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Renal Capsule Xenografting and Subcutaneous Pellet Implantation for the Evaluation of Prostate Carcinogenesis and Benign Prostatic Hyperplasia
Published on: August 28, 2013
Apoptosis in prostate carcinogenesis. A growth regulator and a therapeutic target
1Department of Molecular Biology and Cancer Center, University of Maryland School of Medicine, Baltimore 21201, USA.
Abstract:
Development of effective therapeutic modalities for the treatment of human cancer relies heavily upon understanding the molecular alterations that result in initiation and progression of the tumorigenic process. Many of the molecular changes identified in human prostate tumorigenesis so far play key roles in apoptosis regulation. Apoptosis represents a universal and exquisitely efficient cellular suicide pathway. Since the therapeutic goal is to trigger tumor-selective apoptotic cell death (without clinically significant effects on the host), elucidation of the mechanisms underlying apoptosis deregulation will lead to the identification of specific cellular components for targeting therapeutic interventions. As our understanding of its vital role in the development and growth of the prostate gland has expanded, numerous genes that encode apoptotic regulators have been identified that are severely impaired in prostate cancer cells. In addition, the expression of apoptotic modulators within prostatic tumors appears to correlate with tumor sensitivity to traditional therapies such as hormonal ablation and radiotherapy. No strict correlation between apoptosis induction and a patient's long-term prognosis has emerged, perhaps due to the fact that the ability to achieve initial remission alone does not adequately predict long-term outcome. This review will encompass the known molecular changes intimately involved in the apoptotic pathway which have potential prognostic value in disease progression, as well as therapeutic significance in the enhancement of the apoptotic response to novel and established treatment strategies for the treatment of androgen-dependent and androgen-independent prostatic tumors. The main focus will be on the role of the transforming growth factor-beta (TGF-beta) signaling pathway, bcl-2 and the bcl-2 family members, the caspase cascade (apoptosis executioners), and the Fas pathway in induction and regulation of apoptosis following therapeutic stimuli for the management of advanced prostate cancer.
Insights
Understanding apoptosis deregulation in prostate cancer is key for developing targeted therapies. This review explores molecular changes in apoptosis pathways, including TGF-beta, bcl-2, caspases, and Fas, for improved prostate cancer treatment.
Area of Science:
- Oncology
- Molecular Biology
- Cell Death Research
Background:
- Effective cancer therapeutics require understanding molecular drivers of tumorigenesis.
- Apoptosis, or programmed cell death, is crucial for normal development and is frequently deregulated in cancer.
- Prostate cancer progression involves alterations in genes regulating apoptosis.
Purpose of the Study:
- To review molecular changes in apoptosis pathways relevant to prostate cancer.
- To identify potential prognostic markers and therapeutic targets in prostate tumors.
- To explore the role of specific pathways (TGF-beta, bcl-2, caspases, Fas) in therapeutic response.
Main Methods:
- Literature review of molecular mechanisms in prostate cancer apoptosis.
- Analysis of the role of specific signaling pathways and protein families.
- Examination of correlations between apoptosis modulators and therapeutic sensitivity/prognosis.
Main Results:
- Numerous apoptosis-regulating genes are impaired in prostate cancer.
- Expression of apoptotic modulators correlates with sensitivity to hormonal and radiation therapies.
- No definitive link between apoptosis induction and long-term patient prognosis has been established.
Conclusions:
- Elucidating apoptosis deregulation offers targets for novel cancer therapies.
- Understanding apoptosis pathways can enhance existing treatment strategies for prostate cancer.
- Key pathways like TGF-beta, bcl-2, caspases, and Fas are critical for therapeutic interventions in advanced prostate cancer.
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