Structure and assembly of intracellular mature vaccinia virus: Isolated-particle analysis

被引:46
作者
Griffiths, G
Wepf, R
Wendt, T
Locker, JK
Cyrklaff, M
Roos, N
机构
[1] European Mol Biol Lab, D-69117 Heidelberg, Germany
[2] Univ Oslo, Dept Biol, Electron Microscopy Unit Biol Sci, N-0316 Oslo, Norway
关键词
D O I
10.1128/JVI.75.22.11034-11055.2001
中图分类号
Q93 [微生物学];
学科分类号
071005 ; 100705 ;
摘要
In a series of papers, we have provided evidence that during its assembly vaccinia virus is enveloped by a membrane cisterna that originates from a specialized, virally modified, smooth-membraned domain of the endoplasmic reticulum (ER). Recently, however, Hollinshead et al. (M. Hollinshead, A. Vanderplasschen, G. I. Smith, and D. J. Vaux, J. Virol. 73:1503-1517, 1999) argued against this hypothesis, based on their interpretations of thin-sectioned material. The present article is the first in a series of papers that describe a comprehensive electron microscopy (EM) analysis of the vaccinia Intracellular Mature Virus (JAM and the process of its assembly in HeLa cells. In this first study, we analyzed the IMV by on-grid staining, cryoscanning EM (SEM), and cryo-transmission EM. We focused on the structure of the IMV particle, both after isolation and in the context of viral entry. For the latter, we used high-resolution cryo-SEM combined with cryofixation, as well as a novel approach we developed for investigating vaccinia IMV bound to plasma membrane fragments adsorbed onto EM grids. Our analysis revealed that the IMV is made up of interconnected cisternal and tubular domains that fold upon themselves via a complex topology that includes an S-shaped fold. The vital tubules appear to be eviscerated from the particle during viral infection. Since the structure of the MINI is the result of a complex assembly process, we also provide a working model to explain how a specialized smooth-ER domain can be modulated to form the IMV. We also present theoretical arguments for why it is highly unlikely that the IMV is surrounded by only a single membrane.
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页码:11034 / 11055
页数:22
相关论文
共 51 条
[1]   CRYO-ELECTRON MICROSCOPY OF VIRUSES [J].
ADRIAN, M ;
DUBOCHET, J ;
LEPAULT, J ;
MCDOWALL, AW .
NATURE, 1984, 308 (5954) :32-36
[2]   MODE OF ENTRY OF VACCINIA VIRUS INTO L CELLS [J].
ARMSTRONG, JA ;
METZ, DH ;
YOUNG, MR .
JOURNAL OF GENERAL VIROLOGY, 1973, 21 (DEC) :533-537
[3]   Electron tomography of molecules and cells [J].
Baumeister, W ;
Grimm, R ;
Walz, J .
TRENDS IN CELL BIOLOGY, 1999, 9 (02) :81-85
[4]   THE INITIATION OF VACCINIA INFECTION [J].
CAIRNS, J .
VIROLOGY, 1960, 11 (03) :603-623
[5]   FURTHER INVESTIGATIONS ON MODE OF ENTRY OF VACCINIA VIRUS INTO CELLS [J].
CHANG, A ;
METZ, DH .
JOURNAL OF GENERAL VIROLOGY, 1976, 32 (AUG) :275-282
[6]   A vaccinia virus core protein, p39, is membrane associated [J].
Cudmore, S ;
Blasco, R ;
Vincentelli, R ;
Esteban, M ;
Sodeik, B ;
Griffiths, G ;
Locker, JK .
JOURNAL OF VIROLOGY, 1996, 70 (10) :6909-6921
[7]   CYCLE OF MULTIPLICATION OF VACCINIA VIRUS IN EARLES STRAIN L CELLS .I. UPTAKE + PENETRATION [J].
DALES, S ;
KAJIOKA, R .
VIROLOGY, 1964, 24 (03) :278-&
[9]   VACCINIA AS A MODEL FOR MEMBRANE BIOGENESIS [J].
DALES, S ;
MOSBACH, EH .
VIROLOGY, 1968, 35 (04) :564-&
[10]   DEVELOPMENT OF VACCINIA VIRUS IN EARLES L STRAIN CELLS AS EXAMINED BY ELECTRON MICROSCOPY [J].
DALES, S ;
SIMINOVITCH, L .
JOURNAL OF BIOPHYSICAL AND BIOCHEMICAL CYTOLOGY, 1961, 10 (04) :475-&