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血液系统恶性肿瘤治疗的创新方法:CRISPR 工程化微生物组沿肠-免疫轴在免疫治疗开发中的作用

英文原题:Innovative approaches in the treatment of hematologic malignancies: the role of CRISPR-engineered microbiomes along the gut-immune axis in immunotherapy development.

PubMed 2026/04/27(内容时间) Cancer Cell Int Q1 · IF 7(JCR 2025)

研究概要

临床前模型表明,这些工程菌株可将肿瘤负荷降低> 60%,恢复CAR T细胞功能,并克服耐药性。

中文摘要

血液系统恶性肿瘤包括一组异质性疾病,其特征是骨髓、淋巴系统和外周血中造血细胞的异常增殖。这些疾病包括白血病、淋巴瘤、多发性骨髓瘤及其他相关疾病,在全球范围内共同构成重大健康挑战。尽管诊断和治疗取得了进展,但这些恶性肿瘤常表现出复杂的病理生理、异质性以及对常规治疗的耐药性,因此需要持续研究以开发更有效和靶向的干预措施。CRISPR-Cas系统最初作为细菌中的适应性免疫机制被发现,现已被改造用于人类细胞中的靶向基因编辑。这项技术为纠正基因突变、调节基因表达以及工程化生物系统(包括微生物组)提供了前所未有的机会。为应对这些挑战,我们综述了近期利用CRISPR工程化肠道共生菌作为精准活体治疗剂以调节宿主免疫并直接靶向恶性克隆的策略。在本综述中,活体治疗剂在操作上指一种非致病性活微生物,其被工程化改造为至少包含一个治疗模块和一个控制模块,例如疾病响应性感测回路、载荷生产或分泌功能,以及基本的生物防护或稳定性保障。我们围绕三种机制组织讨论:(i) 微生物分泌免疫调节剂(例如 IL 15、IFN、PD 1/PD L1 阻断剂);(ii) 通过噬菌体或纳米颗粒介导的 CRISPR 系统递送溶瘤载荷;以及 (iii) 产生抗癌代谢物(例如丁酸盐、吲哚衍生物)。临床前模型表明,这些工程菌株可将肿瘤负荷降低 > 60%,恢复 CAR T 细胞功能,并克服耐药性。我们还分析了关键的技术障碍、菌株稳定性、生物防护、脱靶效应,并提出了解决方案,包括营养缺陷型杀伤开关和 AI 引导的菌株优化。最后,我们概述了未来方向,从原位噬菌体递送到多组学驱动的患者分层。CRISPR-微生物组编辑代表了一种有前景的血液肿瘤学策略,特别是因为血液癌症起源于骨髓和次级淋巴微环境,而非致密的实体肿块。尽管微生物组-免疫治疗相互作用在实体瘤中也很重要,但目前可获得的最强转化证据集中在实体瘤 ICI 应答研究和血液学环境(如 CAR-T 和 HSCT)中;因此,本综述有意将范围限定于血液癌症。

展开英文摘要原文

Hematologic malignancies encompass a diverse group of disorders characterized by the abnormal proliferation of blood-forming cells within the bone marrow, lymphatic system, and peripheral blood. These include leukemia, lymphoma, multiple myeloma, and other related conditions, which collectively pose significant health challenges worldwide. Despite advances in diagnosis and treatment, these malignancies often exhibit complex pathophysiology, heterogeneity, and resistance to conventional therapies, necessitating ongoing research to develop more effective and targeted interventions. Originally discovered as an adaptive immune mechanism in bacteria, CRISPR-Cas systems have been adapted for targeted gene editing in human cells. This technology offers unprecedented opportunities to correct genetic mutations, modulate gene expression, and engineer biological systems, including microbiomes. To address these challenges, we review recent strategies that harness CRISPR-engineered gut commensals as precision living therapeutics to modulate host immunity and directly target malignant clones. In this review, a living therapeutic is used operationally to mean a nonpathogenic live microorganism engineered with at least one therapeutic module and one control module, for example, a disease-responsive sensing circuit, a payload-production or secretion function, and basic biocontainment or stability safeguards. We organize our discussion around three mechanisms: (i) microbial secretion of immunomodulators (e.g., IL 15, IFN , PD 1/PD L1 blockers); (ii) delivery of tumor lytic payloads via phage or nanoparticle mediated CRISPR systems; and (iii) production of anticancer metabolites (e.g., butyrate, indole derivatives). Preclinical models demonstrate that these engineered strains can reduce tumor burden by > 60%, restore CAR T cell function, and overcome drug resistance. We also analyze key technical barriers, strain stability, biocontainment, off target effects, and propose solutions including auxotrophic kill switches and AI guided strain optimization. Finally, we outline future directions, from in situ phage delivery to multi omics driven patient stratification. CRISPR-microbiome editing represents a promising strategy for hematologic oncology, particularly because blood cancers arise in bone marrow and secondary lymphoid niches rather than in a compact solid mass. Although microbiome immunotherapy interactions are also important in solid tumors, the strongest translational evidence currently available is concentrated in solid-tumor ICI response studies and in hematologic settings such as CAR-T and HSCT; therefore, this review is intentionally scoped to blood cancers.

论文信息

作者
Hsu CY、Abdelgawwad El-Sehrawy AAM、Alshkarchy SS、Abdul AS、Ganesan S、Gupta PK、Sharma R、Nayak PP
第一作者单位
Department of Pharmacy, Chia Nan University of Pharmacy and Science, Tainan, 71710, Taiwan.Taiwan
通讯作者单位
Student Research Committe, Varastegan Institute for Medical Sciences, Mashhad, Iran. paperpub1988@gmail.com.Iran
文献类型
综述
期刊
Cancer cell international2026 Apr 27
原文标识
PubMed 42046057 · DOI 10.1186/s12935-026-04316-0