Immune checkpoint blockades (ICB), such as anti-programmed cell death-1 (PD- 1) and anti-programmed death ligand 1 (PD-L1), have revolutionized cancer therapy by unleashing T cell–mediated antitumor immunity. Although ICB therapy provides long-term ...
Immune checkpoint blockades (ICB), such as anti-programmed cell death-1 (PD- 1) and anti-programmed death ligand 1 (PD-L1), have revolutionized cancer therapy by unleashing T cell–mediated antitumor immunity. Although ICB therapy provides long-term survival benefits over conventional therapies, its overall response rate is approximately 20%, indicating that the majority of cancer patients do not experience clinical benefits from ICB therapy. T-lymphopenia (TLP), which is characterized by a reduction in blood T-lymphocyte counts below the normal level, is a frequently observed condition in cancer patients, often exacerbated by conventional chemo/radiotherapy. Importantly, accumulating evidence suggests that TLP impairs the efficacy of subsequent ICB therapy. However, immunological mechanisms by which TLP contributes to the response to ICB therapy remain poorly elucidated. Here, I aimed to gain a fundamental understanding of how TLP regulates antitumor immune responses using appropriate animal models and propose effective therapeutic strategies that can significantly enhance ICB responsiveness by overcoming TLP. In the first part of this study, I established TLP mouse models mimicking clinically observed mild and severe TLP. To achieve this, I adopted a combination of thymectomy surgery and anti-Thy1-induced peripheral T cell depletion, enabling the specific regulation of T cell numbers without affecting other immune cells. Using this approach, I established mild and severe T-lymphopenic mouse models, which exhibited a gradual decline in T cell numbers along with changes in T cell composition, characterized by fewer naïve T cells and more memory T cells. In the second part of this study, by utilizing established T-lymphopenic mouse models, I demonstrated that the antitumor efficacy of ICB therapy was severely impaired in TLP, depending on the degree of TLP and the immunogenicity of the tumors. Furthermore, I found that T-lymphopenic mice showed a significant reduction in systemic CD8 T cells but stable intratumoral CD8 T cell numbers, suggesting maintained tumor infiltration despite systemic downregulation. Crucially, TLP led to a shift in the composition of tumor-infiltrating lymphocytes, with a decrease in PD-1+ tumor-reactive CD8 T cells and an increase in PD-1− bystander cells. In the third part of this study, I demonstrated that hybrid Fc-fused recombinant human IL-7 (rhIL-7-hyFc), a T cell amplifier, could be a promising candidate to rescue a compromised antitumor efficacy of ICB therapy in T-lymphopenic conditions. rhIL-7-hyFc significantly restored systemic T cell counts, enhanced PD-1+ CD8 T cell proliferation within tumors, and increased the population of stem-like progenitor cells highly responsive to PD-1 blockades; thereby, ICB therapy combined with rhIL-7- hyFc resulted in significant tumor regression and improved mouse survival. Collectively, these data highlight the critical role of IL-7 in reshaping the CD8 T cell landscape to improve ICB efficacy in TLP conditions. Furthermore, our findings suggest that the most effective ICB therapy in the context of T-lymphopenia would involve an initial conventional therapy to reduce tumor burden and enhance immunogenicity, followed by IL-7 cytokine therapy to establish an appropriate CD8 T cell landscape within the tumor, culminating in effective ICB therapy.