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ORIGINAL ARTICLE

Electrospun Polycaprolactone/lignin-based Nanocomposite as a Novel Tissue Scaffold for Biomedical Applications

Salami Mohammad Ali, Kaveian Faranak, Rafienia Mohammad, Saber-Samandari Saeed, Khandan Amirsalar, Naeimi Mitra

Year : 2017| Volume: 7| Issue : 4 | Page no: 228-238

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Bioresource Technology Reports. 2023; 22: 101463
[Pubmed]  [Google Scholar] [DOI]
2 Influence of reaction conditions on synthesis and applications of lignin nanoparticles derived from agricultural wastes
Shalma S., Asma Musfira Shabbirahmed, Dibyajyoti Haldar, Anil Kumar Patel, Reeta Rani Singhania
Environmental Technology & Innovation. 2023; 31: 103163
[Pubmed]  [Google Scholar] [DOI]
3 Recent advancements in polymer matrix nanocomposites for bone tissue engineering applications
Suresh Sagadevan, Romana Schirhagl, Md Zillur Rahman, Muhamad Fareez Bin Ismail, J. Anita Lett, Is Fatimah, Noor Haida Mohd Kaus, Won-Chun Oh
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[Pubmed]  [Google Scholar] [DOI]
4 Lignin-based nanomaterials for food and pharmaceutical applications: Recent trends and future outlook
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Science of The Total Environment. 2023; 881: 163316
[Pubmed]  [Google Scholar] [DOI]
5 Cytocompatibility of MG-63 osteosarcoma cells on chitosan/hydroxyapatite/lignin hybrid composite scaffold in vitro
Heba Kandil, Basma Ekram, Mona A M Abo-Zeid
Biomedical Materials. 2023; 18(1): 015002
[Pubmed]  [Google Scholar] [DOI]
6 Designing Lignin-Based Biomaterials as Carriers of Bioactive Molecules
Turdimuhammad Abdullah, Gülmire Ilyasoglu, Adnan Memic
Pharmaceutics. 2023; 15(4): 1114
[Pubmed]  [Google Scholar] [DOI]
7 Nature-Derived and Synthetic Additives to poly(?-Caprolactone) Nanofibrous Systems for Biomedicine; an Updated Overview
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Frontiers in Chemistry. 2022; 9
[Pubmed]  [Google Scholar] [DOI]
8 Lignin-Based Porous Biomaterials for Medical and Pharmaceutical Applications
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Biomedicines. 2022; 10(4): 747
[Pubmed]  [Google Scholar] [DOI]
9 Optimization and characterization of polyhydroxybutyrate/lignin electro-spun scaffolds for tissue engineering applications
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International Journal of Biological Macromolecules. 2022; 218: 317
[Pubmed]  [Google Scholar] [DOI]
10 Application of lignin and lignin-based composites in different tissue engineering fields
Yuqi Liu, Xucai Wang, Qiming Wu, Wenhui Pei, Miou Jing Teo, Zhefan Stephen Chen, Caoxing Huang
International Journal of Biological Macromolecules. 2022; 222: 994
[Pubmed]  [Google Scholar] [DOI]
11 Fabrication and finite element simulation of antibacterial 3D printed Poly L-lactic acid scaffolds coated with alginate/magnesium oxide for bone tissue regeneration
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International Journal of Biological Macromolecules. 2022;
[Pubmed]  [Google Scholar] [DOI]
