PEER-REVIEWED PUBLICATION

2020

A universal multi-platform 3D printed bioreactor chamber for tendon tissue engineering

Janvier AJ, Canty-Laird E, et al.

Journal of Tissue Engineering

University of Liverpool

RESEARCH SUMMARY
This study developed a low-cost, universally adaptable, six-well tensile bioreactor chamber fabricated by fused filament fabrication (FFF) 3D printing to improve reproducibility and comparability across tendon tissue engineering studies using different actuator platforms. The chamber body and tensile arm components were printed in PLA and waterproofed/sterilized via a coating workflow (XTC-3D oxirane epoxy resin for impermeability plus Sylgard-184 PDMS well-base coating to reduce adhesion). Biocompatibility was validated by LDH assay, showing that fully cured and repeatedly PBS-washed resin/PDMS components were non-cytotoxic. The chamber provided six isolated culture wells (~8 mL capacity) and uniform displacement delivery across wells (validated up to 50% strain with <~0.6% deviation). Biological validation was performed using human MSC-derived tissue-engineered tendons formed in fibrin hydrogels within custom anchor frames, followed by cyclic tensile stimulation (5% strain,0.5 Hz,5 h/day,5 days/week for 21 days). Cyclic loading increased tissue alignment and collagen organization (H&E, Picrosirius Red under polarized light), prevented matrix calcification observed in static controls (Alizarin Red), and increased collagen Iα1 production (~2.5-fold) with reduced collagen IIIα1 trends by dot blot, consistent with a tenogenic phenotype.

CELLSCALE INSTRUMENT USED

MechanoCulture T6

A 3D printed six-well tensile bioreactor chamber was designed to interface with common linear-actuator base platforms, including minor modifications enabling mounting onto the CellScale MCT6 (MechanoCulture T6). Using the MCT6 as the actuator platform, the chamber enabled sterile, hydrated, temperature-controlled cyclic uniaxial stretching of tissue-engineered tendon constructs formed from human MSCs in fibrin hydrogels. Constructs were mounted in custom anchor frames and mechanically stimulated at 5% cyclic strain (0.5 Hz,5 h/day,5 days/week) for 21 days, providing uniform displacement across six independent wells for parallel replicates/conditions and enabling assessment of load-induced collagen alignment, collagen I/III production, and prevention of calcification relative to unstretched controls.
AUTHORS

Adam J. Janvier, Elizabeth Canty-Laird, James R. Henstock.

PUBLICATION DETAILS
JOURNAL

Journal of Tissue Engineering

YEAR

2020

INSTITUTIONS

University of Liverpool

COUNTRIES

United Kingdom

INSTRUMENT USED

MechanoCulture T6

TESTING METHODS

Fatigue TestingHydrated and Temperature Controlled TestingTensile Testing

RESEARCH APPLICATIONS

MechanotransductionStem Cell MechanobiologyTendon Tissue Engineering & Ligament Mechanics

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MechanoCulture T6

Fatigue TestingHydrated and Temperature Controlled TestingTensile Testing

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