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Combination therapy strategies for improving PD-1 blockade efficacy: a new era in cancer immunotherapy
P S Chowdhury1, K Chamoto1, T Honjo1
1Department of Immunology and Genomic Medicine, Graduate School of Medicine, Kyoto University, Kyoto, Japan.
Abstract:
Programmed death 1 (PD-1) is an immune checkpoint molecule that negatively regulates T-cell immune function through the interaction with its ligand PD-L1. Blockage of this interaction unleashes the immune system to fight cancer. Immunotherapy using PD-1 blockade has led to a paradigm shift in the field of cancer drug discovery, owing to its durable effect against a wide variety of cancers with limited adverse effects. A brief history and development of PD-1 blockade, from the initial discovery of PD-1 to the recent clinical output of this therapy, have been summarized here. Despite its tremendous clinical success rate over other cancer treatments, PD-1 blockade has its own pitfall; a significant fraction of patients remains unresponsive to this therapy. The key to improve the PD-1 blockade therapy is the development of combination therapies. As this approach has garnered worldwide interest, here, we have summarized the recent trends in the development of PD-1 blockade-based combination therapies and the ongoing clinical trials. These include combinations with checkpoint inhibitors, radiation therapy, chemotherapy and several other existing cancer treatments. Importantly, FDA has approved PD-1 blockade agent to be used in combination with either CTLA-4 blockade or chemotherapy. Responsiveness to the PD-1 blockade therapy is affected by tumour and immune system-related factors. The role of the immune system, especially T cells, in determining the responsiveness has been poorly studied compared with those factors related to the tumour side. Energy metabolism has emerged as one of the important regulatory mechanisms for the function and differentiation of T cells. We have documented here the recent results regarding the augmentation of PD-1 blockade efficacy by augmenting mitochondrial energy metabolism of T cell.
Insights
Programmed death 1 (PD-1) blockade immunotherapy shows promise in cancer treatment but faces resistance. Augmenting T-cell energy metabolism may enhance PD-1 blockade efficacy, improving patient response rates.
Area of Science:
- Immunology
- Oncology
- Cancer Drug Discovery
Background:
- Programmed death 1 (PD-1) is an immune checkpoint molecule that inhibits T-cell function via PD-L1 interaction.
- PD-1 blockade immunotherapy has revolutionized cancer treatment, offering durable responses with fewer side effects.
- Despite successes, a significant portion of patients do not respond to PD-1 blockade therapy.
Purpose of the Study:
- To summarize the history and development of PD-1 blockade therapy.
- To review current trends and clinical trials in PD-1 blockade-based combination therapies.
- To explore the role of T-cell energy metabolism in enhancing PD-1 blockade efficacy.
Main Methods:
- Literature review of PD-1 blockade history, combination therapies, and clinical trials.
- Analysis of factors influencing PD-1 blockade responsiveness, focusing on immune system-related aspects.
- Examination of recent findings on augmenting T-cell mitochondrial energy metabolism to improve therapy outcomes.
Main Results:
- PD-1 blockade has transformed cancer therapy, with FDA approvals for combinations with CTLA-4 blockade and chemotherapy.
- Combination therapies are a key strategy to overcome resistance to PD-1 blockade.
- Augmenting T-cell energy metabolism shows potential for enhancing PD-1 blockade efficacy.
Conclusions:
- PD-1 blockade is a significant advancement in cancer immunotherapy.
- Combination strategies and understanding immune cell function, like T-cell metabolism, are crucial for improving treatment outcomes.
- Targeting T-cell energy metabolism represents a promising avenue for overcoming resistance to PD-1 blockade therapy.
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