Advances in congenital Zika syndrome and its pathogenesis

被引:0
作者
He, Mengjiao [1 ]
Qin, Chengfeng [1 ]
Li, Xiaofeng [1 ]
机构
[1] Acad Mil Med Sci, Beijing Inst Microbiol & Epidemiol, State Key Lab Pathogen & Biosecur, Beijing 100071, Peoples R China
来源
CHINESE SCIENCE BULLETIN-CHINESE | 2021年 / 66卷 / 31期
关键词
Zika virus; congenital Zika syndrome; microcephaly; pathogenesis; VIRUS; BRAIN; CONTRIBUTES; MECHANISMS; PROTEIN;
D O I
10.1360/TB-2021-0386
中图分类号
O [数理科学和化学]; P [天文学、地球科学]; Q [生物科学]; N [自然科学总论];
学科分类号
07 ; 0710 ; 09 ;
摘要
Zika virus (ZIKV), originally discovered in a sentinel rhesus monkey in Zika valley in Uganda in 1947, has long been viewed as a classical mosquito-borne flavivirus. Due to its association with only a mild and self-limiting illness. ZIKV was a neglected pathogen following 60 years since its identification. However, this virus became a serious public health concern in 2015-2016 outbreak in the Americas because of its association with congenital Zika syndrome (CZS). World Health Organization (WHO) declared the ZIKV outbreak a public health emergency of international concern in 2016. CZS is a pattern of birth defects found among fetuses and babies infected with ZIKV during pregnancy. The main clinical features of CZS are variable including severe microcephaly, decreased brain tissue, meningitis, damage to the back of the eye, hearing defects, arthrogryposis as well as hypertonia restricting body movement soon after birth. Benefiting from close collaboration of the international scientific community. intensive studies have been performed in development of experimental models to gain insights into the molecular basis of CZS in humans. These models include cultured neuroprogenitor stem cells, cortical organoids, especially mouse and nonhuman primate animal models which recapitulate many features of CZS in humans. Thanks to these models, questions related to how ZIKV infection causes congenital disease have been largely answered. For example. ZIKV was found to directly infects human neural progenitor cells (hNPCs) of the cerebral cortex. resulting in reduced hNPC proliferation; ZIKV also exhibits tropism for microglia in the brain, leading to production of inflammatory cytokines that inhibit neuronal precursor cell proliferation and differentiation. Additionally, studies have suggested that ZIKV can infect and trigger inflammasome pathways and innate antiviral immune responses of glial cells. While remarkable progress has been made to explain the associated underlying mechanisms, many unanswered key questions remain as follows: (1) How is the placenta in different developmental stage susceptible to ZIKV infection? (2) How is ZIKV transmitted across the placenta to infect the fetus? (3) What is the neurodevelopmental sequelae of congenital infection? (4) How does pre-existing maternal flavivirus immunity impact pregnancy-associated disease? Overall, due to collaborative and multidisciplinary efforts, a large body of knowledge of ZIKV biology has been obtained that has deepened our understanding of the CZS and informed the development of candidate vaccines and therapies. The lessons we have learned from ZIKV could enable effective preparation for the ultimate control of emergence of new congenital viral diseases in the future.
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页码:3937 / 3943
页数:7
相关论文
共 40 条
[21]   Zika Virus Disrupts Neural Progenitor Development and Leads to Microcephaly in Mice [J].
Li, Cui ;
Xu, Dan ;
Ye, Qing ;
Hong, Shuai ;
Jiang, Yisheng ;
Liu, Xinyi ;
Zhang, Nana ;
Shi, Lei ;
Qin, Cheng-Feng ;
Xu, Zhiheng .
CELL STEM CELL, 2016, 19 (01) :120-126
[22]   Gene expression responses to Zika virus infection in peripheral blood mononuclear cells from pregnant and non-pregnant women [J].
Lim, Shen Jean ;
Seyfang, Andreas ;
Dutra, Samia ;
Kane, Bradley ;
Groer, Maureen .
MICROBIOLOGYOPEN, 2020, 9 (12)
[23]   Characterizing the Pattern of Anomalies in Congenital Zika Syndrome for Pediatric Clinicians [J].
Moore, Cynthia A. ;
Staples, J. Erin ;
Dobyns, William B. ;
Pessoa, Andre ;
Ventura, Camila V. ;
Da Fonseca, Eduardo Borges ;
Ribeiro, Erlane Marques ;
Ventura, Liana O. ;
Nogueira Neto, Norberto ;
Arena, J. Fernando ;
Rasmussen, Sonja A. .
JAMA PEDIATRICS, 2017, 171 (03) :288-295
[24]  
van den Pol AN, 2017, J NEUROSCI, V37, P2161, DOI [10.1523/JNEUROSCI.3124-16.2017, 10.1523/jneurosci.3124-16.2017]
[25]   Highly efficient maternal-fetal Zika virus transmission in pregnant rhesus macaques [J].
