Cargando…

Development of Polymeric Nanocomposite (Xyloglucan-co-Methacrylic Acid/Hydroxyapatite/SiO(2)) Scaffold for Bone Tissue Engineering Applications—In-Vitro Antibacterial, Cytotoxicity and Cell Culture Evaluation

Advancement and innovation in bone regeneration, specifically polymeric composite scaffolds, are of high significance for the treatment of bone defects. Xyloglucan (XG) is a polysaccharide biopolymer having a wide variety of regenerative tissue therapeutic applications due to its biocompatibility, i...

Descripción completa

Detalles Bibliográficos
Autores principales: Aslam Khan, Muhammad Umar, Mehboob, Hassan, Abd Razak, Saiful Izwan, Yahya, Mohd Yazid, Mohd Yusof, Abdul Halim, Ramlee, Muhammad Hanif, Sahaya Anand, T. Joseph, Hassan, Rozita, Aziz, Athar, Amin, Rashid
Formato: Online Artículo Texto
Lenguaje:English
Publicado: MDPI 2020
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC7361677/
https://www.ncbi.nlm.nih.gov/pubmed/32485926
http://dx.doi.org/10.3390/polym12061238
_version_ 1783559391081922560
author Aslam Khan, Muhammad Umar
Mehboob, Hassan
Abd Razak, Saiful Izwan
Yahya, Mohd Yazid
Mohd Yusof, Abdul Halim
Ramlee, Muhammad Hanif
Sahaya Anand, T. Joseph
Hassan, Rozita
Aziz, Athar
Amin, Rashid
author_facet Aslam Khan, Muhammad Umar
Mehboob, Hassan
Abd Razak, Saiful Izwan
Yahya, Mohd Yazid
Mohd Yusof, Abdul Halim
Ramlee, Muhammad Hanif
Sahaya Anand, T. Joseph
Hassan, Rozita
Aziz, Athar
Amin, Rashid
author_sort Aslam Khan, Muhammad Umar
collection PubMed
description Advancement and innovation in bone regeneration, specifically polymeric composite scaffolds, are of high significance for the treatment of bone defects. Xyloglucan (XG) is a polysaccharide biopolymer having a wide variety of regenerative tissue therapeutic applications due to its biocompatibility, in-vitro degradation and cytocompatibility. Current research is focused on the fabrication of polymeric bioactive scaffolds by freeze drying method for nanocomposite materials. The nanocomposite materials have been synthesized from free radical polymerization using n-SiO(2) and n-HAp XG and Methacrylic acid (MAAc). Functional group analysis, crystallinity and surface morphology were investigated by Fourier transform infrared spectroscopy (FTIR), X-ray diffraction analysis (XRD) and scanning electron microscopy (SEM) techniques, respectively. These bioactive polymeric scaffolds presented interconnected and well-organized porous morphology, controlled precisely by substantial ratios of n-SiO(2). The swelling analysis was also performed in different media at varying temperatures (27, 37 and 47 °C) and the mechanical behavior of the dried scaffolds is also investigated. Antibacterial activities of these scaffolds were conducted against pathogenic gram-positive and gram-negative bacteria. Besides, the biological behavior of these scaffolds was evaluated by the Neutral Red dye assay against the MC3T3-E1 cell line. The scaffolds showed interesting properties for bone tissue engineering, including porosity with substantial mechanical strength, biodegradability, biocompatibility and cytocompatibility behavior. The reported polymeric bioactive scaffolds can be aspirant biomaterials for bone tissue engineering to regenerate defecated bone.
format Online
Article
Text
id pubmed-7361677
institution National Center for Biotechnology Information
language English
publishDate 2020
publisher MDPI
record_format MEDLINE/PubMed
spelling pubmed-73616772020-07-21 Development of Polymeric Nanocomposite (Xyloglucan-co-Methacrylic Acid/Hydroxyapatite/SiO(2)) Scaffold for Bone Tissue Engineering Applications—In-Vitro Antibacterial, Cytotoxicity and Cell Culture Evaluation Aslam Khan, Muhammad Umar Mehboob, Hassan Abd Razak, Saiful Izwan Yahya, Mohd Yazid Mohd Yusof, Abdul Halim Ramlee, Muhammad Hanif Sahaya Anand, T. Joseph Hassan, Rozita Aziz, Athar Amin, Rashid Polymers (Basel) Article Advancement and innovation in bone regeneration, specifically polymeric composite scaffolds, are of high significance for the treatment of bone defects. Xyloglucan (XG) is a polysaccharide biopolymer having a wide variety of regenerative tissue therapeutic applications due to its biocompatibility, in-vitro degradation and cytocompatibility. Current research is focused on the fabrication of polymeric bioactive scaffolds by freeze drying method for nanocomposite materials. The nanocomposite materials have been synthesized from free radical polymerization using n-SiO(2) and n-HAp XG and Methacrylic acid (MAAc). Functional group analysis, crystallinity and surface morphology were investigated by Fourier transform infrared spectroscopy (FTIR), X-ray diffraction analysis (XRD) and scanning electron microscopy (SEM) techniques, respectively. These bioactive polymeric scaffolds presented interconnected and well-organized porous morphology, controlled precisely by substantial ratios of n-SiO(2). The swelling analysis was also performed in different