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双皮质素强化微管以促进生长锥在柔软环境中前进。

Doublecortin reinforces microtubules to promote growth cone advance in soft environments.

作者信息

Dema Alessandro, Charafeddine Rabab A, van Haren Jeffrey, Rahgozar Shima, Viola Giulia, Jacobs Kyle A, Kutys Matthew L, Wittmann Torsten

出版信息

bioRxiv. 2024 Feb 29:2024.02.28.582626. doi: 10.1101/2024.02.28.582626.

Abstract

Doublecortin (DCX) is a microtubule-associated protein critical for brain development. Although most highly expressed in the developing central nervous system, the molecular function of DCX in neuron morphogenesis remains unknown and controversial. We demonstrate that DCX function is intimately linked to its microtubule-binding activity. By using human induced pluripotent stem cell (hiPSC)- derived cortical i Neurons genome engineered to express mEmerald-tagged DCX from the endogenous locus, we find that DCX-MT interactions become highly polarized very early during neuron morphogenesis. DCX becomes enriched only on straight microtubules in advancing growth cones with approximately 120 DCX molecules bound per micrometer of growth cone microtubule. At a similar saturation, microtubule-bound DCX molecules begin to impede lysosome transport, and thus can potentially control growth cone organelle entry. In addition, by comparing control, DCX-mEmerald and knockout DCX -/Y i Neurons, we find that DCX stabilizes microtubules in the growth cone peripheral domain by reducing the microtubule catastrophe frequency and the depolymerization rate. DCX -/Y i Neuron morphogenesis was inhibited in soft microenvironments that mimic the viscoelasticity of brain tissue and DCX -/Y neurites failed to grow toward brain-derived neurotrophic factor (BDNF) gradients. Together with high resolution traction force microscopy data, we propose a model in which DCX-decorated, rigid growth cone microtubules provide intracellular mechanical resistance to actomyosin generated contractile forces in soft physiological environments in which weak and transient adhesion-mediated forces in the growth cone periphery may be insufficient for productive growth cone advance. These data provide a new mechanistic understanding of how DCX mutations cause lissencephaly-spectrum brain malformations by impacting growth cone dynamics during neuron morphogenesis in physiological environments.

摘要

双皮质素(DCX)是一种对大脑发育至关重要的微管相关蛋白。尽管在发育中的中枢神经系统中表达最为丰富,但DCX在神经元形态发生中的分子功能仍不清楚且存在争议。我们证明DCX的功能与其微管结合活性密切相关。通过使用人诱导多能干细胞(hiPSC)衍生的皮质神经元基因组工程,从内源性位点表达mEmerald标记的DCX,我们发现在神经元形态发生的早期,DCX与微管的相互作用就变得高度极化。DCX仅在前进生长锥中的直微管上富集,每微米生长锥微管上约有120个DCX分子结合。在相似的饱和度下,与微管结合的DCX分子开始阻碍溶酶体运输,因此可能控制生长锥细胞器的进入。此外,通过比较对照、DCX-mEmerald和敲除DCX -/Y神经元,我们发现DCX通过降低微管灾难频率和解聚速率来稳定生长锥外周区域的微管。在模拟脑组织粘弹性的软微环境中,DCX -/Y神经元的形态发生受到抑制,DCX -/Y神经突无法向脑源性神经营养因子(BDNF)梯度生长。结合高分辨率牵引力显微镜数据,我们提出了一个模型,其中DCX修饰的刚性生长锥微管在软生理环境中为肌动球蛋白产生的收缩力提供细胞内机械阻力,在这种环境中,生长锥周边微弱且短暂的粘附介导力可能不足以促进生长锥有效前进。这些数据为DCX突变如何通过影响生理环境中神经元形态发生期间的生长锥动力学导致无脑回谱系脑畸形提供了新的机制理解。

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