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正常血糖和高血糖大鼠大脑中动脉闭塞期间组织能量状态的局灶性和灶周变化

Focal and perifocal changes in tissue energy state during middle cerebral artery occlusion in normo- and hyperglycemic rats.

作者信息

Folbergrová J, Memezawa H, Smith M L, Siesjö B K

机构信息

Institute of Physiology, Czechoslovak Academy of Sciences, Prague.

出版信息

J Cereb Blood Flow Metab. 1992 Jan;12(1):25-33. doi: 10.1038/jcbfm.1992.4.

DOI:10.1038/jcbfm.1992.4
PMID:1727140
Abstract

The objective of the present study was to assess changes in cellular energy metabolism in focal and perifocal areas of a stroke lesion and to explore how these changes are modulated by preischemic hyperglycemia. A model for reversible occlusion of the middle cerebral artery (MCA) in rats was used to study changes in energy metabolism. Following MCA occlusion for 5, 15, or 30 min in normoglycemic rats, the tissue was frozen in situ, and samples from the lateral caudoputamen and from two neocortical areas were collected for metabolite analyses, together with a control sample from the contralateral, nonischemic hemisphere. Two other groups, subjected to 30 min of MCA occlusion, were made hyperglycemic by acute glucose infusion or by prior injection of streptozotocin. Enzymatic techniques were used for measurements of phosphocreatine, creatine, ATP, ADP, AMP, glycogen, glucose, pyruvate, and lactate. The neocortex of the contralateral, nonischemic hemisphere had labile metabolites that were similar to those measured in control animals. Ipsilateral neocortex bordering the focus, and thus constituting the "penumbra," showed mild to moderate ischemic changes. In the "focus" (lateral caudoputamen plus the overlying neocortex), deterioration of energy state was rapid and relatively extensive (ATP content 20-40% of control). After 5 min of occlusion, no further deterioration of metabolic parameters was observed. Substrate levels were markedly reduced, and lactate content rose to approximately 10 mM kg-1.(ABSTRACT TRUNCATED AT 250 WORDS)

摘要

本研究的目的是评估中风病灶局灶区和灶周区域细胞能量代谢的变化,并探讨这些变化如何受到缺血前高血糖的调节。采用大鼠大脑中动脉(MCA)可逆性闭塞模型来研究能量代谢的变化。在血糖正常的大鼠中,MCA闭塞5、15或30分钟后,将组织原位冷冻,并从尾壳核外侧和两个新皮质区域采集样本用于代谢物分析,同时从对侧非缺血半球采集对照样本。另外两组大鼠在MCA闭塞30分钟后,通过急性输注葡萄糖或预先注射链脲佐菌素使其血糖升高。采用酶促技术测量磷酸肌酸、肌酸、ATP、ADP、AMP、糖原、葡萄糖、丙酮酸和乳酸。对侧非缺血半球的新皮质具有与对照动物中测量的代谢物相似的不稳定代谢物。与病灶相邻的同侧新皮质,即构成“半暗带”,显示出轻度至中度的缺血变化。在“病灶”(尾壳核外侧加覆盖的新皮质)中,能量状态迅速且相对广泛地恶化(ATP含量为对照的20 - 40%)。闭塞5分钟后,未观察到代谢参数的进一步恶化。底物水平显著降低,乳酸含量升至约10 mM kg-1。(摘要截短至250字)

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