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In This Article

  • Summary
  • Abstract
  • Introduction
  • Protocol
  • Representative Results
  • Discussion
  • Acknowledgements
  • Materials
  • References
  • Reprints and Permissions

Summary

The following protocol presents a shear-based extrusion method for the fabrication of collagen hydrogels with nanoscale patterned fibrils, which can be applied to a broad range of tissue engineering applications.

Abstract

Regenerative biomaterials are designed to facilitate cell-material interactions to guide the repair of damaged tissues and organs. These materials are designed to emulate the biophysical properties of native tissue, providing cellular phenotypic and morphological guidance that contributes to the restoration of the regenerative tissue niche. Collagen, a prevalent extracellular matrix protein, is a common component of these regenerative biomaterials due to its biocompatibility and other favorable properties. The current study describes a novel and straightforward method for the fabrication of engineered nanofibrillar collagen with directed fibril patterning. Through the manipulation of shear stress, temperature, and pH, collagen fibrillogenesis and alignment are precisely controlled without requiring specialized equipment. This approach allows for the creation of nanofibrillar collagen biomaterials that mimic the native structure of tissues exhibiting either anisotropic or isotropic characteristics. The flexibility in collagen nanofibril patterning not only facilitates the study of nanoscale patterning on cell behavior but also offers diverse possibilities for patterned tissue engineering applications.

Introduction

The goal of regenerative medicine is to enhance tissue regeneration and healing through the application of engineered therapeutics. One approach involves the fabrication of biomaterial constructs that closely emulate the composition and structure of native tissues. When designing these constructs, a critical consideration is the native underlying extracellular matrix (ECM), which provides instructional cues for cell proliferation, migration, and differentiation, ultimately driving tissue regeneration1,2. The native ECM is predominantly comprised of fibrillar collagen3,

Protocol

1. Preparation of dialyzed collagen ( Figure 1)

  1. Cut dialysis tubing to a length of approximately 3 inches. Use tubing with the following specifications: 32 mm flat width, 20 mm inflated diameter, and 4.8 nm pore size.
  2. Rehydrate dialysis tubing in ultra-pure water.
  3. Clip one end of the tubing with a dialysis tubing clip.
  4. Transfer 5-6 mL of rat tail collagen-type I (concentration: 9-10 mg/mL in 0.02 N acetic acid) into .......

Representative Results

This protocol describes a straightforward shear-based extrusion technique for the fabrication of collagen hydrogels composed of either aligned (Figure 2) or randomly (Figure 3) oriented nanofibrils. Nanofibril patterning relies on the precise control of shear forces, which is achieved through the combined modulation of syringe speed and collagen extrusion rate. Optimal values for inducing fibril alignment have been previously determined to be a syringe velocity .......

Discussion

The critical steps of the protocol can be distilled into three main parts: 1) collagen fibrillogenesis, 2) hydrogel mounting, and 3) washing. The process of collagen fibrillogenesis occurs spontaneously under neutralizing conditions and relies on the self-assembly of individual collagen molecules into larger stabilized fibrillar structures10,11. This is achieved through the application of a neutralizing buffered medium like 10x PBS that is warmed to 37 °C an.......

Acknowledgements

This research was supported in part by funding from the Alliance for Regenerative Rehabilitation Research & Training, MTF Biologics, the Oregon Health & Science University Foundation, and the Collins Medical Trust. K.M.H. was supported by the National Science Foundation Graduate Research Fellowship (DGE-1937961) and the Oregon Students Learn and Experience Research (OSLER) Fellowship (5TL1TR2371-8). K.H.N. was supported by grants from the NIH/NHLBI (R00HL136701) and NIH/NIAMS (R01AR080150).

....

Materials

NameCompanyCatalog NumberComments
Collagen I, High Concentration, Rat TailCorningCB354249
Eclipse TE-2000-U microscopeNikonTE-2000-U Inverted microscope
Extra Thick Microscope SlidesFisher Scientific22-267-005Works well for collagen extrusion surface
FEI Helios G3 NanoLab DualBeamThermo Fisher ScientificN/AScanning electron microscope
Glass Cutter Tool Set 2mm-20mm Pencil Style Oil Feed Carbide TipAmazon/MOARMORB07Y1D243HOption for a glass cutter
Hamilton Kel-F Hub Blunt Point Needles (Luer Lock, 22 G)Fisher Scientific14-815-574Needles for collagen extrusion
Nexterion Slide H 3-DSchottNC0782819Hydrophobic slides
PBS TabletsThermo Fisher Scientific18912014
Polyethylene Glycol 8000Fisher BioReagentsBP233-1
Seamless Cellulose Dialysis Tubing Fisher ScientificS25645G
SnakeSkin Dialysis ClipsThermo Fisher ScientificPI68011
Synthware Glass CutterSynthware31-501-927Option for a glass cutter

References

  1. Padhi, A., Nain, A. S. ECM in differentiation: A review of matrix structure, composition and mechanical properties. Ann Biomed Eng. 48 (3), 1071-1089 (2020).
  2. Schlie-Wolter, S., Ngezahayo, A., Chichkov, B. N.

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Nanofibrillar CollagenTissue EngineeringRegenerative BiomaterialsExtracellular MatrixCollagen FibrillogenesisCell material InteractionsBiocompatibilityAnisotropic CharacteristicsIsotropic CharacteristicsFibril PatterningNanoscale PatterningEngineered CollagenTissue Repair

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