Literature DB >> 23781291

A method to integrate patterned electrospun fibers with microfluidic systems to generate complex microenvironments for cell culture applications.

Patric Wallin1, Carl Zandén, Björn Carlberg, Nina Hellström Erkenstam, Johan Liu, Julie Gold.   

Abstract

The properties of a cell's microenvironment are one of the main driving forces in cellular fate processes and phenotype expression invivo. The ability to create controlled cell microenvironments invitro becomes increasingly important for studying or controlling phenotype expression in tissue engineering and drug discovery applications. This includes the capability to modify material surface properties within well-defined liquid environments in cell culture systems. One successful approach to mimic extra cellular matrix is with porous electrospun polymer fiber scaffolds, while microfluidic networks have been shown to efficiently generate spatially and temporally defined liquid microenvironments. Here, a method to integrate electrospun fibers with microfluidic networks was developed in order to form complex cell microenvironments with the capability to vary relevant parameters. Spatially defined regions of electrospun fibers of both aligned and random orientation were patterned on glass substrates that were irreversibly bonded to microfluidic networks produced in poly-dimethyl-siloxane. Concentration gradients obtained in the fiber containing channels were characterized experimentally and compared with values obtained by computational fluid dynamic simulations. Velocity and shear stress profiles, as well as vortex formation, were calculated to evaluate the influence of fiber pads on fluidic properties. The suitability of the system to support cell attachment and growth was demonstrated with a fibroblast cell line. The potential of the platform was further verified by a functional investigation of neural stem cell alignment in response to orientation of electrospun fibers versus a microfluidic generated chemoattractant gradient of stromal cell-derived factor 1 alpha. The described method is a competitive strategy to create complex microenvironments invitro that allow detailed studies on the interplay of topography, substrate surface properties, and soluble microenvironment on cellular fate processes.

Entities:  

Year:  2012        PMID: 23781291      PMCID: PMC3391307          DOI: 10.1063/1.4729747

Source DB:  PubMed          Journal:  Biomicrofluidics        ISSN: 1932-1058            Impact factor:   2.800


  62 in total

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Authors:  Chang-Yu Chen; Andrew M Wo; De-Shien Jong
Journal:  Lab Chip       Date:  2012-01-05       Impact factor: 6.799

2.  Role of electrospun fibre diameter and corresponding specific surface area (SSA) on cell attachment.

Authors:  Ming Chen; Prabir K Patra; Michael L Lovett; David L Kaplan; Sankha Bhowmick
Journal:  J Tissue Eng Regen Med       Date:  2009-06       Impact factor: 3.963

3.  Multiscale topological guidance for cell alignment via direct laser writing on biodegradable polymer.

Authors:  Wai Yee Yeong; Haiyang Yu; Kee Pah Lim; Ka Lai Gary Ng; Yin Chiang Freddy Boey; Venkatraman S Subbu; Lay Poh Tan
Journal:  Tissue Eng Part C Methods       Date:  2010-10       Impact factor: 3.056

Review 4.  Microfluidic lab-on-a-chip platforms: requirements, characteristics and applications.

Authors:  Daniel Mark; Stefan Haeberle; Günter Roth; Felix von Stetten; Roland Zengerle
Journal:  Chem Soc Rev       Date:  2010-01-25       Impact factor: 54.564

5.  Convergent pathways of macrophage polarization: The role of B cells.

Authors:  Antonio Sica; Chiara Porta; Elena Riboldi; Massimo Locati
Journal:  Eur J Immunol       Date:  2010-08       Impact factor: 5.532

6.  Directed migration of neural stem cells to sites of CNS injury by the stromal cell-derived factor 1alpha/CXC chemokine receptor 4 pathway.

