PulseExploreJournal ClubDebatesTrendingResearchersJournals
Instagram
HomeExploreJournal ClubTrending
Synapse
⌘+K
Synapse
September 12, 2025ChemSusChem6 citationsOpen Access

Engineering Lignin‐Based Tubular Hydrogel Scaffolds for Load‐Bearing Biomedical Applications

View Full Paper
MMMuhammad MudassarGJG. A. JoyceMPMathilde Pouzier

Key Points

  • Lignin-based hydrogels exhibit sufficient mechanical strength, achieving an ultimate tensile strength of 83.14 kPa.
  • With a 5% crosslinker concentration, the hydrogels demonstrate up to 176% elongation and a swelling capacity of 261%.
  • Experimental analysis shows the reinforced tubular constructs sustain performance over 100 fatigue cycles while ensuring cytocompatibility.
  • These findings emphasize the role of lignin as a sustainable material for developing biomedical scaffolds in tendon repair and nerve regeneration.

Abstract

The development of mechanically robust, biocompatible, and biodegradable hydrogels remains a significant challenge for biomedical applications involving load‐bearing soft tissues. Herein, a tubular lignin‐derived hydrogel is engineered to assess its physicochemical, mechanical, and biological properties. Kraft and organosolv lignin are systematically compared at varying crosslinker concentrations to determine their effect on pore morphology, swelling behavior, and mechanical performance. Organosolv lignin formulations at 5% crosslinker concentration demonstrate an optimal balance between strength (ultimate tensile strength: 83.14 ± 0.16 kPa), flexibility (elongation: up to 176%), and hydration (swelling capacity: 261%), and are further fabricated into tubular geometries, with and without polypropylene mesh reinforcement. The reinforced tubular constructs exhibit superior mechanical strength, sustained performance over 100 fatigue cycles, and cytocompatibility with fibroblast cultures (cell viability: 85.5–86.5% after 96 h). These findings highlight the potential of lignin‐based hydrogel scaffolds as sustainable, tunable platforms for a broad range of biomedical applications requiring soft, mechanically resilient, and tubular structures, such as tendon repair, vascular conduits, and nerve regeneration.

Ask AI
Helpful
Bookmark
Share
View Full Paper

Cite This Study

Mudassar et al. (2025) studied this question.

synapsesocial.com/papers/68d44b3031b076d99fa54a46https://doi.org/10.1002/cssc.202501520
Ask AI
Helpful
Bookmark
Share
View Full Paper

Also Consider

Synapse has enriched 5 closely related papers on similar clinical questions. Consider them for comparative context:

  1. 1High performance all lignin derived supercapacitors for energy storage applications2024 · 32 citations
  2. 2Building Scaffolds for Tubular Tissue Engineering2020 · 77 citations
  3. 3Characterization of PVA hydrogels’ hyperelastic properties by uniaxial tension and cavity expansion tests2020 · 23 citations
  4. 4Epidemiology of tendon and ligament injuries in Aotearoa/New Zealand between 2010 and 20162020 · 30 citations
  5. 5Computational modelling of the mechanical behaviour of protein-based hydrogels2023 · 19 citations