, Daszak P, Shi ZL. Isolation and characterization of a bat SARS-like coronavirus that uses the ACE2 receptor Nature, 2013, 503(7477): 535-538.
CrossRef Google scholar
[]
Hofmann M, Wyler R. Enzyme-linked immunosorbent assay for the detection of porcine epidemic diarrhea coronavirus antibodies in swine sera Veterinary Microbiology, 1990, 21(3): 263-273.
CrossRef Google scholar
[]
Hu H, Jung K, Vlasova AN, Chepngeno J, Lu Z, Wang Q, Saif LJ. Isolation and characterization of porcine deltacoronavirus from pigs with diarrhea in the United States Journal of Clinical Microbiology, 2015, 53(5): 1537-1548.
CrossRef Google scholar
[]
Hulswit RJ, De Haan CA, Bosch BJ. Coronavirus spike protein and tropism changes Advances in Virus Research, 2016, 96: 29-57.
CrossRef Google scholar
[]
Ji W, Peng Q, Fang X, Li Z, Li Y, Xu C, Zhao S, Li J, Chen R, Mo G, Wei Z, Xu Y, Li B, Zhang S. Structures of a deltacoronavirus spike protein bound to porcine and human receptors Nature Communications, 2022, 13(1): 1467.
CrossRef Google scholar
[]
Jung K, Hu H, Saif LJ. Calves are susceptible to infection with the newly emerged porcine deltacoronavirus, but not with the swine enteric alphacoronavirus, porcine epidemic diarrhea virus Archives of Virology, 2017, 162(8): 2357-2362.
CrossRef Google scholar
[]
Jung K, Miyazaki A, Hu H, Saif LJ. Susceptibility of porcine IPEC-J2 intestinal epithelial cells to infection with porcine deltacoronavirus (PDCoV) and serum cytokine responses of gnotobiotic pigs to acute infection with IPEC-J2 cell culture-passaged PDCoV Veterinary Microbiology, 2018, 221: 49-58.
CrossRef Google scholar
[]
Jung K, Vasquez-Lee M, Saif LJ. Replicative capacity of porcine deltacoronavirus and porcine epidemic diarrhea virus in primary bovine mesenchymal cells Veterinary Microbiology, 2020, 244. 108660
CrossRef Google scholar
[]
Lednicky, J.A., Tagliamonte, M.S., White, S.K., Elbadry, M.A., Alam, M.M., Stephenson, C.J., Bonny, T.S., Loeb, J.C., Telisma, T., Chavannes, S., et al. 2021. Independent infections of porcine deltacoronavirus among Haitian children. Nature 600 (7887), 133-+. https://doi.org/10.1038/s41586-021-04111-z.
[]
Li WT, Hulswit RJG, Kenney SP, Widjaja I, Jung K, Alhamo MA, Van Dieren B, Van Kuppeveld FJM, Saif LJ, Bosch BJ. Broad receptor engagement of an emerging global coronavirus may potentiate its diverse cross-species transmissibility Proc Natl Acad Sci U S A, 2018, 115(22): E5135-E5143.
CrossRef Google scholar
[]
Li, G., Chen, Q., Harmon, K.M., Yoon, K.J., Schwartz, K.J., Hoogland, M.J., Gauger, P.C., Main, R.G., Zhang, J., 2014. Full-length genome sequence of porcine deltacoronavirus strain USA/IA/2014/8734. Genome Announc 2 (2). https://doi.org/10.1128/genomeA.00278-14.
[]
Liang, Q., Zhang, H., Li, B., Ding, Q., Wang, Y., Gao, W., Guo, D., Wei, Z., Hu, H., 2019. Susceptibility of chickens to porcine deltacoronavirus infection. Viruses 11 (6). https://doi.org/10.3390/v11060573.
[]
Liu Y, Wang B, Liang QZ, Shi FS, Ji CM, Yang XL, Yang YL, Qin P, Chen R, Huang YW. Roles of two major domains of the porcine deltacoronavirus S1 subunit in receptor binding and neutralization Journal of Virology, 2021, 95(24. e0111821
CrossRef Google scholar
[]
Ma, Y., Zhang, Y., Liang, X., Lou, F., Oglesbee, M., Krakowka, S., Li, J., 2015. Origin, evolution, and virulence of porcine deltacoronaviruses in the United States. mBio 6 (2), e00064. https://doi.org/10.1128/mBio.00064-15.
[]
Marthaler D, Raymond L, Jiang Y, Collins J, Rossow K, Rovira A. Rapid detection, complete genome sequencing, and phylogenetic analysis of porcine deltacoronavirus Emerging Infectious Diseases, 2014, 20 8): 1347-1350.
CrossRef Google scholar
[]
Masters PS. The molecular biology of coronaviruses Advances in Virus Research, 2006, 66: 193-292.
CrossRef Google scholar
[]
More-Bayona JA, Ramirez-Velasquez M, Hause B, Nelson E, Rivera-Geronimo H. First isolation and whole genome characterization of porcine deltacoronavirus from pigs in Peru Transboundary and Emerging Diseases, 2022.
CrossRef Google scholar
[]
Qin P, Luo WT, Su Q, Zhao P, Zhang Y, Wang B, Yang YL, Huang YW. The porcine deltacoronavirus accessory protein NS6 is expressed in vivo and incorporated into virions Virology, 2021, 556: 1-8.
