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Daam2 通过 Rac1 和凝溶胶蛋白调节髓鞘结构和少突胶质细胞肌动蛋白细胞骨架。

Daam2 Regulates Myelin Structure and the Oligodendrocyte Actin Cytoskeleton through Rac1 and Gelsolin.

机构信息

Integrative Program in Molecular and Biomedical Sciences, Baylor College of Medicine, Houston, Texas 77030.

Jan and Dan Duncan Neurological Research Institute, Texas Children's Hospital, Houston, Texas 77030.

出版信息

J Neurosci. 2022 Mar 2;42(9):1679-1691. doi: 10.1523/JNEUROSCI.1517-21.2022. Epub 2022 Jan 31.

Abstract

Myelin is essential to neuronal health and CNS function, and oligodendrocytes (OLs) undergo a complex process of cytoskeletal remodeling to form compact myelin sheaths. We previously discovered that a formin protein, Dishevelled associated activator of morphogenesis 2 (Daam2), suppresses OL differentiation through Wnt signaling; however, its role in cytoskeletal control remains unknown. To investigate this, we used OL-specific Daam2 conditional knockout (Daam2 cKO) mice of either sex and found myelin decompaction during an active period of myelination in postnatal development and motor coordination deficits in adulthood. Using primary OL cultures, we found Daam2-depleted OLs showed morphologic dysregulation during differentiation, suggesting that Daam2 regulates the OL cytoskeleton. screening identified the actin regulators Rac1 and Gelsolin as possible effectors in Daam2-deficient OL cytoskeletal regulation. Using gain-of-function and loss-of-function (LOF) experiments in primary OLs, we found that Rac1 and Gelsolin operate downstream of Daam2 in OL differentiation, with Gelsolin and Daam2 promoting and inhibiting membrane spreading during late differentiation, respectively. experiments using Daam2 cKO mice revealed increased protein levels of Gelsolin in the developing white matter with no change in RNA levels, suggesting that Daam2 acts in a posttranslational manner to suppress Gelsolin levels. biochemical studies show Daam2 induces Gelsolin ubiquitination and degradation in OLs. Together, our studies show Daam2 is essential for formation of functional myelin through modulation of Gelsolin levels to regulate the OL cytoskeleton. These findings further demonstrate the critical role of cytoskeletal dynamics in myelination and reveal novel avenues for treatment of a variety of white matter diseases. Proper myelin formation is essential to CNS function, and oligodendrocytes (OLs) require extensive changes in the actin cytoskeleton to form myelin sheaths. Here, we show that the formin protein Dishevelled associated activator of morphogenesis 2 (Daam2) is necessary for myelin compaction during development and motor learning in adulthood. Further, we demonstrate that Daam2 regulates OL differentiation and morphology through actin regulators Rac1 and Gelsolin. Lastly, we find that Daam2 may control myelin compaction by modulating the ubiquitination and degradation of Gelsolin through recruitment of the E3 ubiquitin ligase Nedd4. These findings reveal novel pathways for regulating myelin structure and function during white matter development.

摘要

髓鞘对于神经元的健康和中枢神经系统的功能至关重要,少突胶质细胞(OL)经历复杂的细胞骨架重塑过程以形成紧密的髓鞘。我们之前发现,一种formin 蛋白,Dishevelled 相关形态发生激活因子 2(Daam2),通过 Wnt 信号抑制 OL 分化;然而,其在细胞骨架控制中的作用尚不清楚。为了研究这一点,我们使用了雄性和雌性 OL 特异性 Daam2 条件性敲除(Daam2 cKO)小鼠,并发现髓鞘在出生后发育过程中的活跃髓鞘形成期间松解,以及成年期运动协调缺陷。使用原代 OL 培养物,我们发现 Daam2 耗尽的 OL 在分化过程中表现出形态失调,表明 Daam2 调节 OL 细胞骨架。筛选鉴定出肌动蛋白调节剂 Rac1 和 Gelsolin 作为 Daam2 缺陷 OL 细胞骨架调节的可能效应物。使用原代 OL 的功能获得和功能丧失(LOF)实验,我们发现 Rac1 和 Gelsolin 在 OL 分化中位于 Daam2 下游,其中 Gelsolin 和 Daam2 分别在晚期分化过程中促进和抑制膜铺展。使用 Daam2 cKO 小鼠的实验揭示了发育中的白质中 Gelsolin 的蛋白水平增加,而 RNA 水平没有变化,表明 Daam2 以翻译后方式发挥作用以抑制 Gelsolin 水平。生化研究表明 Daam2 在 OL 中诱导 Gelsolin 的泛素化和降解。总之,我们的研究表明 Daam2 通过调节 Gelsolin 水平对于形成功能性髓鞘是必不可少的,从而调节 OL 细胞骨架。这些发现进一步证明了细胞骨架动力学在髓鞘形成中的关键作用,并揭示了治疗各种白质疾病的新途径。适当的髓鞘形成对于中枢神经系统功能至关重要,少突胶质细胞(OL)需要细胞骨架的广泛变化才能形成髓鞘。在这里,我们表明formin 蛋白 Dishevelled 相关形态发生激活因子 2(Daam2)在发育过程中的髓鞘压缩和成年期运动学习中是必需的。此外,我们证明 Daam2 通过肌动蛋白调节剂 Rac1 和 Gelsolin 调节 OL 分化和形态。最后,我们发现 Daam2 可以通过募集 E3 泛素连接酶 Nedd4 来调节 Gelsolin 的泛素化和降解,从而控制髓鞘的压缩。这些发现揭示了调节白质发育过程中髓鞘结构和功能的新途径。

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