PO.IM02.01 · 免疫学
TNF-alpha在先天免疫激活和血脑屏障破坏驱动脑转移中发挥多效性作用
TNF-alpha plays pleiotropic role in innate immune activation and blood-brain barrier disruption driving brain metastasis
作者与单位 Authors & Affiliations
摘要 Abstract
中文摘要
肿瘤坏死因子-alpha(TNFalpha)是一种核心炎症细胞因子,在癌症中具有矛盾的功能,既能促进强劲的先天免疫激活,又能同时诱导促进转移播散的组织损伤。我们的初步数据显示,TNFalpha触发小鼠EMT6乳腺癌细胞中HSP70的膜定位和分泌,使HSP70能够作为一种强效的肿瘤相关抗原,激活先天免疫并介导播散肿瘤细胞的清除。为在体内扩展这些发现,我们在EMT6原位模型中研究了TNFalpha的多效性作用,其中经TNFalpha处理的EMT6条件培养基(EMT6-CM)出乎意料地既诱导了早期全身免疫,又诱导了晚期脑转移的发生。我们的初步数据揭示,来自TNFalpha处理细胞的EMT6-CM含有高浓度的可溶性TNFalpha,可破坏血脑屏障(BBB)的完整性,为转移性定植生成一个许可性生态位。此外,同一CM含有富含HSP70的细胞外囊泡,可促进外周组织中的抗肿瘤免疫启动。因此,TNFalpha发挥矛盾的影响:通过HSP70介导的先天免疫激活是有益的,但通过TNFalpha驱动的BBB破坏促进脑转移生长又是有害的。为在我们正在进行的研究中从机制上分离这些对立的功能,我们正在使用免疫吸附方法从EMT6-CM中选择性去除TNFalpha,同时保留含HSP70的囊泡和可溶性组分。去除TNFalpha的CM将用于免疫BALB/c小鼠1-2周,随后用EMT6-Luc细胞进行原位攻击。我们假设接受去除TNFalpha、富含HSP70的CM的小鼠将排斥EMT6-Luc肿瘤,证明在无TNFalpha诱导的BBB损伤的情况下,HSP70驱动的免疫原性足以提供肿瘤保护。成功的排斥将验证我们的模型,即TNFalpha对于BBB破坏是必需的,但对于HSP70介导的抗肿瘤免疫是可有可无的。总之,我们的发现揭示了TNFalpha生物学中一个此前未被认识的二分性,对基于细胞因子的免疫疗法以及乳腺癌脑转移的潜在机制具有重要意义。理解如何解耦TNFalpha的免疫刺激作用和病理作用,可能指导开发更安全、更有效的免疫调节策略。
查看英文原文 English abstract
Tumor necrosis factor-alpha (TNFalpha) is a central inflammatory cytokine with paradoxical functions in cancer, capable of promoting robust innate immune activation while simultaneously inducing tissue damage that facilitates metastatic dissemination. Our preliminary data show that TNFalpha triggers membrane localization and secretion of HSP70 in murine EMT6 breast cancer cells, enabling HSP70 to function as a potent tumor-associated antigen that activates innate immunity and mediates clearance of disseminated tumor cells. To extend these in vivo, we investigated the pleiotropic effects of TNFalpha in EMT6 orthotopic models, where TNFalpha-treated EMT6-conditioned medium (EMT6-CM) unexpectedly induced both early systemic immunization and late development of brain metastases.Our preliminary data reveal that EMT6-CM derived from TNFalpha-treated cells contains high concentrations of soluble TNFalpha that compromise blood-brain barrier (BBB) integrity, generating a permissive niche for metastatic colonization. Besides, the same CM harbors HSP70-rich extracellular vesicles that promote anti-tumor immune priming in peripheral tissues. Thus, TNFalpha exerts a paradoxical influence: beneficial through HSP70-mediated innate immune activation, yet detrimental through TNFalpha-driven BBB disruption that facilitates brain metastatic outgrowth.To mechanistically separate these opposing functions in our ongoing studies, we are selectively depleting TNFalpha from EMT6-CM using immunoabsorption approaches while preserving HSP70-containing vesicles and soluble fractions. TNFalpha-depleted CM will be used to immunize BALB/c mice for 1-2 weeks, followed by orthotopic challenge with EMT6-Luc cells. We hypothesize that mice receiving TNFalpha-depleted, HSP70-enriched CM will reject EMT6-Luc tumors, demonstrating that HSP70-driven immunogenicity is sufficient for tumor protection in the absence of TNFalpha-induced BBB damage. Successful rejection will validate our model in which TNFalpha is necessary for BBB disruption but dispensable for HSP70-mediated anti-tumor immunity.Collectively, our findings reveal a previously unrecognized dichotomy in TNFalpha biology, with significant implications for cytokine-based immunotherapies and mechanisms underlying breast cancer brain metastasis. Understanding how to uncouple TNFalpha's immunostimulatory and pathological effects may guide development of safer and more effective immune-modulating strategies.
利益披露 Disclosure
N. Celiker, None..
F. Koksalar Alkan, None..
H. K. Alkan, None..
A. Lawal, None..
M. Al Achkar, None..
W. S. Max, None..
H. Korkaya, None.