media at varying temperatures (27, 37 and 47 °C) and the mechanical behavior of the dried scaffolds is also investigated. Antibacterial activities of these scaffolds were conducted against pathogenic gram-positive and gram-negative bacteria. Besides, the biological behavior of these scaffolds was evaluated by the Neutral Red dye assay against the MC3T3-E1 cell line. The scaffolds showed interesting properties for bone tissue engineering, including porosity with substantial mechanical strength, biodegradability, biocompatibility and cytocompatibility behavior. The reported polymeric bioactive scaffolds can be aspirant biomaterials for bone tissue engineering to regenerate defecated bone. MDPI 2020-05-29 /pmc/articles/PMC7361677/ /pubmed/32485926 http://dx.doi.org/10.3390/polym12061238 Text en © 2020 by the authors. Licensee MDPI, Basel, Switzerland. This article is an open access article distributed under the terms and conditions of the Creative Commons Attribution (CC BY) license (http://creativecommons.org/licenses/by/4.0/).
spellingShingle Article
Aslam Khan, Muhammad Umar
Mehboob, Hassan
Abd Razak, Saiful Izwan
Yahya, Mohd Yazid
Mohd Yusof, Abdul Halim
Ramlee, Muhammad Hanif
Sahaya Anand, T. Joseph
Hassan, Rozita
Aziz, Athar
Amin, Rashid
Development of Polymeric Nanocomposite (Xyloglucan-co-Methacrylic Acid/Hydroxyapatite/SiO(2)) Scaffold for Bone Tissue Engineering Applications—In-Vitro Antibacterial, Cytotoxicity and Cell Culture Evaluation
title Development of Polymeric Nanocomposite (Xyloglucan-co-Methacrylic Acid/Hydroxyapatite/SiO(2)) Scaffold for Bone Tissue Engineering Applications—In-Vitro Antibacterial, Cytotoxicity and Cell Culture Evaluation
title_full Development of Polymeric Nanocomposite (Xyloglucan-co-Methacrylic Acid/Hydroxyapatite/SiO(2)) Scaffold for Bone Tissue Engineering Applications—In-Vitro Antibacterial, Cytotoxicity and Cell Culture Evaluation
title_fullStr Development of Polymeric Nanocomposite (Xyloglucan-co-Methacrylic Acid/Hydroxyapatite/SiO(2)) Scaffold for Bone Tissue Engineering Applications—In-Vitro Antibacterial, Cytotoxicity and Cell Culture Evaluation
title_full_unstemmed Development of Polymeric Nanocomposite (Xyloglucan-co-Methacrylic Acid/Hydroxyapatite/SiO(2)) Scaffold for Bone Tissue Engineering Applications—In-Vitro Antibacterial, Cytotoxicity and Cell Culture Evaluation
title_short Development of Polymeric Nanocomposite (Xyloglucan-co-Methacrylic Acid/Hydroxyapatite/SiO(2)) Scaffold for Bone Tissue Engineering Applications—In-Vitro Antibacterial, Cytotoxicity and Cell Culture Evaluation
title_sort development of polymeric nanocomposite (xyloglucan-co-methacrylic acid/hydroxyapatite/sio(2)) scaffold for bone tissue engineering applications—in-vitro antibacterial, cytotoxicity and cell culture evaluation
topic Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC7361677/
https://www.ncbi.nlm.nih.gov/pubmed/32485926
http://dx.doi.org/10.3390/polym12061238
work_keys_str_mv AT aslamkhanmuhammadumar developmentofpolymericnanocompositexyloglucancomethacrylicacidhydroxyapatitesio2scaffoldforbonetissueengineeringapplicationsinvitroantibacterialcytotoxicityandcellcultureevaluation
AT mehboobhassan developmentofpolymericnanocompositexyloglucancomethacrylicacidhydroxyapatitesio2scaffoldforbonetissueengineeringapplicationsinvitroantibacterialcytotoxicityandcellcultureevaluation
AT abdrazaksaifulizwan developmentofpolymericnanocompositexyloglucancomethacrylicacidhydroxyapatitesio2scaffoldforbonetissueengineeringapplicationsinvitroantibacterialcytotoxicityandcellcultureevaluation
AT yahyamohdyazid developmentofpolymericnanocompositexyloglucancomethacrylicacidhydroxyapatitesio2scaffoldforbonetissueengineeringapplicationsinvitroantibacterialcytotoxicityandcellcultureevaluation
AT mohdyusofabdulhalim developmentofpolymericnanocompositexyloglucancomethacrylicacidhydroxyapatitesio2scaffoldforbonetissueengineeringapplicationsinvitroantibacterialcytotoxicityandcellcultureevaluation
AT ramleemuhammadhanif developmentofpolymericnanocompositexyloglucancomethacrylicacidhydroxyapatitesio2scaffoldforbonetissueengineeringapplicationsinvitroantibacterialcytotoxicityandcellcultureevaluation
AT sahayaanandtjoseph developmentofpolymericnanocompositexyloglucancomethacrylicacidhydroxyapatitesio2scaffoldforbonetissueengineeringapplicationsinvitroantibacterialcytotoxicityandcellcultureevaluation
AT hassanrozita developmentofpolymericnanocompositexyloglucancomethacrylicacidhydroxyapatitesio2scaffoldforbonetissueengineeringapplicationsinvitroantibacterialcytotoxicityandcellcultureevaluation
AT azizathar developmentofpolymericnanocompositexyloglucancomethacrylicacidhydroxyapatitesio2scaffoldforbonetissueengineeringapplicationsinvitroantibacterialcytotoxicityandcellcultureevaluation
AT aminrashid developmentofpolymericnanocompositexyloglucancomethacrylicacidhydroxyapatitesio2scaffoldforbonetissueengineeringapplicationsinvitroantibacterialcytotoxicityandcellcultureevaluation