Please wait a minute...
Journal of Integrative Agriculture  2026, Vol. 25 Issue (10): 3971-3989    DOI: 10.1016/j.jia.2026.07.022
Special Focus: Advancing China–Africa Agricultural Science and Technology Cooperation: Innovation and Pathways Advanced Online Publication | Current Issue | Archive | Adv Search |

Global epidemiological landscape and diagnostic biases reveal persistent endemic circulation of porcine epidemic diarrhoea virus: A systematic review and meta-analysis

Yassein M. Ibrahim1, 2, 3*, Yuandi Yu1, 2, 4*, Gebremeskel Mamu Werid5*, Ashenafi Kiros Wubshet6, 7, Thien Dinh Van5, Weldu Tesfagaber8, Joshua W. Aleri9, Wenxiu Wang6, Liu Yang1, 2, 4, Lizhi Fu1, 2, 4#, Yue Wang1, 2, 10#

1 National Center of Technology Innovation for Pigs, Chongqing 402460, China

2 Chongqing Academy of Animal Science, Chongqing 402460, China

3 Faculty of Veterinary Science, University of Nyala, Nyala 155, Sudan

4 Rongchang, Animal Health, Observation and Research Station, Ministry of Agriculture and Rural Affairs, Chongqing 402460, China

5 Davies Livestock Research Centre, School of Animal and Veterinary Sciences, Adelaide University, Roseworthy, SA 5371, Australia

6 Shandong Binzhou Institute of Animal Husbandry and Veterinary Sciences, Binzhou 256600, China

7 College of Veterinary Medicine, Shandong Agricultural University, Tai'an 271018, China

8 State Key Laboratory for Animal Disease Control and Prevention/National African Swine Fever Para-Reference Laboratory/National High Containment Facilities for Animal Diseases Control and Prevention, Harbin Veterinary Research Institute, Chinese Academy of Agricultural Sciences, Harbin 150069, China

9 School of Veterinary Science, The University of Queensland, Gatton, QLD 4343, Australia

10 College of Veterinary Medicine, Southwest University, Chongqing 400715, China

 Highlights 
● Reframes PEDV as an endemic pathogen sustained by subclinical breeding-herd reservoirs, shifting the control focus from outbreak response to silent transmission.
● Identifies diagnostic-method bias as the principal source of global prevalence heterogeneity, mandating standardized multi-modal surveillance.
● Delivers the first integrated evidence-based framework to systematically harmonize PEDV prevalence reporting across animal, herd, and diagnostic levels.
Download:  PDF in ScienceDirect  
Export:  BibTeX | EndNote (RIS)      
摘要  

猪流行性腹泻病毒(PEDV)是全球养猪业的重要肠道病原体,但由于各国监测系统、诊断灵敏度及报告体系存在差异,其真实的流行病学负担尚未得到充分阐明。为厘清PEDV的全球流行病学特征,本研究开展了系统综述与荟萃分析,整合动物个体与群体层面的数据,并评估诊断方法及群体特征对检测结果的影响。在纳入的22个国家133项研究中,PEDV在临床发病猪和外观健康猪中均被频繁检出,表明该病毒呈持续性地方流行,而非偶发性暴发。分子检测揭示了活跃的现症感染,血清学数据则反映了广泛的历史暴露,二者共同提示猪群内存在大量的隐匿传播。检测结果因年龄、地理区域和研究时期而异:母猪可能充当病毒储存库,而新生仔猪则是主要的传播放大器。在临床发病猪中,核酸检测的合并阳性率为46.0%(95% CI:39.8–52.2)。其中,母猪和公猪的点估计值最高,为76.5%(95% CI:28.9–100.0),但置信区间较宽、精确度不足;哺乳仔猪为44.7%(95% CI:35.6–53.9)。血清学分析显示,临床发病动物的抗体阳性率为14.6%(95% CI:0.8–40.0),反映了群体的累积暴露水平。在群体层面,核酸检测的合并阳性率为44.6%(95% CI:33.6–55.9),血清学估计值为39.0%(95% CI:14.6–66.3),共同支持PEDV在群体中的广泛传播。研究间存在显著的异质性,主要归因于时间、区域及群体健康状况等因素,这突出表明监测设计和诊断策略会显著影响报告的患病率,并可能掩盖病毒传播的真实规模。综上所述,PEDV是一种全球根深蒂固、持续循环的病原体,通过亚临床感染和群体层面的病毒持续存在得以维系。本研究首次对PEDV流行病学进行了全面的全球综合,建立了循证框架,以指导标准化监测、合理解读诊断结果,并为疫苗接种和生物安全等针对性防控策略提供依据。加强协调统一的监测体系,对于降低PEDV在现代养猪业中的长期负担至关重要。

 



