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Polymalic Acid-based Nano Biopolymers for Targeting of Multiple Tumor Markers: An Opportunity for Personalized Medicine?
Published on: June 13, 2014
Novel Miniaturized Drug Conjugate Leverages HSP90-driven Tumor Accumulation to Overcome PI3K Inhibitor Delivery
Samantha Perino1, Benoit Moreau2, Jessica Freda2
1Tarveda Therapeutics Inc, Watertown, Massachusetts. perino.sam@gmail.com.
Abstract:
The PI3K pathway is considered a master regulator for cancer due to its frequent activation, making it an attractive target for pharmacologic intervention. While substantial efforts have been made to develop drugs targeting PI3K signaling, few drugs have been able to achieve the inhibition necessary for effective tumor control at tolerated doses. HSP90 is a chaperone protein that is overexpressed and activated in many tumors and as a consequence, small-molecule ligands of HSP90 are preferentially retained in tumors up to 20 times longer than in normal tissue. We hypothesize that the generation of conjugates that use a HSP90-targeting ligand and a payload such as copanlisib, may open the narrow therapeutic window of this and other PI3K inhibitors. In support of this hypothesis, we have generated a HSP90-PI3K drug conjugate, T-2143 and utilizing xenograft models, demonstrate rapid and sustained tumor accumulation of the conjugate, deep pathway inhibition, and superior efficacy than the PI3K inhibitor on its own. Selective delivery of T-2143 and the masking of the inhibitor active site was also able to mitigate a potentially dose-limiting side effect of copanlisib, hyperglycemia. These data demonstrate that by leveraging the preferential accumulation of HSP90-targeting ligands in tumors, we can selectively deliver a PI3K inhibitor leading to efficacy in multiple tumor models without hyperglycemia in mice. These data highlight a novel drug delivery strategy that allows for the potential opening of a narrow therapeutic window through specific tumor delivery of anticancer payloads and reduction of toxicity.
Insights
New drug conjugates targeting HSP90 deliver PI3K inhibitors directly to tumors. This approach enhances anti-cancer efficacy and reduces side effects like hyperglycemia, opening a new therapeutic window for cancer treatment.
Area of Science:
- Oncology
- Pharmacology
- Drug Delivery
Background:
- The PI3K pathway is a critical cancer regulator, but PI3K inhibitors face a narrow therapeutic window due to toxicity.
- Heat shock protein 90 (HSP90) is overexpressed in tumors, and HSP90-targeting ligands accumulate preferentially in tumor tissue.
Purpose of the Study:
- To develop and evaluate a novel drug conjugate strategy for enhanced PI3K inhibition in cancer.
- To investigate if targeting HSP90 can improve the therapeutic index of PI3K inhibitors like copanlisib.
Main Methods:
- Generation of a HSP90-PI3K drug conjugate (T-2143) using copanlisib as the payload.
- Evaluation of T-2143 in xenograft cancer models to assess tumor accumulation, pathway inhibition, and efficacy.
- Assessment of T-2143's impact on hyperglycemia, a known side effect of copanlisib.
Main Results:
- T-2143 demonstrated rapid and sustained accumulation in tumors.
- The conjugate achieved deep PI3K pathway inhibition and superior anti-tumor efficacy compared to copanlisib alone.
- Selective delivery via T-2143 mitigated hyperglycemia, a dose-limiting toxicity of copanlisib.
Conclusions:
- Leveraging HSP90-targeting ligands enables selective delivery of PI3K inhibitors to tumors.
- This novel drug delivery strategy can widen the therapeutic window for PI3K inhibitors by enhancing efficacy and reducing toxicity.
- T-2143 shows promise as a targeted therapy for multiple cancer types, overcoming limitations of conventional PI3K inhibitors.
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