Literature DB >> 20200043

Microvascular fluid exchange and the revised Starling principle.

J Rodney Levick1, C Charles Michel.   

Abstract

Microvascular fluid exchange (flow J(v)) underlies plasma/interstitial fluid (ISF) balance and oedematous swelling. The traditional form of Starling's principle has to be modified in light of insights into the role of ISF pressures and the recognition of the glycocalyx as the semipermeable layer of endothelium. Sum-of-forces evidence and direct observations show that microvascular absorption is transient in most tissues; slight filtration prevails in the steady state, even in venules. This is due in part to the inverse relation between filtration rate and ISF plasma protein concentration; ISF colloid osmotic pressure (COP) rises as J(v) falls. In some specialized regions (e.g. kidney, intestinal mucosa), fluid absorption is sustained by local epithelial secretions, which flush interstitial plasma proteins into the lymphatic system. The low rate of filtration and lymph formation in most tissues can be explained by standing plasma protein gradients within the intercellular cleft of continuous capillaries (glycocalyx model) and around fenestrations. Narrow breaks in the junctional strands of the cleft create high local outward fluid velocities, which cause a disequilibrium between the subglycocalyx space COP and ISF COP. Recent experiments confirm that the effect of ISF COP on J(v) is much less than predicted by the conventional Starling principle, in agreement with modern models. Using a two-pore system model, we also explore how relatively small increases in large pore numbers dramatically increase J(v) during acute inflammation.

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Year:  2010        PMID: 20200043     DOI: 10.1093/cvr/cvq062

Source DB:  PubMed          Journal:  Cardiovasc Res        ISSN: 0008-6363            Impact factor:   10.787


  199 in total

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Review 4.  Endothelial glycocalyx: permeability barrier and mechanosensor.

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5.  Sphingosine-1-phosphate protects endothelial glycocalyx by inhibiting syndecan-1 shedding.

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7.  Minimally invasive method for determining the effective lymphatic pumping pressure in rats using near-infrared imaging.

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8.  The effect of interstitial pressure on tumor growth: coupling with the blood and lymphatic vascular systems.

Authors:  Min Wu; Hermann B Frieboes; Steven R McDougall; Mark A J Chaplain; Vittorio Cristini; John Lowengrub
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9.  Ex vivo lymphatic perfusion system for independently controlling pressure gradient and transmural pressure in isolated vessels.

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Review 10.  Update on the theory and management of orthostatic intolerance and related syndromes in adolescents and children.

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