12 Recent progress in multifunctional conjugated polymer nanomaterial-based synergistic combination phototherapy for microbial infection theranostics
Panchanathan Manivasagan, Jungbae Kim, Eue-Soon Jang
Coordination Chemistry Reviews. 2022; 470: 214701
[Pubmed]  [Google Scholar] [DOI]
13 Characterization of a nanocomposite scaffold and assessment of its osteogenic influence in a rabbit mandibular bone defect model
Eman Hany, Noha El-Wassefy, Sarah Yahia, Mazen Abou Elkhier, Ibrahim El-Sherbiny
Journal of Oral and Maxillofacial Surgery, Medicine, and Pathology. 2022;
[Pubmed]  [Google Scholar] [DOI]
14 Lignin-g-polycaprolactone as a form-stable phase change material for thermal energy storage application
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Journal of Energy Storage. 2022; 56: 106118
[Pubmed]  [Google Scholar] [DOI]
15 Shape memory poly (glycerol sebacate)-based electrospun fiber scaffolds for tissue engineering applications: A review
Zulaikha Zulkifli, Jun Jie Tan, Ku Ishak Ku Marsilla, Arjulizan Rusli, Muhammad Khalil Abdullah, Raa Khimi Shuib, Mohamad Danial Shafiq, Zuratul Ain Abdul Hamid
Journal of Applied Polymer Science. 2022; : 52272
[Pubmed]  [Google Scholar] [DOI]
16 Reactive Oxygen Species Suppressive Kraft Lignin-Gelatin Antioxidant Hydrogels for Chronic Wound Repair
Byulhana Kim, Young Kim, Yoonho Lee, Joomin Oh, Youngmee Jung, Won-Gun Koh, Justin J. Chung
Macromolecular Bioscience. 2022; : 2200234
[Pubmed]  [Google Scholar] [DOI]
17 Photoassisted degradation of rhodamine B using poly( e -caprolactone) based nanocomposites: Mechanistic and kinetic features
Eldho Elias,C. Sarathchandran,Saju Joseph,Ajesh K. Zachariah,Jince Thomas,Dineep Devadasan,Fernando G. Souza,Sabu Thomas
Journal of Applied Polymer Science. 2021; : 50612
[Pubmed]  [Google Scholar] [DOI]
18 Co-electrospinning of lignocellulosic nanoparticles synthesized from walnut shells with poly(caprolactone) and gelatin for tissue engineering applications
Melika Sharahi,Ahmad Hivechi,S. Hajir Bahrami,Nahid Hemmatinejad,Peiman B. Milan
Cellulose. 2021;
[Pubmed]  [Google Scholar] [DOI]
19 A Porous Sodium Alginate-CaSiO3 Polymer Reinforced with Graphene Nanosheet: Fabrication and Optimality Analysis
Shahin Foroutan,Mohammad Hashemian,Mehdi Khosravi,Mazyar Ghadiri Nejad,Azadeh Asefnejad,Saeed Saber-Samandari,Amirsalar Khandan
Fibers and Polymers. 2021;
[Pubmed]  [Google Scholar] [DOI]
20 Effect of hexagonal structure nanoparticles on the morphological performance of the ceramic scaffold using analytical oscillation response
Ashkan Farazin,Saeid Sahmani,Maryam Soleimani,Amin Kolooshani,Saeed Saber-Samandari,Amirsalar Khandan
Ceramics International. 2021;
[Pubmed]  [Google Scholar] [DOI]
21 Bioprinting of three-dimensional scaffold based on alginate-gelatin as soft and hard tissue regeneration
Pedram Iranmanesh,Mohammad Gowdini,Abbasali Khademi,Mohammad Dehghani,Mehran Latifi,Naif Alsaadi,Mehran Hemati,Ramin Mohammadi,Saeed Saber-Samandari,Davood Toghraie,Afrasyab Khan
Journal of Materials Research and Technology. 2021;
[Pubmed]  [Google Scholar] [DOI]
