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Tumor reversion: a dream or a reality
Avantika Tripathi1, Anjali Kashyap2, Greesham Tripathi1
1Amity Stem Cell Institute, Amity Medical School, Amity University Haryana, Panchgaon, Haryana, Manesar (Gurugram), -122413, India.
Abstract:
Reversion of tumor to a normal differentiated cell once considered a dream is now at the brink of becoming a reality. Different layers of molecules/events such as microRNAs, transcription factors, alternative RNA splicing, post-transcriptional, post-translational modifications, availability of proteomics, genomics editing tools, and chemical biology approaches gave hope to manipulation of cancer cells reversion to a normal cell phenotype as evidences are subtle but definitive. Regardless of the advancement, there is a long way to go, as customized techniques are required to be fine-tuned with precision to attain more insights into tumor reversion. Tumor regression models using available genome-editing methods, followed by in vitro and in vivo proteomics profiling techniques show early evidence. This review summarizes tumor reversion developments, present issues, and unaddressed challenges that remained in the uncharted territory to modulate cellular machinery for tumor reversion towards therapeutic purposes successfully. Ongoing research reaffirms the potential promises of understanding the mechanism of tumor reversion and required refinement that is warranted in vitro and in vivo models of tumor reversion, and the potential translation of these into cancer therapy. Furthermore, therapeutic compounds were reported to induce phenotypic changes in cancer cells into normal cells, which will contribute in understanding the mechanism of tumor reversion. Altogether, the efforts collectively suggest that tumor reversion will likely reveal a new wave of therapeutic discoveries that will significantly impact clinical practice in cancer therapy.
Insights
Tumor reversion, the process of turning cancer cells back into normal cells, is becoming a reality. Advances in molecular biology and genome editing offer new therapeutic strategies for cancer treatment.
Area of Science:
- Oncology
- Molecular Biology
- Biochemistry
Background:
- Tumor reversion, once a theoretical concept, is now approaching clinical feasibility.
- Multiple molecular mechanisms, including microRNAs, transcription factors, and advanced editing tools, are implicated in cancer cell phenotype modulation.
Purpose of the Study:
- To review current developments in tumor reversion research.
- To identify existing challenges and future directions for therapeutic applications of tumor reversion.
Main Methods:
- Review of literature on molecular mechanisms and therapeutic approaches.
- Analysis of genome-editing techniques, proteomics, and chemical biology strategies.
- Evaluation of in vitro and in vivo tumor regression models.
Main Results:
- Subtle but definitive evidence supports the manipulation of cancer cells towards a normal phenotype.
- Genome-editing and proteomics profiling show early promise in tumor regression models.
- Therapeutic compounds are identified that induce normal cell phenotypes in cancer cells.
Conclusions:
- Significant progress has been made in understanding and manipulating tumor reversion.
- Further refinement of in vitro and in vivo models is crucial for clinical translation.
- Tumor reversion holds promise for a new era of cancer therapies impacting clinical practice.
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