研究概要
我们的研究结果确定了PRDX1是细菌驱动的代谢重编程中的核心节点,该重编程促进了HCC中的免疫逃逸和对PD-1治疗的耐药性。这些发现首次提供了将瘤内细菌通过氧化还原调控的代谢与PD-1耐药性联系起来的证据,提出将PRDX1和肠道微生物群双重靶向作为一种新的联合免疫治疗策略。
研究思路结论见上方概要
背景
近期研究强调了肝细胞癌(HCC)中瘤内细菌的存在,但其对免疫治疗耐药的贡献仍 largely 未被探索。本研究探讨细菌感染重塑肿瘤代谢从而削弱抗 PD-1 治疗疗效的机制。
方法
我们对29例HCC临床样本进行了16S rRNA基因测序,并将数据与12,487个细胞的单细胞RNA测序整合,以绘制肿瘤微环境内微生物、代谢和免疫的相互作用图谱。使用原位HCC小鼠模型(每组n = 8)进行功能验证,并结合基于流式细胞术的免疫分析。
结果
链球菌科的富集与关键糖酵解酶(LDHA、PKM2;p < 0.001)的上调及NK 细胞功能障碍(CD56 dim /CD16 bright 群体减少;风险比 = 2.15,95% CI:1.34-3.42)密切相关。在机制上,细菌定植通过 NF-κB 通路诱导过氧化物还原酶 1(PRDX1)表达。这导致乳酸产生过多,从而抑制 CD8 + T 细胞细胞毒性(p = 0.003)并增加免疫检查点分子的表达(TIM-3:2.7 倍;LAG-3:1.9 倍)。在体内,细菌感染使 PD-1 阻断的抗肿瘤疗效降低 43%(肿瘤体积与对照组相比;p = 0.008),而抑制 PRDX1 后该效应被逆转。
展开英文摘要原文
BACKGROUND: Recent studies have highlighted the presence of intratumoral bacteria in hepatocellular carcinoma (HCC), yet their contribution to immunotherapy resistance remains largely unexplored. This study investigates the mechanisms by which bacterial infection reshapes tumor metabolism to undermine the efficacy of anti-PD-1 therapy.
METHODS: We conducted 16S rRNA gene sequencing on 29 HCC clinical samples and integrated the data with single-cell RNA sequencing of 12,487 cells to map microbial, metabolic, and immune interactions within the tumor microenvironment. Functional validation was performed using orthotopic HCC mouse models ( n = 8 per group), coupled with flow cytometry-based immune profiling.
RESULTS: Enrichment of Streptococcaceae was strongly associated with upregulation of key glycolytic enzymes (LDHA, PKM2; p < 0.001) and dysfunction of natural killer cells (reduced CD56 dim /CD16 bright populations; hazard ratio = 2.15, 95% CI: 1.34-3.42). Mechanistically, bacterial colonization induced peroxiredoxin 1 (PRDX1) expression via the NF-κB pathway. This led to excessive lactate production, which suppressed CD8 + T cell cytotoxicity ( p = 0.003) and increased the expression of immune checkpoint molecules (TIM-3: 2.7-fold; LAG-3: 1.9-fold). In vivo , bacterial infection decreased the antitumor efficacy of PD-1 blockade by 43% (tumor volume vs. control; p = 0.008), an effect that was reversed upon PRDX1 inhibition.
CONCLUSION: Our findings identify PRDX1 as a central node in bacteria-driven metabolic reprogramming that facilitates immune evasion and resistance to PD-1 therapy in HCC. These findings provide the first evidence linking intratumoral bacteria to PD-1 resistance via redox-regulated metabolism, proposing dual targeting of PRDX1 and gut microbiota as a novel combinatorial immunotherapy strategy.
论文信息
- 作者
- Zhang H、Lan X、Cai L、Gao X、Gao F、Yu D、Zhang J、Zhang J
- 单位
- General Surgery Center, Shenzhen Hospital, Southern Medical University, Shenzhen, China.China
- 期刊
- Frontiers in microbiology2025