PO.IM02.03 · 免疫学

抗生素驱动的微生物群破坏损害HER2靶向治疗的疗效

Antibiotic driven microbiota disruption impairs HER2 targeted therapy efficacy

海报缩略图:抗生素驱动的微生物群破坏损害HER2靶向治疗的疗效
编号 2880 展板 20 时间 4/20 02:00–05:00 区域 Section 9 主讲 Romina Araya, PhD
分会场 Microbiome, Inflammation, and Response to Immunotherapy in Cancer
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作者与单位 Authors & Affiliations

Romina Elizabeth Araya1, Lily Parker1, Payal Mitra2, Nofar Erlichman1, Pavani Chalasani3, Rong Li2

1Biochemistry and Molecular Medicine-SMHS, George Washington University, Washington, DC,2The George Washington University, Washington,3Division of Hematology and Oncology, George Washington Cancer Center- George Washington University, Washington, DC

摘要 Abstract

中文摘要
多达60%的癌症患者在治疗期间需要使用抗生素,然而回顾性研究表明抗生素暴露可在多种癌症中恶化结局。在乳腺癌(BC)中,HER2+患者在使用抗生素后生存显著降低,这一效应归因于微生物群破坏,尽管机制仍不清楚。我们此前的工作证明了微生物群信号在化疗和免疫治疗疗效中的作用。但HER2+ BC依赖靶向治疗,因此抗生素对这些药物的影响需要进一步研究。为此,我们对携带HER2+ TUBO肿瘤的小鼠的盲肠内容物进行16S rRNA测序,以评估抗HER2抗体或来那替尼(neratinib,一种HER2酪氨酸激酶抑制剂)是否各自诱导不同的微生物群变化。抗HER2增加了Oscillospiraceae、Rikenellaceae、Ruminococcaceae和Lachnospiraceae,而来那替尼仅增加后两个科。然而,alpha多样性指标保持不变。为研究这些微生物如何促成治疗,我们首先使用广谱抗生素混合物(ABX)耗竭肠道微生物群。我们观察到抗HER2和来那替尼在TUBO肿瘤上的疗效分别部分和完全丧失。一种临床相关的抗生素,如环丙沙星(cipro),也完全阻止了来那替尼应答,而阿莫西林/克拉维酸(am/clav)造成部分损害。由于抗生素和来那替尼均经口给药,我们通过LC-MRM质谱定量了血浆来那替尼,排除了抗生素诱导的来那替尼吸收阻断。Cipro和am/clav显著降低alpha多样性,但程度小于ABX,其中cipro显示出最显著的效应。由HER2疗法富集的科,包括Lachnospiraceae和Ruminococcaceae,被cipro和am/clav所靶向。值得注意的是,两种抗生素都增加了Akkermansia,这是一个此前与良好免疫治疗结局相关的科,提示HER2靶向治疗可能依赖于与支持检查点阻断者不同的微生物群特征,如Lachnospiraceae或Ruminococcaceae。对肿瘤免疫浸润的光谱流式细胞术分析显示,HER2疗法触发了NK、CD8+和CD4+ T细胞浸润。抗生素治疗的肿瘤显示出促肿瘤巨噬细胞和中性粒细胞的富集,且无显著的NK细胞募集。微生物群alpha多样性与肿瘤NK和CD8+ T细胞含量呈正相关,而后者又与治疗结局相关。总之,我们的发现证明抗生素驱动的肠道微生物群组成和多样性破坏损害了与HER2+ BC治疗疗效相关的免疫机制。这些结果凸显了基于微生物群的策略在缓解HER2+ BC中抗生素相关治疗耐药性方面的潜力。
查看英文原文 English abstract
Up to 60% of cancer patients require antibiotics during therapy, yet retrospective studies indicate that antibiotic exposure can worsen outcomes across cancers. In breast cancer (BC), HER2+ patients show notably reduced survival after antibiotic use, an effect attributed to microbiota disruption, though mechanisms remain unclear. Our previous work demonstrated the role of microbiota signaling in chemo and immunotherapy efficacy. But HER2+ BC relies on targeted therapies, thus the impact of antibiotics on these agents requires further investigation. To address this, we used 16S rRNA sequencing of cecal content from mice bearing HER2+ TUBO tumors to assess whether an anti-HER2 antibody or neratinib, a HER2 tyrosine kinase inhibitor, each induces distinct microbiota shifts. Anti-HER2 increased Oscillospiraceae , Rikenellaceae , Ruminococcaceae , and Lachnospiraceae , whereas neratinib increased only the latter two Families. However, alpha diversity metrics remained unchanged. To study how these microbes contribute to treatment, we first depleted the gut microbiota using a broad-spectrum antibiotic cocktail (ABX). We observed the partial and complete loss of anti-HER2 and neratinib efficacy, respectively, on TUBO tumors. A clinically relevant antibiotic, such as ciprofloxacin (cipro), also fully halted neratinib response, whereas amoxicillin/clavulanate (am/clav) caused partial impairment. Because both antibiotics and neratinib were administered orally, we quantified plasma neratinib by LC-MRM mass spectrometry and ruled out antibiotic-induced blockade of neratinib absorption. Cipro and am/clav significantly reduced alpha diversity to a lesser extent than ABX, with cipro showing the most dramatic effect. Families enriched by HER2 therapies, including Lachnospiraceae and Ruminococcaceae, were targeted by cipro and am/clav. Notably, both antibiotics increased Akkermansia , a Family previously linked to favorable immunotherapy outcomes, suggesting that HER2-targeted therapies may rely on microbiota features, like Lachnospiraceae or Ruminococcaceae , distinct from those supporting checkpoint blockade. Spectral flow cytometry analysis of the tumor immune infiltration revealed that HER2 therapies triggered NK, CD8+, and CD4+ T cell infiltration. Antibiotic-treated tumors showed enrichment of pro-tumor macrophages and neutrophils with no significant NK cell recruitment. Microbiota alpha diversity was positively correlated with tumor NK and CD8+ T cell content, which, in turn, were associated with treatment outcomes. Overall, our findings demonstrate that antibiotic-driven disruption of gut microbiota composition and diversity impairs immune mechanisms linked to the efficacy of HER2+ BC therapy. These results highlight the potential of microbiota-based strategies to mitigate antibiotic-associated therapeutic resistance in HER2+ BC.
利益披露 Disclosure
R. E. Araya, None.. L. Parker, None.. N. Erlichman, None.. P. Chalasani, None.

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