Abstract  Porcine epidemic diarrhoea virus (PEDV) is a major enteric pathogen of global swine production, yet its true epidemiological burden remains inadequately characterised due to heterogeneity in surveillance systems, diagnostic sensitivity, and reporting frameworks. To clarify the global epidemiological profile of PEDV, we conducted a systematic review and meta-analysis integrating animal- and herd-level data while evaluating the influence of diagnostic methods and population characteristics on detection outcomes. Across 133 studies from 22 countries, PEDV was frequently detected in both clinically affected and apparently healthy pigs, indicating sustained endemic circulation rather than episodic outbreak dynamics. Molecular assays identified ongoing active infection, while serological data demonstrated extensive historical exposure, together revealing substantial silent transmission within swine herds. Detection patterns varied markedly by age group, geographic region, and study period; sows appeared to act as potential viral reservoirs, while neonatal piglets served as principal transmission amplifiers. Among clinically affected pigs, pooled nucleic acid-based detection rate was 46.0% (95% CI: 39.8-52.2), with the highest point estimates observed in sows and boars at 76.5% (95% CI: 28.9-100.0), though these were imprecise with wide confidence intervals, and in suckling piglets at 44.7% (95% CI: 35.6-53.9). Serological analysis revealed a seroprevalence of 14.6% (95% CI: 0.8-40.0) in clinically affected animals, reflecting cumulative population exposure. At the herd level, nucleic acid-based detection yielded a pooled detection rate of 44.6% (95% CI: 33.6-55.9), while serological estimates reached 39.0% (95% CI: 14.6-66.3), collectively supporting widespread herd-level circulation. Substantial between-study heterogeneity was largely attributable to temporal, regional, and herd health factors, underscoring how surveillance design and diagnostic strategy can substantially influence reported prevalence and obscure the true scale of viral spread. Collectively, these findings indicate that PEDV is a globally entrenched, persistently circulating pathogen sustained through subclinical infection and herd-level viral persistence. This work provides the first comprehensive global synthesis of PEDV epidemiology and establishes an evidence-based framework to guide standardised surveillance, contextualise diagnostic outcomes, and inform targeted prevention strategies encompassing vaccination and biosecurity. Strengthening harmonised monitoring systems will be essential to reducing the long-term burden of PEDV in modern swine production.
Keywords:  PEDV       prevalence        systematic review        meta-analysis        diagnostic methods  
Received: 11 March 2026   Accepted: 07 July 2002 Online: 17 July 2026  
Fund: 

This work was supported by the grants from the National Centre of Technology Innovation for Pigs (NCTIP-XD/B19), the Chongqing Talent Plan “Contract System” Project (cstc2022ycjh-bgzxm0183 and 22509C), the Sichuan Provincial Regional Innovation Cooperation Project, China (2024YFHZ0110), and the Basic and Long-Term Agricultural Science and Technology Observation and Research, China (MARA-ORS261-AH024).  

About author:  #Correspondence Lizhi Fu, E-mail: flzfulizhi@163.com; Yue Wang, E-mail: vetyuewang@swu.edu.cn * These authors contributed equally to this study.

Cite this article: 

Yassein M. Ibrahim, Yuandi Yu, Gebremeskel Mamu Werid, Ashenafi Kiros Wubshet, Thien Dinh Van, Weldu Tesfagaber, Joshua W. Aleri, Wenxiu Wang, Liu Yang, Lizhi Fu, Yue Wang. 2026.

Global epidemiological landscape and diagnostic biases reveal persistent endemic circulation of porcine epidemic diarrhoea virus: A systematic review and meta-analysis . Journal of Integrative Agriculture, 25(10): 3971-3989.

Alonso C, Raynor P C, Davies P R, Torremorell M. 2015. Concentration, size distribution, and infectivity of airborne particles carrying swine viruses. PLoS ONE, 10, e0135675.

Bai J, Du C, Lu Y, Wang R, Su X, Yu K, Qin Q, Chen Y, Wei Z, Huang W. 2023. Phylogenetic and spatiotemporal analyses of porcine epidemic diarrhea virus in Guangxi, China during 2017–2022. Animals, 13, 1215.

Baujat B, Mahe C, Pignon J P, Hill C. 2002. A graphical method for exploring heterogeneity in meta-analyses: Application to a meta-analysis of 65 trials. Statistics in Medicine, 21, 2641–2652.

Bertasio C, Giacomini E, Lazzaro M, Perulli S, Papetti A, Lavazza A, Lelli D, Alborali G, Boniotti M B. 2016. Porcine epidemic diarrhea virus shedding and antibody response in swine farms: A longitudinal study. Frontiers in Microbiology, 7, 2009.

Boniotti M B, Papetti A, Bertasio C, Giacomini E, Lazzaro M, Cerioli M, Faccini S, Bonilauri P, Vezzoli F, Lavazza A, Alborali G L. 2018. Porcine epidemic diarrhoea virus in Italy: Disease spread and the role of transportation. Transboundary and Emerging Diseases, 65, 1935–1942.

Brnic D, Simic I, Lojkic I, Kresic N, Jungic A, Balic D, Lolic M, Knezevic D, Hengl B. 2019. The emergence of porcine epidemic diarrhoea in Croatia: Molecular characterization and serology. BMC Veterinary Research, 15, 249.

