A NANODIAMOND FOR STRUCTURAL BIOMIMETIC SCAFFOLDS

被引:8
|
作者
Aversa, Raffaella [1 ]
Petrescu, Relly Victoria V. [2 ]
Apicella, Antonio [1 ]
Petrescu, Florian Ion T. [3 ]
机构
[1] Univ Campania, Dept Architecture & Ind Design, Adv Mat Lab, I-81031 Luigi Vanvitelli Aversa, CE, Italy
[2] Univ Politehn Bucuresti, Transport Traff & Logist Dept, Bucharest 060042, CE, Romania
[3] Univ Politehn Bucuresti, Theory Mech & Robots Dept, Bucharest 060042, CE, Romania
关键词
Hybrid nano-composites; Biomaterials; Bioactive scaffolds; Bioengineering; Biomedical; FINITE-ELEMENT-ANALYSIS; POLY(2-HYDROXYETHYL METHACRYLATE); STRESS DISTRIBUTIONS; SWELLING BEHAVIOR; SURFACE-CHEMISTRY; PORCELAIN VENEERS; STRAIN; FUNCTIONALIZATION; HYDROCARBONS; PARTICLES;
D O I
10.30765/er.39.1.9
中图分类号
T [工业技术];
学科分类号
08 ;
摘要
Bio-mechanically active scaffolds for tissue engineering combining hydrophilic polymeric matrix and nano-diamond fillers properties are presented and discussed in this paper. The resulting scaffolding materials revealed remarkable mechanical and biological properties to be exploited in advanced biomedical applications. The novel hybrid material is based on 2 and 5 volume % of detonation nano-diamond particles in a hydrophilic poly-(hydroxyl-ethyl-methacrylate) matrix. According to its mechanical and biological properties, the nanocomposite shows a hybrid nature. The base analytical procedures for the preparation of the hybrid nanocomposites and some preliminary mechanical characteristics are presented. The proposed hybrid system has been considered for potential biomimetic, osteoconductive and osteoinductive scaffolds application in bio-mechanically active bone scaffolds for osteoblast and stem cell differentiation and growth. These more rigid hybrid nano-composites are predicted to possess improved mechanical strength overcoming the mechanical weaknesses of traditional hydrogels clinically utilized for bone regeneration.
引用
收藏
页码:81 / 89
页数:9
相关论文
共 50 条
  • [31] Design of graded biomimetic osteochondral composite scaffolds
    Tampieri, Anna
    Sandri, Monica
    Landi, Elena
    Pressato, Daniele
    Francioli, Silvia
    Quarto, Rodolfo
    Martin, Ivan
    BIOMATERIALS, 2008, 29 (26) : 3539 - 3546
  • [32] Degradation modeling of degradable copolymers for biomimetic scaffolds
    Taohong ZHANG
    Yue GAO
    Lingling ZHU
    Qingfeng ZENG
    Ming ZHOU
    Friction, 2020, 8 (03) : 594 - 603
  • [33] Biomimetic Materials and Scaffolds for Myocardial Tissue Regeneration
    Silvestri, Antonella
    Boffito, Monica
    Sartori, Susanna
    Ciardelli, Gianluca
    MACROMOLECULAR BIOSCIENCE, 2013, 13 (08) : 984 - 1019
  • [34] Engineered Protein Hydrogels as Biomimetic Cellular Scaffolds
    Liu, Yueming
    Gilchrist, Aidan E.
    Heilshorn, Sarah C.
    ADVANCED MATERIALS, 2024, 36 (45)
  • [35] Biomimetic polymer scaffolds for bone tissue engineering
    Mikos, T
    FASEB JOURNAL, 2002, 16 (05): : A1251 - A1251
  • [36] Biomimetic scaffolds for bone and cardiac tissue engineering
    Rosellini, E.
    Cristallini, C.
    Barbani, N.
    Giusti, P.
    JOURNAL OF APPLIED BIOMATERIALS & BIOMECHANICS, 2007, 5 (03) : 205 - 205
  • [37] Biomimetic mineralized hybrid scaffolds with antimicrobial peptides
    Ye, Zhou
    Zhu, Xiao
    Mutreja, Isha
    Boda, Sunil Kumar
    Fischer, Nicholas G.
    Zhang, Anqi
    Lui, Christine
    Qi, Yipin
    Aparicio, Conrado
    BIOACTIVE MATERIALS, 2021, 6 (08) : 2250 - 2260
  • [38] Biomimetic polyurethanes scaffolds for cardiac tissue engineering
    Boffito, M.
    Sartori, S.
    Ciardelli, G.
    JOURNAL OF TISSUE ENGINEERING AND REGENERATIVE MEDICINE, 2014, 8 : 34 - 35
  • [39] Biomimetic biphasic scaffolds for osteochondral defect repair
    Li, Xuezhou
    Ding, Jianxun
    Wang, Jincheng
    Zhuang, Xiuli
    Chen, Xuesi
    REGENERATIVE BIOMATERIALS, 2015, 2 (03) : 221 - 228
  • [40] Advances in Biomimetic Scaffolds for Hard Tissue Surgery
    Uklejewski, Ryszard
    Winiecki, Mariusz
    BIOMIMETICS, 2024, 9 (05)