School of Life Sciences, Gwangju Institute of Science and Technology, Oryong-dong, Buk-gu, Gwangju, Republic of Korea.
Fermentation Regulation Technology Research Group, World Institute of Kimchi, Gwangju, Republic of Korea.
Elife. 2023 Oct 23;12:e84596. doi: 10.7554/eLife.84596.
The fidelity of motor control requires the precise positional arrangement of motor pools and the establishment of synaptic connections between them. During neural development in the spinal cord, motor nerves project to specific target muscles and receive proprioceptive input from these muscles via the sensorimotor circuit. LIM-homeodomain transcription factors are known to play a crucial role in successively restricting specific motor neuronal fates. However, their exact contribution to limb-based motor pools and locomotor circuits has not been fully understood. To address this, we conducted an investigation into the role of Isl2, a LIM-homeodomain transcription factor, in motor pool organization. We found that deletion of led to the dispersion of motor pools, primarily affecting the median motor column (MMC) and lateral motor column (LMC) populations. Additionally, hindlimb motor pools lacked Etv4 expression, and we observed reduced terminal axon branching and disorganized neuromuscular junctions in -deficient mice. Furthermore, we performed transcriptomic analysis on the spinal cords of deficient mice and identified a variety of downregulated genes associated with motor neuron (MN) differentiation, axon development, and synapse organization in hindlimb motor pools. As a consequence of these disruptions, sensorimotor connectivity and hindlimb locomotion were impaired in deficient mice. Taken together, our findings highlight the critical role of in organizing motor pool position and sensorimotor circuits in hindlimb motor pools. This research provides valuable insights into the molecular mechanisms governing motor control and its potential implications for understanding motor-related disorders in humans.
运动控制的精确性需要运动神经元池的精确位置排列和它们之间突触连接的建立。在脊髓的神经发育过程中,运动神经投射到特定的靶肌肉,并通过感觉运动回路从这些肌肉接收本体感受输入。LIM 同源结构域转录因子在依次限制特定运动神经元命运方面发挥着至关重要的作用。然而,它们对基于肢体的运动神经元池和运动回路的确切贡献尚未完全理解。为了解决这个问题,我们研究了 LIM 同源结构域转录因子 Isl2 在运动神经元池组织中的作用。我们发现缺失导致运动神经元池的分散,主要影响中间运动柱(MMC)和外侧运动柱(LMC)群体。此外,后肢运动神经元池缺乏 Etv4 表达,我们观察到 - 缺陷小鼠的终末轴突分支减少和神经肌肉接头紊乱。此外,我们对 - 缺陷小鼠的脊髓进行了转录组分析,鉴定出与后肢运动神经元池中的运动神经元(MN)分化、轴突发育和突触组织相关的多种下调基因。由于这些破坏, - 缺陷小鼠的感觉运动连接和后肢运动受到损害。总之,我们的研究结果强调了在组织运动神经元池位置和后肢运动神经元池感觉运动回路方面,Isl2 发挥着关键作用。这项研究为理解运动控制的分子机制及其对人类运动相关障碍的潜在影响提供了有价值的见解。