Related Experiment Video
Updated: Feb 14, 2026

Synthesis of Decellularized Cartilage Extracellular Matrix Hydrogels
Published on: July 21, 2023
Optimising the decellularization of human elastic cartilage with trypsin for future use in ear reconstruction
Shafiq Rahman1, Michelle Griffin2,3,4, Anish Naik5
1Division of Surgery and Interventional Science, University College London (UCL), London, United Kingdom. shafiq.rahman.14@alumni.ucl.ac.uk.
Abstract:
Decellularized scaffolds can induce chondrogenic differentiation of stem cells. This study compares different methods to optimise the decellularization of auricular cartilage. The process consisted of an initial 12 hour dry freeze thaw which froze the cartilage specimens in an empty tube at -20 °C. Samples were allowed to thaw at room temperature followed by submersion in phosphate buffer solution in which they were frozen at -20 °C for a 12 hour period. They were then allowed to thaw at room temperature as before. Protocol A subsequently involved subjecting specimens to both deoxyribonuclease and sodium deoxycholate. Protocol B and C were adaptations of this using 0.25% trypsin (7 cycles) and a 0.5 molar solution of ethylenediaminetetraacetic acid (3 hours for each cycle) respectively as additional steps. Trypsin accelerated the decellularization process with a reduction in DNA content from 55.4 ng/microL (native) to 17.3 ng/microL (P-value < 0.05) after 14 days. Protocol B showed a faster reduction in DNA content when compared with protocol A. In comparison to protocol C after 14 days, trypsin also showed greater decellularization with a mean difference of 11.7 ng/microL (P-value < 0.05). Histological analysis with H&E and DAPI confirmed depletion of cells at 14 days with trypsin.
Related Concept Videos
Elasticity
The elasticity of an object can be described by a stress-strain curve, which represents the relationship between stress...
Anatomy of the Ear
Elasticity in Concrete
Elastic Potential Energy
Potential energy is also associated with the elastic force exerted by an ideal spring. The work done by this force can be represented as a change in the elastic potential energy of the spring. Thus, the work done by a perfectly elastic spring, in one dimension, depends...
Strain and Elastic Modulus
Elastic Collisions: Introduction

