精确荚膜梗死模型在食蟹猕猴中产生手部运动缺陷。

IF 1.8 4区 医学 Q3 MEDICINE, RESEARCH & EXPERIMENTAL Experimental Neurobiology Pub Date : 2021-10-31 DOI:10.5607/en21026
Hyung-Sun Kim, Jeong Ho Hwang, Su-Cheol Han, Goo-Hwa Kang, Ji-Young Park, Hyoung-Ihl Kim
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引用次数: 0

摘要

在脑回畸形的非人类灵长类动物(NHPs)中进行脑卒中研究是克服翻译障碍的关键一步,这种障碍限制了脑卒中新药物和康复策略的发展。白质脑卒中(WMS)与灰质脑卒中具有独特的病理生理机制,由于缺乏相关的动物模型,目前尚未得到很好的理解。为了在食蟹猕猴中创建精确的包膜梗死模型,我们首先使用电刺激来绘制手部运动图,然后对手部运动纤维(hMFs)进行病毒追踪。这使我们能够识别内囊后肢(PLIC)的立体定向靶标。神经追踪显示,由于与腿部运动纤维重叠,hMFs占据了PLIC的整个宽度。此外,hMFs呈倾斜形状分布,需要目标探针的冠状倾斜。我们使用光血栓性梗死损伤技术来精确破坏内胶囊内的hMFs。双点梗死损伤完全损害hMFs导致持续的手部运动和行走缺陷,而单点损伤则不会。目标的轻微偏差不能产生持续的运动缺陷。精确的立体定向靶向与运动纤维的全面参与是生产一个持续运动缺陷的包膜梗死模型的关键。总之,精确包膜梗死模型可以转化为NHP系统,以显示持续的运动缺陷,可能有助于研究脑卒中后恢复的机制,并为WMS开发新的治疗策略。
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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Precision Capsular Infarct Modeling to Produce Hand Motor Deficits in Cynomolgus Macaques.

Stroke research in non-human primates (NHPs) with gyrencephalic brains is a critical step in overcoming the translational barrier that limits the development of new pharmaceutical and rehabilitative strategies for stroke. White-matter stroke (WMS) has a unique pathophysiology from gray-matter stroke and is not well understood because of a lack of pertinent animal models. To create a precise capsular infarct model in the cynomolgus macaque, we first used electrical stimulation to map hand movements, followed by viral tracing of the hand motor fibers (hMFs). This enabled us to identify stereotactic targets in the posterior limb of the internal capsule (PLIC). Neural tracing showed that hMFs occupy the full width of the PLIC, owing to overlap with the motor fibers for the leg. Furthermore, the hMFs were distributed in an oblique shape, requiring coronal tilting of the target probe. We used the photothrombotic infarct lesioning technique to precisely destroy the hMFs within the internal capsule. Double-point infarct lesioning that fully compromised the hMFs resulted in persistent hand motor and walking deficits whereas single-point lesioning did not. Minor deviations in targeting failed to produce persistent motor deficits. Accurate stereotactic targeting with thorough involvement of motor fibers is critical for the production of a capsular infarct model with persistent motor deficits. In conclusion, the precision capsular infarct model can be translated to the NHP system to show persistent motor deficits and may be useful to investigate the mechanism of post-stroke recovery as well as to develop new therapeutic strategies for the WMS.

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来源期刊
Experimental Neurobiology
Experimental Neurobiology Neuroscience-Cellular and Molecular Neuroscience
CiteScore
4.30
自引率
4.20%
发文量
29
期刊介绍: Experimental Neurobiology is an international forum for interdisciplinary investigations of the nervous system. The journal aims to publish papers that present novel observations in all fields of neuroscience, encompassing cellular & molecular neuroscience, development/differentiation/plasticity, neurobiology of disease, systems/cognitive/behavioral neuroscience, drug development & industrial application, brain-machine interface, methodologies/tools, and clinical neuroscience. It should be of interest to a broad scientific audience working on the biochemical, molecular biological, cell biological, pharmacological, physiological, psychophysical, clinical, anatomical, cognitive, and biotechnological aspects of neuroscience. The journal publishes both original research articles and review articles. Experimental Neurobiology is an open access, peer-reviewed online journal. The journal is published jointly by The Korean Society for Brain and Neural Sciences & The Korean Society for Neurodegenerative Disease.
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