Modulation of human endogenous retrovirus (HERV) transcription during persistent and de novo HIV-1 infection
详细信息    查看全文
  • 作者:Michelle Vincendeau ; Ingmar G?ttesdorfer ; Julia M H Schreml…
  • 关键词:Human endogenous retroviruses (HERV) ; Human immunodeficiency virus 1 (HIV ; 1) ; HERV transcription profiling ; Retrovirus ; specific microarray ; siRNA
  • 刊名:Retrovirology
  • 出版年:2015
  • 出版时间:December 2015
  • 年:2015
  • 卷:12
  • 期:1
  • 全文大小:2,571 KB
  • 参考文献:1. Sverdlov, E (2005) Retroviruses and primate genome evolution. Landes Bioscience, Georgetown, Texas, USA
    2. Belshaw, R, Katzourakis, A, Paces, J, Burt, A, Tristem, M (2005) High copy number in human endogenous retrovirus families is associated with copying mechanisms in addition to reinfection. Mol Biol Evol 22: pp. 814-7 k" title="It opens in new window">CrossRef
    3. Belshaw, R, Pereira, V, Katzourakis, A, Talbot, G, Paces, J, Burt, A (2004) Long-term reinfection of the human genome by endogenous retroviruses. Proc Natl Acad Sci U S A 101: pp. 4894-9 k" title="It opens in new window">CrossRef
    4. Mager, DL, Medstrand, P Retroviral repeat sequences. In: Cooper, D eds. (2003) Nature encyclopedia of the human genome. D. Cooper edition. Nature Publishing Group, London, United Kingdom, pp. 57-63
    5. Evans, LH, Alamgir, AS, Owens, N, Weber, N, Virtaneva, K, Barbian, K (2009) Mobilization of endogenous retroviruses in mice after infection with an exogenous retrovirus. J Virol 83: pp. 2429-35 k" title="It opens in new window">CrossRef
    6. Dewannieux, M, Harper, F, Richaud, A, Letzelter, C, Ribet, D, Pierron, G (2006) Identification of an infectious progenitor for the multiple-copy HERV-K human endogenous retroelements. Genome Res 16: pp. 1548-56 k" title="It opens in new window">CrossRef
    7. Lee, YN, Bieniasz, PD (2007) Reconstitution of an infectious human endogenous retrovirus. PLoS Pathog 3: pp. e10 k" title="It opens in new window">CrossRef
    8. Heslin, DJ, Murcia, P, Arnaud, F, Doorslaer, K, Palmarini, M, Lenz, J (2009) A single amino acid substitution in a segment of the CA protein within Gag that has similarity to human immunodeficiency virus type 1 blocks infectivity of a human endogenous retrovirus K provirus in the human genome. J Virol 83: pp. 1105-14 k" title="It opens in new window">CrossRef
    9. Parseval, N, Lazar, V, Casella, JF, Benit, L, Heidmann, T (2003) Survey of human genes of retroviral origin: identification and transcriptome of the genes with coding capacity for complete envelope proteins. J Virol 77: pp. 10414-22 k" title="It opens in new window">CrossRef
    10. Jern, P, Sperber, GO, Blomberg, J (2005) Use of endogenous retroviral sequences (ERVs) and structural markers for retroviral phylogenetic inference and taxonomy. Retrovirology 2: pp. 50 k" title="It opens in new window">CrossRef
    11. Galli, UM, Sauter, M, Lecher, B, Maurer, S, Herbst, H, Roemer, K (2005) Human endogenous retrovirus rec interferes with germ cell development in mice and may cause carcinoma in situ, the predecessor lesion of germ cell tumors. Oncogene 24: pp. 3223-8 k" title="It opens in new window">CrossRef
    12. Denne, M, Sauter, M, Armbruester, V, Licht, JD, Roemer, K, Mueller-Lantzsch, N (2007) Physical and functional interactions of human endogenous retrovirus proteins Np9 and rec with the promyelocytic leukemia zinc finger protein. J Virol 81: pp. 5607-16 k" title="It opens in new window">CrossRef
    13. Ruprecht, K, Mayer, J, Sauter, M, Roemer, K, Mueller-Lantzsch, N (2008) Endogenous retroviruses and cancer. Cell Mol Life Sci 65: pp. 3366-82 k" title="It opens in new window">CrossRef
    14. Bannert, N, Kurth, R (2004) Retroelements and the human genome: new perspectives on an old relation. Proc Natl Acad Sci U S A 101: pp. 14572-9 k" title="It opens in new window">CrossRef
    15. Perron, H, Lazarini, F, Ruprecht, K, Pechoux-Longin, C, Seilhean, D, Sazdovitch, V (2005) Human endogenous retrovirus (HERV)-W ENV and GAG proteins: physiological expression in human brain and pathophysiological modulation in multiple sclerosis lesions. J Neurovirol 11: pp. 23-33 k" title="It opens in new window">CrossRef
    16. Balada, E, Ordi-Ros, J, Vilardell-Tarres, M (2009) Molecular mechanisms mediated by human endogenous retroviruses (HERVs) in autoimmunity.
  • 刊物主题:Virology; Infectious Diseases; Cancer Research;
  • 出版者:BioMed Central
  • ISSN:1742-4690
文摘
Background The human genome contains multiple LTR elements including human endogenous retroviruses (HERVs) that together account for approximately 8-% of the genomic DNA. At least 40 different HERV groups have been assigned to three major HERV classes on the basis of their homologies to exogenous retroviruses. Although most HERVs are silenced by a variety of genetic and epigenetic mechanisms, they may be reactivated by environmental stimuli such as exogenous viruses and thus may contribute to pathogenic conditions. The objective of this study was to perform an in-depth analysis of the influence of HIV-1 infection on HERV activity in different cell types. Results A retrovirus-specific microarray that covers major HERV groups from all three classes was used to analyze HERV transcription patterns in three persistently HIV-1 infected cell lines of different cellular origins and in their uninfected counterparts. All three persistently infected cell lines showed increased transcription of multiple class I and II HERV groups. Up-regulated transcription of five HERV taxa (HERV-E, HERV-T, HERV-K (HML-10) and two ERV9 subgroups) was confirmed by quantitative reverse transcriptase PCR analysis and could be reversed by knock-down of HIV-1 expression with HIV-1-specific siRNAs. Cells infected de novo by HIV-1 showed stronger transcriptional up-regulation of the HERV-K (HML-2) group than persistently infected cells of the same origin. Analysis of transcripts from individual members of this group revealed up-regulation of predominantly two proviral loci (ERVK-7 and ERVK-15) on chromosomes 1q22 and 7q34 in persistently infected KE37.1 cells, as well as in de novo HIV-1 infected LC5 cells, while only one single HML-2 locus (ERV-K6) on chromosome 7p22.1 was activated in persistently infected LC5 cells. Conclusions Our results demonstrate that HIV-1 can alter HERV transcription patterns of infected cells and indicate a correlation between activation of HERV elements and the level of HIV-1 production. Moreover, our results suggest that the effects of HIV-1 on HERV activity may be far more extensive and complex than anticipated from initial studies with clinical material.

© 2004-2018 中国地质图书馆版权所有 京ICP备05064691号 京公网安备11010802017129号

地址:北京市海淀区学院路29号 邮编:100083

电话:办公室:(+86 10)66554848;文献借阅、咨询服务、科技查新:66554700