Title:
Poly(N-acryloylglycine-acrylamide) Hydrogel Mimics the Cellular Microenvironment and Promotes Neurite Growth with Protection from Oxidative Stress

dc.contributor.authorKirti Wasnik
dc.contributor.authorPrem Shankar Gupta
dc.contributor.authorSudip Mukherjee
dc.contributor.authorAlagu Oviya
dc.contributor.authorRavi Prakash
dc.contributor.authorDivya Pareek
dc.contributor.authorSukanya Patra
dc.contributor.authorSomedutta Maity
dc.contributor.authorVipin Rai
dc.contributor.authorMonika Singh
dc.contributor.authorGurmeet Singh
dc.contributor.authorDesh Deepak Yadav
dc.contributor.authorSantanu Das
dc.contributor.authorPralay Maiti
dc.contributor.authorPradip Paik
dc.date.accessioned2026-02-07T11:25:21Z
dc.date.issued2023
dc.description.abstractIn this work, the glycine-based acryloyl monomer is polymerized to obtain a neurogenic polymeric hydrogel for regenerative applications. The synthesized poly(N-acryloylglycine-acrylamide) [poly(NAG-b-A)] nanohydrogel exhibits high swelling (∼1500%) and is mechanically very stable, biocompatible, and proliferative in nature. The poly(NAG-b-A) nanohydrogel provides a stable 3D extracellular mimetic environment and promotes healthy neurite growth for primary cortical neurons by facilitating cellular adhesion, proliferation, actin filament stabilization, and neuronal differentiation. Furthermore, the protective role of the poly(NAG-b-A) hydrogel for the neurons in oxidative stress conditions is revealed and it is found that it is a clinically relevant material for neuronal regenerative applications, such as for promoting nerve regeneration via GSK3β inhibition. This hydrogel additionally plays an important role in modulating the biological microenvironment, either as an agonist and antagonist or as an antioxidant. Furthermore, it favors the physiological responses and eases the neurite growth efficiency. Additionally, we found out that the conversion of glycine-based acryloyl monomers into their corresponding polymer modulates the mechanical performance, mimics the cellular microenvironment, and accelerates the self-healing capability due to the responsive behavior towards reactive oxygen species (ROS). Thus, the p(NAG-b-A) hydrogel could be a potential candidate to induce neuronal regeneration since it provides a physical cue and significantly boosts neurite outgrowth and also maintains the microtubule integrity in neuronal cells. © 2023 American Chemical Society.
dc.identifier.doi10.1021/acsabm.3c00807
dc.identifier.issn25766422
dc.identifier.urihttps://doi.org/10.1021/acsabm.3c00807
dc.identifier.urihttps://dl.bhu.ac.in/bhuir/handle/123456789/43961
dc.publisherAmerican Chemical Society
dc.subjectglycine
dc.subjectN-acryloylglycine
dc.subjectneurite extension
dc.subjectneuron regeneration
dc.subjectneuroprotection
dc.subjectoxidative stress
dc.subjectpoly(NAG-b-A) nanohydrogel
dc.titlePoly(N-acryloylglycine-acrylamide) Hydrogel Mimics the Cellular Microenvironment and Promotes Neurite Growth with Protection from Oxidative Stress
dc.typePublication
dspace.entity.typeArticle

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