Targeting tumor glycolysis by a mitotropic agent
Shanmugasundaram Ganapathy-Kanniappan1
1a Johns Hopkins University School of Medicine, Department of Radiology & Radiological Sciences , 600 N Wolfe Street, Blalock 340, Baltimore, MD 21287, USA +1 41 05 02 62 28 ; gshanmu1@jhmi.edu.
Abstract:
Metabolic reprogramming is one of the hallmarks of cancer. Altered metabolism in cancer cells is exemplified by enhanced glucose utilization, a biochemical signature that is clinically exploited for cancer diagnosis using positron-emission tomography and computed tomography imaging. Accordingly, disrupting the glucose metabolism of cancer cells has been contemplated as a potential therapeutic strategy against cancer. Experimental evidences indicate that targeting glucose metabolism by inhibition of glycolysis or oxidative phosphorylation promotes anticancer effects. Yet, successful clinical translation of antimetabolites or energy blockers to treat cancer remains a challenge, primarily due to lack of efficacy and/or systemic toxicity. Recently, using nanotechnology, Marrache and Dhar have documented the feasibility of delivering a glycolytic inhibitor through triphenylphosphonium (TPP), a mitotropic agent that selectively targets mitochondria based on membrane potential. Furthermore, by utilizing gold nanoparticles the investigators also demonstrated the potential for simultaneous induction of photothermal therapy, thus facilitating an additional line of attack on cancer cells. The report establishes that specific inhibition of tumor glycolysis is achievable through TPP-dependent selective targeting of cancer cells. This nanotechnological approach involving TPP-guided selective delivery of an antiglycolytic agent complemented with photothermal therapy provides a new window of opportunity for effective and specific targeting of tumor glycolysis.
Insights
Targeting cancer cell glucose metabolism shows promise. Nanotechnology enables selective delivery of antiglycolytic agents, enhancing cancer therapy effectiveness and specificity.
Area of Science:
- Oncology
- Biochemistry
- Nanotechnology
Background:
- Metabolic reprogramming, particularly enhanced glucose utilization, is a hallmark of cancer.
- Targeting cancer cell glycolysis and oxidative phosphorylation shows anticancer effects but faces clinical translation challenges due to efficacy and toxicity issues.
Discussion:
- Nanotechnology offers a solution for targeted delivery of glycolytic inhibitors.
- Triphenylphosphonium (TPP) selectively targets mitochondria in cancer cells, enabling specific delivery of antiglycolytic agents.
- Gold nanoparticles can be used for simultaneous photothermal therapy, providing a dual-attack strategy.
Key Insights:
- Selective inhibition of tumor glycolysis is achievable via TPP-dependent targeting.
- Nanotechnology facilitates precise delivery of antiglycolytic drugs to cancer cells.
- Combined antiglycolytic therapy and photothermal therapy show potential for enhanced cancer treatment.
Outlook:
- This nanotechnological approach offers a new strategy for effective and specific targeting of tumor glycolysis.
- Further research into TPP-guided nanodelivery systems could lead to improved cancer therapeutics.
- The combination of targeted metabolic inhibition and physical therapies presents a promising avenue for oncology drug development.
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