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.
CAR-T(CAR-T)细胞在血液系统恶性肿瘤中的应用推动了这种免疫治疗形式的显著进展。
CELL INTELLIGENCE · 肿瘤细胞治疗研究
肿瘤细胞治疗研究
英文原题:Acute myeloid leukemia: from NGS, through scRNA-seq, to CAR-T. dissect cancer heterogeneity and tailor the treatment.
Acute myeloid leukemia: from NGS, through scRNA-seq, to CAR-T. dissect cancer heterogeneity and tailor the treatment.
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急性髓系白血病(AML)是一种恶性血液肿瘤,由髓系原始细胞成熟和分化异常导致明显细胞异质性,潜在原因包括转录或表观遗传改变、凋亡受损及细胞过度增殖。患者个体生物学差异以及新体细胞改变导致的肿瘤内异质性,使AML容易耐受抗癌治疗,从而复发和死亡风险较高。40多年来,传统“同一方案适用于所有患者”的标准治疗一直是蒽环类药物和阿糖胞苷强化化疗。本文首先追溯自20世纪70年代以来对AML病理认识的演变。疾病分类方面的巨大进步对风险分层至关重要,并推动诊断和治疗日益个体化。随后,作者重点介绍过去15年单细胞RNA测序和基于基因组工具的T细胞改造等技术如何影响AML分类和治疗。新千年初,高通量二代测序技术使患者基因谱分析成为可能,揭示同一疾病的不同表现,推动风险分层并发现新的潜在治疗靶点,这些靶点随后得到验证。目前可在诊断时或治疗后从单细胞水平分析肿瘤异质性,从而识别比例较低的细胞亚克隆或治疗耐药克隆;这些克隆可能导致治疗后复发,常规肿瘤活检整体分析则难以发现。单细胞分析可进一步依据肿瘤遗传和转录特征个体化治疗,节省宝贵时间并减少危险副作用。通过解析癌症这一复杂问题的各个组成部分,并据此采用包括工程化CAR-T 细胞在内的定制治疗策略,个体化医疗将迈出重要一步。
Acute myeloid leukemia (AML) is a malignant blood cancer with marked cellular heterogeneity due to altered maturation and differentiation of myeloid blasts, the possible causes of which are transcriptional or epigenetic alterations, impaired apoptosis, and excessive cell proliferation. This neoplasm has a high rate of resistance to anticancer therapies and thus a high risk of relapse and mortality because of both the biological diversity of the patient and intratumoral heterogeneity due to the acquisition of new somatic changes. For more than 40 years, the old gold standard "one size fits all" treatment approach included intensive chemotherapy treatment with anthracyclines and cytarabine. The manuscript first traces the evolution of the understanding of the pathology from the 1970s to the present. The enormous strides made in its categorization prove to be crucial for risk stratification, enabling an increasingly personalized diagnosis and treatment approach. Subsequently, we highlight how, over the past 15 years, technological advances enabling single cell RNA sequencing and T-cell modification based on the genomic tools are affecting the classification and treatment of AML.
At the dawn of the new millennium, the advent of high-throughput next-generation sequencing technologies has enabled the profiling of patients evidencing different facets of the same disease, stratifying risk, and identifying new possible therapeutic targets that have subsequently been validated. Currently, the possibility of investigating tumor heterogeneity at the single cell level, profiling the tumor at the time of diagnosis or after treatments exist.
This would allow the identification of underrepresented cellular subclones or clones resistant to therapeutic approaches and thus responsible for post-treatment relapse that would otherwise be difficult to detect with bulk investigations on the tumor biopsy.
Single-cell investigation will then allow even greater personalization of therapy to the genetic and transcriptional profile of the tumor, saving valuable time and dangerous side effects. The era of personalized medicine will take a huge step forward through the disclosure of each individual piece of the complex puzzle that is cancer pathology, to implement a "tailored" therapeutic approach based also on engineered CAR-T cells.
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