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Published on: January 20, 2015
Combinatorial drug design targeting multiple cancer signaling networks controlled by mitochondrial Hsp90
Byoung Heon Kang1, Janet Plescia, Ho Young Song
1Department of Cancer Biology, University of Massachusetts Medical School, 364 Plantation Street, Worcester, MA 01605, USA.
Abstract:
Although therapeutically targeting a single signaling pathway that drives tumor development and/or progression has been effective for a number of cancers, in many cases this approach has not been successful. Targeting networks of signaling pathways, instead of isolated pathways, may overcome this problem, which is probably due to the extreme heterogeneity of human tumors. However, the possibility that such networks may be spatially arranged in specialized subcellular compartments is not often considered in pathway-oriented drug discovery and may influence the design of new agents. Hsp90 is a chaperone protein that controls the folding of proteins in multiple signaling networks that drive tumor development and progression. Here, we report the synthesis and properties of Gamitrinibs, a class of small molecules designed to selectively target Hsp90 in human tumor mitochondria. Gamitrinibs were shown to accumulate in the mitochondria of human tumor cell lines and to inhibit Hsp90 activity by acting as ATPase antagonists. Unlike Hsp90 antagonists not targeted to mitochondria, Gamitrinibs exhibited a "mitochondriotoxic" mechanism of action, causing rapid tumor cell death and inhibiting the growth of xenografted human tumor cell lines in mice. Importantly, Gamitrinibs were not toxic to normal cells or tissues and did not affect Hsp90 homeostasis in cellular compartments other than mitochondria. Therefore, combinatorial drug design, whereby inhibitors of signaling networks are targeted to specific subcellular compartments, may generate effective anticancer drugs with novel mechanisms of action.
Insights
New Gamitrinib drugs target cancer's Hsp90 protein within mitochondria, causing rapid tumor cell death. This targeted approach shows promise for effective cancer treatment with minimal toxicity to normal cells.
Area of Science:
- Oncology
- Molecular Biology
- Drug Discovery
Background:
- Targeting single cancer pathways often fails due to tumor heterogeneity.
- Subcellular compartmentalization of signaling networks is an underconsidered factor in drug design.
- Heat shock protein 90 (Hsp90) is crucial for multiple cancer-driving signaling networks.
Purpose of the Study:
- To design and synthesize novel small molecules (Gamitrinibs) targeting Hsp90 within tumor mitochondria.
- To investigate the mechanism of action and efficacy of Gamitrinibs in preclinical cancer models.
Main Methods:
- Synthesis of Gamitrinibs, a novel class of Hsp90 inhibitors.
- Assessment of Gamitrinib accumulation in tumor cell mitochondria.
- Evaluation of Hsp90 ATPase inhibition and resulting mitochondrotoxicity.
- Testing efficacy in xenografted human tumor models in mice.
Main Results:
- Gamitrinibs selectively accumulate in tumor mitochondria and inhibit Hsp90 activity.
- Gamitrinibs induce a mitochondrotoxic effect, leading to rapid cancer cell death.
- Gamitrinibs effectively inhibit tumor growth in vivo without systemic toxicity.
- Normal cells and Hsp90 homeostasis in other cellular compartments were unaffected.
Conclusions:
- Targeting signaling networks within specific subcellular compartments, like mitochondria, offers a novel anticancer strategy.
- Gamitrinibs represent a new class of mitochondriotoxic anticancer agents with a favorable safety profile.
- Combinatorial drug design incorporating subcellular targeting may yield more effective cancer therapies.
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