Cai Y, Yin W, Zhou Y, Li B, Ai L, Pan M, Guo W. 2016. Molecular detection of porcine astrovirus in Sichuan Province, China. Virology Journal, 13, 6.

Carvajal A, Argüello H, Martínez-Lobo F J, Costillas S, Miranda R, G. De Nova P J, Rubio P. 2015. Porcine epidemic diarrhoea: New insights into an old disease. Porcine Health Management, 1, 12.

Carvajal A, Lanza I, Diego R, Rubio P, Cármenes P. 1995. Seroprevalence of porcine epidemic diarrhea virus infection among different types of breeding swine farms in Spain. Preventive Veterinary Medicine, 23, 33–40.

Chen F, Ku X, Li Z, Memon A M, Ye S, Zhu Y, Zhou C, Yao L, Meng X, He Q. 2016. Genetic characteristics of porcine epidemic diarrhea virus in Chinese mainland, revealing genetic markers of classical and variant virulent parental/attenuated strains. Gene, 588, 95–102.

Chen Q, Li G, Stasko J, Thomas J T, Stensland W R, Pillatzki A E, Gauger P C, Schwartz K J, Madson D, Yoon K J. 2014. Isolation and characterization of porcine epidemic diarrhea viruses associated with the 2013 disease outbreak among swine in the United States. Journal of Clinical Microbiology, 52, 234–243.

Chen T T, Cheng F L, Liang J, Su Z R, Fan Q P. 2013. Development and preliminary application of multiplex RT-PCR for classical swine fever virus and porcine reproductive and respiratory syndrome virus. Chinese Journal of Biologicals, 26, 425–429.

Chen X, Zhang X X, Li C, Wang H, Wang H, Meng X Z, Ma J, Ni H B, Zhang X, Qi Y. 2019. Epidemiology of porcine epidemic diarrhea virus among Chinese pig populations: A meta-analysis. Microbial Pathogenesis, 129, 43–49.

Dee S A, Bauermann F V, Niederwerder M C, Singrey A, Clement T, De Lima M, Long C, Patterson G, Sheahan M A, Stoian A M. 2018. Survival of viral pathogens in animal feed ingredients under transboundary shipping models. PLoS ONE, 13, e0194509.

Dortmans J, Li W, Van Der Wolf P J, Buter G J, Franssen P J M, Van Schaik G, Houben M, Bosch B J. 2018. Porcine epidemic diarrhea virus (PEDV) introduction into a naive Dutch pig population in 2014. Veterinary Microbiology 221, 13–18.

Feng B, Li C, Qiu Y, Qi W, Qiu M, Li J, Lin H, Zheng W, Zhu J, Chen N. 2023. Genomic characterizations of porcine epidemic diarrhea viruses (PEDV) in diarrheic piglets and clinically healthy adult pigs from 2019 to 2022 in China. Animals, 13, 1562.

Ferrara G, D'Anza E, Rossi A, Improda E, Iovane V, Pagnini U, Iovane G, Montagnaro S. 2023. A serological investigation of porcine reproductive and respiratory syndrome and three coronaviruses in the Campania Region, Southern Italy. Viruses, 15, doi: 10.3390/v15020300.

Ferrara G, Nocera F P, Longobardi C, Ciarcia R, Fioretti A, Damiano S, Iovane G, Pagnini U, Montagnaro S. 2022. Retrospective serosurvey of three porcine coronaviruses among the wild boar (Sus scrofa) population in the campania region of Italy. Journal of Wildlife Disease, 58, 887–891.

Furuya-Kanamori L, Barendregt J J, Doi S A. 2018. A new improved graphical and quantitative method for detecting bias in meta-analysis. JBI Evidence Implementation, 16, 195–203.

Gao X, Zhang L, Jiang X, Mehmood K, Wang L, Tong X, Wang M, Zhang H, Li J. 2019. Porcine epidemic diarrhea: An emerging disease in Tibetan pigs in Tibet, China. Tropical Animal Health and Production, 51, 491–494.

Garcia-Gonzalez E, Cerriteno-Sanchez J L, Cuevas-Romero J S, Garcia-Cambron J B, Castaneda-Montes F J, Villasenor-Ortega F. 2023. Seroepidemiology study of porcine epidemic diarrhea virus in mexico by indirect enzyme-linked immunosorbent assay based on a recombinant fragment of N-Terminus domain spike protein. Microorganisms, 11, 1986.

Ge F F, Yang D Q, Ju H B, Wang J, Liu J, Liu P H, Zhou J P. 2013. Epidemiological survey of porcine epidemic diarrhea virus in swine farms in Shanghai, China. Archives of Virology, 158, 2227–2231.

Gerber P F, Gong Q, Huang Y W, Wang C, Holtkamp D, Opriessnig T. 2014. Detection of antibodies against porcine epidemic diarrhea virus in serum and colostrum by indirect ELISA. The Veterinary Journal, 202, 33–36.

