干细胞
造血
生物
癌症的体细胞进化
祖细胞
计算生物学
进化生物学
克隆选择
斑马鱼
祖细胞
移植
突变
遗传学
发育生物学
追踪
模式生物
重编程
谱系(遗传)
脾脏
免疫学
表型
癌症干细胞
生殖系
系统生物学
个性化医疗
作者
Alejo Rodriguez-Fraticelli
出处
期刊:Blood
[Elsevier BV]
日期:2025-09-22
卷期号:147 (23): 2728-2739
被引量:3
标识
DOI:10.1182/blood.2024028195
摘要
ABSTRACT: For over 60 years, blood researchers have been counting clones with every tool at their disposal. Inspired by phage and fly geneticists, Till and McCulloch irradiated mice to induce chromosomal aberrations. Using this labeling strategy, they demonstrated that different types of blood cells shared the same mutation in every spleen colony, thereby proving the existence of hematopoietic stem cells. Since their breakthrough, technological advances have enabled researchers to quantify hematopoiesis at single-cell resolution in increasingly complex samples across both mice and humans. With these modern sophisticated lineage-tracing methods, our foundational understanding of the blood system is being reshaped. For instance, we now interpret hematopoietic architecture as arising from stem and progenitor cells of diverse developmental origins, each with distinct fate biases encoded by unique regulatory states. Interacting with this regulatory layer, genetic mutations and epimutations arise, expanding clonally and becoming pervasive with age. Together, clonal heterogeneity and age-driven clonal selection may underlie the perplexing diversity of therapy responses in cancer and beyond. As these paradigm-shifting insights gain traction, clonal tracing is being adopted across dozens of biological and clinical studies. Here, we review the modern toolbox of clonal tracking technologies, with a focus on next-generation sequencing-based approaches, and provide a practical guide for matching specific research questions with optimal experimental strategies.
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