中国婴幼儿轮状病毒腹泻流行特征
Epidemiological Characteristics of Infant Rotavirus Diarrhea in China
DOI: 10.12677/ACM.2023.1361259, PDF,   
作者: 程江龙:新疆医科大学研究生院,新疆 乌鲁木齐;杨学磊*:新疆维吾尔自治区人民医院医学研究与转化中心,新疆 乌鲁木齐
关键词: 轮状病毒腹泻流行病学疫苗Rotavirus Diarrhea Epidemiology Vaccine
摘要: 轮状病毒(rotavirus, RV)感染所导致的腹泻是波及全世界的一种常见疾病,对RV腹泻作深入的流行病学调查是相关疫苗研发的基础。不同地区,不同年份RV流行的特征常发生变化。本文对我国2011年~2022年RV感染导致腹泻的相关研究进行综述,提供流行病学特点等重要信息,介绍RV疫苗在国内外的研制及应用情况,为目前及将来RV疫苗的研制和免疫接种计划提供动态信息。
Abstract: Diarrhea caused by rotavirus infection is a common disease all over the word, in-depth epidemio-logical investigation of RV diarrhea is the basic of vaccine research and development. The charac-teristics of RV popularity in different countries and years often change. In this paper, we review the research progress of China in RV infective diarrhea from 2011 to 2022, provide important infor-mation on the epidemiological characteristics, introduce the development and application of RV vaccine at home and abroad, and provide dynamic information for the current and future RV vac-cine development and immunization schedule.
文章引用:程江龙, 杨学磊. 中国婴幼儿轮状病毒腹泻流行特征[J]. 临床医学进展, 2023, 13(6): 8992-8999. https://doi.org/10.12677/ACM.2023.1361259

参考文献

[1] Lim, M.L. and Wallace, M.R. (2004) Infectious Diarrhea in History. Infectious Disease Clinics of North America, 18, 261-274. [Google Scholar] [CrossRef] [PubMed]
[2] Korsman, S.N.J., Van Zyl, G.U., Nutt, L., et al. (2012) Gastrointestinal Illness. In: Korsman, S.N.J., Van Zyl, G.U., Nutt, L., et al., Eds., Virology, Churchill Livingstone, Ed-inburgh, 106-107. [Google Scholar] [CrossRef
[3] Troeger, C., Khalil, I.A., Rao, P.C., et al. (2018) Rota-virus Vaccination and the Global Burden of Rotavirus Diarrhea among Children Younger than 5 Years. JAMA Pediatrics, 172, 958-965. [Google Scholar] [CrossRef] [PubMed]
[4] (2009) Rotavirus Vaccines: An Update. The Weekly Epide-miological Record, 84, 533-540.
[5] Burnett, E., Jonesteller, C.L., Tate, J.E., Yen, C. and Parashar, U.D. (2017) Global Impact of Rotavirus Vaccination on Childhood Hospitalizations and Mortality from Diarrhea. The Journal of Infectious Diseases, 215, 1666-1672. [Google Scholar] [CrossRef] [PubMed]
[6] Tate, J.E., Mutuc, J.D., Panozzo, C.A., Payne, D.C., Cortese, M.M., Cortes, J.E., Yen, C., Esposito, D.H., Lopman, B.A., Patel, M.M., et al. (2011) Sustained Decline in Rotavirus Detec-tions in the United States Following the Introduction of Rotavirus Vaccine in 2006. The Pediatric Infectious Disease Journal, 30, S30-S34. [Google Scholar] [CrossRef] [PubMed]
[7] McDonald, S.M., Nelson, M.I., Turner, P.E. and Patton, J.T. (2016) Re-assortment in Segmented RNA Viruses: Mechanisms and Outcomes. Nature Reviews Microbiology, 14, 448-460. [Google Scholar] [CrossRef] [PubMed]
[8] (2021) International Committee on Taxonomy of Viruses.
