Literature DB >> 8797602

Tumor angiogenesis and interstitial hypertension.

Y Boucher1, M Leunig, R K Jain.   

Abstract

Due to the high permeability of tumor vessels to fluids and plasma proteins, the microvascular pressure (MVP) is the principal driving force for interstitial hypertension in solid tumors; as a result, hydrostatic pressures between the microvascular and interstitial space are close to equilibrium. Based on these observations, we hypothesized that the tumor interstitial fluid pressure (IFP) should increase following the onset of angiogenesis. To this end, the relationship between IFP and tumor neovascularization was determined in the human colon adenocarcinoma (LS174T) and the murine carcinoma (MCaIV) implanted in a transparent dorsal skin fold chamber in severe combined immunodeficient mice. Three stages in the development of the tumor neovasculature were characterized by intravital microscopy. Stage I tumors were avascular, stage II was characterized by vascular sprouts and loops, and in stage III, the tumor vasculature was completely developed and blood flow was obvious. The IFP was measured with micropipettes and a servo-null system. For both tumor types, the IFP in stage I tumors was close to 0 mm Hg, and IFP increased significantly from one stage to the next. To further confirm that interstitial hypertension was associated with the development of the tumor vasculature, IFP was measured in LS174T spheroids. The mean pressure in spheroids was 0.2 +/- 0.3 mm Hg. In stage III tumors, the IFP was compared to the MVP. In MCaIV, the MVP was comparable to the IFP; however, in LS174T the MVP was significantly higher than the IFP. In conclusion, the results demonstrate that avascular tumors have atmospheric pressures and that tumor interstitial hypertension is associated with the development of the neovasculature.

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Year:  1996        PMID: 8797602

Source DB:  PubMed          Journal:  Cancer Res        ISSN: 0008-5472            Impact factor:   12.701


  59 in total

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3.  Angiopoietin-4 inhibits angiogenesis and reduces interstitial fluid pressure.

Authors:  Minna W B Olsen; Carsten D Ley; Nanna Junker; Anker J Hansen; Eva L Lund; Paul E G Kristjansen
Journal:  Neoplasia       Date:  2006-05       Impact factor: 5.715

4.  Subharmonic aided pressure estimation for monitoring interstitial fluid pressure in tumours--in vitro and in vivo proof of concept.

Authors:  V G Halldorsdottir; J K Dave; J R Eisenbrey; P Machado; H Zhao; J B Liu; D A Merton; F Forsberg
Journal:  Ultrasonics       Date:  2014-05-06       Impact factor: 2.890

Review 5.  Perspectives: MRI of angiogenesis.

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7.  Functional response of tumor vasculature to PaCO2: determination of total and microvascular blood volume by MRI.

Authors:  Scott D Packard; Joseph B Mandeville; Tomotsugu Ichikawa; Keiro Ikeda; Kinya Terada; Stephanie Niloff; E Antonio Chiocca; Bruce R Rosen; John J A Marota
Journal:  Neoplasia       Date:  2003 Jul-Aug       Impact factor: 5.715

Review 8.  Optical tomography of breast cancer-monitoring response to primary medical therapy.

Authors:  Louise C Enfield; Adam P Gibson; Jeremy C Hebden; Michael Douek
Journal:  Target Oncol       Date:  2009-09-24       Impact factor: 4.493

9.  An automatic occlusion device for remote control of tumor tissue ischemia.

Authors:  Hamid El-Dahdah; Bei Wang; Guanglong He; Ronald X Xu
Journal:  Technol Cancer Res Treat       Date:  2010-02

10.  Dynamic imaging of cancer growth and invasion: a modified skin-fold chamber model.

Authors:  Stephanie Alexander; Gudrun E Koehl; Markus Hirschberg; Edward K Geissler; Peter Friedl
Journal:  Histochem Cell Biol       Date:  2008-11-06       Impact factor: 4.304

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