Xue N, Ding X, Huang R, Jiang R, Huang H, Pan X, Min W, Chen J, Duan J-A, Liu P. Bone tissue engineering in the treatment of bone defects. Pharmaceuticals. 2022;15(7):879.
Zhu G, Zhang T, Chen M, Yao K, Huang X, Zhang B, Li Y, Liu J, Wang Y, Zhao Z. Bone physiological microenvironment and healing mechanism: basis for future bone-tissue engineering scaffolds. Bioactive Mater. 2021;6(11):4110–40.
Alonzo M, Primo FA, Kumar SA, Mudloff JA, Dominguez E, Fregoso G, Ortiz N, Weiss WM, Joddar B. Bone tissue engineering techniques, advances, and scaffolds for treatment of bone defects. Curr Opin Biomedical Eng. 2021;17:100248.
Ghorai SK, Roy T, Maji S, Ray PG, Sarkar K, Dutta A, De A, Bandyopadhyay S, Dhara S. Chattopadhyay. A judicious approach of exploiting polyurethane-urea based electrospun nanofibrous scaffold for stimulated bone tissue regeneration through functionally nobbled nanohydroxyapatite. Chem Eng J. 2022;429(1):132179.
Anjum S, Rahman F, Pandey P, Arya DK, Alam M, Rajinikanth PS, Ao Q. Electrospun biomimetic nanofibrous scaffolds: a promising prospect for bone tissue engineering and regenerative medicine. Int J Mol Sci. 2022;23(16):9206.
Zhao T, Zhang J, Gao X, Yuan D, Gu Z, Xu Y. Electrospun nanofibers for bone regeneration: from biomimetic composition, structure to function. J Mater Chem B. 2022;10(32):6078–106.
Lin W, Chen M, Qu T, Li J, Man Y. Three-dimensional electrospun nanofibrous scaffolds for bone tissue engineering. J Biomedical Mater Res Part B: Appl Biomaterials. 2020;108(4):1311–21.
Szewczyk PK, Metwally S, Karbowniczek JE, Marzec MM, Stodolak-Zych E, Gruszczyński A, Bernasik A, Stachewicz U. Surface-potential-controlled cell proliferation and collagen mineralization on electrospun polyvinylidene fluoride (PVDF) fiber scaffolds for bone regeneration. ACS Biomaterials Sci Eng. 2018;5(2):582–93.
Shitole AA, Raut PW, Sharma N, Giram P, Khandwekar AP, Garnaik B. Electrospun polycaprolactone/hydroxyapatite/zno nanofibers as potential biomaterials for bone tissue regeneration. J Mater Science: Mater Med. 2019;30:1–17.
Dwivedi R, Kumar S, Pandey R, Mahajan A, Nandana D, Katti DS, Mehrotra D. Polycaprolactone as biomaterial for bone scaffolds: review of literature. J Oral Biology Craniofac Res. 2020;10(1):381–8.
Siddiqui N, Kishori B, Rao S, Anjum M, Hemanth V, Das S, Jabbari E. Electropsun Polycaprolactone fibres in bone tissue engineering: a review. Mol Biotechnol. 2021;63:363–88.
Roy T, Maity PP, Rameshbabu AP, Das B, John A, Dutta A, Ghorai AK, Chattopadhyay S, Dhara S. Core-shell nanofibrous scaffold based on polycaprolactone-silk fibroin emulsion electrospinning for tissue engineering applications. Bioengineering. 2018;5(3):68.
Hu Y, Feng B, Zhang W, Yan C, Yao Q, Shao C, Yu F, Li F, Fu Y. Electrospun gelatin/pcl and collagen/pcl scaffolds for modulating responses of bone marrow endothelial progenitor cells. Experimental Therapeutic Med. 2019;17(5):3717–26.
Assanah F, Khan Y. Cell responses to physical forces, and how they inform the design of tissue-engineered constructs for bone repair: a review. J Mater Sci. 2018;53(8):5618–40.
