Photodynamic priming with red light triggers adaptive immune responses in a pancreatic cancer mouse model

IF 3.9 2区 生物学 Q2 BIOCHEMISTRY & MOLECULAR BIOLOGY
Pushpamali De Silva , Mohammad A. Saad , Joseph W.R. Swain , Zhiming Mai , Madeline D. Kidd , Joanna J. Choe , Assiris P. Camargo , Sanjay Anand , Vinay Chandrasekhara , Brian W. Pogue , Kenneth K. Wang , Bryan Q. Spring , Edward V. Maytin , Tayyaba Hasan
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Abstract

The poor response of pancreatic ductal adenocarcinoma (PDAC) to treatment, including immunotherapy, is attributed to its tumor microenvironment (TME). An ongoing challenge is the desmoplastic and immunosuppressed TME that evades immune surveillance. Here, we investigate transient modulation of the TME to overcome immunosuppression using a light-activated process, termed photodynamic priming (PDP). As a first step, this study captures the temporal dynamics of variations in immune infiltrates and subsequent immune responses in the TME, spleen, and blood of the KPC mouse model of PDAC post-PDP. In response to PDP, there were transient increases in tumor infiltrating lymphocytes (TIL) in tumors. The TIL population post-PDP includes an enrichment of CD8+ T cells, accompanied by temporal increases in PD-1, CTLA-4, and TIM-3 immune checkpoints on both CD8+ T and CD4+ T cells. Significant increases in CD11C+MHC-11+ dendritic cells and proliferating lymphocytes are observed in the spleen within several hours post-tumor PDP, suggesting initiation of adaptive immune responses. These observations are followed by an expansion of CD44+CD62CD8+ effector memory T cells in the blood over several days as evidence of a systemic immune response. Post-PDP TME alterations also included the reduced formation of blood (CD31+) and lymphatic (Lyve-1+) vessels as well as decreases in PD-L1 and collagen content. Collectively, these data suggest that PDP helps to mitigate immunosuppressive mechanisms and promote enhanced tumor permeability. The temporal dynamics of the processes elucidated here pave the way to develop strategies in future work for combined PDP–immunotherapy utilizing the immune checkpoint expression dynamics for precision therapy.

Abstract Image

胰腺导管腺癌(PDAC)对包括免疫疗法在内的治疗反应不佳的原因在于其肿瘤微环境(TME)。一个持续存在的挑战是,肿瘤微环境具有脱鳞和免疫抑制作用,可逃避免疫监视。在这里,我们研究了利用光激活过程(称为光动力启动(PDP))对肿瘤微环境进行瞬时调节,以克服免疫抑制。作为第一步,本研究捕捉了 PDP 后 PDAC KPC 小鼠模型的 TME、脾脏和血液中免疫浸润和后续免疫反应的时间动态变化。针对 PDP,肿瘤中的肿瘤浸润淋巴细胞(TIL)出现了短暂的增加。PDP后的TIL群包括CD8+ T细胞的富集,同时CD8+ T细胞和CD4+ T细胞上的PD-1、CTLA-4和TIM-3免疫检查点也随之增加。在肿瘤 PDP 后数小时内,脾脏中 CD11C+MHC-11+ 树突状细胞和增殖淋巴细胞显著增加,表明适应性免疫反应开始。随后几天,血液中的 CD44+CD62-CD8+ 效应记忆 T 细胞扩增,这是全身免疫反应的证据。PDP 后 TME 的改变还包括血管(CD31+)和淋巴管(Lyve-1+)形成的减少以及 PD-L1 和胶原含量的降低。总之,这些数据表明,PDP 有助于减轻免疫抑制机制并促进肿瘤通透性的增强。本文阐明的这些过程的时间动态为今后利用免疫检查点表达动态进行精准治疗的工作铺平了道路。
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来源期刊
CiteScore
12.10
自引率
1.90%
发文量
161
审稿时长
37 days
期刊介绍: The Journal of Photochemistry and Photobiology B: Biology provides a forum for the publication of papers relating to the various aspects of photobiology, as well as a means for communication in this multidisciplinary field. The scope includes: - Bioluminescence - Chronobiology - DNA repair - Environmental photobiology - Nanotechnology in photobiology - Photocarcinogenesis - Photochemistry of biomolecules - Photodynamic therapy - Photomedicine - Photomorphogenesis - Photomovement - Photoreception - Photosensitization - Photosynthesis - Phototechnology - Spectroscopy of biological systems - UV and visible radiation effects and vision.
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