桥接(联网)
生物
功能(生物学)
计算生物学
多细胞生物
中尺度气象学
细胞外
表型
保证
细胞生物学
进化生物学
形式与功能
模型系统
系统生物学
基因
器官系统
复杂系统
基因调控网络
过程(计算)
寿命
钥匙(锁)
作者
Yun Chen,Ronald N Germain,Ginger L. Hunter,Rajan P. Kulkarni,Arthur D Lander,Pedro Lowenstein,Jeremy E Purvis,Harikesh S. Wong
出处
期刊:Cell
[Cell Press]
日期:2025-11-01
卷期号:188 (23): 6393-6410
标识
DOI:10.1016/j.cell.2025.10.012
摘要
Recent studies at molecular and genomic scales have enriched our understanding of life's most fundamental building block: the cell. However, bridging the gap between single-cell phenotypes and the emergent functions of tissues and organs remains a formidable challenge. Here, we suggest that the conceptual span from cells to tissues and organs is so large as to warrant intermediate stepping stones. Drawing inspiration from "network motifs"-discrete units of cell-level function that emerge from the interactions of a handful of genes or enzymes-we argue that similarly identifiable units of tissue-level function, which we term "mesoscale modules," emerge from coordinated "interactions" among relatively small numbers of cells and their extracellular milieu. We outline several such modules and propose that a concerted effort to study them will deepen our foundational understanding of tissue and organ functions. By developing these mesoscale insights, we anticipate a more tractable and mechanistic approach to complex human conditions rooted in tissue- and organ-scale dysregulation, including developmental defects, cancer, cardiovascular disease, immune-related disorders, infectious disease, and aging.
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