Borciani G, Montalbano G, Baldini N, Cerqueni G, Vitale-Brovarone C, Ciapetti G. Co–culture systems of osteoblasts and osteoclasts: simulating in vitro bone remodeling in regenerative approaches. Acta Biomater. 2020;108:22–45.
Huang X, Das R, Patel A, Duc T, Nguyen. Physical stimulations for bone and cartilage regeneration. Regenerative Eng Translational Med. 2018;4:216–37.
Sadeghzadeh H, Dianat-Moghadam H, Del Bakhshayesh AR, Mohammadnejad D, Mehdipour A. A review on the effect of nanocomposite scaffolds reinforced with magnetic nanoparticles in osteogenesis and healing of bone injuries. Stem Cell Res Ther. 2023;14(1):194.
Ribeiro TP, Flores M, Madureira S, Zanotto F, Monteiro FJ, Laranjeira MS. Magnetic bone tissue engineering: reviewing the effects of magnetic stimulation on bone regeneration and angiogenesis. Pharmaceutics. 2023;15(4):1045.
Aliramaji S, Zamanian A, Mozafari M. Super-paramagnetic responsive silk fibroin/chitosan/magnetite scaffolds with tunable pore structures for bone tissue engineering applications. Mater Sci Engineering: C. 2017;70:736–44.
De Santis R, Russo A, Gloria A, D’Amora U, Russo T, Panseri S, Sandri M, Tampieri A, Marcacci M, Dediu VA. Towards the design of 3D fiber-deposited Poly (-caprolactone)/iron-doped hydroxyapatite nanocomposite magnetic scaffolds for bone regeneration. J Biomed Nanotechnol. 2015;11(7):1236–46.
Pham-Khanh NH, Huynh NQ. Green synthesis of zinc oxide microparticles using the leaf extract of Dolichandrone spathacea in sustainable agriculture: a new approach for protecting the legume plant (Vigna radiata) against the Cr (VI) stress. Asian J Agric Biol. 2024(3).
Alhaithloul HAS, Ali B, Alghanem SMS, Zulfiqar F, Al-Robai SA, Ercisli S, Yong JWH, Moosa A, Irfan E, Ali Q, Irshad MA. Efect of green-synthesized copper oxide nanoparticles on growth, physiology, nutrient uptake, and cadmium accumulation in Triticum aestivum (L). Ecotoxicol Environ Saf. 2023;268:115701.
Akhtar MS, Fiaz S, Aslam S, Chung S, Ditta A, Irshad MA, Al-Mohaimeed AM, Iqbal R, Al-Onazi WA, Rizwan M, Nakashima Y. Green synthesis of magnetite iron oxide nanoparticles using Azadirachta indica leaf extract loaded on reduced graphene oxide and degradation of methylene blue. Sci Rep. 2024;14(1):18172.
Younas M, Zubair M, Rizwan M, Khan MA, Hussaini KM, Mumtaz R, Azeem M, Abbas T, Irshad MA, Ali S. Synthesis and characterization of cerium, silver and copper oxide nanoparticles and their anticancer potential of hepatocellular carcinoma HepG2 cancer cells. J Mol Struct. 2023;1288:135756.
Kanagasubbulakshmi S, Kadirvelu K. Green synthesis of iron oxide nanoparticles using Lagenaria siceraria and evaluation of its antimicrobial activity defence. Life Sci J. 2017;2(4):422–7.
Wang N, Xie Y, Xi Z, Mi Z, Deng R, Liu X, Kang R, Liu X. Hope for bone regeneration: the versatility of iron oxide nanoparticles. Front Bioeng Biotechnol. 2022;10:937803.
Li Y, Huang L, Tai G, Yan F, Cai L, Xin C, Islam SA. Graphene Oxide-loaded magnetic nanoparticles within 3D hydrogel form High-performance scaffolds for bone regeneration and tumour treatment. Compos Part A: Appl Sci Manufac. 2022;152:106672.
