CAR-T(CAR-T)细胞疗法在非肿瘤性疾病中的应用
Chimeric antigen receptor T (CAR-T) cell therapy in non-oncological diseases.
CELL INTELLIGENCE · 肿瘤细胞治疗研究
肿瘤细胞治疗研究
英文原题:A non-antibiotic-disrupted gut microbiome is associated with clinical responses to CD19-CAR-T cell cancer immunotherapy.
A non-antibiotic-disrupted gut microbiome is associated with clinical responses to CD19-CAR-T cell cancer immunotherapy.
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越来越多证据提示,肠道微生物组可能调节癌症免疫疗法的疗效。在德国和美国5个中心的B细胞淋巴瘤患者队列中(德国n=66,美国n=106,总计n=172),我们发现,CD19靶向嵌合抗原受体(CAR)T细胞治疗前使用广谱抗生素(“高风险抗生素”)与不良结局相关,但这一影响可能受到高风险抗生素预处理患者治疗前肿瘤负荷较大及全身炎症较重的混杂。为排除这一混杂并深入了解影响CAR-T 疗效、被抗生素掩盖的微生物组信号,我们重点分析未暴露于高风险抗生素的患者。确实,在这类患者中,CAR-T 输注前双歧杆菌(Bifidobacterium longum)及微生物组编码的肽聚糖生物合成,与CAR-T 治疗后6个月生存或淋巴瘤进展显著相关。
此外,在未暴露于高风险抗生素的德国队列中训练、并在美国队列中验证的CAR-T 治疗前微生物组机器学习预测算法,可稳健地区分长期应答者和无应答者。拟杆菌属、瘤胃球菌属、真杆菌属和阿克曼菌属对预测CAR-T 应答最为重要;其中阿克曼菌属还与这些患者输注前外周T细胞水平相关。
综上,我们识别出跨临床和地域差异仍保持一致的微生物组特征,这些特征有望用于CAR-T 细胞免疫疗法结局的跨队列预测。
Increasing evidence suggests that the gut microbiome may modulate the efficacy of cancer immunotherapy. In a B cell lymphoma patient cohort from five centers in Germany and the United States (Germany, n = 66; United States, n = 106; total, n = 172), we demonstrate that wide-spectrum antibiotics treatment ('high-risk antibiotics') prior to CD19-targeted chimeric antigen receptor (CAR)-T cell therapy is associated with adverse outcomes, but this effect is likely to be confounded by an increased pretreatment tumor burden and systemic inflammation in patients pretreated with high-risk antibiotics.
To resolve this confounding effect and gain insights into antibiotics-masked microbiome signals impacting CAR-T efficacy, we focused on the high-risk antibiotics non-exposed patient population. Indeed, in these patients, significant correlations were noted between pre-CAR-T infusion Bifidobacterium longum and microbiome-encoded peptidoglycan biosynthesis, and CAR-T treatment-associated 6-month survival or lymphoma progression.
Furthermore, predictive pre-CAR-T treatment microbiome-based machine learning algorithms trained on the high-risk antibiotics non-exposed German cohort and validated by the respective US cohort robustly segregated long-term responders from non-responders.
Bacteroides, Ruminococcus, Eubacterium and Akkermansia were most important in determining CAR-T responsiveness, with Akkermansia also being associated with pre-infusion peripheral T cell levels in these patients. Collectively, we identify conserved microbiome features across clinical and geographical variations, which may enable cross-cohort microbiome-based predictions of outcomes in CAR-T cell immunotherapy.
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