Salipante Stephen J, Horwitz Marshall S
Department of Genome Sciences, University of Washington School of Medicine, Seattle, Washington 98195, USA.
Curr Top Dev Biol. 2007;79:157-84. doi: 10.1016/S0070-2153(06)79006-8.
Recent, surprising, and controversial discoveries have challenged conventional concepts regarding the origins and plasticity of stem cells, and their contributions to tissue regeneration, and highlight just how little is known about mammalian development in comparison to simpler model organisms. In the case of the transparent worm, Caenorhabditis elegans, Sulston and colleagues used a microscope to record the birth and death of every cell during its life, and the compilation of this "fate map" represents a milestone achievement of developmental biology. Determining a fate map for mammals or other higher organisms is more complicated because they are opaque, take a long time to mature, and have a tremendous number of cells. Consequently, fate mapping experiments have relied on tagging a progenitor cell with a dye or genetic marker in order to later identify its descendants. This approach, however, extracts little information because it demonstrates that a population of cells, all having inherited the same label, shares a common ancestor, but it does not reveal how cells in that population are related to one another. To avoid that problem, as well as technical limitations of current methods for mapping cell fate, we, and others, have developed a new strategy for retrospectively deriving cell fate maps by using phylogenetics to infer the order in which somatic mutations have arisen in the genomes of individual cells during development in multicellular organisms. DNA replication inevitably introduces mutations, particularly at repetitive sequences, every time a cell divides. It is thus possible to deduce the history of cell divisions by cataloging somatic mutations and phylogenetically reconstructing cell lineage. This approach has the potential to produce a complete mammalian cell fate map that, in principle, could describe the developmental lineage of any cell and help resolve outstanding questions of stem cell biology, tissue repair and maintenance, and aging.
近期一些惊人且具争议性的发现对有关干细胞起源、可塑性及其对组织再生贡献的传统观念提出了挑战,也凸显出相较于简单的模式生物,我们对哺乳动物发育的了解是多么有限。以透明的线虫秀丽隐杆线虫为例,萨尔斯顿及其同事利用显微镜记录了其生命过程中每个细胞的诞生和死亡,而这一“命运图谱”的汇编是发育生物学的一项里程碑式成就。确定哺乳动物或其他高等生物的命运图谱更为复杂,因为它们不透明、成熟时间长且细胞数量众多。因此,命运图谱实验一直依赖于用染料或基因标记标记祖细胞,以便日后识别其后代。然而,这种方法获取的信息很少,因为它表明一群都继承了相同标记的细胞有一个共同祖先,但并未揭示该群体中的细胞彼此之间是如何关联的。为避免这一问题以及当前细胞命运图谱绘制方法的技术局限性,我们和其他人开发了一种新策略,通过系统发育学推断多细胞生物发育过程中单个细胞基因组中体细胞突变出现的顺序,从而追溯性地推导细胞命运图谱。每次细胞分裂时,DNA复制不可避免地会引入突变,尤其是在重复序列处。因此,通过编目体细胞突变并在系统发育上重建细胞谱系,就有可能推断细胞分裂的历史。这种方法有潜力生成完整的哺乳动物细胞命运图谱,原则上可以描述任何细胞的发育谱系,并有助于解决干细胞生物学、组织修复与维持以及衰老等悬而未决的问题。