Friedrich RP, Cicha I, Alexiou C. Iron oxide nanoparticles in regenerative medicine and tissue engineering. Nanomaterials. 2021;11(9):2337.
Gambhir RP, Rohiwal SS, Tiwari AP. Multifunctional surface functionalized magnetic iron oxide nanoparticles for biomedical applications: A review. Appl Surf Sci Adv. 2022;11:100303.
Lin Y, Zhang K, Zhang R, She Z, Tan R, Fan Y, Li X. Magnetic nanoparticles applied in targeted therapy and magnetic resonance imaging: crucial Preparation parameters, indispensable pre-treatments, updated research advancements and future perspectives. J Mater Chem B. 2020;8(28):5973–91.
Keshri S, Biswas S. Synthesis, physical properties, and biomedical applications of magnetic nanoparticles: a review. Prog Biomater. 2022;11(4):347–72.
Basova TV, Vikulova ES, Dorovskikh SI, Hassan A, Morozova NB. The use of noble metal coatings and nanoparticles for the modification of medical implant materials. Mater Design. 2021;204:109672.
Hui C, Shen C, Tian J, Bao L, Ding H, Li C, Tian Y, Shi X. Gao, Core-shell Fe3O4@ SiO2 nanoparticles synthesized with well-dispersed hydrophilic Fe3O4 seeds. Nanoscale. 2011;3(2):701–5.
Chellappa M, Vijayalakshmi U. Fabrication of Fe3O4-silica core-shell magnetic nano-particles and its characterization for biomedical applications. Mater Today Proc. 2019;9:371–9.
Somasundaram S. Silane coatings of metallic biomaterials for biomedical implants: A preliminary review. J Biomedical Mater Res Part B: Appl Biomaterials. 2018;106(8):2901–18.
Singh RK, Kim TH, Patel KD, Knowles JC, Kim HW. Biocompatible magnetite nanoparticles with varying silica-coating layer for use in biomedicine: physicochemical and magnetic properties, and cellular compatibility. J Biomedical Mater Res Part A. 2012;100(7):1734–42.
Singh P, Srivastava S, Singh SK. Recent progress in synthesis, functionalization, biocompatibility, and biomedical applications. ACS Biomaterials Sci Eng. 2019;5(10):4882–98.
Teimouri R, Toosi S, Movaffagh J, Mohammadi M, Nekooei S, Abbaspour M, Toorchi SMV, Ramezani M, Alibolandi M. Fabrication of composite RGD-tagged Poly (lactic acid)-graphene oxide nanofiber containing bone-forming peptide-3 loaded-dendritic silica nanoparticles for bone regeneration in rabbit. Chem Eng J. 2024;500:157485.
Chun J, Gu YM, Hwang J, Oh KK, Lee JH. Synthesis of ordered mesoporous silica with various pore structures using high-purity silica extracted from rice husk. J Ind Eng Chem. 2020;81:135–43.
Saravanan S, Dubey R. Synthesis of SiO2 nanoparticles by sol-gel method and their optical and structural properties. Rom J Inf Sci Technol. 2020;23(1):105–12.
Rahimzadeh CY, Barzinjy AA, Mohammed AS, Hamad SM. Green synthesis of SiO2 nanoparticles from Rhus coriaria L. extract: comparison with chemically synthesized SiO2 nanoparticles. PLoS ONE. 2022;17(8):e0268184.
Prabha S, Durgalakshmi D, Rajendran S, Lichtfouse E. Plant-derived silica nanoparticles and composites for biosensors, bioimaging, drug delivery and supercapacitors: a review. Environ Chem Lett. 2021;19(2):1667–91.
Ma J, Wang Y, Niu J, Shen X. Synthesis and characterization of La-Doped Fe3O4‐Polyaniline magnetic response nanocomposites. J Macromolecular Sci Part B. 2006;45(4):533–40.
Gao J, Feng L, Chen B, Fu B, Zhu M. The role of rare Earth elements in bone tissue engineering scaffolds-a review. Compos Part B: Eng. 2022;235:109758.
Comments (0)