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Author Spotlight: Exploring the Role of FAM83A in Cervical Cancer
Published on: February 9, 2024
Transcriptomes of cervical cancer provide novel insights into dysregulated pathways, potential therapeutic targets,
Md Tamzid Hossain Tanim1, Sudipta Deb Nath1, Sumaiya Farah Khan2
1Department of Genetic Engineering & Biotechnology, University of Dhaka, Dhaka 1000, Bangladesh.
Abstract:
Cervical cancer ranks as the fourth most prevalent gynaecological malignancy and is a significant contributor to mortality among women globally. With the exception of HPV-mediated oncogenesis, the molecular etiology of the disease is poorly understood, and there is a critical dearth of knowledge concerning cancer that is not caused by HPV. Moreover, none of the options presently accessible for the treatment of cancers specifically target cervical cancer. In context with this, this research aims to identify the critical genes, regulators, and pathways that contribute to the pathogenesis of cervical cancer, in addition to prospective pharmacological targets and repurposed therapeutic agents that can be directed against the targets. A total of eleven different global gene expression (transcriptome) datasets were subjected to analysis utilizing a variety of in silico tools. The present study reveals a previously unknown correlation between cervical cancer and five genes: SHC1, CBL, GNAQ, GNA14, and PPP2CA. Significant dysregulation was observed in four crucial transcription factors (KLF4, E2F1, FOXM1, and AR) that modulate the expression of numerous genes in cervical cancer. Furthermore, it was observed that AKT1, MAPK1, and MAPK3 ranked the highest among the regulatory genes that hold promise as therapeutic targets in the context of cervical cancer. Additional research, both in vitro and in vivo, is required to validate and establish the therapeutic potential of these crucial genes in the context of cervical cancer.
Insights
This study identifies key genes like SHC1 and CBL, and regulators such as AKT1, involved in cervical cancer development. These findings offer potential new therapeutic targets for this widespread gynaecological malignancy.
Area of Science:
- Oncology
- Genomics
- Molecular Biology
Background:
- Cervical cancer is a leading cause of gynaecological cancer mortality globally.
- The molecular basis of cervical cancer, especially non-HPV-related forms, remains poorly understood.
- Current treatments lack specificity for cervical cancer.
Purpose of the Study:
- To identify critical genes, regulators, and pathways in cervical cancer pathogenesis.
- To discover potential pharmacological targets and repurposed drugs for cervical cancer treatment.
- To investigate the molecular drivers beyond HPV-mediated oncogenesis.
Main Methods:
- Analysis of eleven global gene expression (transcriptome) datasets.
- Utilized various in silico tools for comprehensive data analysis.
- Focused on identifying dysregulated genes and regulatory networks.
Main Results:
- Identified a novel correlation between cervical cancer and five genes: SHC1, CBL, GNAQ, GNA14, and PPP2CA.
- Observed significant dysregulation of four key transcription factors: KLF4, E2F1, FOXM1, and AR.
- Highlighted AKT1, MAPK1, and MAPK3 as promising therapeutic targets due to their high ranking among regulatory genes.
Conclusions:
- The study reveals novel molecular players in cervical cancer pathogenesis.
- Identified potential therapeutic targets and agents for cervical cancer treatment.
- Further in vitro and in vivo research is needed to validate these findings and their therapeutic potential.
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