Goecke N B, Hjulsager C K, Kongsted H, Boye M, Rasmussen S, Granberg F, Fischer T K, Midgley S E, Rasmussen L D, Angen O, Nielsen J P, Jorsal S E, Larsen L E. 2017. No evidence of enteric viral involvement in the new neonatal porcine diarrhoea syndrome in Danish pigs. BMC Veterinary Research, 13, 315.

Goede D, Morrison R B. 2016. Production impact & time to stability in sow herds infected with porcine epidemic diarrhea virus (PEDV). Preventive Veterinary Medicine, 123, 202–207.

Guo J, Fang L, Ye X, Chen J, Xu S, Zhu X, Miao Y, Wang D, Xiao S. 2019. Evolutionary and genotypic analyses of global porcine epidemic diarrhea virus strains. Transboundary and Emerging Diseases, 66, 111–118.

Guo J, Lai Y, Yang Z, Song W, Zhou J, Li Z, Su W, Xiao S, Fang L. 2024. Coinfection and nonrandom recombination drive the evolution of swine enteric coronaviruses. Emerging Microbes & Infections, 13, 2332653.

Guo Z, Ruan H, Qiao S, Deng R, Zhang G. 2020. Co-infection status of porcine circoviruses (PCV2 and PCV3) and porcine epidemic diarrhea virus (PEDV) in pigs with watery diarrhea in Henan province, central China. Microbial Pathogenesis, 142, 104047.

Hanke D, Pohlmann A, Sauter-Louis C, Höper D, Stadler J, Ritzmann M, Steinrigl A, Schwarz B A, Akimkin V, Fux R. 2017. Porcine epidemic diarrhea in Europe: In-detail analyses of disease dynamics and molecular epidemiology. Viruses, 9, 177.

Hartung J, Knapp G. 2001. A refined method for the meta-analysis of controlled clinical trials with binary outcome. Statistics in Medicine, 20, 3875–3889.

He D, Chen F, Ku X, Yu X, Li B, Li Z, Sun Q, Fan S, He Q. 2019. Establishment and application of a multiplex RT-PCR to differentiate wild-type and vaccine strains of porcine epidemic diarrhea virus. Journal of Virological Methods, 272, 113684.

Higgins J P, Thompson S G. 2002. Quantifying heterogeneity in a meta-analysis. Statistics in Medicine, 21, 1539–1558.

Hiremath J B, Swathi M, Ramamoorthy R, Shijili M, Sharma D, Hemadri D, Chethankumar H B, Suresh K P, Patil S S, Nayakvadi S, Satheesha S P, Shome B R, Gulati B R. 2025. First detection and molecular characterization of porcine epidemic diarrhea virus (PEDV) in India: Evidence of a new variant in Karnataka. Virology Journal, 22, 28.

Hou X L, Yu L Y, Liu J. 2007. Development and evaluation of enzyme-linked immunosorbent assay based on recombinant nucleocapsid protein for detection of porcine epidemic diarrhea (PEDV) antibodies. Veterinary Microbiology, 123, 86–92.

Huang L, Yan L, Zeng M, Yao J, Hu J, Zhong W, Su L, Yan G, Chen S, Huang Y. 2025. G2c-lineage dominance and S1 epitope-glycan drift of porcine epidemic diarrhea virus in Guangdong Province, China, 2022–2024. Veterinary Sciences, 12, 1056.

Ibrahim Y M, Liu C, Yu Y, Yang L, Chen Q, Ma W, Werid G M, Li S, Luo J, Gao S, Zhang S, Fu L, Wang Y. 2026. Swine enteric coronaviruses: an updated overview of epidemiology, diagnosis, prevention, and control. Animals (Basel), 16, 458.

Jiang C, He H, Zhang C, Zhang X, Han J, Zhang H, Luo Y, Wu Y, Wang Y, Ge B, Xu J. 2019. One-step triplex reverse-transcription PCR detection of porcine epidemic diarrhea virus, porcine sapelovirus, and porcine sapovirus. Journal of Veterinary Diagnostic Investigation, 31, 909–912.

Jung K, Saif L J. 2015. Porcine epidemic diarrhea virus infection: Etiology, epidemiology, pathogenesis and immunoprophylaxis. The Veterinary Journal, 204, 134–143.

Jung K, Saif L J, Wang Q. 2020. Porcine epidemic diarrhea virus (PEDV): An update on etiology, transmission, pathogenesis, and prevention and control. Virus Research, 286, 198045.

Kim S J, Nguyen V G, Huynh T M, Park Y H, Park B K, Chung H C. 2020. Molecular characterization of porcine epidemic diarrhea virus and its new genetic classification based on the nucleocapsid gene. Viruses, 12, doi: 10.3390/v12080790.

Kim Y, Krishna V D, Torremorell M, Goyal S M, Cheeran M C J. 2018. Stability of porcine epidemic diarrhea virus on fomite materials at different temperatures. Veterinary Sciences, 5, 21.

Langel S N, Paim F C, Alhamo M A, Buckley A, Van Geelen A, Lager K M, Vlasova A N, Saif L J. 2019. Stage of gestation at porcine epidemic diarrhea virus infection of pregnant swine impacts maternal immunity and lactogenic immune protection of neonatal suckling piglets. Frontiers in Immunology, 10, 727.

