Literature DB >> 24231961

Confocal image-based computational modeling of nitric oxide transport in a rat mesenteric lymphatic vessel.

John T Wilson, Wei Wang, Augustus H Hellerstedt, David C Zawieja, James E Moore.   

Abstract

The lymphatic system plays important roles in protein and solute transport as well as in the immune system. Its functionality is vital to proper homeostasis and fluid balance. Lymph may be propelled by intrinsic (active) vessel pumping or passive compression from external tissue movement. With regard to the former, nitric oxide (NO) is known to play an important role modulating lymphatic vessel contraction and vasodilation. Lymphatic endothelial cells (LECs) are sensitive to shear, and increases in flow have been shown to cause enhanced production of NO by LECs. Additionally, high concentrations of NO have been experimentally observed in the sinus region of mesenteric lymphatic vessels. A computational flow and mass transfer model using physiologic geometries obtained from confocal images of a rat mesenteric lymphatic vessel was developed to determine the characteristics of NO transport in the lymphatic flow regime. Both steady and unsteady analyses were performed. Production of NO was shear-dependent; basal cases using constant production were also generated. Simulations revealed areas of flow stagnation adjacent to the valve leaflets, suggesting the high concentrations observed here experimentally are due to minimal convection in this region. LEC sensitivity to shear was found to alter the concentration of NO in the vessel, and the convective forces were found to profoundly affect the concentration of NO at a Péclet value greater than approximately 61. The quasisteady analysis was able to resolve wall shear stress within 0.15% of the unsteady case. However, the percent difference between unsteady and quasisteady conditions was higher for NO concentration (6.7%). We have shown high NO concentrations adjacent to the valve leaflets are most likely due to flow-mediated processes rather than differential production by shear-sensitive LECs. Additionally, this model supports experimental findings of shear-dependent production, since removing shear dependence resulted in concentrations that are physiologically counterintuitive. Understanding the transport mechanisms and flow regimes in the lymphatic vasculature could help in the development of therapeutics to treat lymphatic disorders.

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Year:  2013        PMID: 24231961      PMCID: PMC3707814          DOI: 10.1115/1.4023986

Source DB:  PubMed          Journal:  J Biomech Eng        ISSN: 0148-0731            Impact factor:   2.097


  16 in total

1.  Simulation of a chain of collapsible contracting lymphangions with progressive valve closure.

Authors:  C D Bertram; C Macaskill; J E Moore
Journal:  J Biomech Eng       Date:  2011-01       Impact factor: 2.097

2.  A computer model of the lymphatic system.

Authors:  N P Reddy; T A Krouskop; P H Newell
Journal:  Comput Biol Med       Date:  1977-07       Impact factor: 4.589

3.  Endothelial nitric oxide production and transport in flow chambers: The importance of convection.

Authors:  A M Plata; S J Sherwin; R Krams
Journal:  Ann Biomed Eng       Date:  2010-09       Impact factor: 3.934

4.  Fluid wall shear stress measurements in a model of the human abdominal aorta: oscillatory behavior and relationship to atherosclerosis.

Authors:  J E Moore; C Xu; S Glagov; C K Zarins; D N Ku
Journal:  Atherosclerosis       Date:  1994-10       Impact factor: 5.162

5.  Diffusion of nitric oxide in the aorta wall monitored in situ by porphyrinic microsensors.

Authors:  T Malinski; Z Taha; S Grunfeld; S Patton; M Kapturczak; P Tomboulian
Journal:  Biochem Biophys Res Commun       Date:  1993-06-30       Impact factor: 3.575

6.  A model of a radially expanding and contracting lymphangion.

Authors:  Elaheh Rahbar; James E Moore
Journal:  J Biomech       Date:  2011-03-04       Impact factor: 2.712

7.  Phasic contractions of rat mesenteric lymphatics increase basal and phasic nitric oxide generation in vivo.

Authors:  H Glenn Bohlen; Wei Wang; Anatoliy Gashev; Olga Gasheva; Dave Zawieja
Journal:  Am J Physiol Heart Circ Physiol       Date:  2009-08-07       Impact factor: 4.733