22 Properties and Characterization of Lignin Nanoparticles Functionalized in Macroalgae Biopolymer Films
Samsul Rizal,Tata Alfatah,Abdul H. P. S.,E. Mistar,C. Abdullah,Funmilayo Olaiya,F. Sabaruddin,F. Ikramullah,Umar Muksin
Nanomaterials. 2021; 11(3): 637
[Pubmed]  [Google Scholar] [DOI]
23 Advanced and versatile lignin-derived biodegradable composite film materials toward a sustainable world
Han-Min Wang,Tong-Qi Yuan,Guo-Yong Song,Run-Cang Sun
Green Chemistry. 2021;
[Pubmed]  [Google Scholar] [DOI]
24 Lignin: Drug/Gene Delivery and Tissue Engineering Applications
Raj Kumar,Arun Butreddy,Nagavendra Kommineni,Pulikanti Guruprasad Reddy,Naveen Bunekar,Chandrani Sarkar,Sunil Dutt,Vivek K Mishra,Keshaw Ram Aadil,Yogendra Kumar Mishra,David Oupicky,Ajeet Kaushik
International Journal of Nanomedicine. 2021; Volume 16: 2419
[Pubmed]  [Google Scholar] [DOI]
25 Salt sensitivity of low solid content bentonite suspension as influenced by lignocellulosic nanomaterial and polyanionic cellulose
Meen S. Koo, Danbee Lee, Sunyoung Lee, Martin A. Hubbe, Qinglin Wu
MRS Communications. 2021;
[Pubmed]  [Google Scholar] [DOI]
26 Biomedical Applications of Electrospun Graphene Oxide
Jamie J. Grant,Suresh C. Pillai,Sarah Hehir,Marion McAfee,Ailish Breen
ACS Biomaterials Science & Engineering. 2021;
[Pubmed]  [Google Scholar] [DOI]
27 Improved procedure for electro-spinning and carbonisation of neat solvent-fractionated softwood Kraft lignin
Inam Khan,Bongkot Hararak,Gerard F. Fernando
Scientific Reports. 2021; 11(1)
[Pubmed]  [Google Scholar] [DOI]
28 Mechanical, microstructural properties and cell adhesion of Sr/Se-hydroxyapatite/graphene/polycaprolactone nanofibers
Reem Al-Wafi,SF Mansour,MK Ahmed
Journal of Thermoplastic Composite Materials. 2021; 34(4): 536
[Pubmed]  [Google Scholar] [DOI]
29 Validation of a novel reconstruction method of laparoscopic gastrectomy for proximal early gastric cancer: a systematic review and meta-analysis
Yixin Xu,Jie Gao,Yibo Wang,Yulin Tan,Cheng Xi,Nianyuan Ye,Dapeng Wu,Xuezhong Xu
World Journal of Surgical Oncology. 2020; 18(1)
[Pubmed]  [Google Scholar] [DOI]
30 Plant celluloses, hemicelluloses, lignins, and volatile oils for the synthesis of nanoparticles and nanostructured materials
Ahmed Barhoum,Jaison Jeevanandam,Amit Rastogi,Pieter Samyn,Yaman Boluk,Alain Dufresne,Michael K. Danquah,Mikhael Bechelany
Nanoscale. 2020;
[Pubmed]  [Google Scholar] [DOI]
31 Refining the Properties of Softwood Kraft Lignin with Acetone: Effect of Solvent Fractionation on the Thermomechanical Behavior of Electrospun Fibers
Muzaffer A. Karaaslan,MiJung Cho,Li-Yang Liu,Han Wang,Scott Renneckar
ACS Sustainable Chemistry & Engineering. 2020;
[Pubmed]  [Google Scholar] [DOI]
32

Electrospun Fibers Immobilized with BMP-2 Mediated by Polydopamine Combined with Autogenous Tendon to Repair Developmental Dysplasia of the Hip in a Porcine Model

Ruiqi Wu,Guanying Gao,Yan Xu
International Journal of Nanomedicine. 2020; Volume 15: 6563
[Pubmed]  [Google Scholar] [DOI]
33 Synthesis and Characterization of Lignin-grafted-poly(e-caprolactone) from Different Biomass Sources
Mi Li,Yunqiao Pu,Fang Chen,Arthur J. Ragauskas