CrossRef Google scholar
[]
Qin, P., Du, E.Z., Luo, W.T., Yang, Y.L., Zhang, Y.Q., Wang, B., Huang, Y.W., 2019. Characteristics of the life cycle of porcine deltacoronavirus (PDCoV) In vitro: Replication kinetics, cellular ultrastructure and virion morphology, and evidence of inducing autophagy. Viruses 11 (5). https://doi.org/10.3390/v11050455.
[]
Shang, J., Zheng, Y., Yang, Y., Liu, C., Geng, Q., Tai, W., Du, L., Zhou, Y., Zhang, W., Li, F., 2018. Cryo-electron microscopy structure of porcine deltacoronavirus spike protein in the prefusion state. J Virol 92 (4). https://doi.org/10.1128/JVI.01556-17.
[]
Stoian A, Rowland RRR, Petrovan V, Sheahan M, Samuel MS, Whitworth KM, Wells KD, Zhang JQ, Beaton B, Cigan M, Prather RS. The use of cells from ANPEP knockout pigs to evaluate the role of aminopeptidase N (APN) as a receptor for porcine deltacoronavirus (PDCoV) Virology, 2020, 541: 136-140.
CrossRef Google scholar
[]
Studentsov YY, Burk RD. Development of a non-denaturing electrophoresis system for characterization of neutralizing epitopes on HPV virus-like particles Journal of Virological Methods, 2007, 139(2): 208-219.
CrossRef Google scholar
[]
Wang LF, Shi Z, Zhang S, Field H, Daszak P, Eaton BT. Review of bats and SARS Emerging Infectious Diseases, 2006, 12(12): 1834-1840.
CrossRef Google scholar
[]
Wang L, Byrum B, Zhang Y. Detection and genetic characterization of deltacoronavirus in pigs, Ohio, USA, 2014 Emerging Infectious Diseases, 2014, 20(7): 1227-1230.
CrossRef Google scholar
[]
Wang X, Fang L, Liu S, Ke W, Wang D, Peng G, Xiao S. Susceptibility of porcine IPI-2I intestinal epithelial cells to infection with swine enteric coronaviruses Veterinary Microbiology, 2019, 233: 21-27.
CrossRef Google scholar
[]
Wang, B., Liu, Y., Ji, C.M., Yang, Y.L., Liang, Q.Z., Zhao, P., Xu, L.D., Lei, X.M., Luo, W.T., Qin, P., Zhou, J., Huang, Y.W., 2018. Porcine deltacoronavirus engages the transmissible gastroenteritis virus functional receptor porcine aminopeptidase N for infectious cellular entry. J Virol 92 (12). https://doi.org/10.1128/JVI.00318-18.
[]
Woo PC, Lau SK, Lam CS, Lai KK, Huang Y, Lee P, Luk GS, Dyrting KC, Chan KH, Yuen KY. Comparative analysis of complete genome sequences of three avian coronaviruses reveals a novel group 3c coronavirus Journal of Virology, 2009, 83(2): 908-917.
CrossRef Google scholar
[]
Woo PC, Lau SK, Lam CS, Lau CC, Tsang AK, Lau JH, Bai R, Teng JL, Tsang CC, Wang M, Zheng BJ, Chan KH, Yuen KY. Discovery of seven novel Mammalian and avian coronaviruses in the genus deltacoronavirus supports bat coronaviruses as the gene source of alphacoronavirus and betacoronavirus and avian coronaviruses as the gene source of gammacoronavirus and deltacoronavirus Journal of Virology, 2012, 86(7): 3995-4008.
CrossRef Google scholar
[]
Xiong, X., Tortorici, M.A., Snijder, J., Yoshioka, C., Walls, A.C., Li, W., Mcguire, A.T., Rey, F.A., Bosch, B.J., Veesler, D., 2018. Glycan shield and fusion activation of a deltacoronavirus spike glycoprotein fine-tuned for enteric infections. J Virol 92 (4). https://doi.org/10.1128/JVI.01628-17.
[]
Yang YL, Yu JQ, Huang YW. Swine enteric alphacoronavirus (swine acute diarrhea syndrome coronavirus): An update three years after its discovery Virus Research, 2020, 285. 198024
CrossRef Google scholar
[]
Zhou, X., Zhang, M., Zhang, H., Ma, H., Zhou, J., Cao, H., Guo, G., Ma, N., He, Q., Yang, Y., Lang, Y., Huang, Y., Li, W., 2023. Generation and characterization of monoclonal antibodies against swine acute Diarrhea Syndrome coronavirus spike protein. Int J Mol Sci 24 (23). https://doi.org/10.3390/ijms242317102.
[]
Zhu, X.Y., Liu, S.D., Wang, X.L., Luo, Z.C., Shi, Y.J., Wang, D., Peng, G.Q., Chen, H.C., Fang, L.R., Xiao, S.B., 2018. Contribution of porcine aminopeptidase N to porcine deltacoronavirus infection. Emerg Microbes Infec 7. ARTN 65. https://doi.org/10.1038/s41426-018-0068-3.
Funding
National Key Research and Development Program of China(2023YFD1800500); Natural Science Foundation of Zhejiang Province(LZ22C180002)

Accesses

Citations

Detail

Sections
Recommended

/