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Computational modelling of the piglet brain to simulate near-infrared spectroscopy and magnetic resonance spectroscopy data collected during oxygen deprivation

机译:仔猪大脑的计算模型以模拟在缺氧期间收集的近红外光谱和磁共振光谱数据

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摘要

We describe a computational model to simulate measurements from near-infrared spectroscopy (NIRS) and magnetic resonance spectroscopy (MRS) in the piglet brain. Piglets are often subjected to anoxic, hypoxic and ischaemic insults, as experimental models for human neonates. The model aims to help interpret measurements and increase understanding of physiological processes occurring during such insults. It is an extension of a previous model of circulation and mitochondrial metabolism. This was developed to predict NIRS measurements in the brains of healthy adults i.e. concentration changes of oxyhaemoglobin and deoxyhaemoglobin and redox state changes of cytochrome c oxidase (CCO). We altered and enhanced the model to apply to the anaesthetized piglet brain. It now includes metabolites measured by 31P-MRS, namely phosphocreatine, inorganic phosphate and adenosine triphosphate (ATP). It also includes simple descriptions of glycolysis, lactate dynamics and the tricarboxylic acid (TCA) cycle. The model is described, and its simulations compared with existing measurements from piglets during anoxia. The NIRS and MRS measurements are predicted well, although this requires a reduction in blood pressure autoregulation. Predictions of the cerebral metabolic rate of oxygen consumption (CMRO2) and lactate concentration, which were not measured, are given. Finally, the model is used to investigate hypotheses regarding changes in CCO redox state during anoxia.
机译:我们描述了一个计算模型,以模拟仔猪脑中近红外光谱(NIRS)和磁共振光谱(MRS)的测量结果。作为人类新生儿的实验模型,仔猪经常遭受缺氧,缺氧和缺血性损伤。该模型旨在帮助解释测量结果,并加深对此类侮辱过程中发生的生理过程的了解。它是先前的循环和线粒体代谢模型的扩展。开发该方法是为了预测健康成年人大脑中的NIRS测量,即氧合血红蛋白和脱氧血红蛋白的浓度变化以及细胞色素C氧化酶(CCO)的氧化还原状态变化。我们更改并增强了该模型以应用于麻醉的仔猪大脑。现在,它包括通过 31 P-MRS测量的代谢产物,即磷酸肌酸,无机磷酸盐和三磷酸腺苷(ATP)。它还包括糖酵解,乳酸动力学和三羧酸(TCA)循环的简单描述。描述了该模型,并将其模拟与缺氧期间仔猪的现有测量进行了比较。尽管需要降低血压的自动调节功能,但NIRS和MRS的测量结果预测良好。给出了未测量的大脑代谢耗氧量(CMRO2)和乳酸浓度的预测。最后,该模型用于研究关于缺氧期间CCO氧化还原状态变化的假设。

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