Kaposi's sarcoma-associated herpesvirus (KSHV) is the etiologic agent of Kaposi's sarcoma (KS), and several other cancers. Despite intensive studies, the mechanism underlying KSHV-induced cellular transformation remains unclear. This critical gap of knowledge has impeded the development of effective therapeutic approaches. KSHV genome encodes over a dozen of proteins that regulate cell proliferation, growth and survival; however, their roles in KSHV-induced oncogenesis have not been defined because of the lack of an efficient model of cellular transformation of primary cells. In the current funding period, we have made significant progresses toward this goal. We have discovered that KSHV can efficiently infect, immortalize and transform primary rat and human mesenchymal precursor cells (MM). This breakthrough, for the first time, has made it possible to delineate viral genes and cellular pathways required for KSHV-induced cellular transformation and tumorigenesis. Using this novel model combining with a reverse genetic approach, we have found that, in contrast to results of previous single gene expression studies, in the context KSHV infection viral vCyclin (ORF72) is required for cell cycle progression and cell proliferation in contact-inhibited condition but not in normal cell proliferative condition. Significantly, vCyclin promotes KSHV-induced cellular transformation and tumorigenesis. Furthermore, we have recently developed a unique Crispr-Cas9 library, performed a preliminary screening, and identified numerous cellular genes and pathways that are essential for KSHV-induced cellular transformation. Based on these preliminary studies, we have formulated a working hypothesis that KSHV induces cellular transformation and tumorigenesis by encoding specific viral genes to manipulate essential cellular gene(s)/pathway(s). We will carry out two integrated and synergistic Specific Aims: (1) To identify viral genes required for KSHV-induced cellular transformation and tumorigenesis, and define their mechanisms of action; and (2) To delineate the mechanism by which vCyclin mediates KSHV-induced cellular transformation and tumorigenesis. Upon completion of this project, our expectations are to identify the viral essential genes required for KSHV-induced cellular transformation, and define the mechanisms of action with focus on vCyclin. Together, these results will be highly significant and innovative because we will use a novel KSHV transformation model of primary cells and a novel Crispr-Cas9 screening approach to delineate viral oncogenes and cellular genes/pathways essential for cellular transformation. These studies will provide insights into the oncogenesis of KSHV-induced cancers and possibly other cancers, and identify novel targets for developing innovative therapeutic approaches for KSHV-induced malignancies.

Public Health Relevance

Kaposi's sarcoma is a common malignancy in AIDS patients in US and worldwide inflicting morbidity and mortality to the society. This project will investigate the mechanism underlining the development of Kaposi's sarcoma, and identify potential targets for the prevention and treatment of this disease.

Agency
National Institute of Health (NIH)
Institute
National Cancer Institute (NCI)
Type
Research Project (R01)
Project #
2R01CA096512-10A1
Application #
9347543
Study Section
AIDS-associated Opportunistic Infections and Cancer Study Section (AOIC)
Program Officer
Read-Connole, Elizabeth Lee
Project Start
2003-01-13
Project End
2022-02-28
Budget Start
2017-03-01
Budget End
2018-02-28
Support Year
10
Fiscal Year
2017
Total Cost
$412,500
Indirect Cost
$162,500
Name
University of Southern California
Department
Microbiology/Immun/Virology
Type
Schools of Medicine
DUNS #
072933393
City
Los Angeles
State
CA
Country
United States
Zip Code
90032
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Tan, Brandon; Liu, Hui; Zhang, Songyao et al. (2018) Viral and cellular N6-methyladenosine and N6,2'-O-dimethyladenosine epitranscriptomes in the KSHV life cycle. Nat Microbiol 3:108-120
Gruffaz, Marion; Zhou, Shenghua; Vasan, Karthik et al. (2018) Repurposing Cytarabine for Treating Primary Effusion Lymphoma by Targeting Kaposi's Sarcoma-Associated Herpesvirus Latent and Lytic Replications. MBio 9:
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Jeon, Hyungtaek; Yoo, Seung-Min; Choi, Hyo Sun et al. (2017) Extracellular vesicles from KSHV-infected endothelial cells activate the complement system. Oncotarget 8:99841-99860
He, Meilan; Tan, Brandon; Vasan, Karthik et al. (2017) SIRT1 and AMPK pathways are essential for the proliferation and survival of primary effusion lymphoma cells. J Pathol 242:309-321
Yuan, Hongfeng; Tan, Brandon; Gao, Shou-Jiang (2017) Tenovin-6 impairs autophagy by inhibiting autophagic flux. Cell Death Dis 8:e2608
Li, W; Hu, M; Wang, C et al. (2017) A viral microRNA downregulates metastasis suppressor CD82 and induces cell invasion and angiogenesis by activating the c-Met signaling. Oncogene 36:5407-5420
Yuan, Hongfeng; He, Meilan; Cheng, Fan et al. (2017) Tenovin-6 inhibits proliferation and survival of diffuse large B-cell lymphoma cells by blocking autophagy. Oncotarget 8:14912-14924
Gruffaz, Marion; Vasan, Karthik; Tan, Brandon et al. (2017) TLR4-Mediated Inflammation Promotes KSHV-Induced Cellular Transformation and Tumorigenesis by Activating the STAT3 Pathway. Cancer Res 77:7094-7108

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