淋巴肌泵送多尺度滑丝模型的机械反馈机制

IF 2.2 Q2 ENGINEERING, MULTIDISCIPLINARY
Peter Y. Xie , Christopher J. Morris , Christopher D. Bertram , Michael J. Davis , Samira Jamalian , Mohammad Jafarnejad , David C. Zawieja , James E. Moore Jr
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引用次数: 0

摘要

淋巴系统通过将组织液返回静脉系统来维持体液平衡。流动可以通过外部泵送(由于周围组织的力量)和内部泵送(涉及淋巴管壁肌肉收缩)的组合发生。淋巴运输不仅对体液平衡很重要,而且对免疫功能也很重要,因为淋巴是免疫细胞的载体。淋巴肌肉细胞既表现出心肌样的相性收缩以产生血流,也表现出平滑肌样的强直性收缩以调节血流。淋巴管对机械刺激很敏感,包括血流引起的剪切应力和压力引起的血管拉伸。这些力量调节生化途径,导致细胞内钙的变化,从而触发收缩蛋白。利用淋巴肌肉的多尺度计算模型与淋巴泵送的集总参数模型相耦合,我们开发并验证了调节淋巴泵送的亚细胞机制的反馈控制模型。在验证了模型再现了轴向或跨壁压差控制实验的结果之后,我们测试了模型与施加上游/下游压力斜坡或下游阻力突然增加的实验结果相匹配的能力。淋巴管间信号是重现下游压力斜坡实验所必需的,但除此之外,该模型预测了这些更复杂条件下的行为。更好地了解淋巴收缩的机制生物学有助于指导未来的淋巴管实验,为开发更好的淋巴功能障碍治疗方法提供基础。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Mechanical feedback mechanisms in a multiscale sliding filament model of lymphatic muscle pumping
The lymphatic system maintains bodily fluid balance by returning interstitial fluid to the venous system. Flow can occur through a combination of extrinsic pumping, due to forces from surrounding tissues, and intrinsic pumping involving contractions of muscle in the lymphatic vessel walls. Lymph transport is important not only for fluid homeostasis, but also for immune function, as lymph is a carrier for immune cells. Lymphatic muscle cells exhibit both cardiac-like phasic contractions to generate flow and smooth-muscle-like tonic contractions to regulate flow. Lymphatic vessels are sensitive to mechanical stimuli, including flow-induced shear stresses and pressure-induced vessel stretch. These forces modulate biochemical pathways, leading to changes in intracellular calcium that trigger contractile proteins. Employing a multiscale computational model of lymphatic muscle coupled to a lumped-parameter model of lymphatic pumping, we developed and validated a feedback control model of subcellular mechanisms that modulate lymphatic pumping. Following verification that the model reproduced results from axial or transmural pressure difference-controlled experiments, we tested the model's ability to match results from experiments imposing upstream/downstream pressure ramps or a sudden increase in downstream resistance. Inter-lymphangion signaling was necessary to reproduce downstream pressure ramp experiments, but otherwise the model predicted behaviors under these more complex conditions. A better understanding of the mechanobiology of lymphatic contractions can help guide future lymphatic vessel experiments, providing a basis for developing better treatments for lymphatic dysfunction.
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来源期刊
Applications in engineering science
Applications in engineering science Mechanical Engineering
CiteScore
3.60
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0.00%
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审稿时长
68 days
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