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:Circulating Tumor DNA as a Biomarker of Treatment Response and Minimal Residual Disease in Diffuse Large B-Cell Lymphoma: A Literature Review.
Circulating Tumor DNA as a Biomarker of Treatment Response and Minimal Residual Disease in Diffuse Large B-Cell Lymphoma: A Literature Review.
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弥漫大B细胞淋巴瘤(DLBCL)是侵袭性非霍奇金淋巴瘤中最常见的亚型,其特征是显著的分子异质性,而标准的组织病理学评估并不总能完全捕捉到这种异质性。循环肿瘤DNA(ctDNA)日益被视为一种有前景的液体活检生物标志物,能够实现非侵入性分子肿瘤分析、肿瘤负荷评估、治疗反应的动态监测以及可测量/微小残留病(MRD)的检测。现代分析平台,从基于PCR的检测到下一代测序方法,包括CAPP-Seq和PhasED-Seq,已大幅拓展了DLBCL分子监测的可能性。本综述总结了关于ctDNA生物学特征、其当代分析方法、ctDNA与肿瘤组织突变谱之间的一致性,以及基线ctDNA水平、早期分子反应、治疗后MRD状态和缓解期分子监测的临床意义的最新数据。特别关注接受新型免疫治疗(包括CAR-T 细胞治疗、双特异性抗体和抗体-药物偶联物)患者的ctDNA监测。整合基因组学、表观基因组学和片段组学数据的新兴多组学方法作为有前景的未来方向进行了讨论。临床实施的主要局限性包括分析前和分析工作流程标准化不足、意义未明的克隆性造血带来的混杂效应、技术平台之间的差异,以及缺乏已完成的前瞻性随机干预性研究来证明根据ctDNA状态调整治疗可改善结局。
总体而言,ctDNA目前是DLBCL中一种信息量很高的预后生物标志物;然而,要将其完全用作治疗选择的预测工具,还需要进一步协调、前瞻性验证以及在干预性临床试验中加以确认。
Diffuse large B-cell lymphoma (DLBCL) is the most common subtype of aggressive non-Hodgkin lymphoma and is characterized by pronounced molecular heterogeneity that is not always fully captured by standard histopathological assessment. Circulating tumor DNA (ctDNA) is increasingly regarded as a promising liquid-biopsy biomarker that enables non-invasive molecular tumor profiling, assessment of tumor burden, dynamic monitoring of treatment response, and detection of measurable/minimal residual disease (MRD). Modern analytical platforms, ranging from PCR-based assays to next-generation sequencing approaches, including CAPP-Seq and PhasED-Seq, have substantially expanded the possibilities of molecular monitoring in DLBCL.
This review summarizes current data on the biological characteristics of ctDNA, contemporary methods for its analysis, concordance between ctDNA and tumor-tissue mutational profiles, and the clinical significance of baseline ctDNA levels, early molecular response, post-treatment MRD status, and molecular surveillance during remission. Special attention is given to ctDNA monitoring in patients receiving novel immunotherapies, including CAR-T cell therapy, bispecific antibodies, and antibody-drug conjugates.
Emerging multi-omic approaches integrating genomic, epigenomic, and fragmentomic data are discussed as promising future directions. Key limitations of clinical implementation include insufficient standardization of preanalytical and analytical workflows, the confounding effect of clonal hematopoiesis of indeterminate potential, variability across technological platforms, and the lack of completed prospective randomized interventional studies demonstrating improved outcomes when therapy is modified according to ctDNA status.
Overall, ctDNA is currently a highly informative prognostic biomarker in DLBCL; however, its full implementation as a predictive tool for treatment selection requires further harmonization, prospective validation, and confirmation in interventional clinical trials.
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