Short- and long-range roles of UNC-6/Netrin in dorsal-ventral axon guidance in vivo in Caenorhabditis elegans.

IF 4 2区 生物学 Q1 GENETICS & HEREDITY PLoS Genetics Pub Date : 2025-01-17 eCollection Date: 2025-01-01 DOI:10.1371/journal.pgen.1011526
Kelsey M Hooper, Vedant D Jain, Celeste J Gormly, Brian J Sanderson, Erik A Lundquist
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Abstract

Recent studies in vertebrates and Caenorhabditis elegans have reshaped models of how the axon guidance cue UNC-6/Netrin functions in dorsal-ventral axon guidance, which was traditionally thought to form a ventral-to-dorsal concentration gradient that was actively sensed by growing axons. In the vertebrate spinal cord, floorplate Netrin1 was shown to be largely dispensable for ventral commissural growth. Rather, short range interactions with Netrin1 on the ventricular zone radial glial stem cells was shown to guide ventral commissural axon growth. In C. elegans, analysis of dorsally-migrating growth cones during outgrowth has shown that growth cone polarity of filopodial extension is separable from the extent of growth cone protrusion. Growth cones are first polarized by UNC-6/Netrin, and subsequent regulation of protrusion by UNC-6/Netrin is based on this earlier-established polarity (the Polarity/Protrusion model). In both cases, short-range or even haptotactic mechanisms are invoked: in vertebrate spinal cord, interactions of growth cones with radial glia expressing Netrin-1; and in C. elegans, a potential close-range interaction that polarizes the growth cone. To explore potential short-range and long-range functions of UNC-6/Netrin, a potentially membrane-anchored transmembrane UNC-6 (UNC-6(TM)) was generated by genome editing. unc-6(tm) was hypomorphic for dorsal VD/DD axon pathfinding, indicating that it retained some unc-6 function. Polarity of VD growth cone filopodial protrusion was initially established in unc-6(tm), but was lost as the growth cones migrated away from the unc-6(tm) source in the ventral nerve cord. In contrast, ventral guidance of the AVM and PVM axons was equally severe in unc-6(tm) and unc-6(null). Together, these results suggest that unc-6(tm) retains short-range functions but lacks long-range functions due to reduced secreted UNC-6. Ectopic unc-6(+) expression from non-ventral sources did not dramatically perturb dorsal VD growth cone polarity or axon outgrowth, suggesting that ectopic UNC-6 cannot redirect polarity once it is established in the VD/DD neurons. This is not what would be expected of a growth cone dynamically reading a gradient of UNC-6, but is consistent with the Polarity/protrusion model of growth cone guidance away from UNC-6/Netrin.

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UNC-6/Netrin在秀丽隐杆线虫体内背-腹轴突引导中的短期和长期作用
最近在脊椎动物和秀丽隐杆线虫中的研究重塑了轴突引导线索UNC-6/Netrin如何在背-腹侧轴突引导中起作用的模型,传统上认为轴突引导形成腹-背侧浓度梯度,并被生长的轴突主动感知。在脊椎动物脊髓中,底板Netrin1被证明在很大程度上对于腹侧联合生长是不可缺少的。相反,与Netrin1在心室区径向胶质干细胞上的短程相互作用被证明可以引导腹侧交联轴突生长。对秀丽隐杆线虫生长过程中生长锥的背向迁移分析表明,生长锥的丝状延伸的极性与生长锥的突出程度是可分离的。生长锥首先被UNC-6/Netrin极化,随后UNC-6/Netrin对突起的调节是基于这种早期建立的极性(极性/突起模型)。在这两种情况下,都调用了近程甚至触致机制:在脊椎动物脊髓中,生长锥与表达Netrin-1的径向胶质细胞的相互作用;在秀丽隐杆线虫中,一种潜在的近距离相互作用使生长锥极化。为了探索UNC-6/Netrin潜在的近程和远程功能,通过基因组编辑生成了一个潜在的膜锚定跨膜UNC-6(UNC-6(TM))。unc-6(tm)在背侧VD/DD轴突寻路中表现为亚形态,表明其保留了一些unc-6的功能。VD生长锥体丝状突起的极性最初在unc-6(tm)中建立,但随着生长锥体从腹侧神经索的unc-6(tm)源迁移而丢失。相比之下,unc-6(tm)和unc-6(null)对AVM和PVM轴突的腹侧引导同样严重。总之,这些结果表明unc-6(tm)保留了近程功能,但由于分泌的unc-6减少而缺乏远程功能。来自非腹侧来源的异位unc-6(+)表达不会显著扰乱VD神经元的背侧生长,这表明异位unc-6一旦在VD/DD神经元中建立,就不能改变极性。这不是生长锥动态读取UNC-6梯度所期望的,但与生长锥引导远离UNC-6/Netrin的极性/突出模型是一致的。
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PLoS Genetics
PLoS Genetics GENETICS & HEREDITY-
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期刊介绍: PLOS Genetics is run by an international Editorial Board, headed by the Editors-in-Chief, Greg Barsh (HudsonAlpha Institute of Biotechnology, and Stanford University School of Medicine) and Greg Copenhaver (The University of North Carolina at Chapel Hill). Articles published in PLOS Genetics are archived in PubMed Central and cited in PubMed.
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