We use cookies to understand how you use our site and to improve your experience. This includes personalizing content and advertising. To learn more, click here. By continuing to use our site, you accept our use of cookies. Cookie Policy.

LabMedica

Download Mobile App
Recent News Expo
WHX Labs Dubai 2026
Clinical Chem. Molecular Diagnostics Hematology Immunology Microbiology Pathology Technology Industry Focus

Tissue Engineering for Craniofacial Reconstruction

By Biotechdaily staff writers
Posted on 10 Apr 2007
Tissue engineering has emerged as a promising option for the reconstitution of lost or damaged organs and tissues, avoiding the complications associated with traditional transplants.

Tissue engineers attempt to repair or regenerate damaged tissue by using engineered tissue replacements that can maintain functionality during regeneration and ultimately integrate into the host tissue. The conventional tissue-engineering prototype combines isolated cells with suitable bioactive agents in a biomaterial scaffold. It is widely recognized that scaffold architecture can deeply influence the behavior of cells on tissue-engineering constructs.

During the 85th General Session of the International Association for Dental Research, held in March 2007 in New Orleans, LA, USA, scientists from the University of Durham (UK) presented their study's findings reporting on high internal phase emulsion (HIPE) polymerization, which offers tremendous control of scaffold morphology. HIPEs can be readily molded into the irregular shapes frequently needed in craniofacial reconstruction and cured in situ to a rigid foam.

The investigators demonstrated that emulsion templating could be used to generate rigid, biodegradable scaffolds with interconnected pores. These scaffolds are of particular interest in craniofacial tissue engineering, because of the rigidity of the resulting foams and the ease of fabrication.


Related Links:
University of Durham

Gold Member
Quantitative POC Immunoassay Analyzer
EASY READER+
POC Helicobacter Pylori Test Kit
Hepy Urease Test
Rapid Molecular Testing Device
FlashDetect Flash10
Gold Member
Hematology Analyzer
Medonic M32B

Latest BioResearch News

Genome Analysis Predicts Likelihood of Neurodisability in Oxygen-Deprived Newborns
10 Apr 2007  |   BioResearch

Gene Panel Predicts Disease Progession for Patients with B-cell Lymphoma
10 Apr 2007  |   BioResearch

New Method Simplifies Preparation of Tumor Genomic DNA Libraries
10 Apr 2007  |   BioResearch