Development of Nanocarrier-Based Mitochondrial Chaperone, TRAP-1 Inhibitor to Combat Cancer Metabolism
Vijayalakshmi Amash1, Khanderao Paithankar1, Shrikant Purushottam Dharaskar1,2
1CSIR-Centre for Cellular and Molecular Biology, Uppal Road, Hyderabad, Telangana, India.
Abstract:
Among human diseases, cancer has been in the frontlines of drug discovery and development. Despite having several decades of research efforts, therapeutic targeting of cancer is still challenging, which is due to the ability of cancer cells to adapt to the tumor microenvironment, exhibiting resistance to therapeutic drugs, and facilitated altered cancer metabolism. The small molecule inhibitors aimed at targeting a selective pathway are becoming void since cancer cells can activate alternate mechanisms. Despite broad acceptance of the Warburg effect, cellular energy metabolism, which determines the cell fate, is often overlooked for cancer treatment. We reported earlier that mitochondrial chaperone, TRAP-1 acts as a switch for activating the alternate cellular metabolism. Hence, we hypothesized that interfering with TRAP-1 inhibition can target the activation of alternative energy metabolism and sensitize tumor cells to existing chemotherapeutic drugs. We developed a nanocarrier where the iron oxide nanoparticles (IONs) were conjugated to Hsp90 inhibitor, geldanamycin (GA), and the mitochondria localization signal (MLS) peptide. We examined its effect against mitochondrial dynamics and metabolic status of human tumor cells. The synthesized nanocarrier exhibited both stability and target-specific activity and did not show nanoparticle-associated cytotoxicity. However, the nanocarrier treated cancer cells exhibited altered mitochondrial morphology and decreased cellular ATP levels suggesting that selective TRAP-1 targeting interferes with the altered energy metabolism. We present a nanoparticle-based TRAP-1 inhibitor to target tumor metabolism.
Insights
Targeting cancer
Area of Science:
- Oncology
- Cancer Metabolism
- Mitochondrial Biology
Background:
- Cancer cells exhibit drug resistance and altered metabolism, challenging therapeutic strategies.
- Targeting specific pathways is often circumvented by cancer's adaptability.
- Cellular energy metabolism, crucial for cell fate, is an underexplored therapeutic target.
Purpose of the Study:
- To investigate TRAP-1 inhibition as a strategy to target cancer's alternative energy metabolism.
- To develop and evaluate a novel nanocarrier for TRAP-1 inhibition in human tumor cells.
- To assess the nanocarrier's impact on mitochondrial dynamics and metabolic status.
Main Methods:
- Conjugation of iron oxide nanoparticles (IONs) with Hsp90 inhibitor geldanamycin (GA) and a mitochondria localization signal (MLS) peptide.
- Evaluation of the nanocarrier's stability, target specificity, and cytotoxicity.
- Analysis of mitochondrial morphology and cellular ATP levels in treated human tumor cells.
Main Results:
- The synthesized nanocarrier demonstrated stability and target-specific activity without inherent cytotoxicity.
- Nanocarrier treatment resulted in altered mitochondrial morphology in cancer cells.
- A decrease in cellular ATP levels was observed, indicating interference with energy metabolism.
Conclusions:
- Targeting TRAP-1 with a nanoparticle-based inhibitor effectively interferes with altered tumor cell metabolism.
- This approach shows potential for sensitizing cancer cells to existing chemotherapeutic drugs.
- TRAP-1 inhibition represents a promising strategy for novel cancer therapy targeting tumor metabolism.
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