Viral Encoded miRNAs in Tumorigenesis: Theranostic Opportunities in Precision Oncology
Abstract
:1. Introduction
2. Viral-miRNA (v-miRNA) Biogenesis and Role in Tumorigenesis
3. Human Papillomaviruses (HPV)
3.1. HPV Oncovirus
3.2. HPV v-miRNAs
4. Hepatitis B Virus (HBV)
4.1. HBV Oncovirus
4.2. HBV v-miRNAs
5. Merkel Cell Polyomavirus (MCPyV)
5.1. MCPyV Oncovirus
5.2. MCPyV v-miRNAs
6. Epstein–Barr Virus (EBV)
6.1. EBV Oncovirus
6.2. EBV v-miRNAs
7. Kaposi’s Sarcoma-Associated Herpesvirus (KSHV)
7.1. KSHV Oncovirus
7.2. KSHV v-miRNA
8. Hepatitis C Virus (HCV)
HCV Oncovirus and v-miRNAs
9. Persistent Viral Infection and Oncogenesis: v-miRNAs as Effectors of Immune Evasion
10. V-miRNAs’ Diagnostic Significance in Clinical Research and Precision Oncology
11. V-miRNAs’ as Novel Anti-Cancer Therapeutic Targets
12. Challenges and Opportunities of v-miRNAs Use in Theranostics and Precision Oncology
13. Conclusions and Perspectives
Author Contributions
Funding
Institutional Review Board Statement
Informed Consent Statement
Data Availability Statement
Conflicts of Interest
References
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1. HPV miRNAs | |||
Physiological Effect | Cellular Target | Viral miRNA | Ref |
Immune evasion, cell cycle regulation | SP3, XRCC4, PKNOX1, JAK2, FOXP1 | HPV16-miR-H2 | [34] |
HPV16-miR-H2 | |||
HPV16-miR-H1 | |||
HPV6-miR-H1 | |||
BCL11A, TCEA1, CHD7, ITGAM, RAG1, TEF1 | HPV16-miR-H3 | [9,35] | |
HPV16-miR-H5 | |||
HPV16-miR-H6 | |||
HPV38-miR-H1 | |||
HPV35-miR-H1 | |||
HPV68-miR-H1 | |||
2. HBV miRNAs | |||
Physiological Effect | Cellular Target | Viral miRNA | Ref |
Proliferation | PPM1A, PTEN | HBV-mir-3 | [36,37] |
Pro-tumorigenic | TRIM35 | HBV-mir-2 | [10] |
3. MCPyV miRNAs | |||
Physiological Effect | Cellular Target | Viral miRNA | Ref |
Immune evasion | SP100 | MCV-miR-M1-5p | [38] |
Viral proliferation | RUNX1 | MCV-miR-M1-3p | [10] |
4. EBV miRNAs | |||
Physiological Effect | Cellular Target | Viral miRNA | Ref |
Immune evasion | IPO7 | ebv-BART3-3p | [39] |
LMP1 | ebv-BART5-5p | [40] | |
RIG-1 | ebv-BART6-3p | [41] | |
MICB | ebv-BART2-5p | [42] | |
TAP | ebv-BART17-5p | [43] | |
LMP2A | ebv-BART22 | [44] | |
IL-12 | ebv-BART1-5p | [45] | |
IL1Receptor1 | ebv-BHRF1-2 | [46] | |
CXCL-11/I-TAC TAP2 | ebv-BHRF1-3 | [45,47] | |
miR-122 which regulates interferons | ebv-BART1-3p | [48] | |
RNF38 | ebv-BART8 | [49] | |
Angiogenesis | PHLPP1 | ebv-BART15 | [50] |
Anti-apoptosis | TOM22 | ebv-BART16 | [51] |
PRDM1/Blimp1 | ebv-BHRF1-2 | [52] | |
Bid | ebv-BART4-5p | [53] | |
PUMA | ebv-BART5-5p | [40] | |
P53 | ebv-BHRF1-1 | [54] | |
BAD | ebv-BART20-5p | [55] | |
