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淋巴管节段协调性对淋巴管平均血流的影响极小。

Lymphangion coordination minimally affects mean flow in lymphatic vessels.

作者信息

Venugopal Arun M, Stewart Randolph H, Laine Glen A, Dongaonkar Ranjeet M, Quick Christopher M

机构信息

Michael E. DeBakey Institute, Texas A&M University, College Station, TX 77843-4466, USA.

出版信息

Am J Physiol Heart Circ Physiol. 2007 Aug;293(2):H1183-9. doi: 10.1152/ajpheart.01340.2006. Epub 2007 Apr 27.

Abstract

The lymphatic system returns interstitial fluid to the central venous circulation, in part, by the cyclical contraction of a series of "lymphangion pumps" in a lymphatic vessel. The dynamics of individual lymphangions have been well characterized in vitro; their frequencies and strengths of contraction are sensitive to both preload and afterload. However, lymphangion interaction within a lymphatic vessel has been poorly characterized because it is difficult to experimentally alter properties of individual lymphangions and because the afterload of one lymphangion is coupled to the preload of another. To determine the effects of lymphangion interaction on lymph flow, we adapted an existing mathematical model of a lymphangion (characterizing lymphangion contractility, lymph viscosity, and inertia) to create a new lymphatic vessel model consisting of several lymphangions in series. The lymphatic vessel model was validated with focused experiments on bovine mesenteric lymphatic vessels in vitro. The model was then used to predict changes in lymph flow with different time delays between onset of contraction of adjacent lymphangions (coordinated case) and with different relative lymphangion contraction frequencies (noncoordinated case). Coordination of contraction had little impact on mean flow. Furthermore, orthograde and retrograde propagations of contractile waves had similar effects on flow. Model results explain why neither retrograde propagation of contractile waves nor the lack of electrical continuity between lymphangions adversely impacts flow. Because lymphangion coordination minimally affects mean flow in lymphatic vessels, lymphangions have flexibility to independently adapt to local conditions.

摘要

淋巴系统通过淋巴管中一系列“淋巴管泵”的周期性收缩,将组织间液部分地回收到中心静脉循环。单个淋巴管节段的动力学特性已在体外得到充分表征;它们的收缩频率和强度对前负荷和后负荷都很敏感。然而,淋巴管内淋巴管节段间的相互作用却鲜有研究,因为很难通过实验改变单个淋巴管节段的特性,且一个淋巴管节段的后负荷与另一个的前负荷相互关联。为了确定淋巴管节段间相互作用对淋巴流动的影响,我们对现有的淋巴管节段数学模型(描述淋巴管节段的收缩性、淋巴粘度和惯性)进行了改进,创建了一个由多个串联淋巴管节段组成的新淋巴管模型。该淋巴管模型通过对体外牛肠系膜淋巴管进行的针对性实验得到验证。然后,该模型被用于预测相邻淋巴管节段收缩起始之间不同时间延迟(协调情况)以及不同相对淋巴管节段收缩频率(非协调情况)时淋巴流动的变化。收缩的协调性对平均流量影响很小。此外,收缩波的顺行和逆行传播对流量的影响相似。模型结果解释了为什么收缩波的逆行传播以及淋巴管节段之间缺乏电连续性都不会对流量产生不利影响。由于淋巴管节段的协调性对淋巴管内的平均流量影响最小,淋巴管节段能够灵活地独立适应局部条件。

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