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Biomedical Technologies for in vitro Screening and Controlled Delivery of Neuroactive Compounds

机译:用于生物活性化合物的体外筛选和控制递送的生物医学技术

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摘要

Cell culture models can provide information pertaining to the effective dose, toxiciology, and kinetics, for a variety of neuroactive compounds. However, many in vitro models fail to adequately predict how such compounds will perform in a living organism. At the systems level, interactions between organs can dramatically affect the properties of a compound by alteration of its biological activity or by elimination of it from the body. At the tissue level, interaction between cell types can alter the transport properties of a particular compound, or can buffer its effects on target cells by uptake, processing, or changes in chemical signaling between cells. In any given tissue, cells exist in a three-dimensional environment bounded on all sides by other cells and components of the extracellular matrix, providing kinetics that are dramatically different from the kinetics in traditional two-dimensional cell culture systems. Cell culture analogs are currently being developed to better model the complex transport and processing that occur prior to drug uptake in the CNS, and to predict blood-brain barrier permeability. These approaches utilize microfluidics, hydrogel matrices, and a variety of cell types (including lung epithelial cells, hepatocytes, adipocytes, glial cells, and neurons) to more accurately model drug transport and biological activity. Similar strategies are also being used to control both the spatial and temporal release of therapeutic compounds for targeted treatment of CNS disease.
机译:细胞培养模型可以提供与各种神经活性化合物的有效剂量,毒理学和动力学有关的信息。但是,许多体外模型无法充分预测此类化合物在活生物体中的表现。在系统水平上,器官之间的相互作用可以通过改变化合物的生物活性或从体内消除它来显着影响化合物的性质。在组织层面,细胞类型之间的相互作用可以改变特定化合物的转运特性,或者可以通过摄取,加工或细胞间化学信号的变化来缓冲其对靶细胞的作用。在任何给定的组织中,细胞都存在于一个三维环境中,该环境在所有侧面上都受到其他细胞和细胞外基质成分的限制,所提供的动力学与传统二维细胞培养系统的动力学截然不同。目前正在开发细胞培养类似物,以更好地模拟在CNS吸收药物之前发生的复杂运输和加工过程,并预测血脑屏障通透性。这些方法利用微流体,水凝胶基质和多种细胞类型(包括肺上皮细胞,肝细胞,脂肪细胞,神经胶质细胞和神经元)来更准确地模拟药物转运和生物活性。类似的策略也被用于控制用于靶向治疗CNS疾病的治疗化合物的空间和时间释放。

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