Slit-Robo signaling supports motor neuron avoidance of the spinal cord midline through DCC antagonism and other mechanisms.

IF 4.6 2区 生物学 Q2 CELL BIOLOGY
Frontiers in Cell and Developmental Biology Pub Date : 2025-04-10 eCollection Date: 2025-01-01 DOI:10.3389/fcell.2025.1563403
Kelsey R Nickerson, Ferass M Sammoura, Yonghong Zhou, Alexander Jaworski
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Abstract

Axon pathfinding and neuronal migration are orchestrated by attractive and repulsive guidance cues. In the mouse spinal cord, repulsion from Slit proteins through Robo family receptors and attraction to Netrin-1, mediated by the receptor DCC, control many aspects of neural circuit formation. This includes motor neuron wiring, where Robos help prevent both motor neuron cell bodies and axons from aberrantly crossing the spinal cord midline. These functions had been ascribed to Robo signaling being required to counter DCC-mediated attraction to Netrin-1 at the midline, either by mediating repulsion from midline-derived Slits or by silencing DCC signaling. However, the role of DCC in promoting motor neuron and axon midline crossing had not been directly tested. Here, we used in vivo mouse genetics and in vitro axon turning assays to further explore the interplay between Slit and Netrin signaling in motor neuron migration and axon guidance relative to the midline. We find that DCC is a major driver of midline crossing by motor axons, but not motor neuron cell bodies, when Robo1 and Robo2 are knocked out. Further, in vitro results indicate that Netrin-1 attracts motor axons and that Slits can modulate the chemotropic response to Netrin-1, converting it from attraction to repulsion. Our findings indicate that Robo signaling allows both motor neuron cell bodies and axons to avoid the midline, but that only motor axons require this pathway to antagonize DCC-dependent midline attraction, which likely involves a combination of mediating Slit repulsion and directly influencing Netrin-DCC signaling output.

Slit-Robo信号通过DCC拮抗和其他机制支持运动神经元对脊髓中线的回避。
轴突寻径和神经元迁移是由吸引和排斥的引导信号精心安排的。在小鼠脊髓中,通过Robo家族受体对Slit蛋白的排斥和由受体DCC介导的对Netrin-1的吸引控制着神经回路形成的许多方面。这包括运动神经元的连接,机器人可以帮助防止运动神经元细胞体和轴突异常地穿过脊髓中线。这些功能被归因于Robo信号需要对抗DCC介导的中线对Netrin-1的吸引力,通过介导中线产生的狭缝的排斥或通过沉默DCC信号。然而,DCC在促进运动神经元与轴突中线交叉中的作用尚未得到直接验证。在这里,我们使用小鼠体内遗传学和体外轴突转向实验来进一步探索运动神经元迁移和轴突相对中线引导的Slit和Netrin信号之间的相互作用。我们发现,当Robo1和Robo2被敲除时,DCC是运动轴突穿过中线的主要驱动因素,而不是运动神经元细胞体。此外,体外实验结果表明,Netrin-1可以吸引运动轴突,而狭缝可以调节对Netrin-1的趋化反应,将其从吸引转化为排斥。我们的研究结果表明,Robo信号允许运动神经元细胞体和轴突避开中线,但只有运动轴突需要这一途径来对抗dcc依赖的中线吸引,这可能涉及介导Slit排斥和直接影响Netrin-DCC信号输出的组合。
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来源期刊
Frontiers in Cell and Developmental Biology
Frontiers in Cell and Developmental Biology Biochemistry, Genetics and Molecular Biology-Cell Biology
CiteScore
9.70
自引率
3.60%
发文量
2531
审稿时长
12 weeks
期刊介绍: Frontiers in Cell and Developmental Biology is a broad-scope, interdisciplinary open-access journal, focusing on the fundamental processes of life, led by Prof Amanda Fisher and supported by a geographically diverse, high-quality editorial board. The journal welcomes submissions on a wide spectrum of cell and developmental biology, covering intracellular and extracellular dynamics, with sections focusing on signaling, adhesion, migration, cell death and survival and membrane trafficking. Additionally, the journal offers sections dedicated to the cutting edge of fundamental and translational research in molecular medicine and stem cell biology. With a collaborative, rigorous and transparent peer-review, the journal produces the highest scientific quality in both fundamental and applied research, and advanced article level metrics measure the real-time impact and influence of each publication.
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