Langel S N, Paim F C, Lager K M, Vlasova A N, Saif L J. 2016. Lactogenic immunity and vaccines for porcine epidemic diarrhea virus (PEDV): Historical and current concepts. Virus Research, 226, 93–107.

Lee C. 2015. Porcine epidemic diarrhea virus: An emerging and re-emerging epizootic swine virus. Virology Journal, 12, 193.

Lei J, Miao Y, Bi W, Xiang C, Li W, Zhang R, Li Q, Yang Z.2024. Porcine epidemic diarrhea virus: Etiology, epidemiology, antigenicity, and control strategies in China. Animals (Basel), 14, 294.

Li C Q, Hu L Q, Liu G P, Wang Y, Li T, Chen S X, Yang X L, Ma L X, Zeng J G. 2023. A duplex nested RT-PCR method for monitoring porcine epidemic diarrhea virus and porcine delta-coronavirus. BMC Veterinary Research, 19, 151.

Li S, Niu S, Yao B, Chen Q, Ma W, Luo J, Zheng H, Xu G, Wu T, Yao W, Yang L, Fu L. 2025. A systematic review and meta-analysis of porcine epidemic diarrhea virus vaccine efficacy and its modifiers. Animals (Basel), 15, 3592.

Li W, Li H, Liu Y, Pan Y, Deng F, Song Y, Tang X, He Q. 2012. New variants of porcine epidemic diarrhea virus, China, 2011. Emerging Infectious Diseases, 18, 1350.

Li X, Li Y, Huang J, Yao Y, Zhao W, Zhang Y, Qing J, Ren J, Yan Z, Wang Z. 2022. Isolation and oral immunogenicity assessment of porcine epidemic diarrhea virus NH-TA2020 strain: One of the predominant strains circulating in China from 2017 to 2021. Virologica Sinica, 37, 646–655.

Lin H, Zhou H, Gao L, Li B, He K, Fan H. 2018. Development and application of an indirect ELISA for the detection of antibodies to porcine epidemic diarrhea virus based on a recombinant spike protein. BMC Veterinary Research, 14, 243.

López-Figueroa C, Cano E, Navarro N, Pérez-Maíllo M, Pujols J, Núñez J I, Vergara-Alert J, Segalés J. 2023. Clinical, pathological and virological outcomes of tissue-homogenate-derived and cell-adapted strains of porcine epidemic diarrhea virus (PEDV) in a neonatal pig model. Viruses, 16, 44.

Lu Y, Li S, Yang S, Wang C, Fu Y, Yu H, Huang X, Zhao J, Shao Y, Wang Z. 2024. Variation in innate immune responses to porcine epidemic diarrhea virus infection in piglets at different ages. Microbial Pathogenesis, 196, 106958.

Lv C, Xiao Y, Li X, Tian K. 2016. Porcine epidemic diarrhea virus: Current insights. Virus Adaptation and Treatment, 8, 1–12.

Ma Z, Liu M, Liu Z, Meng F, Wang H, Cao L, Li Y, Jiao Q, Han Z, Liu S. 2021. Epidemiological investigation of porcine circovirus type 2 and its coinfection rate in Shandong province in China from 2015 to 2018. BMC Veterinary Research, 17, 17.

Makau D N, Pamornchainavakul N, Vanderwaal K, Kikuti M, Picasso-Risso C, Geary E, Corzo C A. 2024. Postepidemic epidemiology of porcine epidemic diarrhea virus in the United States. Transboundary and Emerging Diseases, 2024, 5531899.

Marthaler D, Raymond L, Jiang Y, Collins J, Rossow K, Rovira A. 2014. Rapid detection, complete genome sequencing, and phylogenetic analysis of porcine deltacoronavirus. Emerging Infectious Diseases, 20, 1347.

Masiuk D, Pogranichniy R, Nedzvetsky V, Hlebeniuk V, Kokariev A, Vasylenko T, Yesina E. 2020. The the monitoring monitoring and and molecular molecular epizootiology epizootiology of of porcine porcine epidemic epidemic diarrhea diarrhea in in Ukraine Ukraine during during 2014–2018. Veterinarska Stanica, 51, 145–154.

Mchugh M L. 2012. Interrater reliability: The kappa statistic. Biochemia Medica, 22, 276–282.

Munn Z, Moola S, Lisy K, Riitano D, Tufanaru C. 2015. Methodological guidance for systematic reviews of observational epidemiological studies reporting prevalence and cumulative incidence data. JBI Evidence Implementation, 13, 147–153.

Myint O, Hoa N T, Fuke N, Pornthummawat A, Lan N T, Hirai T, Yoshida A, Yamaguchi R. 2021. A persistent epidemic of porcine epidemic diarrhoea virus infection by serological survey of commercial pig farms in northern Vietnam. BMC Veterinary Research, 17, 235.

