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TXNIP in cancer: Unlocking biological insights and tackling clinical challenges
Piercarlo Del Console1, Luca Gelsomino1, Cinzia Giordano2
1Department of Pharmacy, Health and Nutritional Sciences, Via P. Bucci, University of Calabria, Arcavacata di Rende (CS), 87036 Cosenza, Italy.
Abstract:
Cancer remains a major global health challenge and one of the leading causes of mortality worldwide. Its development and progression involve complex genetic and molecular alterations, including the activation of oncogenes, as well as the inactivation of tumor suppressor genes (TSGs). These TSGs play critical roles in regulating cell cycle, genomic stability, and apoptotic pathways, with their dysfunction widely contributing to tumorigenesis and therapy response. Among the TSGs, Thioredoxin Interacting Protein (TXNIP) has gained attention as a key regulator with multifaceted roles in cancer biology. Mechanistic insights have identified TXNIP as a broad-acting protein involved in a variety of cellular responses, including oxidative stress, metabolism, immune regulation, and tumor suppression. This literature review critically examines the emerging clinical and experimental evidence of TXNIP's functions in cancer, with a particular focus on breast cancer, the most frequently diagnosed malignancy in women. Furthermore, it explores promising therapeutic advances aimed at restoring TXNIP tumor-suppressive functions to slow cancer progression and improving patient outcomes.
Insights
Thioredoxin Interacting Protein (TXNIP) is a tumor suppressor gene crucial for regulating cell functions. Restoring TXNIP
Area of Science:
- Oncology
- Molecular Biology
- Cancer Genetics
Background:
- Cancer involves genetic alterations, including tumor suppressor gene (TSG) inactivation.
- TSG dysfunction impacts cell cycle, genomic stability, and apoptosis, driving tumorigenesis.
- Thioredoxin Interacting Protein (TXNIP) is an emerging TSG with diverse roles in cancer.
Purpose of the Study:
- To review evidence on TXNIP's functions in cancer biology.
- To focus on TXNIP's role in breast cancer.
- To explore therapeutic strategies targeting TXNIP.
Main Methods:
- Literature review of clinical and experimental studies.
- Analysis of TXNIP's mechanistic roles in cellular processes.
- Examination of TXNIP's impact on tumorigenesis and therapy response.
Main Results:
- TXNIP acts as a broad regulator in oxidative stress, metabolism, and immune responses.
- TXNIP exhibits significant tumor-suppressive functions.
- Evidence highlights TXNIP's relevance in breast cancer development and progression.
Conclusions:
- TXNIP is a critical tumor suppressor with multifaceted roles.
- Restoring TXNIP function presents a potential therapeutic strategy for cancer.
- Targeting TXNIP may improve patient outcomes in malignancies like breast cancer.
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