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Margam Chandrasekaran

Publications and source records attributed to Margam Chandrasekaran.

2 recordsLinked to original sources

Comparison of drying methods in the fabrication of collagen scaffold via indirect rapid prototyping.

Porous collagen scaffolds with predefined 3-dimesional (3-D) networks of internal channels are fabricated via an indirect rapid prototyping technique. To obtain the scaffolds, two drying methods, namely critical point drying and freeze-drying were investigated. The latter was found to be a more suitable process as it induced less shrinkage and reproduced the design morphology accurately. The resulting scaffold contained internal hollow channels with porous foam-like structure occupying the surrounding volume. The mean diameter of the pores was 180 +/- 60 microm and the channels diameter obtained was measured as 437 +/- 100 microm. The channels were defined and strengthened by a layer of skin due to the process of freeze-drying. These networks of internal channels serve to enhance the mass transport rate through the scaffold and help to increase the depth of cells penetration in the scaffold.

Animals↗

Rapid prototyping in tissue engineering: challenges and potential.

Tissue engineering aims to produce patient-specific biological substitutes in an attempt to circumvent the limitations of existing clinical treatments for damaged tissue or organs. The main regenerative tissue engineering approach involves transplantation of cells onto scaffolds. The scaffold attempts to mimic the function of the natural extracellular matrix, providing a temporary template for the growth of target tissues. Scaffolds should have suitable architecture and strength to serve their intended function. This paper presents a comprehensive review of the fabrication methods, including conventional, mainly manual, techniques and advanced processing methods such as rapid prototyping (RP) techniques. The potential and challenges of scaffold-based technology are discussed from the perspective of RP technology.

Animals↗