Nan P, Wen D, Opriessnig T, Zhang Q, Yu X, Jiang Y. 2021. Novel universal primer-pentaplex PCR assay based on chimeric primers for simultaneous detection of five common pig viruses associated with diarrhea. Molecular and Cellular Probes, 58, 101747.

Niederwerder M C, Hesse R. 2018. Swine enteric coronavirus disease: A review of 4 years with porcine epidemic diarrhoea virus and porcine deltacoronavirus in the United States and Canada. Transboundary and Emerging Diseases, 65, 660–675.

Oh J S, Song D S, Yang J S, Song J Y, Moon H J, Kim T Y, Park B K. 2005. Comparison of an enzyme-linked immunosorbent assay with serum neutralization test for serodiagnosis of porcine epidemic diarrhea virus infection. Journal of Veterinary Science, 6, 349–352.

Okda F, Liu X, Singrey A, Clement T, Nelson J, Christopher-Hennings J, Nelson E A, Lawson S. 2015. Development of an indirect ELISA, blocking ELISA, fluorescent microsphere immunoassay and fluorescent focus neutralization assay for serologic evaluation of exposure to North American strains of Porcine Epidemic Diarrhea Virus. BMC Veterinary Research, 11, 180.

Olech M. 2022. Current state of molecular and serological methods for detection of porcine epidemic diarrhea virus. Pathogens, 11, 1074.

Olkin I, Dahabreh I J, Trikalinos T A. 2012. GOSH–a graphical display of study heterogeneity. Research Synthesis Methods, 3, 214–223.

Page M J, Mckenzie J E, Bossuyt P M, Boutron I, Hoffmann T C, Mulrow C D, Shamseer L, Tetzlaff J M, Akl E A, Brennan S E. 2021. The PRISMA 2020. Statement: An updated guideline for reporting systematic reviews. BMJ, 372, n71.

Park B K, Song D. 2016. Recent outbreaks and emergence of mutants of porcine epidemic Diarrhea viruses (PEDV) in Korea. Japanese Journal of Veterinary Research, 64, S25–S32.

Parker T B, Meiklejohn K A, Machado G, Rahe M, Darrow B S, Ferreira J B. 2025. Evaluation of porcine epidemic diarrhea virus RNA contamination on swine industry transportation vehicles. Preventive Veterinary Medicine, 237, 106447.

Peng P, Gao Y, Zhou Q, Jiang T, Zheng S, Huang M, Xue C, Cao Y, Xu Z. 2022. Development of an indirect ELISA for detecting swine acute diarrhoea syndrome coronavirus IgG antibodies based on a recombinant spike protein. Transboundary and Emerging Diseases, 69, 2065–2075.

Peng Q, Fu P, Zhou Y, Lang Y, Zhao S, Wen Y, Wang Y, Wu R, Zhao Q, Du S, Cao S, Huang X, Yan Q. 2024. Phylogenetic analysis of porcine epidemic diarrhea virus (PEDV) during 2020–2022 and isolation of a variant recombinant PEDV strain. International Journal of Molecular Sciences, 25, 10878.

Pensaert M, De Bouck P. 1978. A new coronavirus-like particle associated with diarrhea in swine. Archives of Virology, 58, 243–247.

Pensaert M B, Martelli P. 2016. Porcine epidemic diarrhea: A retrospect from Europe and matters of debate. Virus Research, 226, 1–6.

Peters J L, Sutton A J, Jones D R, Abrams K R, Rushton L. 2006. Comparison of two methods to detect publication bias in meta-analysis. The Journal of the American Medical Association, 295, 676–680.

Plut J, Toplak I, Stukelj M. 2018. Variations in the detection of anti-PEDV antibodies in serum samples using three diagnostic tests-short communication. Acta Veterinaria Hungarica, 66, 337–342.

Qin S, Hu C, Yang D, Wu J, Yue H, Tang C, Zhang B. 2019. Emergence of porcine epidemic diarrhea viruses with the novel S genes in Tibetan pigs in the Qinghai-Tibetan plateau in China. Virus Research, 270, 197652.

Rodak L, Valicek L, Smid B, Nevorankova Z. 2005. An ELISA optimized for porcine epidemic diarrhoea virus detection in faeces. Veterinary Microbiology, 105, 9–17.

Rosas-Murrieta N H, Rodriguez-Enriquez A, Herrera-Camacho I, Millan-Perez-Pena L, Santos-Lopez G, Rivera-Benitez J F. 2024. Comparative review of the state of the art in research on the porcine epidemic diarrhea virus and SARS-CoV–2, scope of knowledge between coronaviruses. Viruses, 16, 238.

Saeng-Chuto K, Madapong A, Kaeoket K, Piñeyro P E, Tantituvanont A, Nilubol D. 2021. Coinfection of porcine deltacoronavirus and porcine epidemic diarrhea virus increases disease severity, cell trophism and earlier upregulation of IFN-α and IL12. Scientific Reports, 11, 3040.

Saeng-Chuto K, Madapong A, Kaeoket K, Piñeyro P E, Tantituvanont A, Nilubol D. 2022. Co-infection of porcine deltacoronavirus and porcine epidemic diarrhea virus induces early TRAF6-mediated NF-κB and IRF7 signaling pathways through TLRs. Scientific Reports, 12, 19443.

