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Tumor suppressor candidate 2 (TUSC2, FUS-1) and human cancers
Tadas Rimkus1, Sherona Sirkisoon1, Alexandra Harrison1
1Department of Cancer Biology, Wake Forest University School of Medicine, Winston-Salem, NC 27157, USA.
Abstract:
Tumor suppressor candidate 2 (TUSC2, also known as FUS1) was identified in 2000 as a candidate tumor suppressor gene located in a region on chromosome 3p21.3 that is homozygously deleted in some lung and breast cancers. The deletion is rare in lung and breast cancers, but is frequent in malignant pleural mesothelioma. Evidence to date indicates that TUSC2 behaves as a tumor suppressor in lung cancer; however, its role as a tumor suppressor for other tumor types has not been fully established. Loss of TUSC2 expression at the mRNA and protein levels has been reported in various cancers. While the mechanisms underlying the loss are still not well understood, several microRNAs have been reported to downregulate TUSC2 expression. TUSC2 elicits its anti-tumor effects through regulating G1 cell cycle progression, apoptosis, calcium homeostasis, gene expression, and the activity of various protein tyrosine kinases and Ser/Thr kinases, albeit the precise mechanisms that TUSC2 utilizes to regulate these cellular processes and signaling molecules are still elusive. TUSC2 restoration has been exploited as an anti-cancer therapy in various cancers in preclinical models, and clinically in patients with lung cancer. The first-in-human phase I trial demonstrated desirable safety outcomes. Phase I/II trials are being conducted to evaluate the efficacy of combining TUSC2-nanoparticles with erlotinib, an FDA-approved EGFR inhibitor. This review summarizes recent findings that advanced our understanding of TUSC2 as a novel tumor suppressor and a therapeutic opportunity for treating TUSC2-deficient cancers.
Insights
Tumor suppressor candidate 2 (TUSC2) shows promise as a cancer therapy. Restoring TUSC2 expression may treat cancers, with early trials showing good safety and potential efficacy in lung cancer patients.
Area of Science:
- Oncology
- Molecular Biology
- Cancer Genetics
Background:
- Tumor suppressor candidate 2 (TUSC2, also known as FUS1) is located on chromosome 3p21.3.
- Homozygous deletion of TUSC2 occurs in some lung, breast cancers, and frequently in malignant pleural mesothelioma.
- TUSC2 functions as a tumor suppressor in lung cancer, but its role in other cancers requires further investigation.
Purpose of the Study:
- To review recent findings on TUSC2's role as a tumor suppressor.
- To explore TUSC2's therapeutic potential in TUSC2-deficient cancers.
- To summarize TUSC2's mechanisms of action and clinical applications.
Main Methods:
- Literature review of preclinical and clinical studies on TUSC2.
- Analysis of TUSC2's molecular mechanisms, including regulation by microRNAs.
- Examination of TUSC2 restoration as a therapeutic strategy.
Main Results:
- Loss of TUSC2 expression is observed in various cancers.
- TUSC2 influences cell cycle, apoptosis, calcium homeostasis, and kinase activity.
- TUSC2 restoration shows safety in a phase I trial and is being evaluated in phase I/II trials with erlotinib.
Conclusions:
- TUSC2 is a novel tumor suppressor with therapeutic potential.
- Restoring TUSC2 offers a promising strategy for treating TUSC2-deficient cancers.
- Ongoing clinical trials are evaluating TUSC2-based therapies.
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