首页> 美国卫生研究院文献>Journal of Cerebral Blood Flow Metabolism >Differential Tiam1/Rac1 activation in hippocampal and cortical neurons mediates differential spine shrinkage in response to oxygen/glucose deprivation
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Differential Tiam1/Rac1 activation in hippocampal and cortical neurons mediates differential spine shrinkage in response to oxygen/glucose deprivation

机译:海马和皮层神经元中差异性Tiam1 / Rac1激活介导了对氧气/葡萄糖剥夺的差异性脊柱收缩

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摘要

Distinct neuronal populations show differential sensitivity to global ischemia, with hippocampal CA1 neurons showing greater vulnerability compared to cortical neurons. The mechanisms that underlie differential vulnerability are unclear, and we hypothesize that intrinsic differences in neuronal cell biology are involved. Dendritic spine morphology changes in response to ischemic insults in vivo, but cell type-specific differences and the molecular mechanisms leading to such morphologic changes are unexplored. To directly compare changes in spine size in response to oxygen/glucose deprivation (OGD) in cortical and hippocampal neurons, we used separate and equivalent cultures of each cell type. We show that cortical neurons exhibit significantly greater spine shrinkage compared to hippocampal neurons. Rac1 is a Rho-family GTPase that regulates the actin cytoskeleton and is involved in spine dynamics. We show that Rac1 and the Rac guanine nucleotide exchange factor (GEF) Tiam1 are differentially activated by OGD in hippocampal and cortical neurons. Hippocampal neurons express more Tiam1 than cortical neurons, and reducing Tiam1 expression in hippocampal neurons by shRNA enhances OGD-induced spine shrinkage. Tiam1 knockdown also reduces hippocampal neuronal vulnerability to OGD. This work defines fundamental differences in signalling pathways that regulate spine morphology in distinct neuronal populations that may have a role in the differential vulnerability to ischemia.
机译:不同的神经元群体显示出对整体缺血的敏感性不同,与皮质神经元相比,海马CA1神经元显示出更大的脆弱性。造成差异性脆弱性的机制尚不清楚,我们假设涉及神经元细胞生物学的内在差异。树突棘的形态在体内响应于缺血性损伤而改变,但是尚未探索细胞类型特异性差异和导致这种形态改变的分子机制。为了直接比较皮质和海马神经元中因氧/葡萄糖剥夺(OGD)而引起的脊柱大小变化,我们使用了每种细胞类型的单独且等效的培养物。我们显示,与海马神经元相比,皮质神经元表现出明显更大的脊柱收缩。 Rac1是Rho家族GTPase,它调节肌动蛋白的细胞骨架,并参与脊柱动力学。我们显示Rac1和Rac鸟嘌呤核苷酸交换因子(GEF)Tiam1被海马和皮层神经元中的OGD差异激活。海马神经元比皮质神经元表达更多的Tiam1,shRNA减少海马神经元中Tiam1的表达可增强OGD诱导的脊柱收缩。 Tiam1组合还可降低海马神经元对OGD的脆弱性。这项工作定义了在不同神经元群体中调节脊柱形态的信号传导途径的基本差异,这些差异可能对缺血的脆弱性有影响。

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