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Targeting Tumour Heterogeneity through sequential timing of anti-hallmark combination therapies -a hypothesis for
Kumara Swamy1, Guruaj Arakeri2, Ramaswamy Veena3
1Clinical Scientist Oncology, HealthCare Global Enterprises Ltd. (HCG), Bangalore, Karnataka, India.
Abstract:
Since the introduction of the hallmarks of cancer framework over 25 years ago, treatment approaches have evolved into personalized medicine, offering benefits to select patient populations. However, three major components of heterotypic interactions in cancer-mutational evolution of cancer stem cells, epithelial-mesenchymal plasticity (EMP), and cancer-remodeled extracellular matrix (ECM)-remain critical barriers to therapy, particularly in patients who have failed treatment. EMP encompasses a spectrum of to-and-fro transitions between mesenchymal and epithelial states, yielding hybrid phenotypes of evolutionary heterogeneity. These are embedded in the vascular, metabolic, mutational, and immune-suppressive reprogramming of the tumor microenvironment (TME), induced and advanced by the hypoxia-reactive oxygen species (ROS)-hypoxia-inducible factor-1α (HIF-1α)-transforming growth factor-β (TGF-β) signaling axis. This review systematically examines the molecular mechanisms underlying EMP, tumor heterogeneity, and the hallmarks of cancer. It explores pharmacological strategies to target tumor burden, epigenetically revert transitional states, and restore immune-editing functions. Based on this analysis, we propose a phased anti-hallmark Combinations, Timing, and Sequencing (CTS) protocol. The methodology integrates vascular normalization, epigenetic modifiers, trimodal radiotherapy or stereotactic body radiotherapy (SBRT), chemotherapy (CT), and immunotherapy optimization, aiming to improve outcomes while minimizing toxicities. Also, mechanistically, by reverting mesenchymal phenotypes and normalizing the vasculature, the CTS protocol is designed to rescue the immune-suppressive tumor microenvironment-curtailing the recruitment of myeloid-derived suppressor cells (MDSCs) and regulatory T (Treg) cells. This restores cytotoxic T-cell homing, thereby converting immunologically "cold" tumors into "hot," immunotherapy-responsive lesions.
Insights
Epithelial-mesenchymal plasticity (EMP) and tumor microenvironment (TME) remodeling are key cancer therapy barriers. A novel Combinations, Timing, and Sequencing (CTS) protocol targets these hallmarks to improve treatment outcomes.
Area of Science:
- Oncology
- Cancer Biology
- Immunology
Background:
- Personalized medicine has advanced cancer treatment, yet challenges persist, particularly for patients with treatment-resistant cancers.
- Epithelial-mesenchymal plasticity (EMP), cancer stem cell evolution, and extracellular matrix (ECM) remodeling are critical barriers to effective cancer therapy.
- The tumor microenvironment (TME) is reprogrammed by signaling axes, including hypoxia-reactive oxygen species (ROS)-hypoxia-inducible factor-1α (HIF-1α)-transforming growth factor-β (TGF-β), promoting tumor progression and immune suppression.
Purpose of the Study:
- To systematically review the molecular mechanisms of EMP, tumor heterogeneity, and cancer hallmarks.
- To explore pharmacological strategies targeting tumor burden, epigenetic states, and immune-editing functions.
- To propose a novel Combinations, Timing, and Sequencing (CTS) protocol for integrated cancer therapy.
Main Methods:
- Systematic review of molecular mechanisms underlying EMP, tumor heterogeneity, and cancer hallmarks.
- Analysis of pharmacological strategies for targeting tumor burden and epigenetic modifications.
- Integration of vascular normalization, epigenetic modifiers, radiotherapy, chemotherapy, and immunotherapy optimization.
Main Results:
- EMP, tumor heterogeneity, and TME reprogramming are significant obstacles in cancer treatment.
- The proposed CTS protocol integrates multiple therapeutic modalities to address these challenges.
- The CTS protocol aims to revert mesenchymal phenotypes, normalize vasculature, and rescue the immune-suppressive TME.
Conclusions:
- The CTS protocol offers a novel strategy to overcome treatment resistance by targeting key cancer hallmarks.
- By reverting mesenchymal phenotypes and normalizing vasculature, the CTS protocol can reduce immunosuppressive cell recruitment.
- This approach has the potential to convert "cold" tumors into "hot" tumors responsive to immunotherapy, improving patient outcomes.
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