Salamunova S, Jackova A, Mandelik R, Novotny J, Vlasakova M, Vilcek S. 2018. Molecular detection of enteric viruses and the genetic characterization of porcine astroviruses and sapoviruses in domestic pigs from Slovakian farms. BMC Veterinary Research, 14, 313.

Schumacher L, Chen Q, Fredericks L, Gauger P, Bandrick M, Keith M, Giménez-Lirola L, Magstadt D, Yim-Im W, Welch M. 2022. Evaluation of the efficacy of an S-INDEL PEDV strain administered to pregnant gilts against a virulent non-S-INDEL PEDV challenge in newborn piglets. Viruses, 14, 1801.

Scott A, Mccluskey B, Brown-Reid M, Grear D, Pitcher P, Ramos G, Spencer D, Singrey A. 2016. Porcine epidemic diarrhea virus introduction into the United States: Root cause investigation. Preventive Veterinary Medicine, 123, 192–201.

Song D, Park B. 2012. Porcine epidemic diarrhoea virus: A comprehensive review of molecular epidemiology, diagnosis, and vaccines. Virus Genes, 44, 167–175.

Song W, Feng Y, Zhang J, Kong D, Fan J, Zhao M, Hua L, Xiang J, Tang X, Xiao S. 2024. Development of a multiplex reverse transcription-quantitative PCR (qPCR) method for detecting common causative agents of swine viral diarrhea in China. Porcine Health Management, 10, 12.

Stevenson G W, Hoang H, Schwartz K J, Burrough E R, Sun D, Madson D, Cooper V L, Pillatzki A, Gauger P, Schmitt B J. 2013. Emergence of Porcine epidemic diarrhea virus in the United States: Clinical signs, lesions, and viral genomic sequences. Journal of Veterinary Diagnostic Investigation, 25, 649–654.

Su M, Li C, Qi S, Yang D, Jiang N, Yin B, Guo D, Kong F, Yuan D, Feng L. 2020. A molecular epidemiological investigation of PEDV in China: Characterization of co‐infection and genetic diversity of S1‐based genes. Transboundary and Emerging Diseases, 67, 1129–1140.

Sun W, Shi Z, Wang P, Zhao B, Li J, Wei X, Wei L, Wang J. 2023. Metavirome analysis reveals a high prevalence of porcine hemagglutination encephalomyelitis virus in clinically healthy pigs in China. Pathogens, 12, doi: 10.3390/pathogens12040510.

Suzuki T, Murakami S, Takahashi O, Kodera A, Masuda T, Itoh S, Miyazaki A, Ohashi S, Tsutsui T. 2015. Molecular characterization of pig epidemic diarrhoea viruses isolated in Japan from 2013 to 2014. Infection, Genetics and Evolution, 36, 363–368.

Tan L, Li Y, He J, Hu Y, Cai X, Liu W, Liu T, Wang J, Li Z, Yuan X, Zhan Y, Yang L, Deng Z, Wang N, Yang Y, Wang A. 2020. Epidemic and genetic characterization of porcine epidemic diarrhea virus strains circulating in the regions around Hunan, China, during 2017–2018. Archives of Virology, 165, 877–889.

Team R C. 2016. R: A language and environment for statistical computing. R foundation for statistical computing, Vienna, Austria. http://www. R-project. org/

Thachil A, Gerber P F, Xiao C T, Huang Y W, Opriessnig T. 2015. Development and application of an ELISA for the detection of porcine deltacoronavirus IgG antibodies. PLoS ONE, 10, e0124363.

Thompson S G, Sharp S J. 1999. Explaining heterogeneity in meta-analysis: A comparison of methods. Statistics in Medicine, 18, 2693–2708.

Trudeau M P, Verma H, Sampedro F, Urriola P E, Shurson G C, Goyal S M. 2017. Environmental persistence of porcine coronaviruses in feed and feed ingredients. PLoS ONE, 12, e0178094.

Viechtbauer W. 2010. Conducting meta-analyses in R with the metafor package. Journal of Statistical Software, 36, 1–48.

Wang C, Lan X, Yang B. 2016. Molecular epidemiological investigation of porcine kobuvirus and its coinfection rate with PEDV and SaV in Northwest China. BioMed Research International, 2016, 7590569.

Weng L, Weersink A, Poljak Z, De Lange K, Von Massow M. 2016. An economic evaluation of intervention strategies for Porcine Epidemic Diarrhea (PED). Preventive Veterinary Medicine, 134, 58–68.

Werid G M, Van T D, Miller D, Hemmatzadeh F, Fulton R W, Kirkwood R, Petrovski K. 2024a. Bovine parainfluenza-3 virus detection methods and prevalence in cattle: A systematic review and meta-analysis. Animals, 14, 494.

Werid G M, Wubshet A K, Araya T T, Miller D, Hemmatzadeh F, Reichel M P, Petrovski K. 2024b. Detection of bovine respiratory syncytial virus in cattle: A systematic review and meta-analysis. Ruminants, 4, 491–514.