https://talk.ictvonline.org/taxonomy/
[9] Lundgren, O. and Svensson, L. (2001) Pathogenesis of Rotavirus Diar-rhea. Microbes and Infection, 3, 1145-1156. [Google Scholar] [CrossRef
[10] Suzuki, T. and Inoue, D. (2018) Full Genome-Based Geno-typing System for Rotavirus H and Detection of Potential Gene Recombination in Nonstructural Protein 3 between Por-cine Rotavirus H and Rotavirus C. Journal of General Virology, 99, 1582-1589. [Google Scholar] [CrossRef] [PubMed]
[11] Flores, P.S., Costa, F.B., Amorim, A.R., et al. (2021) Rotavirus A, C, and H Inbrazilian Pigs: Potential for Zoonotic Transmission of RVA. Journal of Veterinary Diagnostic Investigation, 33, 129-135. [Google Scholar] [CrossRef] [PubMed]
[12] Surendran, S. (2008) Review Article: Rotavirus Infection: Molec-ular Changes and Pathophysiology. EXCLI Journal, 7, Article 154.
[13] Nair, N., Feng, N., Blum, L.K., et al. (2017) VP4- and VP7-Specific Antibodies Mediate Heterotypic Immunity to Rotavirus in Humans. Science Translational Medi-cine, 9, eaam5434. [Google Scholar] [CrossRef] [PubMed]
[14] Hoxie, I. and Dennehy, J.J. (2021) Rotavirus A Genome Segments Show Distinct Segregation and Codon Usage Patterns. Viruses. (Preprint) [Google Scholar] [CrossRef
[15] (2022) Rotavirus Classification Working Group: RCWG.
https://rega.kuleuven.be/cev/viralmetagenomics/virus-classification/rcwg
[16] Steger, C.L., Boudreaux, C.E., LaConte, L.E., et al. (2019) Group A rotavirus VP1 Polymerase and VP2 Core Shell Proteins: Intergenotypic Sequence Variation and in Vitro Functional Compatibility. Journal of Virology, 93, e01642-e01618. [Google Scholar] [CrossRef
[17] Thanh, H.D., Tran, V.T., Lim, I., and Kim, W. (2018) Emergence of Human G2P[4] Rotaviruses in the Post-Vaccination Era in South Korea: Footprints of Multiple Interspecies Re-Assortment Events. Scientific Reports, 8, Article No. 6011. [Google Scholar] [CrossRef] [PubMed]
[18] Crawford, S.E., Ramani, S., Tate, J.E., et al. (2017) Rotavirus Infection. Nature Reviews Disease Primers, 3, Article No. 17083. [Google Scholar] [CrossRef] [PubMed]
[19] Berkova, Z., Crawford, S.E., Trugnan, G., Yoshimori, T., Morris, A.P. and Estes, M.K. (2006) Rotavirus NSP4 Induces a Novel Vesicular Compartment Regulated by Calcium and Associated with Viroplasms. Journal of Virology, 80, 6061-6071. [Google Scholar] [CrossRef
[20] Chen, F., Wang, H., He, H., Song, L., Wu, J., Gao, Y., Liu, X., He, C., Yang, H., Chen, L., Wang, L., Li, G., Li, Y., Kaplan, D.E. and Zhong, J. (2011) Short Hairpin RNA-Mediated Silencing of Bovine Rotavirus NSP4 Gene Prevents Diarrhoea in Suck-ling Mice. Journal of General Virology, 92, 945-951. [Google Scholar] [CrossRef] [PubMed]
[21] Rajasekaran, D., Sastri, N.P., Marathahalli, J.R., Indi, S.S., Pamidimukkala, K., Suguna, K. and Rao, C.D. (2008) The Flexible C Termi-nus of the Rotavirus Non-Structural Protein NSP4 Is an Important Determinant of Its Biological Properties. Journal of General Virology, 89, 1485-1496. [Google Scholar] [CrossRef] [PubMed]
