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Method Article

Interlinked Macroporous 3D Scaffolds from Microgel Rods

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DOI:

10.3791/64010

June 16th, 2022

In This Article

Summary

Microgel rods with complementary reactive groups are produced via microfluidics with the ability to interlink in aqueous solution. The anisometric microgels jam and interlink into stable constructs with larger pores compared to spherical-based systems. Microgels modified with GRGDS-PC form macroporous 3D constructs that can be used for cell culture.

Abstract

A two-component system of functionalized microgels from microfluidics allows for fast interlinking into 3D macroporous constructs in aqueous solutions without further additives. Continuous photoinitiated on-chip gelation enables variation of the microgel aspect ratio, which determines the building block properties for the obtained constructs. Glycidyl methacrylate (GMA) or 2-aminoethyl methacrylate (AMA) monomers are copolymerized into the microgel network based on polyethylene glycol (PEG) star-polymers to achieve either epoxy or amine functionality. A focusing oil flow is introduced into the microfluidic outlet structure to ensure continuous collection of the functionalized microgel rods. Based on a recent publication, microgel rod-based constructs result in larger pores of several hundred micrometers and, at the same time, lead to overall higher scaffold stability in comparison to a spherical-based model. In this way, it is possible to produce higher-volume constructs with more free volume while reducing the amount of material required. The interlinked macroporous scaffolds can be picked up and transported without damage or disintegration. Amine and epoxy groups not involved in interlinking remain active and can be used independently for post-modification. This protocol describes an optimized method for the fabrication of microgel rods to form macroporous interlinked scaffolds that can be utilized for subsequent cell experiments.

Introduction

To study complex cooperative cell behavior in 3D constructs, scaffold platforms need to show consistent performance in reproducibility, have suitable geometry for cell migration, and, at the same time, allow certain flexibility in terms of parameter alteration to investigate their influence on the living tissue1. In recent years, the concept of macroporous annealed particles (MAP), first described by Segura et al., developed into an efficient and versatile platform for 3D scaffold production2. The tailored composition of the microgels, which are the building blocks of the final 3D scaffold, predefines properties such as ....

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Protocol

1. Required material and preparations for microfluidics

  1. For the described microfluidic procedure, use 1 mL and 5 mL glass syringes and syringe pumps. On-chip droplet formation is observed via an inverted microscope equipped with a high-speed camera.
  2. Create the microfluidic chip design (Figure 1B) using a computer-aided design software and produce a master template as already reported12.
  3. Achieve controlled UV-irradiation using a self-constructed UV-LED (λ = 365 nm, spot diameter ~4.7 mm) providing irradiance at 957 mW/cm2 through a 0.13 mm thick co....

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Results

3D tomographic reconstruction of porous material structure; 2D microscopy image of pore detail.
Figure 2: Macroporous crosslinked scaffold structure. (A) 3D projection of a 500 µm confocal microscopy Z-stack of the interlinked macroporous scaffold. Scale bar represents 500 µm. (B.......

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Discussion

One of the critical steps in this protocol is the quality of the 2-aminoethyl methacrylate (AMA) used as the comonomer for primary amine functionalization. The AMA should be a fine-grained and preferably colorless powder delivered in a gas-tight brown glass container. One should avoid using greenish and lumpy material, as it significantly impairs the gelation reaction and negatively affects the reproducibility of the results. In case of poor gelation and unstable microgel rods, one can consider changing the supplier.

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Disclosures

The authors assure that there are no conflicts of interest.

Acknowledgements

We express our gratitude to the coauthors of our previous work this methodology is based on, Céline Bastard, Luis P. B. Guerzoni, Yonca Kittel, Rostislav Vinokur, Nikolai Born, and Tamás Haraszti. We gratefully acknowledge funding from the Deutsche Forschungsgemeinschaft (DFG) within the project B5 and C3 SFB 985 "Functional Microgels and Microgel Systems". We acknowledge funding from the Leibniz Senate Competition Committee (SAW) under the Professorinnenprogramm (SAW-2017-PB62: BioMat). We sincerely acknowledge funding from the European Commission (EUSMI, 731019). This work was performed in part at the Center for Chemical Polymer Technology (CPT), w....

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Materials

List of materials used in this article
NameCompanyCatalog NumberComments
ABIL EM 90Evonik144243-53-8non-ionic surfactant
2-Aminoethyl methacrylate hydrochlorideTCI ChemicalsA3413>98.0%(T)(HPLC)
8-Arm PEG-acrylate 20 kDaBiochempeg Scientific Inc.A88009-20K≥ 95 %
AutoCAD 2019Autodeskcomputer-aided design (CAD) software; modeling of microfluidic designs
CHROMAFIL MV A-20/25 syringe filterCHROMAFILCarl Roth GmbH+Co.KGXH49.1pore size 0.20 µm; Cellulose Mixed Esters (MV)
Cover glassMarienfeld-Superiortype No. 1
EMS Swiss line core sampling tool 0.75 mmElectron Microscopy Sciences0.77 mm inner diameter, 1.07 mm outer diameter
Ethanol absolutVWR Chemicals
FL3-U3-13Y3M 150 FPS series high-speed cameraFLIR Systems
Fluoresceinamine isomer ISigma-Aldrich201626
Fluorescein isothiocyanateThermo Fisher Scientific46424
25G x 5/8’’ 0,50 x 16 mm needlesBD Microlance 3
Glycidyl methacrylateSigma-Aldrich779342≥97.0% (GC)
GRGDS-PCCPC ScientificFIBN-015A
Hamilton 1000 Series Gastight syringesThermo Fisher Scientific10772361/10500052PFTE Luer-Lock
HexaneSigma-Aldrich1,04,367
Lithium phenyl-2,4,6-trimethylbenzoylphosphinateSigma-Aldrich900889≥95 %
Motic AE2000 trinocular microscopeTed Pella, Inc.22443-12
Novec 7100Sigma-AldrichSHH0002
Oil Red OSigma-AldrichO9755
ParaffinVWR Chemicals24679320
Pavone Nanoindenter PlatformOptics11Life
Phosphate buffered salineThermo Fisher ScientificAM9624
Polyethylene Tubing 0.38×1.09mm medical gradedropletexID 0.38 mm OD 1.09 mm
2-PropanolSigma-Aldrich190764ACS reagent, ≥99.5%
Protein LoBind TubesEppendorf30108132
Pump 11 Pico Plus Elite Programmable Syringe PumpHarvard Apparatus
RPMI 1640 mediumGibco11530586
SYLGARD 184 silicone elastomer kitDow SYLGARD634165S
Trichloro-(1H,1H,2H,2H-perfluoroctyl)-silaneSigma-Aldrich448931
UVC LED sterilizing boxUVLED Optical Technology Co., Ltd.9S SZH8-S2

References

  1. Daly, A. C., Riley, L., Segura, T., Burdick, J. A. Hydrogel microparticles for biomedical applications. Nature Reviews Materials. 5 (1), 20-43 (2020).
  2. Griffin, D. R., Weaver, W. M., Scumpia, P. O., Di Carlo, D., Segura, T. Accelerated wound heal....

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Tags

Macroporous Scaffolds3D Scaffold FabricationMicrofluidic GelationPhotoinitiated GelationPolyethylene GlycolScaffold Pore SizeAmine FunctionalizationEpoxy FunctionalizationConfocal Microscopy