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钠、间质、淋巴管与高血压——液压学的故事。

Sodium, Interstitium, Lymphatics and Hypertension-A Tale of Hydraulics.

机构信息

School of Cardiovascular and Metabolic Health, University of Glasgow, United Kingdom (G.R., C.D.).

Emergency Medicine and Hypertension, Department of Medicine (DIMED), Università degli Studi di Padova, Italy (G.R., G.B.).

出版信息

Hypertension. 2024 Apr;81(4):727-737. doi: 10.1161/HYPERTENSIONAHA.123.17942. Epub 2024 Feb 22.

DOI:10.1161/HYPERTENSIONAHA.123.17942
PMID:38385255
原文链接:https://pmc.ncbi.nlm.nih.gov/articles/PMC10954399/
Abstract

Blood pressure is regulated by vascular resistance and intravascular volume. However, exchanges of electrolytes and water between intra and extracellular spaces and filtration of fluid and solutes in the capillary beds blur the separation between intravascular, interstitial and intracellular compartments. Contemporary paradigms of microvascular exchange posit filtration of fluids and solutes along the whole capillary bed and a prominent role of lymphatic vessels, rather than its venous end, for their reabsorption. In the last decade, these concepts have stimulated greater interest in and better understanding of the lymphatic system as one of the master regulators of interstitial volume homeostasis. Here, we describe the anatomy and function of the lymphatic system and focus on its plasticity in relation to the accumulation of interstitial sodium in hypertension. The pathophysiological relevance of the lymphatic system is exemplified in the kidneys, which are crucially involved in the control of blood pressure, but also hypertension-mediated cardiac damage. Preclinical modulation of the lymphatic reserve for tissue drainage has demonstrated promise, but has also generated conflicting results. A better understanding of the hydraulic element of hypertension and the role of lymphatics in maintaining fluid balance can open new approaches to prevent and treat hypertension and its consequences, such as heart failure.

摘要

血压由血管阻力和血管内体积调节。然而,细胞内外电解质和水的交换以及毛细血管床中液体和溶质的过滤使血管内、间质和细胞内隔室之间的分离变得模糊。微血管交换的当代范例假设液体和溶质沿着整个毛细血管床过滤,并且淋巴管在其静脉末端起着重要作用,以重新吸收它们。在过去的十年中,这些概念激发了人们对淋巴系统作为间质体积稳态主要调节者之一的更大兴趣和更好的理解。在这里,我们描述了淋巴系统的解剖结构和功能,并重点介绍了其与高血压间质钠积累相关的可塑性。淋巴系统的病理生理学相关性在肾脏中得到了例证,肾脏在控制血压方面至关重要,但也在高血压介导的心脏损伤中发挥作用。组织引流的淋巴储备的临床前调节已显示出希望,但也产生了相互矛盾的结果。对高血压水力元素和淋巴管在维持液体平衡中的作用的更好理解可以为预防和治疗高血压及其后果(如心力衰竭)开辟新途径。

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Sodium accumulation in the skin is associated with higher density of skin lymphatic vessels in patients with arterial hypertension.皮肤钠蓄积与动脉高血压患者皮肤淋巴管密度增加有关。
Adv Med Sci. 2023 Sep;68(2):276-289. doi: 10.1016/j.advms.2023.08.001. Epub 2023 Aug 26.
3
Lymphatic vessels and the renin-angiotensin-system.淋巴管与肾素-血管紧张素系统。
Am J Physiol Heart Circ Physiol. 2023 Oct 1;325(4):H837-H855. doi: 10.1152/ajpheart.00023.2023. Epub 2023 Aug 11.
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A kidney-brain neural circuit drives progressive kidney damage and heart failure.肾脏-大脑神经回路导致进行性肾脏损伤和心力衰竭。
Signal Transduct Target Ther. 2023 May 12;8(1):184. doi: 10.1038/s41392-023-01402-x.
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Hypertension in Primary Aldosteronism Is Initiated by Salt-Induced Increases in Vascular Resistance With Reductions in Cardiac Output.原发性醛固酮增多症中的高血压是由盐诱导的血管阻力增加和心输出量减少引起的。
Hypertension. 2023 May;80(5):1077-1091. doi: 10.1161/HYPERTENSIONAHA.123.20953. Epub 2023 Mar 7.
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