神经胶质细胞,而不是神经元,在体外对局部炎症微环境表现出可控的反应。

Frontiers in neuroengineering Pub Date : 2014-11-14 eCollection Date: 2014-01-01 DOI:10.3389/fneng.2014.00041
Salah Sommakia, Jenna L Rickus, Kevin J Otto
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引用次数: 16

摘要

设计持久的皮质内植入物的能力取决于了解导致神经元密度损失和胶质瘢痕形成的因素。在这项研究中,我们用脂多糖(LPS)修饰了一个常见的体外混合皮层培养模型,以检测小胶质细胞、星形胶质细胞和神经元对微丝段的反应。我们还使用浸涂聚乙二醇(PEG),我们之前已经证明它可以调节神经微电极的阻抗变化,以控制细胞反应。我们发现,正如预期的那样,小胶质细胞对长达150 μm的脂多糖涂层微丝的反应增强,并且这种增强的反应可以通过聚乙二醇与脂多糖共沉积来缓解。在这个体外模型中,星形胶质细胞表现出更复杂的、距离依赖的反应,而神经元似乎不受胶质反应的类型或大小的影响。我们的体外反应和体内反应之间的差异表明,使用系统方法来理解慢性体内环境中各种脑细胞类型的反应的重要性,以及研究非大脑原生细胞类型的作用的必要性。我们的结果进一步表明,在体内观察到的神经元密度的丧失并不是神经胶质激活升高的必然结果。
本文章由计算机程序翻译,如有差异,请以英文原文为准。

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Glial cells, but not neurons, exhibit a controllable response to a localized inflammatory microenvironment in vitro.

The ability to design long-lasting intracortical implants hinges on understanding the factors leading to the loss of neuronal density and the formation of the glial scar. In this study, we modify a common in vitro mixed cortical culture model using lipopolysaccharide (LPS) to examine the responses of microglia, astrocytes, and neurons to microwire segments. We also use dip-coated polyethylene glycol (PEG), which we have previously shown can modulate impedance changes to neural microelectrodes, to control the cellular responses. We find that microglia, as expected, exhibit an elevated response to LPS-coated microwire for distances of up to 150 μm, and that this elevated response can be mitigated by co-depositing PEG with LPS. Astrocytes exhibit a more complex, distance-dependent response, whereas neurons do not appear to be affected by the type or magnitude of glial response within this in vitro model. The discrepancy between our in vitro responses and typically observed in vivo responses suggest the importance of using a systems approach to understand the responses of the various brain cell types in a chronic in vivo setting, as well as the necessity of studying the roles of cell types not native to the brain. Our results further indicate that the loss of neuronal density observed in vivo is not a necessary consequence of elevated glial activation.

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