PO.TB10.11 · 肿瘤生物学

癌症相关成纤维细胞来源的PDE3A促进脂筏调控的IGF-1R易位及三阴性乳腺癌的免疫治疗耐药

Cancer associated fibroblasts-derived PDE3A promotes lipid raft-regulated IGF-1R translocation and immunotherapy resistance in triple negative breast cancer

编号 6027 展板 4 时间 4/21 02:00–05:00 区域 Section 25 主讲 Na Hao, MD;PhD
分会场 Fibroblasts as Architects of the Tumor Microenvironment
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作者与单位 Authors & Affiliations

Na Hao

The First Affiliated Hospital of Xi'an Jiaotong University, Xi'an, China

摘要 Abstract

中文摘要
目的:免疫治疗耐药仍然是三阴性乳腺癌(TNBC)治疗中的一项重大临床挑战。癌症相关成纤维细胞(CAFs)介导的免疫抑制性肿瘤微环境(TME)诱导是一个关键的促成机制,但其潜在的分子调控网络尚未得到充分理解。本研究旨在系统阐明表达PDE3A的CAFs(PDE3A+CAFs)在TNBC免疫治疗耐药中的特定作用和分子机制,并评估一种PDE3A靶向降解剂联合免疫治疗的安全性和疗效。 方法:对接受免疫治疗的TNBC患者的肿瘤组织进行单细胞测序分析,以鉴定与免疫治疗耐药相关的CAF亚群。开展功能实验以评估PDE3A+CAFs对髓源性抑制细胞(MDSCs)浸润和T细胞功能的影响。机制研究包括评估PDE3A与Cbl-b之间的相互作用、胰岛素样生长因子1受体(IGF-1R)的脂筏易位以及信号转导与转录激活因子3(STAT3)信号轴的激活。此外,采用染色质免疫沉淀(ChIP)等实验来验证STAT3与PDE3A转录之间的调控关系。 结果:一个特定的PDE3A+CAFs亚群被鉴定为TNBC免疫治疗耐药的关键介导因子。功能实验证实,PDE3A+CAFs显著促进MDSC浸润至TNBC肿瘤,同时抑制T细胞功能和活性。在机制上,CAFs中的PDE3A以磷酸二酯酶非依赖的方式抑制负调控因子Cbl-b,从而促进IGF-1R脂筏易位并激活STAT3信号轴。激活的STAT3进一步通过上调C-X-C基序趋化因子配体12(CXCL12)分泌来招募MDSCs,营造免疫抑制性TME。此外,STAT3直接调控PDE3A转录,形成维持通路激活的正反馈环路。 结论:PDE3A+CAFs通过PDE3A-Cbl-b-IGF-1R-STAT3-CXCL12轴和STAT3-PDE3A正反馈环路在驱动TNBC免疫治疗耐药中发挥关键作用。靶向PDE3A联合免疫治疗作为一种克服免疫治疗耐药、改善TNBC治疗结局的新型治疗策略具有广阔前景,为临床转化提供了坚实的理论基础。
查看英文原文 English abstract
Objective : Immunotherapy resistance remains a significant clinical challenge in the treatment of triple-negative breast cancer (TNBC). Cancer-associated fibroblasts (CAFs)-mediated induction of an immunosuppressive tumor microenvironment (TME) is a key contributing mechanism, but the underlying molecular regulatory networks are inadequately understood. This study aims to systematically elucidate the specific role and molecular mechanisms of PDE3A-expressing CAFs (PDE3A+CAFs) in TNBC immunotherapy resistance, and to assess the safety and therapeutic efficacy of a PDE3A-targeted degrader combined with immunotherapy. Methods : Single-cell sequencing analysis was performed on tumor tissues from TNBC patients undergoing immunotherapy to identify CAF subpopulations associated with immunotherapy resistance. Functional experiments were conducted to evaluate the effects of PDE3A+CAFs on the infiltration of myeloid-derived suppressor cells (MDSCs) and the function of T cells. Mechanistic investigations included assessments of the interaction between PDE3A and Cbl-b, the lipid raft translocation of insulin-like growth factor 1 receptor (IGF-1R), and the activation of signal transducer and activator of transcription 3 (STAT3) signaling axis. Additionally, experiments such as chromatin immunoprecipitation (ChIP) were used to verify the regulatory relationship between STAT3 and PDE3A transcription. Results : A specific subpopulation of PDE3A+CAFs was identified as a pivotal mediator of TNBC immunotherapy resistance. Functional experiments confirmed that PDE3A+CAFs significantly promoted MDSC infiltration into TNBC tumors while suppressing T cell function and activity. Mechanistically, PDE3A in CAFs inhibited the negative regulator Cbl-b in a phosphodiesterase-independent manner, thereby facilitating IGF-1R lipid raft translocation and activating the STAT3 signaling axis. Activated STAT3 further recruited MDSCs via upregulating C-X-C motif chemokine ligand 12 (CXCL12) secretion, fostering an immunosuppressive TME. Moreover, STAT3 directly regulated PDE3A transcription, forming a positive feedback loop that sustained pathway activation. Conclusion : PDE3A+CAFs play a critical role in driving TNBC immunotherapy resistance through the PDE3A-Cbl-b-IGF-1R-STAT3-CXCL12 axis and the STAT3-PDE3A positive feedback loop. Targeting PDE3A combined with immunotherapy holds promising potential as a novel therapeutic strategy to overcome immunotherapy resistance and improve TNBC treatment outcomes, providing a solid theoretical foundation for clinical translation.
利益披露 Disclosure
N. Hao, None.

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