Xie B, Yan W, Yang X, Fan H. 2025. Molecular characterization of porcine epidemic diarrhea virus in Sichuan from 2023 to 2024. Microbial Pathogenesis, 203, 107486.

Xing N, Guan X, An B, Cui B, Wang Z, Wang X, Zhang X, Du Q, Zhao X, Huang Y, Tong D. 2016. Ultrasensitive detection of porcine epidemic diarrhea virus from fecal samples using functionalized nanoparticles. PLoS ONE, 11, e0167325.

Xu T, Zhou Y C, Liu Z Y, Zhang J Z, Wu F, You D, Ge L P, Liu Z H, Sun J, Zeng X. 2024. Prevalence and genetic diversity of porcine epidemic diarrhea virus in Southwest China during 2020–2022. Scientific Reports, 14, 29124.

Yu J, Chai X, Cheng Y, Xing G, Liao A, Du L, Wang Y, Lei J, Gu J, Zhou J. 2018. Molecular characteristics of the spike gene of porcine epidemic diarrhoea virus strains in Eastern China in 2016. Virus Research, 247, 47–54.

Yuan C, Zhang P, Liu P, Li Y, Li J, Zhang E, Jin Y, Yang Q. 2022. A Novel pathway for porcine epidemic diarrhea virus transmission from sows to neonatal piglets mediated by colostrum. Journal of Virology, 96, e0047722.

Zang Y, Feng B, Huang Z, Zhao D, Qi W, Qiu Y, Qiu M, Li C, Lin H, Zheng W, Zhu J, Chen N. 2023. Epidemiologic and genomic characterizations of porcine kobuviruses in diarrheic and healthy pigs. Animals (Basel), 13, doi: 10.3390/ani13193129.

Zhang H, Han F, Shu X, Li Q, Ding Q, Hao C, Yan X, Xu M, Hu H. 2022. Co‐infection of porcine epidemic diarrhoea virus and porcine deltacoronavirus enhances the disease severity in piglets. Transboundary and Emerging Diseases, 69, 1715–1726.

Zhang H, Zou C, Peng O, Ashraf U, Xu Q, Gong L, Fan B, Zhang Y, Xu Z, Xue C. 2023. Global dynamics of porcine enteric coronavirus PEDV epidemiology, evolution, and transmission. Molecular Biology and Evolution, 40, msad052.

Zhang L, Liu J B, Liu H Z, Lian Y X, Huang Y W, Cong F. 2024. The emergence of novel variants of the porcine epidemic diarrhea virus spike gene from 2011 to 2023. Transboundary and Emerging Diseases, 2024, 2876278.

Zhang Y, Chen Y, Zhou J, Wang X, Ma L, Li J, Yang L, Yuan H, Pang D, Ouyang H. 2022. Porcine epidemic diarrhea virus: An updated overview of virus epidemiology, virulence variation patterns and virus-host interactions. Viruses, 14, 2434.

Zhang Y, Guo J, Yang Q, Zhuang T, Xiao S, Fang L. 2025. Isolation, genetic characterization, and pathogenicity of the porcine epidemic diarrhea virus S-INDEL strain EJS6 in China. Animal Diseases, 5, 8.

Zhou J, Wu W, Wang D, Wang W, Chang X, Li Y, Li J, Fan B, Zhou J, Guo R, Zhu X, Li B. 2024. Development of a colloidal gold immunochromatographic strip for the simultaneous detection of porcine epidemic diarrhea virus and transmissible gastroenteritis virus. Frontiers in Microbiology, 15, 1418959.

Zhu H, Wang G, Liu X, Wu W, Yu T, Zhang W, Liu X, Cheng G, Wei L, Ni L, Peng Z, Li X, Xu D, Qian P, Chen P. 2024. Establishment and application of a quadruplex real-time RT-qPCR assay for differentiation of TGEV, PEDV, PDCoV, and PoRVA. Microbial Pathogenesis, 191, 106646.

Zhuang L, Zhao Y, Shen J, Sun L, Hao P, Yang J, Zhang Y, Shen Q. 2025. Advances in porcine epidemic diarrhea virus research: Genome, epidemiology, vaccines, and detection methods. Discover Nano, 20, 48.

Zuo Q, Zhao R, Liu J, Zhao Q, Zhu L, Zhang B, Bi J, Yang G, Liu J, Yin G. 2018. Epidemiology and phylogeny of spike gene of porcine epidemic diarrhea virus from Yunnan, China. Virus Research, 249, 45–51.

[1] Minghui Li, Yilan Chen, Siqiao Wang, Xueke Sun, Yongkun Du, Siyuan Liu, Ruiqi Li, Zejie Chang, Peiyang Ding, Gaiping Zhang. Plug-and-display nanoparticle immunization of the core epitope domain induces potent neutralizing antibody and cellular immune responses against PEDV[J]. >Journal of Integrative Agriculture, 2025, 24(9): 3598-3613.
No Suggested Reading articles found!