Nguyen, Sydney M. ;
Antony, Kathleen M. ;
Dudley, Dawn M. ;
Kohn, Sarah ;
Simmons, Heather A. ;
Wolfe, Bryce ;
Salamat, M. Shahriar ;
Teixeira, Leandro B. C. ;
Wiepz, Gregory J. ;
Thoong, Troy H. ;
Aliota, Matthew T. ;
Weiler, Andrea M. ;
Barry, Gabrielle L. ;
Weisgrau, Kim L. ;
Vosler, Logan J. ;
Mohns, Mariel S. ;
Breitbach, Meghan E. ;
Stewart, Laurel M. ;
Rasheed, Mustafa N. ;
Newman, Christina M. ;
Graham, Michael E. ;
Wieben, Oliver E. ;
Turski, Patrick A. ;
Johnson, Kevin M. ;
Post, Jennifer ;
Hayes, Jennifer M. ;
Schultz-Darken, Nancy ;
Schotzko, Michele L. ;
Eudailey, Josh A. ;
Permar, Sallie R. ;
Rakasz, Eva G. ;
Mohr, Emma L. ;
Capuano, Saverio, III ;
Tarantal, Alice F. ;
Osorio, Jorge E. ;
O'Connor, Shelby L. ;
Friedrich, Thomas C. ;
O'Connor, David H. ;
Golos, Thaddeus G. .
PLOS PATHOGENS, 2017, 13 (05)
[26]   Zika virus during pregnancy: From maternal exposure to congenital Zika virus syndrome [J].
Pomar, Leo ;
Musso, Didier ;
Malinger, Gustavo ;
Vouga, Manon ;
Panchaud, Alice ;
Baud, David .
PRENATAL DIAGNOSIS, 2019, 39 (06) :420-430
[27]   Clinical and Preclinical Evidence for Adverse Neurodevelopment after Postnatal Zika Virus Infection [J].
Raper, Jessica ;
Chahroudi, Ann .
TROPICAL MEDICINE AND INFECTIOUS DISEASE, 2021, 6 (01)
[28]   Zika virus cell tropism in the developing human brain and inhibition by azithromycin [J].
Retallack, Hanna ;
Di Lullo, Elizabeth ;
Arias, Carolina ;
Knopp, Kristeene A. ;
Laurie, Matthew T. ;
Sandoval-Espinosa, Carmen ;
Leon, Walter R. Mancia ;
Krencik, Robert ;
Ullian, Erik M. ;
Spatazza, Julien ;
Pollen, Alex A. ;
Mandel-Brehm, Caleigh ;
Nowakowski, Tomasz J. ;
Kriegstein, Arnold R. ;
DeRisi, Joseph L. .
PROCEEDINGS OF THE NATIONAL ACADEMY OF SCIENCES OF THE UNITED STATES OF AMERICA, 2016, 113 (50) :14408-14413
[29]   Defining dysmorphic facial features in congenital Zika syndrome [J].
Roriz Fonteles, Cristiane Sa ;
Monteiro Filho, Francisco Cesar ;
Vasconcelos, Rebeca Bastos ;
Monteiro, Andre Jalles ;
Chaves Junior, Cauby Maia ;
Marcal, Felipe Franco ;
Rocha Carvalho Martins, Renata Asfor ;
Pereira de Oliveira, Ana Lalessa ;
Cavalcante, Grisielle de Sa ;
Toscano, Bianca Palhano ;
Costa Figueiredo Lopes, Thayse Elaine ;
Gurgel Costa, Fabio Wildson ;
Ribeiro, Thyciana Rodrigues ;
Castro Vercosa, Islane Maria ;
Santos Pessoa, Andre Luiz ;
de Goes Cavalcanti, Luciano Pamplona ;
Ribeiro, Erlane Marques .
AMERICAN JOURNAL OF MEDICAL GENETICS PART A, 2021, 185 (02) :424-433
[30]   Comparative Flavivirus-Host Protein Interaction Mapping Reveals Mechanisms of Dengue and Zika Virus Pathogenesis [J].
Shah, Priya S. ;
Link, Nichole ;
Jang, Gwendolyn M. ;
Sharp, Phillip P. ;
Zhu, Tongtong ;
Swaney, Danielle L. ;
Johnson, Jeffrey R. ;
Von Dollen, John ;
Ramage, Holly R. ;
Satkamp, Laura ;
Newton, Billy ;
Huttenhain, Ruth ;
Petit, Marine J. ;
Baum, Tierney ;
Everitt, Amanda ;
Laufman, Orly ;
Tassetto, Michel ;
Shales, Michael ;
Stevenson, Erica ;
Iglesias, Gabriel N. ;
Shokat, Leila ;
Tripathi, Shashank ;
Balasubramaniam, Vinod ;
Webb, Laurence G. ;
Aguirre, Sebastian ;
Willsey, A. Jeremy ;
Garcia-Sastre, Adolfo ;
Pollard, Katherine S. ;
Cherry, Sara ;
Gamarnik, Andrea V. ;
Marazzi, Ivan ;
Taunton, Jack ;
Fernandez-Sesma, Ana ;
Bellen, Hugo J. ;
Andino, Raul ;
Krogan, Nevan J. .
CELL, 2018, 175 (07) :1931-+