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中文摘要
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肾脏在动脉压的长期控制中起主要作用[159-161]。因此,任何试图模拟高血压对心血管系统的原因和影响都需要考虑肾功能。本项目将开发两个相连的肾功能模型(图2.11)。生理模型将模拟血液流动、运输和上皮细胞代谢;在基因水平上,分子模型将模拟转录、信号和生化机制,特别是与单一肾元段,髓质厚升肢(mTAL)中的超氧化物相关。这两种模式将通过对髓质血流的调节相结合。将生理模型与途径特异性分子模型相结合的创新方法有望在几种大鼠模型中产生关于基因-疾病关系的新假设。
英文摘要
The kidney plays a primary role in the long term control of arterial pressure [159-161]. Thus any attempt at modeling the causes and effects of hypertension on cardiovascular system will require accounting for renal function. This project will develop two connected models (Figure 2.11) of renal function. A physiological model will simulate blood flow, transport, and epithelial cell metabolism; a gene-level, molecular model will simulate transcriptional, signaling, and biochemical mechanisms related specifically to superoxide in a single nephron segment, the medullary thick ascending limb (mTAL). The two models will be integrated through the regulation of medullary blood flow. The innovative approach of integrating physiological modeling with pathway-specific molecular modeling is expected to generate novel hypotheses regarding gene-disease relationships in several rat models.
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Systems and Integrative Biology Training Program
Disentangling the Mechanisms of Coronary Blood Flow Regulation through Multi-scale Modeling
Computational systems analysis of cardiac mechanical-energetic coupling in heart disease
Computational systems analysis of cardiac mechanical-energetic coupling in heart disease
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