Elevated protein lactylation promotes immunosuppressive microenvironment and therapeutic resistance in pancreatic ductal adenocarcinoma

胰腺导管腺癌 癌症研究 肿瘤微环境 腺癌 医学 生物 胰腺癌 内科学 免疫学 癌症 肿瘤细胞
作者
Kang Sun,Xiaozhen Zhang,Jiatao Shi,Jinyan Huang,Sicheng Wang,X. Li,Haixiang Lin,Danyang Zhao,Mao Ye,Sirui Zhang,Qiu Li,Mei Yang,Chuyang Liao,Lihong He,Mengyi Lao,Jinyuan Song,Na Lü,Yongtao Ji,Hanshen Yang,Lingyue Liu
出处
期刊:Journal of Clinical Investigation [American Society for Clinical Investigation]
标识
DOI:10.1172/jci187024
摘要

Metabolic reprogramming shapes tumor microenvironment (TME) and may lead to immunotherapy resistance in pancreatic ductal adenocarcinoma (PDAC). Elucidating the impact of pancreatic cancer cell metabolism in the TME is essential to therapeutic interventions. "Immune cold" PDAC is characterized by elevated lactate levels resulting from tumor cell metabolism, abundance of pro-tumor macrophages, and reduced cytotoxic T cell in the TME. Analysis of 18F-FDG uptake in patients showed that increased global protein lactylation in PDAC correlates with worse clinical outcomes in immunotherapy. Inhibition of lactate production in pancreatic tumors via glycolysis or mutant-KRAS inhibition reshaped the TME, thereby increasing their sensitivity to immune checkpoint blockade (ICB) therapy. In pancreatic tumor cells, lactate induces K63 lactylation of Endosulfine alpha (ENSA-K63la), a crucial step that triggers STAT3-CCL2 signaling. Consequently, elevated CCL2 secreted by tumor cells facilitates tumor-associated macrophage (TAM) recruitment to the TME. High levels of lactate also drive transcriptional reprogramming in TAMs via ENSA-STAT3 signaling, promoting an immunosuppressive environment. Targeting ENSA-K63la or CCL2 enhances the efficacy of ICB therapy in murine and humanized pancreatic tumor models. In conclusion, elevated lactylation reshapes the TME and promotes immunotherapy resistance in PDAC. Therapeutic approach targeting ENSA-K63la or CCL2 has shown promise in sensitizing pancreatic cancer immunotherapy.
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