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Published on: May 22, 2014
Genetically engineered 3D printed functionally graded-lignin, starch, and cellulose-derived sustainable biopolymers
Aarthi S1, Raja Subramani1, Maher Ali Rusho2
1Center for Advanced Multidisciplinary Research and Innovation, Chennai Institute of Technology, Chennai 632014, Tamil Nadu, India.
Abstract:
The integration of plant biotechnology with Fused Deposition Modeling (FDM) is emerging as a transformative approach for sustainable manufacturing. This review explores the application of genetically engineered biopolymers including starch-based, cellulose-based, and lignin-derived materials in 3D printing. Recombinant DNA (rDNA) technology has significantly enhanced the properties of these biopolymers by improving mechanical strength, thermal stability, and printability, making them competitive alternatives to petroleum-based plastics. Machine learning-driven optimization strategies are also advancing the refinement of process parameters such as print speed, extrusion temperature, and material flow, which reduces material waste and energy consumption while improving product consistency. Despite these advances, challenges remain in scaling up production, ensuring material consistency, and balancing biodegradability with mechanical performance. This review highlights how innovations in genetic engineering and artificial intelligence can address these limitations. By combining functionally graded material design, machine learning-based optimization, and rDNA technology, this work provides a comprehensive framework to support the development of sustainable biopolymer-based additive manufacturing.

