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本文引用的文献

1
Evaluating the risk of releasing genetically engineered organisms.评估释放转基因生物的风险。
Trends Ecol Evol. 1988 Apr;3(4):S27-30. doi: 10.1016/0169-5347(88)90135-8.
2
THE USE OF YELLOW FEVER VIRUS MODIFIED BY IN VITRO CULTIVATION FOR HUMAN IMMUNIZATION.经体外培养改良的黄热病病毒用于人体免疫。
J Exp Med. 1937 May 31;65(6):787-800. doi: 10.1084/jem.65.6.787.
3
Analysis of the mechanism of protection in transgenic plants expressing the potato virus X coat protein or its antisense RNA.分析表达马铃薯病毒 X 外壳蛋白或其反义 RNA 的转基因植物的保护机制。
EMBO J. 1988 May;7(5):1273-80. doi: 10.1002/j.1460-2075.1988.tb02941.x.
4
The experimental host range of the arthropod-borne animal viruses in arthropods.节肢动物传播的动物病毒在节肢动物中的实验宿主范围。
Virology. 1960 Nov;12:391-407. doi: 10.1016/0042-6822(60)90162-8.
5
Sindbis virus: a newly recognized arthropodtransmitted virus.辛德毕斯病毒:一种新发现的节肢动物传播病毒。
Am J Trop Med Hyg. 1955 Sep;4(5):844-62. doi: 10.4269/ajtmh.1955.4.844.
6
Expression of Amino-Terminal Portions or Full-Length Viral Replicase Genes in Transgenic Plants Confers Resistance to Potato Virus X Infection.转基因植物中氨基末端部分或全长病毒复制酶基因的表达赋予对马铃薯X病毒感染的抗性。
Plant Cell. 1992 Jun;4(6):735-744. doi: 10.1105/tpc.4.6.735.
7
Mechanisms of Pathogen-Derived Resistance to Viruses in Transgenic Plants.转基因植物中病原体衍生的病毒抗性机制
Plant Cell. 1996 Oct;8(10):1833-1844. doi: 10.1105/tpc.8.10.1833.
8
Inhibition of luciferase expression in transgenic Aedes aegypti mosquitoes by Sindbis virus expression of antisense luciferase RNA.通过辛德毕斯病毒表达反义荧光素酶RNA抑制转基因埃及伊蚊中的荧光素酶表达。
Proc Natl Acad Sci U S A. 1999 Nov 9;96(23):13399-403. doi: 10.1073/pnas.96.23.13399.
9
RNA-triggered gene silencing.RNA触发的基因沉默
Trends Genet. 1999 Sep;15(9):358-63. doi: 10.1016/s0168-9525(99)01818-1.
10
Transduction of Aedes aegypti mosquitoes with vectors derived from Aedes densovirus.用源自埃及伊蚊浓核病毒的载体转导埃及伊蚊。
Virology. 1999 Apr 25;257(1):62-72. doi: 10.1006/viro.1999.9621.

通过蚊子阻断节肢动物传播病毒的分子策略。

Molecular strategies for interrupting arthropod-borne virus transmission by mosquitoes.

作者信息

Blair C D, Adelman Z N, Olson K E

机构信息

Arthropod-Borne and Infectious Diseases Laboratory, Department of Microbiology, Colorado State University, Fort Collins, Colorado 80523-1677, USA.

出版信息

Clin Microbiol Rev. 2000 Oct;13(4):651-61. doi: 10.1128/CMR.13.4.651.

DOI:10.1128/CMR.13.4.651
PMID:11023962
原文链接:https://pmc.ncbi.nlm.nih.gov/articles/PMC88954/
Abstract

Arthropod-borne virus (arbovirus) infections cause a number of emerging and resurgent human and veterinary infectious diseases. Traditional means of controlling arbovirus diseases include vaccination of susceptible vertebrates and mosquito control, but in many cases these have been unavailable or ineffective, and so novel strategies for disease control are needed. One possibility is genetic manipulation of mosquito vectors to render them unable to transmit arboviruses. This review describes recent work to test the concept of pathogen-derived resistance in arthropods by expression of viral genes in mosquito cell cultures and mosquitoes. Sense and antisense genome sequences from La Crosse virus (LAC) (a member of the Bunyaviridae) and dengue viruses serotypes 1 to 4 (DEN-1 to DEN-4) (members of the Flaviviridae) were expressed in mosquito cells from double-subgenomic and replicon vectors based on Sindbis virus (a member of the Togaviridae). The cells were then challenged with homologous or related viruses. For LAC, expression of antisense sequences from the small (S) genome segment, particularly full-length antisense S RNA, effectively interfered with replication of challenge virus, whereas expression of either antisense or sense RNA from the medium (M) segment was completely ineffective in LAC inhibition. Expression of sense and antisense RNA derived from certain regions of the DEN genome also blocked homologous virus replication more effectively than did RNA from other regions. Other parameters of RNA-mediated interference have been defined, such as the time when replication is blocked and the minimum size of effector RNA. The mechanism of RNA inhibition has not been determined, although it resembles double-stranded RNA interference in other nonvertebrate systems. Prospects for application of molecular strategies to control arbovirus diseases are briefly reviewed.

摘要

节肢动物传播病毒(虫媒病毒)感染会引发多种新出现和再次流行的人类及兽医传染病。控制虫媒病毒疾病的传统方法包括对易感脊椎动物进行疫苗接种和控制蚊子,但在许多情况下,这些方法不可用或无效,因此需要新的疾病控制策略。一种可能性是对蚊子媒介进行基因操纵,使其无法传播虫媒病毒。本综述描述了最近通过在蚊子细胞培养物和蚊子中表达病毒基因来测试节肢动物中病原体衍生抗性概念的工作。基于辛德毕斯病毒(披膜病毒科成员)的双亚基因组和复制子载体,在蚊子细胞中表达了来自拉克罗斯病毒(LAC)(布尼亚病毒科成员)以及登革病毒1至4型(DEN-1至DEN-4)(黄病毒科成员)的正义和反义基因组序列。然后用同源或相关病毒对细胞进行攻击。对于LAC,小(S)基因组片段反义序列的表达,特别是全长反义S RNA,有效干扰了攻击病毒的复制,而中(M)片段反义或正义RNA的表达在抑制LAC方面则完全无效。源自登革病毒基因组某些区域的正义和反义RNA的表达,也比其他区域的RNA更有效地阻断了同源病毒的复制。已经确定了RNA介导干扰的其他参数,例如复制被阻断的时间以及效应RNA的最小大小。尽管RNA抑制机制类似于其他非脊椎动物系统中的双链RNA干扰,但尚未确定。本文简要综述了应用分子策略控制虫媒病毒疾病的前景。