确定基于微灌注的脑实质取样过程中分析物恢复的空间分辨率

IF 4.1 3区 医学 Q2 BIOCHEMISTRY & MOLECULAR BIOLOGY ACS Chemical Neuroscience Pub Date : 2024-08-18 DOI:10.1021/acschemneuro.4c0041010.1021/acschemneuro.4c00410
Luke A Stangler, Su-Youne Chang, Inyong Kim, Jonghoon Choi, Abbas Z Kouzani, Kevin E. Bennet, Terry C Burns, Jamie J Van Gompel, Gregory A Worrell and Charles L Howe*, 
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引用次数: 0

摘要

大脑和血脑屏障的独特结构给测量来自实质组织的生物标志物带来了挑战,使人们无法充分了解短暂的神经致病过程。解决这一难题的方法之一是通过植入的微灌注探针直接采集脑间质的样本。为了了解大脑微灌注的空间限制,我们在动物模型中采用了计算流体动力学建模和荧光标记右旋糖酐的经验恢复。我们发现,在 6 小时的取样期内,右旋糖酐可通过微灌注成功恢复,尤其是在距离右旋糖酐注入点 2 毫米处植入探针,而在距离注射点 5 毫米处植入探针。实验回收率始终保持在模拟回收率的 1%左右,这表明该参数可用于设定微灌注液中所测蛋白质的最大组织浓度以及我们的多模态微灌注探针所采样的空间域的实际限制。
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Defining the Spatial Resolution of Analyte Recovery during Microperfusion-Based Sampling of Brain Parenchyma

The unique architecture of the brain and the blood-brain barrier imposes challenges for the measurement of parenchyma-derived biomarkers that prevent sufficient understanding of transient neuropathogenic processes. One solution to this challenge is direct sampling of brain interstitial fluid via implanted microperfusion probes. Seeking to understand spatial limitations to microperfusion in the brain, we employed computational fluid dynamics modeling and empirical recovery of fluorescently labeled dextrans in an animal model. We found that dextrans were successfully recovered via microperfusion over a 6 h sampling period, especially at probes implanted 2 mm from the dextran infusion point relative to probes implanted 5 mm from the injection site. Experimental recovery was consistently around 1% of simulated, suggesting that this parameter can be used to set practical limits on the maximal tissue concentration of proteins measured in microperfusates and on the spatial domain sampled by our multimodal microperfusion probe.

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来源期刊
ACS Chemical Neuroscience
ACS Chemical Neuroscience BIOCHEMISTRY & MOLECULAR BIOLOGY-CHEMISTRY, MEDICINAL
CiteScore
9.20
自引率
4.00%
发文量
323
审稿时长
1 months
期刊介绍: ACS Chemical Neuroscience publishes high-quality research articles and reviews that showcase chemical, quantitative biological, biophysical and bioengineering approaches to the understanding of the nervous system and to the development of new treatments for neurological disorders. Research in the journal focuses on aspects of chemical neurobiology and bio-neurochemistry such as the following: Neurotransmitters and receptors Neuropharmaceuticals and therapeutics Neural development—Plasticity, and degeneration Chemical, physical, and computational methods in neuroscience Neuronal diseases—basis, detection, and treatment Mechanism of aging, learning, memory and behavior Pain and sensory processing Neurotoxins Neuroscience-inspired bioengineering Development of methods in chemical neurobiology Neuroimaging agents and technologies Animal models for central nervous system diseases Behavioral research
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