New Biotechnology. 2020;
[Pubmed]  [Google Scholar] [DOI]
34 Lignin based Nano-composites: Synthesis and Applications
Parvathy G,Sethulekshmi AS,Jitha S Jayan,Akhila Raman,Appukuttan Saritha
Process Safety and Environmental Protection. 2020;
[Pubmed]  [Google Scholar] [DOI]
35 Technological advancement in the synthesis and applications of lignin-based nanoparticles derived from agro-industrial waste residues: A review
Prangan Duarah,Dibyajyoti Haldar,Mihir Kumar Purkait
International Journal of Biological Macromolecules. 2020;
[Pubmed]  [Google Scholar] [DOI]
36 Towards lignin derived thermoplastic polymers
Mahesh Parit,Zhihua Jiang
International Journal of Biological Macromolecules. 2020; 165: 3180
[Pubmed]  [Google Scholar] [DOI]
37 Improvement in osseointegration of tricalcium phosphate-zircon for orthopedic applications: an in vitro and in vivo evaluation
Abolfazl Bagherifard,Hamed Joneidi Yekta,Hossein Akbari Aghdam,Mehdi Motififard,Ehsan Sanatizadeh,Mazyar Ghadiri Nejad,Saeid Esmaeili,Saeed Saber-Samandari,Erfan Sheikhbahaei,Amirsalar Khandan
Medical & Biological Engineering & Computing. 2020;
[Pubmed]  [Google Scholar] [DOI]
38 Design and fabrication of poly (glycerol sebacate)-based fibers for neural tissue engineering: Synthesis, electrospinning, and characterization
Ahmad Saudi,Mohammad Rafienia,Anousheh Zargar Kharazi,Hossein Salehi,Ali Zarrabi,Mehdi Karevan
Polymers for Advanced Technologies. 2019; 30(6): 1427
[Pubmed]  [Google Scholar] [DOI]
39 A porous polymeric–hydroxyapatite scaffold used for femur fractures treatment: fabrication, analysis, and simulation
Saeid Esmaeili,Hossein Akbari Aghdam,Mehdi Motififard,Saeed Saber-Samandari,Amir Hussein Montazeran,Mohammad Bigonah,Erfan Sheikhbahaei,Amirsalar Khandan
European Journal of Orthopaedic Surgery & Traumatology. 2019;
[Pubmed]  [Google Scholar] [DOI]
40 Implantable and degradable antioxidant poly(e-caprolactone)-lignin nanofiber membrane for effective osteoarthritis treatment
Ruiming Liang,Jinmin Zhao,Bo Li,Peian Cai,Xian Jun Loh,Chuanhui Xu,Peng Chen,Dan Kai,Li Zheng
Biomaterials. 2019; : 119601
[Pubmed]  [Google Scholar] [DOI]
41 Preparation of novel porous calcium silicate scaffold loaded by celecoxib drug using freeze drying technique: Fabrication, characterization and simulation
Alireza Kordjamshidi,Saeed Saber-Samandari,Mazyar Ghadiri Nejad,Amirsalar Khandan
Ceramics International. 2019; 45(11): 14126
[Pubmed]  [Google Scholar] [DOI]
42 “Tree to Bone”: Lignin/Polycaprolactone Nanofibers for Hydroxyapatite Biomineralization
Ding Wang,Jinhyeong Jang,Kayoung Kim,Jinhyun Kim,Chan Beum Park
Biomacromolecules. 2019; 20(7): 2684
[Pubmed]  [Google Scholar] [DOI]
43 Fabrication of gelatin/hydroxyapatite/3D-graphene scaffolds by a hydrogel 3D-printing method
Hassan Nosrati,Rasoul Sarraf Mamoory,Dang Quang Svend Le,Cody Eric Bünger
Materials Chemistry and Physics. 2019; : 122305
[Pubmed]  [Google Scholar] [DOI]
44 Promoting neural cell proliferation and differentiation by incorporating lignin into electrospun poly(vinyl alcohol) and poly(glycerol sebacate) fibers