Tumorigenic | Catalytic subunit of AMP-activated protein kinase (AMPKα1) | ebv-BART1-5p | [56] |
LMP1 | ebv-BART16 | [57] | |
PRDM1/BLIMP1 | ebv-BHRF1-2 | [52] | |
ABI2 | ebv-BART13-3p | [58] | |
Pro-metastatic | E-Cadherin | ebv-BART9 | [59] |
BTRC | ebv-BART10-3p | [60] | |
NDRG1 | ebv-BART22 | [61] | |
Proliferative | RIG1 | ebv-BART6-3p | [41] |
FOXP1 | ebv-BART11 | [62] | |
MAP3K5, | ebv-BART22 | [63] | |
Viral latency | DICER | ebv-BART6-5p | [64] |
5. KSHV miRNAs | |||
Physiological Effect | Cellular Target | Viral miRNA | Ref |
Proliferation and metastasis | SOCS6 | kshv-miR-K12-1-5p | [65] |
Anti-Apoptotic | CASP3 | kshv-miR-K12-1 | [66] |
kshv-miR-K12-3 | |||
kshv-miR-K12-4 | |||
kshv-mir-K3 | [67] | ||
CASP7 | kshv-mir-K3 | [67] | |
Cell migration and invasion | RK2/CXCR2/AKT Signalling | kshv-miR-K12-3 | [68] |
Viral latency | Rbl2 | kshv-miR-K12-5 | [69] |
Kshv-miR-K12-4-5p | [70] | ||
Immune evasion | MYD88 | kshv-mir-K12-5 | [71] |
IRAK1, | kshv-mir-K12-9 | ||
C/EBP_ | Kshv-mir-K12-3 | [72] | |
kshv-mir-K12-7 | |||
MICB | kshv-miR-K12-7 | [73] | |
IKKε | kshv-miR-K12-11 | [74] | |
TWEAK | kshv-miR-K12-10a | [75] | |
C/EBPβ p20 (LIP) | kshv-miR-K12-3 | [72] | |
Tumorigenesis | TGFBR2 | kshv-miR-K12-10b | [76] |
CASTOR1 | Kshv-miR-K4-5p, | [77] | |
Kshv-miR-K1-5p, | |||
Regulation of lytic induction | RTA | kshv-miR-K5 | [78] |
miR-K7-5p | |||
kshv-miR-K9-5p, | |||
kshv-miR-K3 | |||
kshv-miR-K4 | |||
Differentiation of infected cells | C/EBPβ; | kshv-miR-K12-11 | [3] |
MAF | kshv-miR-K12-6 | [79] |
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Hull, R.; Marima, R.; Alaouna, M.; Demetriou, D.; Reis, R.M.; Molefi, T.; Dlamini, Z. Viral Encoded miRNAs in Tumorigenesis: Theranostic Opportunities in Precision Oncology. Microorganisms 2022, 10, 1448. https://doi.org/10.3390/microorganisms10071448
Hull R, Marima R, Alaouna M, Demetriou D, Reis RM, Molefi T, Dlamini Z. Viral Encoded miRNAs in Tumorigenesis: Theranostic Opportunities in Precision Oncology. Microorganisms. 2022; 10(7):1448. https://doi.org/10.3390/microorganisms10071448
Chicago/Turabian StyleHull, Rodney, Rahaba Marima, Mohammed Alaouna, Demetra Demetriou, Rui Manuel Reis, Thulo Molefi, and Zodwa Dlamini. 2022. "Viral Encoded miRNAs in Tumorigenesis: Theranostic Opportunities in Precision Oncology" Microorganisms 10, no. 7: 1448. https://doi.org/10.3390/microorganisms10071448
APA StyleHull, R., Marima, R., Alaouna, M., Demetriou, D., Reis, R. M., Molefi, T., & Dlamini, Z. (2022). Viral Encoded miRNAs in Tumorigenesis: Theranostic Opportunities in Precision Oncology. Microorganisms, 10(7), 1448. https://doi.org/10.3390/microorganisms10071448