Literature DB >> 23665871

Mechanical forces in lymphatic vascular development and disease.

Lara Planas-Paz1, Eckhard Lammert.   

Abstract

The lymphatic vasculature is essential for fluid homeostasis and transport of immune cells, inflammatory molecules, and dietary lipids. It is composed of a hierarchical network of blind-ended lymphatic capillaries and collecting lymphatic vessels, both lined by lymphatic endothelial cells (LECs). The low hydrostatic pressure in lymphatic capillaries, their loose intercellular junctions, and attachment to the surrounding extracellular matrix (ECM) permit passage of extravasated blood plasma from the interstitium into the lumen of the lymphatic capillaries. It is generally thought that interstitial fluid accumulation leads to a swelling of the ECM, to which the LECs of lymphatic capillaries adhere, for example via anchoring filaments. As a result, LECs are pulled away from the vascular lumen, the junctions open, and fluid enters the lymphatic vasculature. The collecting lymphatic vessels then gather the plasma fluid from the capillaries and carry it through the lymph nodes to the blood circulation. The collecting vessels contain intraluminal bicuspid valves that prevent fluid backflow, and are embraced by smooth muscle cells that contribute to fluid transport. Although the lymphatic vessels are regular subject to mechanical strain, our knowledge of its influence on lymphatic development and pathologies is scarce. Here, we discuss the mechanical forces and molecular mechanisms regulating lymphatic vascular growth and maturation in the developing mouse embryo. We also consider how the lymphatic vasculature might be affected by similar mechanomechanisms in two pathological processes, namely cancer cell dissemination and secondary lymphedema.

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Year:  2013        PMID: 23665871     DOI: 10.1007/s00018-013-1358-5

Source DB:  PubMed          Journal:  Cell Mol Life Sci        ISSN: 1420-682X            Impact factor:   9.261


  107 in total

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Review 2.  From lymph to fat: liposuction as a treatment for complete reduction of lymphedema.

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Review 3.  Lymphatic and interstitial flow in the tumour microenvironment: linking mechanobiology with immunity.

Authors:  Melody A Swartz; Amanda W Lund
Journal:  Nat Rev Cancer       Date:  2012-02-24       Impact factor: 60.716

4.  Endothelial cell adhesion to the extracellular matrix induces c-Src-dependent VEGFR-3 phosphorylation without the activation of the receptor intrinsic kinase activity.

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Journal:  Circ Res       Date:  2010-04-29       Impact factor: 17.367

5.  Integrin alpha4beta1 signaling is required for lymphangiogenesis and tumor metastasis.

Authors:  Barbara Garmy-Susini; Christie J Avraamides; Michael C Schmid; Philippe Foubert; Lesley G Ellies; Leo Barnes; Chloe Feral; Thalia Papayannopoulou; Andrew Lowy; Sarah L Blair; David Cheresh; Mark Ginsberg; Judith A Varner
Journal:  Cancer Res       Date:  2010-04-13       Impact factor: 12.701

Review 6.  The surgical treatment of lymphedema: a systematic review of the contemporary literature (2004-2010).

Authors:  Janice N Cormier; Loren Rourke; Melissa Crosby; David Chang; Jane Armer
Journal:  Ann Surg Oncol       Date:  2011-08-24       Impact factor: 5.344

Review 7.  Interstitial-lymphatic mechanisms in the control of extracellular fluid volume.

Authors:  K Aukland; R K Reed
Journal:  Physiol Rev       Date:  1993-01       Impact factor: 37.312

8.  Vascular abnormalities in experimental and human lymphatic filariasis.

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Journal:  Lymphology       Date:  1991-12       Impact factor: 1.286

9.  Microvascular pressure is the principal driving force for interstitial hypertension in solid tumors: implications for vascular collapse.

Authors:  Y Boucher; R K Jain
Journal:  Cancer Res       Date:  1992-09-15       Impact factor: 12.701

10.  A novel multistep mechanism for initial lymphangiogenesis in mouse embryos based on ultramicroscopy.

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  16 in total

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3.  Disrupted NOS signaling in lymphatic endothelial cells exposed to chronically increased pulmonary lymph flow.

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Review 4.  Mechanical forces and lymphatic transport.

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Journal:  Microvasc Res       Date:  2014-08-05       Impact factor: 3.514

Review 5.  Mechanisms of lymphatic metastasis.

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Journal:  J Clin Invest       Date:  2014-03-03       Impact factor: 14.808

6.  KLF2-mediated disruption of PPAR-γ signaling in lymphatic endothelial cells exposed to chronically increased pulmonary lymph flow.

Authors:  Catherine J Morris; Rebecca J Kameny; Jason Boehme; Wenhui Gong; Youping He; Terry Zhu; Emin Maltepe; Gary W Raff; Jeffrey R Fineman; Sanjeev A Datar
Journal:  Am J Physiol Heart Circ Physiol       Date:  2018-04-06       Impact factor: 4.733

Review 7.  Harnessing biomaterials for lymphatic system modulation.

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8.  Walking the Line: A Fibronectin Fiber-Guided Assay to Probe Early Steps of (Lymph)angiogenesis.

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Review 9.  The BMP Pathway in Blood Vessel and Lymphatic Vessel Biology.

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10.  Acquired lymphatic malformations of the buccal mucosa: A case report.

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Journal:  Clin Case Rep       Date:  2018-08-15
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