Wet-electrospinning of nanofibrous magnetic composite 3-D scaffolds for enhanced stem cells neural differentiation

被引:25
作者
Bakhtiary, Negar [1 ]
Pezeshki-Modaress, Mohamad [2 ]
Najmoddin, Najmeh [1 ]
机构
[1] Islamic Azad Univ, Dept Biomed Engn, Sci & Res Branch, Tehran, Iran
[2] Iran Univ Med Sci, Burn Res Ctr, Tehran, Iran
关键词
Nanocomposites; Nanofibers; Neural differentiation; Magnetically guidance scaffold fabrication; Iron oxide nanoparticles; IRON-OXIDE NANOPARTICLES; TISSUE; FABRICATION; STIMULATION; FIBERS; SYSTEM; FIELD;
D O I
10.1016/j.ces.2022.118144
中图分类号
TQ [化学工业];
学科分类号
0817 ;
摘要
Electrospinning, as an interestingly popular method, generates fibrous scaffolds and mimics extracellular matrices. Low cellular penetration between fibers of electrospun scaffolds due to the high packing density and small interfibrillar pore size is a big challenge. This study represents a facile and versatile strategy for preparing a three-dimensional (3D) polycaprolactone (PCL)/gelatin/iron oxide nanofibrous scaffold using a magnetically assisted wet-electrospinning process. In this method, a non-contact magnetic force with various intensities (0, 250, 300, 350, and 500 mT) is utilized to assemble fibers so that the interconnec-tivity and mechanical integrity of the 3D scaffolds are preserved. The morphology of magnetic constructs, as well as pore structure, is verified by scanning electron microscopy. Both wet-electrospun 350 mT and 500 mT scaffolds show good mechanical stability, biodegradability, optimal porosity, and high phosphate buffer solution (PBS) absorption. The results of cell culture studies further reveal that wet-electrospun 350 mT scaffolds exhibit higher cell proliferation, attachment and infiltration than 500 mT scaffolds. Moreover, wet-electrospun 350 mT scaffolds accelerate neural differentiation of olfactory ecto-mesenchymal stem cells (OE-MSCs). These results show that the wet-electrospun 3D nanofibrous scaf-fold fabricated under an external magnetic field with desirable shape and tunable density can be readily fabricated for neural tissue engineering applications.(c) 2022 Elsevier Ltd. All rights reserved.
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页数:14
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共 88 条
[1]   The Measurement and Mathematical Analysis of 5-Fu Release from Magnetic Polymeric Nanocapsules, Following the Application of Ultrasound [J].
Abed, Ziaeddin ;
Khoei, Samideh ;
Ghalandari, Behafarid ;
Beik, Jaber ;
Shakeri-Zadeh, Ali ;
Ghaznavi, Habib ;
Shiran, Mohammad-Bagher .
ANTI-CANCER AGENTS IN MEDICINAL CHEMISTRY, 2018, 18 (03) :438-449
[2]   Influence of pore sizes in 3D-scaffolds on mechanical properties of scaffolds and survival, distribution, and proliferation of human chondrocytes [J].
Abpeikar, Zahra ;
Milan, Peiman Brouki ;
Moradi, Lida ;
Anjomshoa, Maryam ;
Asadpour, Shiva .
MECHANICS OF ADVANCED MATERIALS AND STRUCTURES, 2022, 29 (26) :4911-4922
[3]   Gelatin-polysaccharide composite scaffolds for 3D cell culture and tissue engineering: Towards natural therapeutics [J].
Afewerki, Samson ;
Sheikhi, Amir ;
Kannan, Soundarapandian ;
Ahadian, Samad ;
Khademhosseini, Ali .
BIOENGINEERING & TRANSLATIONAL MEDICINE, 2019, 4 (01) :96-115
[4]   Biphasic, tough composite core/shell PCL/PVA-GEL nanofibers for biomedical application [J].
Akbarzadeh, Mohadeseh ;
Pezeshki-Modaress, Mohamad ;
Zandi, Mojgan .
JOURNAL OF APPLIED POLYMER SCIENCE, 2020, 137 (21)
[5]   Zinc oxide surface-functionalized PCL/graphene oxide scaffold: enhanced mechanical and antibacterial properties [J].
Akhigan, Niloofar ;
Najmoddin, Najmeh ;
Azizi, Hamed ;
Mohammadi, Mohsen .
INTERNATIONAL JOURNAL OF POLYMERIC MATERIALS AND POLYMERIC BIOMATERIALS, 2023, 72 (18) :1423-1433
[6]   Progress in the Advancement of Porous Biopolymer Scaffold: Tissue Engineering Application [J].
Ambekar, Rushikesh S. ;
Kandasubramanian, Balasubramanian .
INDUSTRIAL & ENGINEERING CHEMISTRY RESEARCH, 2019, 58 (16) :6163-6194
[7]   Conductive hydrogel based on chitosan-aniline pentamer/gelatin/agarose significantly promoted motor neuron-like cells differentiation of human olfactory ecto-mesenchymal stem cells [J].
Bagher, Zohreh ;
Atoufi, Zhaleh ;
Alizadeh, Rafieh ;
Farhadi, Mohammad ;
Zarrintaj, Payam ;
Moroni, Lorenzo ;
Setayeshmehr, Mohsen ;
Komeili, Ali ;
Kamrava, S. Kamran .
MATERIALS SCIENCE AND ENGINEERING C-MATERIALS FOR BIOLOGICAL APPLICATIONS, 2019, 101 :243-253
[8]   Differentiation of neural crest stem cells from nasal mucosa into motor neuron-like cells [J].
Bagher, Zohreh ;
Kamrava, Seyed Kamran ;
Alizadeh, Rafieh ;
Farhadi, Mohammad ;
Absalan, Moloud ;
Falah, Masoumeh ;
Faghih, Faezeh ;
Zare-Sadeghi, Arash ;
Komeili, Ali .
JOURNAL OF CHEMICAL NEUROANATOMY, 2018, 92 :35-40
[9]   Bioactive Inks Development for Osteochondral Tissue Engineering: A Mini-Review [J].
Bakhtiary, Negar ;
Liu, Chaozong ;
Ghorbani, Farnaz .
GELS, 2021, 7 (04)
[10]   Bead-free and tough electrospun PCL/gelatin/PGS ternary nanofibrous scaffolds for tissue engineering application [J].
Behtouei, Ebrahim ;
Zandi, Mojgan ;
Askari, Fahimeh ;
Daemi, Hamed ;
Zamanlui, Soheila ;
Arabsorkhi-Mishabi, Amirhesam ;
Pezeshki-Modaress, Mohamad .
JOURNAL OF APPLIED POLYMER SCIENCE, 2022, 139 (02)