Ahmad Saudi,Shahram Amini,Noushin Amirpour,Mohammad Kazemi,Anousheh Zargar Kharazi,Hossein Salehi,Mohammad Rafienia
Materials Science and Engineering: C. 2019; 104: 110005
[Pubmed]  [Google Scholar] [DOI]
45 Honeycomb blocks composed of carbonate apatite, ß-tricalcium phosphate, and hydroxyapatite for bone regeneration: effects of composition on biological responses
Koichiro Hayashi,Ryo Kishida,Akira Tsuchiya,Kunio Ishikawa
Materials Today Bio. 2019; : 100031
[Pubmed]  [Google Scholar] [DOI]
46 Effect of copper oxide nanoparticles on electrical conductivity and cell viability of calcium phosphate scaffolds with improved mechanical strength for bone tissue engineering
S. Sahmani,M. Shahali,M. Ghadiri Nejad,A. Khandan,M. M. Aghdam,S. Saber-Samandari
The European Physical Journal Plus. 2019; 134(1)
[Pubmed]  [Google Scholar] [DOI]
47 Improving anti thrombogenicity of nanofibrous polycaprolactone through surface modification
Kavoos Razmjooee,Saeed Saber-Samandari,Hamid Keshvari,Sara Ahmadi
Journal of Biomaterials Applications. 2019; 34(3): 408
[Pubmed]  [Google Scholar] [DOI]
48 3D printing-based Ganz approach for treatment of femoral head fractures: a prospective analysis
Jinwu Wang,Leyi Cai,Linzhen Xie,Hua Chen,Xiaoshan Guo,Kehe Yu
Journal of Orthopaedic Surgery and Research. 2019; 14(1)
[Pubmed]  [Google Scholar] [DOI]
49 Effect of process variations of polycaprolactone modification on wood durability, dimensional stability and boron leaching
Mahmut Ali Ermeydan,Zeynep Nur Kartal,Eylem D. Tomak
Holzforschung. 2019; 73(9): 847
[Pubmed]  [Google Scholar] [DOI]
50 Design, characterization and preliminary biological evaluation of new lignin-PLA biocomposites
Iuliana Spiridon,Constantin Edi Tanase
International Journal of Biological Macromolecules. 2018; 114: 855
[Pubmed]  [Google Scholar] [DOI]
51 Mechanical and biological performance of axially loaded novel bio-nanocomposite sandwich plate-type implant coated by biological polymer thin film
S. Sahmani,S. Saber-Samandari,M. Shahali,H. Joneidi Yekta,F. Aghadavoudi,A.H. Montazeran,M.M. Aghdam,A. Khandan
Journal of the Mechanical Behavior of Biomedical Materials. 2018; 88: 238
[Pubmed]  [Google Scholar] [DOI]
52 Analytical and experimental analyses for mechanical and biological characteristics of novel nanoclay bio-nanocomposite scaffolds fabricated via space holder technique
S. Sahmani,M. Shahali,A. Khandan,S. Saber-Samandari,M.M. Aghdam
Applied Clay Science. 2018; 165: 112
[Pubmed]  [Google Scholar] [DOI]
53 Nonlinear Resonance Response of Porous Beam-Type Implants Corresponding to Various Morphology Shapes for Bone Tissue Engineering Applications
S. Sahmani,S. Saber-Samandari,M. M. Aghdam,A. Khandan
Journal of Materials Engineering and Performance. 2018; 27(10): 5370
[Pubmed]  [Google Scholar] [DOI]
54 Fabrication of LaCl3-containing nanofiber scaffolds and their application in skin wound healing
Fei Guo,Huiqing Zhang,Guosheng Qiu,Huijun Zuo,Gangquan Chen,Yuanlei Lou,Dinghong Min,Guanghua Guo
Journal of Applied Polymer Science. 2018; 135(36): 46672
[Pubmed]  [Google Scholar] [DOI]

 

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