4.5 Article

Modular Bioreactor Design for Directed Tendon/Ligament Tissue Engineering

期刊

BIOENGINEERING-BASEL
卷 9, 期 3, 页码 -

出版社

MDPI
DOI: 10.3390/bioengineering9030127

关键词

tendon; ligament; mesenchymal cells; differentiation; extracellular matrix; bioreactor

资金

  1. College of New Jersey's (TCNJ) Mentored Undergraduate Summer Experience (MUSE) program
  2. TCNJ School of Engineering Professional Development Funds
  3. TCNJ Department of Biomedical Engineering Research Track program

向作者/读者索取更多资源

This study evaluates the use of an acellular 3D extracellular matrix (ECM) scaffold for tendon/ligament tissue engineering. The study also designs and verifies a novel bioreactor system to support long-term culture with customizable mechanical strain regimens. The results show unique gene regulation patterns and highlight the need for a robust bioreactor system that minimizes process variation.
Functional tissue-engineered tendons and ligaments remain to be prepared in a reproducible and scalable manner. This study evaluates an acellular 3D extracellular matrix (ECM) scaffold for tendon/ligament tissue engineering and their ability to support strain-induced gene regulation associated with the tenogenesis of cultured mesenchymal stromal cells. Preliminary data demonstrate unique gene regulation patterns compared to other scaffold forms, in particular in Wnt signaling. However, the need for a robust bioreactor system that minimizes process variation was also evident. A design control process was used to design and verify the functionality of a novel bioreactor. The system accommodates 3D scaffolds with clinically-relevant sizes, is capable of long-term culture with customizable mechanical strain regimens, incorporates in-line load measurement for continuous monitoring and feedback control, and allows a variety of scaffold configurations through a unique modular grip system. All critical functional specifications were met, including verification of physiological strain levels from 1-10%, frequency levels from 0.2-0.5 Hz, and accurate load measurement up to 50 N, which can be expanded on the basis of load cell capability. The design process serves as a model for establishing statistical functionality and reliability of investigative systems. This work sets the stage for detailed analyses of ECM scaffolds to identify critical differentiation signaling responses and essential matrix composition and cell-matrix interactions.

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