Genome-wide Determinants of Proviral Targeting, Clonal Abundance and Expression in Natural HTLV-1 Infection

被引:83
作者
Melamed, Anat [1 ]
Laydon, Daniel J. [1 ]
Gillet, Nicolas A. [1 ,2 ]
Tanaka, Yuetsu [3 ,4 ]
Taylor, Graham P. [5 ]
Bangham, Charles R. M. [1 ]
机构
[1] Univ London Imperial Coll Sci Technol & Med, Wright Fleming Inst, Dept Immunol, London, England
[2] Univ Liege ULg, Interdisciplinary Cluster Appl Genoprote GIGA, Liege, Belgium
[3] Univ Ryukyus, Grad Sch, Okinawa, Japan
[4] Univ Ryukyus, Fac Med, Okinawa, Japan
[5] Univ London Imperial Coll Sci Technol & Med, Wright Fleming Inst, Dept Genitourinary Med & Communicable Dis, London, England
基金
英国惠康基金;
关键词
CYTOTOXIC T-LYMPHOCYTES; LYMPHOTROPIC-VIRUS; HIV-1; INTEGRASE; GENE-TRANSCRIPTION; I TAX; PROTEIN; CELLS; TYPE-1; PROGRESSION; LEDGF/P75;
D O I
10.1371/journal.ppat.1003271
中图分类号
Q93 [微生物学];
学科分类号
071005 ; 100705 ;
摘要
The regulation of proviral latency is a central problem in retrovirology. We postulate that the genomic integration site of human T lymphotropic virus type 1 (HTLV-1) determines the pattern of expression of the provirus, which in turn determines the abundance and pathogenic potential of infected T cell clones in vivo. We recently developed a high-throughput method for the genome-wide amplification, identification and quantification of proviral integration sites. Here, we used this protocol to test two hypotheses. First, that binding sites for transcription factors and chromatin remodelling factors in the genome flanking the proviral integration site of HTLV-1 are associated with integration targeting, spontaneous proviral expression, and in vivo clonal abundance. Second, that the transcriptional orientation of the HTLV-1 provirus relative to that of the nearest host gene determines spontaneous proviral expression and in vivo clonal abundance. Integration targeting was strongly associated with the presence of a binding site for specific host transcription factors, especially STAT1 and p53. The presence of the chromatin remodelling factors BRG1 and INI1 and certain host transcription factors either upstream or downstream of the provirus was associated respectively with silencing or spontaneous expression of the provirus. Cells expressing HTLV-1 Tax protein were significantly more frequent in clones of low abundance in vivo. We conclude that transcriptional interference and chromatin remodelling are critical determinants of proviral latency in natural HTLV-1 infection.
引用
收藏
页数:13
相关论文
共 57 条
[21]   Orientation-dependent regulation of integrated HIV-1 expression by host gene transcriptional readthrough [J].
Han, Yefei ;
Lin, Yijie B. ;
An, Wenfeng ;
Xu, Jie ;
Yang, Hung-Chih ;
O'Connell, Karen ;
Dordai, Dominic ;
Boeke, Jef D. ;
Siliciano, Janet D. ;
Siliciano, Robert F. .
CELL HOST & MICROBE, 2008, 4 (02) :134-146
[22]   Fratricide among CD8+ T lymphocytes naturally infected with human T cell lymphotropic virus type I [J].
Hanon, E ;
Stinchcombe, JC ;
Saito, M ;
Asquith, BE ;
Taylor, GP ;
Tanaka, Y ;
Weber, JN ;
Griffiths, GM ;
Bangham, CRM .
IMMUNITY, 2000, 13 (05) :657-664
[23]   Abundant Tax protein expression in CD4+T cells infected with human T-cell lymphotropic virus type I (HTLV-I) is prevented by cytotoxic T lymphocytes [J].
Hanon, E ;
Hall, S ;
Taylor, GP ;
Saito, M ;
Davis, R ;
Tanaka, Y ;
Usuku, K ;
Osame, M ;
Weber, JN ;
Bangham, CRM .
BLOOD, 2000, 95 (04) :1386-1392
[24]   In vivo Expression of Human T-lymphotropic Virus Type 1 Basic Leucine-Zipper Protein Generates Specific CD8+and CD4+T-Lymphocyte Responses that Correlate with Clinical Outcome [J].
Hilburn, Silva ;
Rowan, Aileen ;
Demontis, Maria-Antonietta ;
MacNamara, Aidan ;
Asquith, Becca ;
Bangham, Charles R. M. ;
Taylor, Graham P. .
JOURNAL OF INFECTIOUS DISEASES, 2011, 203 (04) :529-536
[25]   An embryonic stem cell chromatin remodeling complex, esBAF, is an essential component of the core pluripotency transcriptional network [J].
Ho, Lena ;
Jothi, Raja ;
Ronan, Jehnna L. ;
Cui, Kairong ;
Zhao, Keji ;
Crabtree, Gerald R. .
PROCEEDINGS OF THE NATIONAL ACADEMY OF SCIENCES OF THE UNITED STATES OF AMERICA, 2009, 106 (13) :5187-5191
[26]   Spread of HTLV-I between lymphocytes by virus-induced polarization of the cytoskeleton [J].
Igakura, T ;
Stinchcombe, JC ;
Goon, PKC ;
Taylor, GP ;
Weber, JN ;
Griffiths, GM ;
Tanaka, Y ;
Osame, M ;
Bangham, CRM .
SCIENCE, 2003, 299 (5613) :1713-1716
[27]   Human T-cell leukemia virus type I (HTLV-1) proviral load and disease progression in asymptomatic HTLV-1 carriers: a nationwide prospective study in Japan [J].
Iwanaga, Masako ;
Watanabe, Toshiki ;
Utsunomiya, Atae ;
Okayama, Akihiko ;
Uchimaru, Kaoru ;
Koh, Ki-Ryang ;
Ogata, Masao ;
Kikuchi, Hiroshi ;
Sagara, Yasuko ;
Uozumi, Kimiharu ;
Mochizuki, Manabu ;
Tsukasaki, Kunihiro ;
Saburi, Yoshio ;
Yamamura, Masaomi ;
Tanaka, Junji ;
Moriuchi, Yukiyoshi ;
Hino, Shigeo ;
Kamihira, Shimeru ;
Yamaguchi, Kazunari .
BLOOD, 2010, 116 (08) :1211-1219
[28]   CIRCULATING CD8+ CYTOTOXIC LYMPHOCYTES-T SPECIFIC FOR HTLV-I PX IN PATIENTS WITH HTLV-I ASSOCIATED NEUROLOGICAL DISEASE [J].
JACOBSON, S ;
SHIDA, H ;
MCFARLIN, DE ;
FAUCI, AS ;
KOENIG, S .
NATURE, 1990, 348 (6298) :245-248
[29]   Genome-wide identification of in vivo protein-DNA binding sites from ChIP-Seq data [J].
Jothi, Raja ;
Cuddapah, Suresh ;
Barski, Artem ;
Cui, Kairong ;
Zhao, Keji .
NUCLEIC ACIDS RESEARCH, 2008, 36 (16) :5221-5231
[30]   BINDING AND STIMULATION OF HIV-1 INTEGRASE BY A HUMAN HOMOLOG OF YEAST TRANSCRIPTION FACTOR SNF5 [J].
KALPANA, GV ;
MARMON, S ;
WANG, WD ;
CRABTREE, GR ;
GOFF, SP .
SCIENCE, 1994, 266 (5193) :2002-2006