Authors:  Jaime Imitola; Khadir Raddassi; Kook In Park; Franz-Josef Mueller; Marta Nieto; Yang D Teng; Dan Frenkel; Jianxue Li; Richard L Sidman; Christopher A Walsh; Evan Y Snyder; Samia J Khoury
Journal:  Proc Natl Acad Sci U S A       Date:  2004-12-17       Impact factor: 11.205

Review 7.  Engineered microenvironments for controlled stem cell differentiation.

Authors:  Jason A Burdick; Gordana Vunjak-Novakovic
Journal:  Tissue Eng Part A       Date:  2009-02       Impact factor: 3.845

8.  Cell-based high content screening using an integrated microfluidic device.

Authors:  Nannan Ye; Jianhua Qin; Weiwei Shi; Xin Liu; Bingcheng Lin
Journal:  Lab Chip       Date:  2007-10-08       Impact factor: 6.799

9.  The influence of fiber diameter of electrospun substrates on neural stem cell differentiation and proliferation.

Authors:  Gregory T Christopherson; Hongjun Song; Hai-Quan Mao
Journal:  Biomaterials       Date:  2008-10-31       Impact factor: 12.479

10.  Nonradiative excitation energy transport in one-component disordered systems.

Authors:  P Bojarski; L Kulak; C Bojarski; A Kawski
Journal:  J Fluoresc       Date:  1995-12       Impact factor: 2.217

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  8 in total

1.  Microfluidic engineering of neural stem cell niches for fate determination.

Authors:  Yachen Wang; Jingyun Ma; Na Li; Liang Wang; Liming Shen; Yu Sun; Yajun Wang; Jingyuan Zhao; Wenjuan Wei; Yan Ren; Jing Liu
Journal:  Biomicrofluidics       Date:  2017-01-25       Impact factor: 2.800

2.  A high-performance polydimethylsiloxane electrospun membrane for cell culture in lab-on-a-chip.

Authors:  Hajar Moghadas; Mohammad Said Saidi; Navid Kashaninejad; Nam-Trung Nguyen
Journal:  Biomicrofluidics       Date:  2018-04-12       Impact factor: 2.800

Review 3.  Multi-length scale bioprinting towards simulating microenvironmental cues.

Authors:  Elisabeth L Gill; Xia Li; Mark A Birch; Yan Yan Shery Huang
Journal:  Biodes Manuf       Date:  2018-05-25

4.  Directional Submicrofiber Hydrogel Composite Scaffolds Supporting Neuron Differentiation and Enabling Neurite Alignment.

Authors:  Lena Mungenast; Fabian Züger; Jasmin Selvi; Ana Bela Faia-Torres; Jürgen Rühe; Laura Suter-Dick; Maurizio R Gullo
Journal:  Int J Mol Sci       Date:  2022-09-29       Impact factor: 6.208

Review 5.  Biomimetic substrate control of cellular mechanotransduction.

Authors:  Mohammad Nahid Andalib; Yuris Dzenis; Henry J Donahue; Jung Yul Lim
Journal:  Biomater Res       Date:  2016-04-29

Review 6.  Microfluidic on-chip biomimicry for 3D cell culture: a fit-for-purpose investigation from the end user standpoint.

Authors:  Ye Liu; Elisabeth Gill; Yan Yan Shery Huang
Journal:  Future Sci OA       Date:  2017-03-02

7.  Microfabricated tuneable and transferable porous PDMS membranes for Organs-on-Chips.

Authors:  W F Quirós-Solano; N Gaio; O M J A Stassen; Y B Arik; C Silvestri; N C A Van Engeland; A Van der Meer; R Passier; C M Sahlgren; C V C Bouten; A van den Berg; R Dekker; P M Sarro
Journal:  Sci Rep       Date:  2018-09-10       Impact factor: 4.379

Review 8.  Embracing Mechanobiology in Next Generation Organ-On-A-Chip Models of Bone Metastasis.

Authors:  Ellen E Slay; Fiona C Meldrum; Virginia Pensabene; Mahetab H Amer
Journal:  Front Med Technol       Date:  2021-09-01
  8 in total

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