Literature DB >> 25030480

Tissue-engineered microenvironment systems for modeling human vasculature.

Anna Tourovskaia1, Mark Fauver1, Gregory Kramer1, Sara Simonson1, Thomas Neumann2.   

Abstract

The high attrition rate of drug candidates late in the development process has led to an increasing demand for test assays that predict clinical outcome better than conventional 2D cell culture systems and animal models. Government agencies, the military, and the pharmaceutical industry have started initiatives for the development of novel in-vitro systems that recapitulate functional units of human tissues and organs. There is growing evidence that 3D cell arrangement, co-culture of different cell types, and physico-chemical cues lead to improved predictive power. A key element of all tissue microenvironments is the vasculature. Beyond transporting blood the microvasculature assumes important organ-specific functions. It is also involved in pathologic conditions, such as inflammation, tumor growth, metastasis, and degenerative diseases. To provide a tool for modeling this important feature of human tissue microenvironments, we developed a microfluidic chip for creating tissue-engineered microenvironment systems (TEMS) composed of tubular cell structures. Our chip design encompasses a small chamber that is filled with an extracellular matrix (ECM) surrounding one or more tubular channels. Endothelial cells (ECs) seeded into the channels adhere to the ECM walls and grow into perfusable tubular tissue structures that are fluidically connected to upstream and downstream fluid channels in the chip. Using these chips we created models of angiogenesis, the blood-brain barrier (BBB), and tumor-cell extravasation. Our angiogenesis model recapitulates true angiogenesis, in which sprouting occurs from a "parent" vessel in response to a gradient of growth factors. Our BBB model is composed of a microvessel generated from brain-specific ECs within an ECM populated with astrocytes and pericytes. Our tumor-cell extravasation model can be utilized to visualize and measure tumor-cell migration through vessel walls into the surrounding matrix. The described technology can be used to create TEMS that recapitulate structural, functional, and physico-chemical elements of vascularized human tissue microenvironments in vitro.
© 2014 by the Society for Experimental Biology and Medicine.

Entities:  

Keywords:  Microfluidic device; body-on-chip; microenvironment; microphysiological system; microvasculature; organ-on-chip; tissue engineering

Mesh:

Year:  2014        PMID: 25030480      PMCID: PMC4469377          DOI: 10.1177/1535370214539228

Source DB:  PubMed          Journal:  Exp Biol Med (Maywood)        ISSN: 1535-3699


  29 in total

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Review 2.  Blood-brain barrier disruption in multiple sclerosis.

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Review 3.  Modeling tissue-specific signaling and organ function in three dimensions.

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4.  Tissue engineering of perfused microvessels.

Authors:  Thomas Neumann; Brian S Nicholson; Joan E Sanders
Journal:  Microvasc Res       Date:  2003-07       Impact factor: 3.514

5.  Trial watch: phase II and phase III attrition rates 2011-2012.

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Review 9.  Innovations in preclinical biology: ex vivo engineering of a human kidney tissue microperfusion system.

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  40 in total

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Review 5.  Fluorescent protein biosensors applied to microphysiological systems.

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7.  Vascularized microfluidic platforms to mimic the tumor microenvironment.

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Review 8.  Biology-inspired microphysiological system approaches to solve the prediction dilemma of substance testing.

Authors:  Uwe Marx; Tommy B Andersson; Anthony Bahinski; Mario Beilmann; Sonja Beken; Flemming R Cassee; Murat Cirit; Mardas Daneshian; Susan Fitzpatrick; Olivier Frey; Claudia Gaertner; Christoph Giese; Linda Griffith; Thomas Hartung; Minne B Heringa; Julia Hoeng; Wim H de Jong; Hajime Kojima; Jochen Kuehnl; Marcel Leist; Andreas Luch; Ilka Maschmeyer; Dmitry Sakharov; Adrienne J A M Sips; Thomas Steger-Hartmann; Danilo A Tagle; Alexander Tonevitsky; Tewes Tralau; Sergej Tsyb; Anja van de Stolpe; Rob Vandebriel; Paul Vulto; Jufeng Wang; Joachim Wiest; Marleen Rodenburg; Adrian Roth
Journal:  ALTEX       Date:  2016-05-15       Impact factor: 6.043

9.  ICAM-1-targeted thrombomodulin mitigates tissue factor-driven inflammatory thrombosis in a human endothelialized microfluidic model.

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10.  Development of a microphysiological model of human kidney proximal tubule function.

Authors:  Elijah J Weber; Alenka Chapron; Brian D Chapron; Jenna L Voellinger; Kevin A Lidberg; Catherine K Yeung; Zhican Wang; Yoshiyuki Yamaura; Dale W Hailey; Thomas Neumann; Danny D Shen; Kenneth E Thummel; Kimberly A Muczynski; Jonathan Himmelfarb; Edward J Kelly
Journal:  Kidney Int       Date:  2016-09       Impact factor: 10.612

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