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真皮淋巴管不符合默里定律。

Dermal Lymphatic Capillaries Do Not Obey Murray's Law.

作者信息

Talkington Anne M, Davis Reema B, Datto Nicholas C, Goodwin Emma R, Miller Laura A, Caron Kathleen M

机构信息

Program in Bioinformatics and Computational Biology, University of North Carolina at Chapel Hill, Chapel Hill, NC, United States.

Department of Mathematics, University of North Carolina at Chapel Hill, Chapel Hill, NC, United States.

出版信息

Front Cardiovasc Med. 2022 Apr 12;9:840305. doi: 10.3389/fcvm.2022.840305. eCollection 2022.

Abstract

Lymphatic vessels serve as a major conduit for the transport of interstitial fluid, immune cells, lipids and drugs. Therefore, increased knowledge about their development and function is relevant to clinical issues ranging from chronic inflammation and edema, to cancer metastasis to targeted drug delivery. Murray's Law is a widely-applied branching rule upheld in diverse circulatory systems including leaf venation, sponge canals, and various human organs for optimal fluid transport. Considering the unique and diverse functions of lymphatic fluid transport, we specifically address the branching of developing lymphatic capillaries, and the flow of lymph through these vessels. Using an empirically-generated dataset from wild type and genetic lymphatic insufficiency mouse models we confirmed that branching blood capillaries consistently follow Murray's Law. However surprisingly, we found that the optimization law for lymphatic vessels follows a different pattern, namely a Murray's Law exponent of ~1.45. In this case, the daughter vessels are smaller relative to the parent than would be predicted by the hypothesized radius-cubed law for impermeable vessels. By implementing a computational fluid dynamics model, we further examined the extent to which the assumptions of Murray's Law were violated. We found that the flow profiles were predominantly parabolic and reasonably followed the assumptions of Murray's Law. These data suggest an alternate hypothesis for optimization of the branching structure of the lymphatic system, which may have bearing on the unique physiological functions of lymphatics compared to the blood vascular system. Thus, it may be the case that the lymphatic branching structure is optimized to enhance lymph mixing, particle exchange, or immune cell transport, which are particularly germane to the use of lymphatics as drug delivery routes.

摘要

淋巴管是组织液、免疫细胞、脂质和药物运输的主要通道。因此,深入了解淋巴管的发育和功能与一系列临床问题相关,从慢性炎症和水肿到癌症转移,再到靶向药物递送。默里定律是一条广泛应用的分支规则,适用于多种循环系统,包括叶脉、海绵管道以及各种人体器官,以实现最佳的液体运输。考虑到淋巴液运输的独特和多样功能,我们专门研究了发育中的淋巴管的分支以及淋巴在这些血管中的流动。利用来自野生型和遗传性淋巴功能不全小鼠模型的经验性数据集,我们证实分支血管始终遵循默里定律。然而,令人惊讶的是,我们发现淋巴管的优化规律遵循不同的模式,即默里定律指数约为1.45。在这种情况下,相对于母血管,子血管更小,这与假设的不可渗透血管的半径立方定律预测的情况不同。通过实施计算流体动力学模型,我们进一步研究了默里定律假设被违反的程度。我们发现流动剖面主要是抛物线形的,并且合理地遵循默里定律的假设。这些数据为淋巴管系统分支结构的优化提出了另一种假设,这可能与淋巴管相对于血管系统的独特生理功能有关。因此,情况可能是淋巴管分支结构经过优化以增强淋巴混合、颗粒交换或免疫细胞运输,这对于将淋巴管用作药物递送途径尤为重要。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/1d36/9039365/4729a8bfc2b3/fcvm-09-840305-g0001.jpg

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