PO.CL05.03 · 临床研究

用HBS-101靶向midkine通过免疫激活和致癌通路抑制增强TNBC对化疗和免疫治疗的应答

Targeting midkine with HBS-101 enhances chemotherapy and immunotherapy response in TNBC via immune activation and oncogenic pathway suppression

海报缩略图:用HBS-101靶向midkine通过免疫激活和致癌通路抑制增强TNBC对化疗和免疫治疗的应答
编号 3796 展板 11 时间 4/20 02:00–05:00 区域 Section 43 主讲 Baskaran Subramani, PhD
分会场 Combination Immunotherapies
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作者与单位 Authors & Affiliations

Baskaran Subramani1, Megharani R. Mahajan1, Panneerdoss Subbarayalu2, Zhenming Xu1, Neelam Mukherjee1, Gangadhara R. Sareddy1, Hareesh B. Nair3, Ratna K. Vadlamudi1, Suryavathi Viswanadhapalli1

1UTHSA, San Antonio, TX,2UT Health San Antonio Greehey Children's Cancer Res. Inst., San Antonio, TX,3Texas Tech University Health Science center, El Paso, TX

摘要 Abstract

中文摘要
背景:三阴性乳腺癌(TNBC)是一种侵袭性亚型,具有高复发率和对标准治疗的耐药性。Midkine(MDK)是一种肝素结合生长因子,作为细胞因子发挥功能,在TNBC中过表达并促进肿瘤进展、免疫逃逸和化疗耐药。我们最近开发了HBS-101,作为一种首创的小分子MDK抑制剂,并在临床前TNBC模型中证明了其治疗疗效。本研究评估MDK抑制是否增强化疗和免疫治疗的疗效,以及对联合治疗效应的机制理解。 方法:用HBS-101单独或与化疗(doxorubicin和paclitaxel)联合处理TNBC细胞系,评估活力、凋亡和协同作用。采用源自患者来源异种移植瘤(PDX)的3D类器官检测联合治疗的离体效应。分别使用TNBC的人源和小鼠细胞系来源异种移植瘤(CDX)模型评估HBS-101与化疗和免疫治疗(PD-L1抑制剂)的疗效。体内实验中,在免疫健全小鼠中建立原位TNBC肿瘤并接受联合治疗。使用异种移植瘤模型分析肿瘤生长和免疫细胞浸润。对HBS-101处理的细胞进行RNA-seq以鉴定免疫和凋亡通路的变化。使用RT-qPCR、Western blotting、流式细胞术和免疫组织化学检测分子和免疫学效应。 结果:HBS-101与化疗的联合治疗在TNBC模型中产生协同抗肿瘤活性,相对于单药治疗显著降低了2D和3D细胞活力、干性和肿瘤生长。类似地,HBS-101与免疫治疗联合在同基因TNBC模型中也产生强烈的协同效应,优于单一治疗。机制研究揭示,HBS-101破坏了MDK介导的信号通路(包括STAT3),从而使肿瘤细胞对治疗敏感并增强免疫激活。联合治疗还增加了CD8阳性T细胞和巨噬细胞的浸润,同时伴随IFN-gamma和granzyme B水平升高。RNA-seq分析显示免疫和凋亡通路上调以及免疫抑制信号受抑。这些分子变化与肿瘤负荷降低和凋亡增加相关,支持MDK抑制在联合治疗中的机制性协同作用。 结论:用HBS-101抑制MDK通过破坏致癌信号和促进免疫激活,增强了TNBC中化疗-免疫治疗的疗效。这些发现支持HBS-101作为联合策略一部分的治疗潜力,以克服耐药并改善TNBC的结局。
查看英文原文 English abstract
Background: Triple-negative breast cancer (TNBC) is an aggressive subtype with high recurrence and resistance to standard therapies. Midkine (MDK), a heparin-binding growth factor that functions as a cytokine, is overexpressed in TNBC and promotes tumor progression, immune evasion, and chemoresistance. We recently developed HBS-101, as a first-in-class small-molecule MDK inhibitor and demonstrated its therapeutic efficacy in preclinical TNBC models. This study evaluates whether MDK inhibition enhances chemo and immunotherapy efficacy as well as the mechanistic understanding of combination therapy effects. Methods: TNBC cell lines were treated with HBS-101 alone or in combination with chemotherapy (doxorubicin and paclitaxel), and assessed for viability, apoptosis, and synergy. 3D organoids derived from patient-derived xenografts (PDX) were employed to examine the ex vivo effects of combination therapy. The efficacy of HBS-101 with chemotherapy and immunotherapy (PD-L1 inhibitor) was evaluated using human and murine cell line-derived xenograft (CDX) models of TNBC respectively. In vivo, orthotopic TNBC tumors were established in immunocompetent mice and treated with combination treatments. Tumor growth, and immune cell infiltration were analyzed using xenograft models. RNA-seq was performed on HBS-101 treated cells to identify changes in immune and apoptotic pathways. Molecular and immunological effects were examined using RT-qPCR, Western blotting, flow cytometry, and immunohistochemistry. Results: Combination treatment with HBS-101 and chemotherapy produced synergistic anti-tumor activity in TNBC models, significantly reducing 2D and 3D cell viability, stemness, and tumor growth relative to monotherapies. Similarly, combining HBS-101 with immunotherapy also yielded strong synergistic effects in syngeneic TNBC models, outperforming individual treatments. Mechanistic studies revealed that HBS-101 disrupted MDK-mediated signaling pathways, including STAT3, thereby sensitizing tumor cells to treatment and enhancing immune activation. Combination therapy also increased infiltration of CD8 positive T cells and macrophages, accompanied by elevated levels of IFN-gamma and granzyme B. RNA-seq analysis showed upregulation of immune and apoptotic pathways and suppression of immunosuppressive signals. These molecular changes correlated with reduced tumor burden, and increased apoptosis, supporting the mechanistic synergy of MDK inhibition in combination therapy. Conclusion: MDK inhibition with HBS-101 enhances the efficacy of chemo-immunotherapy in TNBC by disrupting oncogenic signaling and promoting immune activation. These findings support the therapeutic potential of HBS-101 as part of a combination strategy to overcome resistance and improve outcomes in TNBC.
利益披露 Disclosure
B. Subramani, None.. M. R. Mahajan, None.. Z. Xu, None.. N. Mukherjee, None.. G. R. Sareddy, None. H. B. Nair, HiBis Associates Patent. R. K. Vadlamudi, None.. S. Viswanadhapalli, None.

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