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A model of the oscillatory mechanical forces in the conventional outflow pathway

机译:传统流出路径中振荡机械力的模型

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Intraocular pressure is regulated by mechanosensitive cells within the conventional outflow pathway, the primary route of aqueous humour drainage from the eye. However, the characteristics of the forces acting on those cells are poorly understood. We develop a model that describes flow through the conventional outflow pathway, including the trabecular meshwork (TM) and Schlemm's canal (SC). Accounting for the ocular pulse, we estimate the time-varying shear stress on SC endothelium and strain on the TM. We consider a range of outflow resistances spanning normotensive to hypertensive conditions. Over this range, the SC shear stress increases significantly and becomes highly oscillatory. TM strain also increases, but with negligible oscillations. Interestingly, TM strain responds more to changes in outflow resistance around physiological values, while SC shear stress responds more to elevated levels of resistance. A modest increase in TM stiffness, as observed in glaucoma, suppresses TM strain and practically eliminates the influence of outflow resistance on SC shear stress. As SC and TM cells respond to mechanical stimulation by secreting factors that modulate outflow resistance, our model provides insight regarding the potential role of SC shear and TM strain as mechanosensory cues for homeostatic regulation of outflow resistance and hence intraocular pressure.
机译:在常规流出途径内的机械敏感细胞调节眼内压,从眼睛中的幽默排水的主要途径。然而,作用于那些细胞的力的特征很差。我们开发一种描述流过传统流出路径的模型,包括小梁网格(TM)和Schlemm的运河(SC)。考虑眼脉冲,我们估计了在TM上的SC内皮和菌株的时变剪应力。我们考虑一系列跨越高血压条件的流出电阻。在此范围内,SC剪切应力显着增加并且变得高度振荡。 TM应变也增加,但振荡可忽略不计。有趣的是,TM菌株在生理值周围的流出电阻变化时,SC剪切应力响应更多且耐受升高的电阻。在青光眼中观察到的TM刚度的适度增加抑制了TM菌株,并且实际上消除了流出电阻对SC剪切应力的影响。由于SC和TM细胞通过分泌因子来响应机械刺激,通过调节流出阻力,我们的模型提供了关于SC剪切和TM菌株作为机械感的潜在作用的潜在作用,用于稳压的流出抗性的稳态调节,因此的眼内压力。

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