RNA-Protein Interactome at the Hepatitis E Virus Internal Ribosome Entry Site

被引:1
|
作者
Kumar, Shiv [1 ]
Verma, Rohit [1 ]
Saha, Sandhini [2 ]
Agrahari, Ashish Kumar [3 ]
Shukla, Shivangi [1 ]
Singh, Oinam Ningthemmani [1 ]
Berry, Umang [1 ]
Maiti, Tushar Kanti [2 ]
Asthana, Shailendra [3 ]
Ranjith-Kumar, C. T. [4 ]
Surjit, Milan [1 ]
机构
[1] Translat Hlth Sci & Technol Inst, NCR Biotech Sci Cluster, Virol Lab, Faridabad, India
[2] Reg Ctr Biotechnol, NCR Biotech Sci Cluster, Lab Funct Prote, Faridabad, India
[3] Translat Hlth Sci & Technol Inst, NCR Biotech Sci Cluster, Noncommunicable Dis Grp, Faridabad, India
[4] Guru Gobind Singh Indraprastha Univ, Univ Sch Biotechnol, New Delhi, India
来源
MICROBIOLOGY SPECTRUM | 2023年 / 11卷 / 04期
关键词
hepatitis E virus; IRES-mediated translation; RNA-protein interaction; TRANSLATION INITIATION; WEB SERVER; A VIRUS; PROMOTES TRANSLATION; HELICASE-A; IRES; L26; ENRICHMENT; ELEMENT; SEGMENT;
D O I
10.1128/spectrum.02827-22
中图分类号
Q93 [微生物学];
学科分类号
071005 ; 100705 ;
摘要
Multiple processes exist in a cell to ensure continuous production of essential proteins either through cap-dependent or cap-independent translation processes. Viruses depend on the host translation machinery for viral protein synthesis. Therefore, viruses have evolved clever strategies to use the host translation machinery. Earlier studies have shown that genotype 1 hepatitis E virus (g1-HEV) uses both cap-dependent and cap-independent translation machineries for its translation and proliferation. Cap-independent translation in g1-HEV is driven by an 87-nucleotide-long RNA element that acts as a noncanonical, internal ribosome entry site-like (IRESl) element. Here, we have identified the RNA-protein interactome of the HEV IRESl element and characterized the functional significance of some of its components. Our study identifies the association of HEV IRESl with several host ribosomal proteins, demonstrates indispensable roles of ribosomal protein RPL5 and DHX9 (RNA helicase A) in mediating HEV IRESl activity, and establishes the latter as a bona fide internal translation initiation site.IMPORTANCE Protein synthesis is a fundamental process for survival and proliferation of all living organisms. The majority of cellular proteins are produced through cap-dependent translation. Cells also use a variety of cap-independent translation processes to synthesize essential proteins during stress. Viruses depend on the host cell translation machinery to synthesize their own proteins. Hepatitis E virus (HEV) is a major cause of hepatitis worldwide and has a capped positive-strand RNA genome. Viral nonstructural and structural proteins are synthesized through a cap-dependent translation process. An earlier study from our laboratory reported the presence of a fourth open reading frame (ORF) in genotype 1 HEV, which produces the ORF4 protein using a cap-independent internal ribosome entry site-like (IRESl) element. In the current study, we identified the host proteins that associate with the HEV-IRESl RNA and generated the RNA-protein interactome. Through a variety of experimental approaches, our data prove that HEV-IRESl is a bona fide internal translation initiation site. Protein synthesis is a fundamental process for survival and proliferation of all living organisms. The majority of cellular proteins are produced through cap-dependent translation.
引用
收藏
页数:28
相关论文
共 50 条
  • [21] Identification of a cellular protein required for hepatitis C virus internal ribosome entry site (IRES)-mediated translation
    Peng, T
    Tang, H
    Wong-Staal, F
    STATE OF THE ART HEPATOLOGY: MOLECULAR AND CELL BIOLOGY: IN HONOUR OF HANS POPPER'S 100TH BIRTHDAY, 2004, 138 : 196 - 201
  • [22] Hepatitis C virus internal ribosome entry site initiates protein synthesis at the authentic initiation codon in yeast
    Masek, Tomas
    Vopalensky, Vaclav
    Horvath, Ondrej
    Vortelova, Lucie
    Feketova, Zuzana
    Pospisek, Martin
    JOURNAL OF GENERAL VIROLOGY, 2007, 88 : 1992 - 2002
  • [23] Repression of the Internal Ribosome Entry Site-dependent Translation of Hepatitis C Virus by an Engineered PUF Protein
    Kiani, Seyed Jalal
    Taheri, Tahereh
    Nejati, Ahmad
    Maleki, Monireh
    Rafati, Sima
    Azadmanesh, Kayhan
    Alavian, Seyed Moayed
    Azad, Talat Mokhtari
    Samimi-Rad, Katayoun
    HEPATITIS MONTHLY, 2017, 17 (02)
  • [24] The sequence element of the internal ribosome entry site and a 25-kilodalton cellular protein contribute to efficient internal initiation of translation of hepatitis C virus RNA
    Fukushi, S
    Kurihara, C
    Ishiyama, N
    Hoshino, FB
    Oya, A
    Katayama, K
    JOURNAL OF VIROLOGY, 1997, 71 (02) : 1662 - 1666
  • [25] Human ribosomal protein L18a interacts with hepatitis C virus internal ribosome entry site
    Dhar, D
    Mapa, K
    Pudi, R
    Srinivasan, P
    Bodhinathan, K
    Das, S
    ARCHIVES OF VIROLOGY, 2006, 151 (03) : 509 - 524
  • [26] Human ribosomal protein L18a interacts with hepatitis C virus internal ribosome entry site
    D. Dhar
    K. Mapa
    R. Pudi
    P. Srinivasan
    K. Bodhinathan
    S. Das
    Archives of Virology, 2006, 151 : 509 - 524
  • [27] Lack of clinical significance of variability in the internal ribosome entry site of hepatitis C virus
    Thelu, MA
    Drouet, E
    Hilleret, MN
    Zarski, JP
    JOURNAL OF MEDICAL VIROLOGY, 2004, 72 (03) : 396 - 405
  • [28] The internal ribosome entry site (IRES) of hepatitis C virus visualized by electron microscopy
    Beales, LP
    Rowlands, DJ
    Holzenburg, A
    RNA, 2001, 7 (05) : 661 - 670
  • [29] Characterization of an internal ribosome entry site within mRNA 5 of murine hepatitis virus
    M. Jendrach
    V. Thiel
    S. Siddell
    Archives of Virology, 1999, 144 : 921 - 933
  • [30] Synthetic Antibody Binding to a Preorganized RNA Domain of Hepatitis C Virus Internal Ribosome Entry Site Inhibits Translation
    Koirala, Deepak
    Lewicka, Anna
    Koldobskaya, Yelena
    Huang, Hao
    Piccirilli, Joseph A.
    ACS CHEMICAL BIOLOGY, 2020, 15 (01) : 205 - 216