Combining Immune Checkpoint Inhibitors and Kinase-Inhibiting Supramolecular Therapeutics for Enhanced Anticancer
Ashish Kulkarni1,2,3, Siva Kumar Natarajan3, Vineethkrishna Chandrasekar3
1Department of Medicine, Harvard Medical School , Boston, Massachusetts 02115, United States.
Abstract:
A major limitation of immune checkpoint inhibitors is that only a small subset of patients achieve durable clinical responses. This necessitates the development of combinatorial regimens with immunotherapy. However, some combinations, such as MEK- or PI3K-inhibitors with a PD1-PDL1 checkpoint inhibitor, are pharmacologically challenging to implement. We rationalized that such combinations can be enabled using nanoscale supramolecular targeted therapeutics, which spatially home into tumors and exert temporally sustained inhibition of the target. Here we describe two case studies where nanoscale MEK- and PI3K-targeting supramolecular therapeutics were engineered using a quantum mechanical all-atomistic simulation-based approach. The combinations of nanoscale MEK- and PI3K-targeting supramolecular therapeutics with checkpoint PDL1 and PD1 inhibitors exert enhanced antitumor outcome in melanoma and breast cancers in vivo, respectively. Additionally, the temporal sequence of administration impacts the outcome. The combination of supramolecular therapeutics and immunotherapy could emerge as a paradigm shift in the treatment of cancer.
Insights
Nanoscale supramolecular therapeutics combined with immunotherapy offer a novel approach to cancer treatment. This strategy enhances antitumor responses in melanoma and breast cancers, potentially revolutionizing patient care.
Area of Science:
- Oncology
- Nanotechnology
- Immunotherapy
Background:
- Limited durable responses to immune checkpoint inhibitors necessitate combination therapies.
- Pharmacological challenges exist for combining MEK/PI3K inhibitors with PD1/PDL1 checkpoint inhibitors.
Purpose of the Study:
- To engineer nanoscale supramolecular targeted therapeutics for combinatorial regimens.
- To evaluate the efficacy of these novel therapeutics in combination with immunotherapy.
Main Methods:
- Utilized quantum mechanical all-atomistic simulations to engineer MEK- and PI3K-targeting supramolecular therapeutics.
- Investigated combinations with PD1 and PDL1 checkpoint inhibitors in vivo.
Main Results:
- Demonstrated enhanced antitumor outcomes in melanoma and breast cancer models.
- Observed that the temporal sequence of administration impacts therapeutic efficacy.
Conclusions:
- Nanoscale supramolecular therapeutics enable challenging immunotherapy combinations.
- This approach represents a potential paradigm shift in cancer treatment strategies.
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