Liposomal Nanocontainers as Models for Viral Infection: Monitoring Viral Genomic RNA Transfer through Lipid Membranes

被引:28
作者
Bilek, Gerhard [1 ]
Matscheko, Nena M. [1 ]
Pickl-Herk, Angela [1 ]
Weiss, Victor U. [1 ]
Subirats, Xavier [1 ]
Kenndler, Ernst [1 ]
Blaas, Dieter [1 ]
机构
[1] Med Univ Vienna, Dept Med Biochem, Max F Perutz Labs, A-1030 Vienna, Austria
基金
奥地利科学基金会;
关键词
COMMON COLD VIRUS; HUMAN RHINOVIRUS SEROTYPE-2; CHIP ELECTROPHORESIS; CELLULAR RECEPTOR; PLASMA-MEMBRANE; HELA-CELLS; POLIOVIRUS; ENTRY; NEUTRALIZATION; FUSION;
D O I
10.1128/JVI.00329-11
中图分类号
Q93 [微生物学];
学科分类号
071005 ; 100705 ;
摘要
After uptake into target cells, many nonenveloped viruses undergo conformational changes in the low-pH environment of the endocytic compartment. This results in exposure of amphipathic viral peptides and/or hydrophobic protein domains that are inserted into and either disrupt or perforate the vesicular membranes. The viral nucleic acids thereby gain access to the cytosol and initiate replication. We here demonstrate the in vitro transfer of the single-stranded positive-sense RNA genome of human rhinovirus 2 into liposomes decorated with recombinant very-low-density lipoprotein receptor fragments. Membrane-attached virions were exposed to pH 5.4, mimicking the in vivo pH environment of late endosomes. This triggered the release of the RNA whose arrival in the liposomal lumen was detected via in situ cDNA synthesis by encapsulated reverse transcriptase. Subsequently, cDNA was PCR amplified. At a low ratio between virions and lipids, RNA transfer was positively correlated with virus concentration. However, membranes became leaky at higher virus concentrations, which resulted in decreased cDNA synthesis. In accordance with earlier in vivo data, the RNA passes through the lipid membrane without causing gross damage to vesicles at physiologically relevant virus concentrations.
引用
收藏
页码:8368 / 8375
页数:8
相关论文
共 44 条
[21]   ROLE OF MATURATION CLEAVAGE IN INFECTIVITY OF PICORNAVIRUSES - ACTIVATION OF AN INFECTOSOME [J].
LEE, WM ;
MONROE, SS ;
RUECKERT, RR .
JOURNAL OF VIROLOGY, 1993, 67 (04) :2110-2122
[22]   INTERACTION OF LIPOSOMES WITH SUBVIRAL PARTICLES OF POLIOVIRUS TYPE-2 AND RHINOVIRUS TYPE-2 [J].
LONBERGHOLM, K ;
GOSSER, LB ;
SHIMSHICK, EJ .
JOURNAL OF VIROLOGY, 1976, 19 (02) :746-749
[23]   Real-time reverse transcription-PCR assay for comprehensive detection of human rhinoviruses [J].
Lu, Xiaoyan ;
Holloway, Brian ;
Dare, Ryan K. ;
Kuypers, Jane ;
Yagi, Shigeo ;
Williams, John V. ;
Hall, Caroline B. ;
Erdman, Dean D. .
JOURNAL OF CLINICAL MICROBIOLOGY, 2008, 46 (02) :533-539
[24]   Human rhinoviruses: The cold wars resume [J].
Mackay, Ian M. .
JOURNAL OF CLINICAL VIROLOGY, 2008, 42 (04) :297-320
[25]   Soluble LDL minireceptors - Minimal structure requirements for recognition of minor group human rhinovirus [J].
Marlovits, TC ;
Abrahamsberg, C ;
Blaas, D .
JOURNAL OF BIOLOGICAL CHEMISTRY, 1998, 273 (50) :33835-33840
[26]   Virus entry: Open sesame [J].
Marsh, M ;
Helenius, A .
CELL, 2006, 124 (04) :729-740
[27]  
Moser R, 2005, VIROLOGY, V338, P259, DOI 10.1016/j.virol.2005.05.016
[28]   MECHANISM OF ENTRY OF HUMAN RHINOVIRUS-2 INTO HELA-CELLS [J].
NEUBAUER, C ;
FRASEL, L ;
KUECHLER, E ;
BLAAS, D .
VIROLOGY, 1987, 158 (01) :255-258
[29]   Rhinovirus-stabilizing activity of artificial VLDL-receptor variants defines a new mechanism for virus neutralization by soluble receptors [J].
Nicodemou, A ;
Petsch, M ;
Konecsni, T ;
Krernser, L ;
Kenndler, E ;
Casasnovas, JM ;
Blaas, D .
FEBS LETTERS, 2005, 579 (25) :5507-5511
[30]   INTERACTIONS OF COMPONENTS OF HUMAN RHINOVIRUS TYPE 2 WITH HELA-CELLS [J].
NOBLE, J ;
LONBERGH.K .
VIROLOGY, 1973, 51 (02) :270-278