[22] Silvestri, L.S., Tortorici, M.A., Vasquez-Del Carpio, R. and Patton, J.T. (2005) Rotavirus Glycoprotein NSP4 is a Modulator of Viral Transcription in the Infected Cell. Journal of Virology, 79, 15165-15174. [Google Scholar] [CrossRef
[23] Ball, J.M., Tian, P., Zeng, C.Q., Morris, A.P. and Estes, M.K. (1996) Age-Dependent Diarrhea Induced by a Rotaviral Nonstructural Glycoprotein. Science, 272, 101-104. [Google Scholar] [CrossRef] [PubMed]
[24] Matthijnssens, J., Ciarlet, M., McDonald, S.M., et al. (2011) Uniformity of Rotavirus Strain Nomenclature Proposed by the Rotavirus Classification Working Group. Archives of Vi-rology, 156, 1397-1413. [Google Scholar] [CrossRef] [PubMed]
[25] Matthijnssens, J., Ciarlet, M., Heiman, E., et al. (2008) Full Ge-nome-Based Classification of Rotaviruses Reveals Common Origin between Human Wa-Like and Porcine Rotavirus Strains and Human DS-1-Likeand Bovine Rotavirus Strains. Journal of Virology, 82, 3204-3219. [Google Scholar] [CrossRef
[26] Almalki, S.S.R. (2018) Circulating Rotavirus G and P Strains Post Ro-tavirus Vaccination in Eastern Mediterranean Region. Saudi Medical Journal, 39, 755-766. [Google Scholar] [CrossRef] [PubMed]
[27] Liu, N., Xu, Z., Li, D., et al. (2014) Update on the Disease Burden and Circulating Strains of Rotavirus in China: A Systematic Review and Meta-Analysis. Vaccine, 32, 4369-4375. [Google Scholar] [CrossRef] [PubMed]
[28] Tate, J.E., Burton, A.H., Boschi-Pinto, C., et al. (2016) Global, Regional and National Estimates of Rotavirus Mortality in Children < 5 Years of Age, 2000-2013. Clinical Infectious Diseases, 62, S96-S105. [Google Scholar] [CrossRef] [PubMed]
[29] WHO (2019) Immunological Basis for Immunization Series. Module 21: Rotavirus. World Health Organization.
https://apps.who.int/iris/bitstream/handle/10665/331323/9789240002357-eng.pdf
[30] WHO (2007) Guidelines to Assure the Quality, Safety and Efficacy of Live Attenuated Rotavirus Vaccines. Annex 3. WHO Technical Report Series 941, World Health Organization.
https://cdn.who.int/media/docs/default-source/biologicals/vaccine-quality/guidelines-to-assure-the-quality-safety-and-efficacy-of-live-attenuated-rotavirus-vaccines-(oral)5531481d-18e9-4ba6-a13d-e3178b1b10ef.pdf
[31] World Health Organization (2021) Rotavirus Vaccines: WHO Position Paper. Weekly Epidemiological Record, 96, 301-320.
[32] Aliabadi, N., et al. (2019) Global Impact of Rotavirus Vaccine Introduction on Rotavirus Hospitalisations among Children under 5 Years of Age, 2008-16: Findings from the Global Rotavirus Surveillance Network. The Lancet Global Health, 7, e893-e903. [Google Scholar] [CrossRef
[33] Leshem, E., et al. (2014) Dis-tribution of Rotavirus Strains and Strain-Specific Effectiveness of the Rotavirus Vaccine after Its Introduction: A Sys-tematic Review and Meta-Analysis. The Lancet Infectious Diseases, 14, 847-856. [Google Scholar] [CrossRef
[34] 李玉静, 杨学磊. 中国婴幼儿轮状病毒腹泻流行病学研究[J]. 国际流行病学传染病学杂志, 2012, 39(3): 165-170.