Mathematical Neuroscience Unit, Institute for Frontier Science Initiative, Kanazawa University, Kanazawa, Ishikawa, Japan.
Laboratory of Developmental Neurobiology, Graduate School of Medical Sciences, Kanazawa University, Kanazawa, Ishikawa, Japan.
Fly (Austin). 2022 Dec;16(1):24-36. doi: 10.1080/19336934.2021.1953363.
Notch signalling is a well-conserved signalling pathway that regulates cell fate through cell-cell communication. A typical feature of Notch signalling is 'lateral inhibition', whereby two neighbouring cells of equivalent state of differentiation acquire different cell fates. Recently, mathematical and computational approaches have addressed the Notch dynamics in neural development. Typical examples of lateral inhibition are observed in the specification of neural stem cells in the embryo and sensory organ precursors in the thorax. In eye disc development, Notch signalling cooperates with other signalling pathways to define the evenly spaced positioning of the photoreceptor cells. The interplay between Notch and epidermal growth factor receptor signalling regulates the timing of neural stem cell differentiation in the optic lobe. In this review, we summarize the theoretical studies that have been conducted to elucidate the Notch dynamics in these systems and discuss the advantages of combining mathematical models with biological experiments.
Notch 信号通路是一条高度保守的信号通路,通过细胞间通讯调节细胞命运。 Notch 信号通路的一个典型特征是“侧向抑制”,即两个具有相同分化状态的相邻细胞获得不同的细胞命运。最近,数学和计算方法已经解决了神经发育中的 Notch 动力学问题。侧向抑制的典型例子发生在胚胎中的神经干细胞和胸部中的感觉器官前体细胞的特化过程中。在眼盘发育过程中, Notch 信号通路与其他信号通路合作,确定感光细胞的均匀间隔定位。 Notch 和表皮生长因子受体信号通路之间的相互作用调节了视神经叶中神经干细胞分化的时间。在这篇综述中,我们总结了已经进行的理论研究,以阐明这些系统中的 Notch 动力学,并讨论了将数学模型与生物学实验相结合的优势。