Giurumescu Claudiu A, Asthagiri Anand R
Division of Chemistry and Chemical Engineering, The Jacobs Institute for Molecular Engineering for Medicine, California Institute of Technology, Pasadena, California 91125, USA.
Biotechnol Prog. 2008 Jan-Feb;24(1):80-8. doi: 10.1021/bp070127t. Epub 2007 Sep 26.
Developing design strategies for tissue engineering and regenerative medicine is limited by our nascent understanding of how cell populations "self-organize" into multicellular structures on synthetic scaffolds. Mechanistic insights can be gleaned from the quantitative analysis of biomolecular signals that drive multicellular patterning during the natural processes of embryonic and adult development. This review describes three critical layers of signal processing that govern multicellular patterning: spatiotemporal presentation of extracellular cues, intracellular signaling networks that mediate crosstalk among extracellular cues, and finally, intranuclear signal integration at the level of transcriptional regulation. At every level in this hierarchy, the quantitative attributes of signals have a profound impact on patterning. We discuss how experiments and mathematical models are being used to uncover these quantitative features and their impact on multicellular phenotype.
组织工程和再生医学设计策略的发展受到限制,因为我们对细胞群体如何在合成支架上“自我组织”形成多细胞结构的认识尚浅。通过对在胚胎和成年发育的自然过程中驱动多细胞模式形成的生物分子信号进行定量分析,可以获得相关的机理见解。本综述描述了控制多细胞模式形成的三个关键信号处理层面:细胞外信号的时空呈现、介导细胞外信号间串扰的细胞内信号网络,以及最终在转录调控层面的核内信号整合。在这个层次结构的每个层面,信号的定量属性对模式形成都有深远影响。我们讨论了如何利用实验和数学模型来揭示这些定量特征及其对多细胞表型的影响。