Fabrication of 3D chitosan/polyvinyl alcohol/brushite nanofibrous scaffold for bone tissue engineering by electrospinning using a novel falling film collector

被引:3
|
作者
Sadeghi-Ghadikolaei, Mohsen [1 ]
Vasheghani-Farahani, Ebrahim [1 ]
Bagheri, Fatemeh [2 ]
Moghaddam, Alireza Khorrami [3 ]
Mellati, Amir [4 ]
Karimizade, Ayoob [4 ]
机构
[1] Tarbiat Modares Univ, Fac Chem Engn, Biomed Engn Div, Tehran, Iran
[2] Tarbiat Modares Univ, Fac Chem Engn, Biotechnol Dept, Tehran, Iran
[3] Mazandaran Univ Med Sci, Fac Paramed Sci, Radiol & Med Phys Dept, Sari, Iran
[4] Mazandaran Univ Med Sci, Sch Adv Technol Med, Tissue Engn & Regenerat Med Dept, Sari, Iran
关键词
Falling film electrospinning; Chitosan nanofiber; Wet chemical mineralization; AMORPHOUS CALCIUM-PHOSPHATE; OSTEOGENIC DIFFERENTIATION; TRIPOLYPHOSPHATE; HYDROLYSIS; FIBERS; MICRO; CELLS; LASER; SIZE;
D O I
10.1016/j.ijbiomac.2024.132874
中图分类号
Q5 [生物化学]; Q7 [分子生物学];
学科分类号
071010 ; 081704 ;
摘要
Despite its advantages, electrospinning has limited effectiveness in 3D scaffolding due to the high density of fibers it produces. In this research, a novel electrospinning collector was developed to overcome this constraint. An aqueous suspension containing chitosan/polyvinyl alcohol nanofibers was prepared employing a unique falling film collector. Suspension molding by freeze-drying resulted in a 3D nanofibrous scaffold (3D-NF). The mineralized scaffold was obtained by brushite deposition on 3D-NF using wet chemical mineralization by new sodium tripolyphosphate and calcium chloride dihydrate precursors. The 3D-NF was optimized and compared with the conventional electrospun 2D nanofibrous scaffold (2D-NF) and the 3D freeze-dried scaffold (3D-FD). Both minor fibrous and major freeze-dried pore shapes were present in 3D-NFs with sizes of 16.11-24.32 mu m and 97.64-234.41 mu m, respectively. The scaffolds' porosity increased by 53 % to 73 % compared to 2D-NFs. Besides thermal stability, mineralization improved the 3D-NF's ultimate strength and elastic modulus by 2.2 and 4.7 times, respectively. In vitro cell studies using rat bone marrow mesenchymal cells confirmed cell infiltration up to 290 mu m and scaffold biocompatibility. The 3D-NFs given nanofibers and brushite inclusion exhibited considerable osteoinductivity. Therefore, falling film collectors can potentially be applied to prepare 3D-NFs from electrospinning without post-processing.
引用
收藏
页数:18
相关论文
共 50 条
  • [21] 2D and 3D structured nanofibrous scaffolds by electrospinning/electrospraying for tissue engineering
    Hebraud, Anne
    Wittmer, Corinne R.
    Nedjari, Salima
    Ahirwal, Deepak
    Schlatter, Guy
    NART 2015-Nanofibers, Applications and Related Technologies, 2015, : 219 - 224
  • [22] Fabrication and characterisation of nanofibrous polyurethane scaffold incorporated with corn and neem oil using single stage electrospinning technique for bone tissue engineering applications
    Jaganathan, Saravana Kumar
    Mani, Mohan Prasath
    Palaniappan, Sathish Kumar
    Rathanasamy, Rajasekar
    JOURNAL OF POLYMER RESEARCH, 2018, 25 (07)
  • [23] Fabrication and characterisation of nanofibrous polyurethane scaffold incorporated with corn and neem oil using single stage electrospinning technique for bone tissue engineering applications
    Saravana Kumar Jaganathan
    Mohan Prasath Mani
    Sathish Kumar Palaniappan
    Rajasekar Rathanasamy
    Journal of Polymer Research, 2018, 25
  • [24] 3D conductive nanocomposite scaffold for bone tissue engineering
    Shahini, Aref
    Yazdimamaghani, Mostafa
    Walker, Kenneth J.
    Eastman, Margaret A.
    Hatami-Marbini, Hamed
    Smith, Brenda J.
    Ricci, John L.
    Madihally, Sundar V.
    Vashaee, Daryoosh
    Tayebi, Lobat
    INTERNATIONAL JOURNAL OF NANOMEDICINE, 2014, 9 : 167 - 181
  • [25] Biomimetic Nanofibrous 3D Materials for Craniofacial Bone Tissue Engineering
    Miszuk, Jacob M.
    Hu, Jue
    Sun, Hongli
    ACS APPLIED BIO MATERIALS, 2020, 3 (10) : 6538 - 6545
  • [26] 3D bioprinting scaffold using alginate/polyvinyl alcohol bioinks
    Luo, Yongxiang
    Luo, Guilin
    Gelinsky, Michael
    Huang, Peng
    Ruan, Changshun
    MATERIALS LETTERS, 2017, 189 : 295 - 298
  • [27] Fabrication and in vivo osteogenesis of biomimetic poly(propylene carbonate) scaffold with nanofibrous chitosan network in macropores for bone tissue engineering
    Zhao, Jianhao
    Han, Wanqing
    Chen, Haodong
    Tu, Mei
    Huan, Songwei
    Miao, Guiqiang
    Zeng, Rong
    Wu, Hao
    Cha, Zhengang
    Zhou, Changren
    JOURNAL OF MATERIALS SCIENCE-MATERIALS IN MEDICINE, 2012, 23 (02) : 517 - 525
  • [28] Fabrication and in vivo osteogenesis of biomimetic poly(propylene carbonate) scaffold with nanofibrous chitosan network in macropores for bone tissue engineering
    Jianhao Zhao
    Wanqing Han
    Haodong Chen
    Mei Tu
    Songwei Huan
    Guiqiang Miao
    Rong Zeng
    Hao Wu
    Zhengang Cha
    Changren Zhou
    Journal of Materials Science: Materials in Medicine, 2012, 23 : 517 - 525
  • [29] Fabrication of chitosan/poly(caprolactone) nanofibrous scaffold for bone and skin tissue engineering (vol 48, pg 571, 2011)
    Shalumon, K. T.
    Anulekha, K. H.
    Chennazhi, K. P.
    Tamura, H.
    Nair, S. V.
    Jayakumar, R.
    INTERNATIONAL JOURNAL OF BIOLOGICAL MACROMOLECULES, 2019, 134 : 1217 - 1217
  • [30] 3D MICRO-NANO FIBROUS SCAFFOLD PREPARED BY MELTBLOWN IN COMBINATION WITH ELECTROSPINNING FOR THE BONE TISSUE ENGINEERING
    Erben, Jakub
    Pilarova, Katerina
    Sanetrnik, Filip
    Chvojka, Jiri
    Jencova, Vera
    Blazkova, Lenka
    Havlicek, Jiri
    Novak, Ondrej
    Mikes, Petr
    Prosecka, Eva
    Lukas, David
    Kostakova, Eva
    NANOCON 2014, 6TH INTERNATIONAL CONFERENCE, 2015, : 541 - 545