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抗生素诱导的肠道微生物组代谢输出丢失与 CAR-T 细胞治疗的临床反应相关

英文原题:Antibiotic-induced loss of gut microbiome metabolic output correlates with clinical responses to CAR T-cell therapy.

查看英文原题

Antibiotic-induced loss of gut microbiome metabolic output correlates with clinical responses to CAR T-cell therapy.

PubMed 2025/02/20(内容时间) Blood Q1 · IF 23.9(JCR 2025)

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中文摘要

抗生素(ABX)诱导的微生物组失调在肿瘤学中普遍存在,会不利影响多种癌症治疗的结局和副作用,包括免疫检查点抑制剂和CAR-T 细胞疗法。

本研究观察到,既往使用哌拉西林-他唑巴坦和美罗培南等广谱且具有较强厌氧菌覆盖作用的抗生素,与大 B 细胞淋巴瘤患者抗 CD19 CAR-T 治疗后的较差生存结局相关(N = 422),且其结局劣于使用其他抗生素类别者。在这些患者的发现亚组(n = 67)中,我们发现此类抗生素使用与肠道微生物组功能显著失调相关,导致肠道和血液代谢组发生显著变化,包括短链脂肪酸(SCFA)等微生物效应物及其他阴离子代谢物;外部验证队列(n = 58)基本重现了这些结果。

进一步分析循环微生物代谢物显示,接受抗生素治疗患者的吲哚和甲酚衍生物以及三甲胺 N-氧化物水平均降低(发现队列 n = 40;验证队列 n = 28)。免疫功能完整的 CAR-T 小鼠模型也重现了这些发现:美罗培南诱导的失调导致全身代谢异常,并降低小鼠抗 CD19 CAR-T 疗效。

此外,我们证明 SCFA 可增强 CAR-T 细胞代谢适能,提高肿瘤杀伤能力。综上,结果提示广谱抗生素会耗竭代谢活跃的共生菌,而其代谢物对增强 CAR-T 疗效至关重要;本研究揭示了抗生素暴露、微生物组功能与 CAR-T 疗效之间的复杂关系,并凸显调节微生物组以增强 CAR-T 免疫疗法的潜力。本试验已在 ClinicalTrials.gov 注册,编号 NCT06218602。

展开英文摘要原文

Antibiotic (ABX)-induced microbiome dysbiosis is widespread in oncology, adversely affecting outcomes and side effects of various cancer treatments, including immune checkpoint inhibitors and chimeric antigen receptor T-cell (CAR-T) therapies. In this study, we observed that prior exposure to broad-spectrum ABXs with extended anaerobic coverage such as piperacillin-tazobactam and meropenem was associated with worse anti-CD19 CAR-T therapy survival outcomes in patients with large B-cell lymphoma (N = 422) than other ABX classes.

In a discovery subset of these patients (n = 67), we found that the use of these ABXs was in turn associated with substantial dysbiosis of gut microbiome function, resulting in significant alterations of the gut and blood metabolome, including microbial effectors such as short-chain fatty acids (SCFAs) and other anionic metabolites, findings that were largely reproduced in an external validation cohort (n = 58).

Broader evaluation of circulating microbial metabolites revealed reductions in indole and cresol derivatives, as well as trimethylamine N-oxide, in patients who received ABX treatment (discovery, n = 40; validation, n = 28).

These findings were recapitulated in an immune-competent CAR-T mouse model, in which meropenem-induced dysbiosis led to a systemic dysmetabolome and decreased murine anti-CD19 CAR-T efficacy.

Furthermore, we demonstrate that SCFAs can enhance the metabolic fitness of CAR-Ts, leading to improved tumor killing capacity.

Together, these results suggest that broad-spectrum ABX deplete metabolically active commensals whose metabolites are essential for enhancing CAR-T efficacy, shedding light on the intricate relationship between ABX exposure, microbiome function and their impact on CAR-T efficacy. This highlights the potential for modulating the microbiome to augment CAR-T immunotherapy. This trial was registered at www. clinicaltrials. gov as #NCT06218602.

论文信息

作者
Prasad R、Rehman A、Rehman L、Darbaniyan F、Blumenberg V、Schubert ML、Mor U、Zamir E
第一作者单位
Department of Genomic Medicine, The University of Texas MD Anderson Cancer Center, Houston, TX.United States
通讯作者单位
Department of Lymphoma and Myeloma, The University of Texas MD Anderson Cancer Center, Houston, TX.United States
文献类型
II 期临床试验 · 随机对照试验
期刊
Blood2025 Feb 20
原文标识
PubMed 39441941 · DOI 10.1182/blood.2024025366