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Keya Ganguly

Researcher at Kangwon National University

Publications -  26
Citations -  487

Keya Ganguly is an academic researcher from Kangwon National University. The author has contributed to research in topics: Tissue engineering & Self-healing hydrogels. The author has an hindex of 6, co-authored 26 publications receiving 117 citations. Previous affiliations of Keya Ganguly include Chonnam National University.

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3D-printed bioactive and biodegradable hydrogel scaffolds of alginate/gelatin/cellulose nanocrystals for tissue engineering.

TL;DR: 3D-printed hybrid biodegradable hydrogels composed of alginate, gelatin, and cellulose nanocrystals were prepared to provide a favorable environment for cell proliferation, adhesion, nutrients exchange, and matrix mineralization for bone tissue engineering applications and have the potential to explore as a biomaterial for tissue engineering.
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Bioactive electrospun nanocomposite scaffolds of poly(lactic acid)/cellulose nanocrystals for bone tissue engineering.

TL;DR: The fabricated scaffold demonstrated excellent biocompatibility and superior osteoinductivity, therefore, the fabricated scaffolds possess potential to be used as a biomaterial for tissue engineering applications.
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Nanocellulose, a versatile platform: From the delivery of active molecules to tissue engineering applications.

TL;DR: This review highlights the fabrication of different surface-modified nanocellulose to deliver active molecules, such as drugs, proteins, and plasmids, and its composites in tissue engineering.
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Carbon Nanotubes-Based Nanomaterials and Their Agricultural and Biotechnological Applications.

TL;DR: This review paper highlighted some recent development on electrochemical platforms over single-Walled CNTs (SWCNTs), multi-walled C NTs (MWC NTs), and nanocomposites as a promising biomaterial in the field of agriculture and biotechnology.
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Multifunctional bioactive chitosan/cellulose nanocrystal scaffolds eradicate bacterial growth and sustain drug delivery.

TL;DR: In this paper, a multi-functional hydrogel scaffold of chitosan/CNCs was fabricated by incorporating different amounts of CNCs into a CH.