Evaluation of a novel 4-day decellularisation protocol for porcine flexor tendons: A comparative study with a 26-day process.
biomechanical · Level V
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- Record sourced from PubMed, PMID 41453233.
- Also identified by DOI 10.1016/j.jmbbm.2025.107318.
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Abstract
Rupture of the anterior cruciate ligament is a common sports-related injury that lacks intrinsic healing capacity, often necessitating surgical intervention. Our group has developed a new graft biomaterial, the decellularised porcine super flexor tendon (pSFT), designed to mitigate immune rejection post-implantation by removing cellular components. The current 26-day decellularisation process attenuates the mechanical properties of the graft, potentially disrupting the structural micro-cues that influence cell repopulation and integration. This study investigates a shortened 4-day protocol to determine whether mechanical properties are preserved more closely to native, unprocessed tissue. Histological analysis and DNA quantification confirmed effective cell removal for both the 26-day and 4-day protocols. Native, 26-day processed, and 4-day processed grafts were mechanically evaluated through stress relaxation and failure testing. Following stress relaxation testing, several Maxwell-Weichert viscoelastic parameters were found to significantly differ between 26-day and native groups (E<sub>0</sub>, E<sub>1</sub>, E<sub>2</sub> & τ<sub>2</sub>), whereas between 4-day and native groups fewer significant differences were found (E<sub>1</sub> & E<sub>2</sub>). Following failure testing, again several parameters were found to significantly differ between 26-day and native groups (P<sub>FAIL</sub>, UTS, E<sub>linear</sub> and ε<sub>T</sub>), whereas between 4-day and native groups only one parameter was significantly different (E<sub>linear</sub>). These findings indicate that the 4-day decellularisation process better preserves the native tissue mechanical properties, potentially reducing structural alterations and improving suitability for anterior cruciate ligament replacement.
Medical subject headings
- Tendons
- Tissue Engineering
- Mechanical Phenomena