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Materials Science & Engineering. C, Materials for Biological Applications|October 8, 2013
Universal method for protein bioconjugation with nanocellulose scaffolds for increased cell adhesionVolodymyr Kuzmenko, Sanna Sämfors, Daniel Hägg, et al.Carbohydrate Polymers|February 11, 2014
In situ forming spruce xylan-based hydrogel for cell immobilizationVolodymyr Kuzmenko, Daniel Hägg, Guillermo Toriz, et al.Carbohydrate Polymers|March 28, 2018
Tailor-made conductive inks from cellulose nanofibrils for 3D printing of neural guidelinesVolodymyr Kuzmenko, Erdem Karabulut, Elin Pernevik, et al.Artificial Cells, Nanomedicine, and Biotechnology|July 31, 2013
3D culturing and differentiation of SH-SY5Y neuroblastoma cells on bacterial nanocellulose scaffoldsMarcus Innala, Ilse Riebe, Volodymyr Kuzmenko, et al.Materials Science & Engineering. C, Materials for Biological Applications|October 20, 2015
Enhanced growth of neural networks on conductive cellulose-derived nanofibrous scaffoldsVolodymyr Kuzmenko, Theodoros Kalogeropoulos, Johannes Thunberg, et al.Cells|March 15, 2020
3D Printed Conductive Nanocellulose Scaffolds for the Differentiation of Human Neuroblastoma CellsMatteo Bordoni, Erdem Karabulut, Volodymyr Kuzmenko, et al.Biomaterials Advances|June 26, 2026
Controlling renal epithelial cell behavior by tuning the mechanical and biological characteristics of bioinksIsabelle Schmidt, Ellena Fuhrmann, Elin Pernevik, et al.Journal of Cardiovascular Electrophysiology|September 23, 2020
Injectable conductive hydrogel restores conduction through ablated myocardiumMartin van Zyl, Dawn M Pedrotty, Erdem Karabulut, et al.Advanced Science (Weinheim, Baden-Wurttemberg, Germany)|March 22, 2024
Bioprinting Soft 3D Models of Hematopoiesis using Natural Silk Fibroin-Based Bioink Efficiently Supports Platelet DifferentiationChristian Andrea Di Buduo, Marco Lunghi, Volodymyr Kuzmenko, et al.Pageof 1