Sunnybrook Research Institute, 2075 Bayview Ave, Toronto, ON M4N3M5, Canada.
Sunnybrook Research Institute, 2075 Bayview Ave, Toronto, ON M4N3M5, Canada; Department of Biochemistry, University of Toronto, Toronto, ON, Canada.
Brain Res. 2019 Feb 15;1705:48-65. doi: 10.1016/j.brainres.2018.03.013. Epub 2018 Mar 12.
The formation of functional neural circuits in the vertebrate central nervous system (CNS) requires that appropriate numbers of the correct types of neuronal and glial cells are generated in their proper places and times during development. In the embryonic CNS, multipotent progenitor cells first acquire regional identities, and then undergo precisely choreographed temporal identity transitions (i.e. time-dependent changes in their identity) that determine how many neuronal and glial cells of each type they will generate. Transcription factors of the basic-helix-loop-helix (bHLH) family have emerged as key determinants of neural cell fate specification and differentiation, ensuring that appropriate numbers of specific neuronal and glial cell types are produced. Recent studies have further revealed that the functions of these bHLH factors are strictly regulated. Given their essential developmental roles, it is not surprising that bHLH mutations and de-regulated expression are associated with various neurological diseases and cancers. Moreover, the powerful ability of bHLH factors to direct neuronal and glial cell fate specification and differentiation has been exploited in the relatively new field of cellular reprogramming, in which pluripotent stem cells or somatic stem cells are converted to neural lineages, often with a transcription factor-based lineage conversion strategy that includes one or more of the bHLH genes. These concepts are reviewed herein.
脊椎动物中枢神经系统(CNS)中功能性神经回路的形成要求在发育过程中适当数量的正确类型的神经元和神经胶质细胞在适当的位置和时间产生。在胚胎中枢神经系统中,多能祖细胞首先获得区域身份,然后经历精确编排的时间身份转变(即身份的时间依赖性变化),决定它们将产生多少每种类型的神经元和神经胶质细胞。碱性螺旋-环-螺旋(bHLH)家族的转录因子已成为神经细胞命运特化和分化的关键决定因素,确保产生适当数量的特定神经元和神经胶质细胞类型。最近的研究进一步揭示了这些 bHLH 因子的功能受到严格调控。鉴于它们在发育中的重要作用,bHLH 突变和失调表达与各种神经疾病和癌症有关也就不足为奇了。此外,bHLH 因子指导神经元和神经胶质细胞命运特化和分化的强大能力已在细胞重编程这一相对较新的领域得到利用,其中多能干细胞或体干细胞被转化为神经谱系,通常采用基于转录因子的谱系转换策略,其中包括一个或多个 bHLH 基因。本文综述了这些概念。