8.  Nitric oxide formation by lymphatic bulb and valves is a major regulatory component of lymphatic pumping.

Authors:  H Glenn Bohlen; Olga Yu Gasheva; David C Zawieja
Journal:  Am J Physiol Heart Circ Physiol       Date:  2011-09-02       Impact factor: 4.733

9.  Factors influencing blood flow patterns in the human right coronary artery.

Authors:  J G Myers; J A Moore; M Ojha; K W Johnston; C R Ethier
Journal:  Ann Biomed Eng       Date:  2001-02       Impact factor: 3.934

10.  Microlymphatic and tissue oxygen tension in the rat mesentery.

Authors:  Nanae Hangai-Hoger; Pedro Cabrales; Juan C Briceño; Amy G Tsai; Marcos Intaglietta
Journal:  Am J Physiol Heart Circ Physiol       Date:  2003-11-20       Impact factor: 4.733

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  12 in total

1.  Consequences of intravascular lymphatic valve properties: a study of contraction timing in a multi-lymphangion model.

Authors:  Christopher D Bertram; Charlie Macaskill; Michael J Davis; James E Moore
Journal:  Am J Physiol Heart Circ Physiol       Date:  2016-01-08       Impact factor: 4.733

2.  Determining the combined effect of the lymphatic valve leaflets and sinus on resistance to forward flow.

Authors:  John T Wilson; Raoul van Loon; Wei Wang; David C Zawieja; James E Moore
Journal:  J Biomech       Date:  2015-08-11       Impact factor: 2.712

3.  The advection of microparticles, MCF-7 and MDA-MB-231 breast cancer cells in response to very low Reynolds numbers.

Authors:  Sinéad T Morley; Michael T Walsh; David T Newport
Journal:  Biomicrofluidics       Date:  2017-05-05       Impact factor: 2.800

Review 4.  Emerging trends in the pathophysiology of lymphatic contractile function.

Authors:  Sanjukta Chakraborty; Michael J Davis; Mariappan Muthuchamy
Journal:  Semin Cell Dev Biol       Date:  2015-01-21       Impact factor: 7.727

5.  Intracellular calcium dynamics of lymphatic endothelial and muscle cells co-cultured in a Lymphangion-Chip under pulsatile flow.

Authors:  Amirali Selahi; Sanjukta Chakraborty; Mariappan Muthuchamy; David C Zawieja; Abhishek Jain
Journal:  Analyst       Date:  2022-06-27       Impact factor: 5.227

6.  Simultaneous measurements of lymphatic vessel contraction, flow and valve dynamics in multiple lymphangions using optical coherence tomography.

Authors:  Cedric Blatter; Eelco F J Meijer; Timothy P Padera; Benjamin J Vakoc
Journal:  J Biophotonics       Date:  2017-07-31       Impact factor: 3.390

Review 7.  Primary and secondary lymphatic valve development: molecular, functional and mechanical insights.

Authors:  Eleni Bazigou; John T Wilson; James E Moore
Journal:  Microvasc Res       Date:  2014-07-30       Impact factor: 3.514

8.  Lymphatic System Flows.

Authors:  James E Moore; Christopher D Bertram
Journal:  Annu Rev Fluid Mech       Date:  2018-01       Impact factor: 18.511

9.  Measurement of shear stress-mediated intracellular calcium dynamics in human dermal lymphatic endothelial cells.

Authors:  M Jafarnejad; W E Cromer; R R Kaunas; S L Zhang; D C Zawieja; J E Moore
Journal:  Am J Physiol Heart Circ Physiol       Date:  2015-01-23       Impact factor: 4.733

10.  Synchronization and Random Triggering of Lymphatic Vessel Contractions.

Authors:  James W Baish; Christian Kunert; Timothy P Padera; Lance L Munn
Journal:  PLoS Comput Biol       Date:  2016-12-09       Impact factor: 4.475

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