Hybrid engineered dental composites by multiscale reinforcements with chitosan-integrated halloysite nanotubes and S-glass fibers

被引:23
作者
Cho, Kiho [1 ]
Yasir, Muhammad [2 ]
Jung, Minkyo [3 ]
Willcox, Mark D. P. [2 ]
Stenzel, Martina H. [4 ]
Rajan, Ginu [5 ]
Farrar, Paul [6 ]
Prusty, B. Gangadhara [1 ]
机构
[1] Univ New South Wales, Sch Mech & Mfg Engn, Sydney, NSW 2052, Australia
[2] Univ New South Wales, Sch Optometry & Vis Sci, Sydney, NSW 2052, Australia
[3] Korea Brain Res Inst, Neural Circuit Res Grp, Daegu 41062, South Korea
[4] Univ New South Wales, Sch Chem, Sydney, NSW 2052, Australia
[5] Univ Wollongong, Sch Elect Comp & Telecommun Engn, Wollongong, NSW 2522, Australia
[6] SDI Ltd, Bayswater, Vic 3153, Australia
基金
澳大利亚研究理事会;
关键词
Dental composites; Halloysite nanotubes; Chitosan; Streptococcus mutans; Mechanical antibacterial properties; RELEASE; ADSORPTION; TOXICITY; NANO;
D O I
10.1016/j.compositesb.2020.108448
中图分类号
T [工业技术];
学科分类号
08 ;
摘要
Novel combinations of mechanical and biological properties are required when developing new polymer-based restorative dental composites. This study reports a promising strategy to develop preventive and restorative dental materials by synthesizing multifunctional dental composites reinforced with chitosan integrated halloysite nanotubes (CHI-HNTs). An enhanced dispersion capability of CHI-HNTs in the urethane-dimethacrylate/triethyleneglycol-dimethacrylate based dental composite is obtained by a sonication-supported chitosan integrating process, resulting in increased mechanical properties such as flexural strength, modulus, and breaking energy of the composites (2 wt% CHI-HNTs, 45 wt% glass particle, 5 wt% glass fiber) up to 8.1%, 17.2%, and 9.8% compared to control composites without CHI-HNT. Microscopic fractography of the fracture surface reveals that highly dispersed CHI-HNTs contribute to the increased mechanical strength of the composites. This is achieved via a dispersion-strengthening mechanism such as nanotube pinning and bridging/pull-out reinforcements. The highly dispersed CHI-HNTs in the composites also have antibacterial capability against Streptococcus mutans. With 2 wt% of CHI-HNTs in the composites, the viability of S. mutans biofilm decreases by approximately 39%. The positively charged amine groups (-NH3+) of chitosan are involved in improving the dispersion effect of HNTs and antibacterial activity of the CHI-HNTs reinforced dental composites. These findings open the mute for developing advanced dental composites and engineered biomaterials with well-controlled HNTs dispersion.
引用
收藏
页数:10
相关论文
共 53 条
[31]   Constructing dual ionically cross-linked poly(acrylamide-co-acrylic acid)/chitosan hydrogel materials embedded with chitosan decorated halloysite nanotubes for exceptional mechanical performance [J].
Li, Shi-Neng ;
Li, Baoqiang ;
Yu, Zhi-Ran ;
Li, Yang ;
Guo, Kun-Yu ;
Gong, Li-Xiu ;
Feng, Yujie ;
Jia, Dechang ;
Zhou, Yu ;
Tang, Long-Cheng .
COMPOSITES PART B-ENGINEERING, 2020, 194
[32]   Microfluidic assembly of a nano-in-micro dual drug delivery platform composed of halloysite nanotubes and a pH-responsive polymer for colon cancer therapy [J].
Li, Wei ;
Liu, Dongfei ;
Zhang, Hongbo ;
Correia, Alexandra ;
Makila, Ermei ;
Salonen, Jamb ;
Hirvonen, Jouni ;
Santos, Helder A. .
ACTA BIOMATERIALIA, 2017, 48 :238-246
[33]   Smart H2O2-Responsive Drug Delivery System Made by Halloysite Nanotubes and Carbohydrate Polymers [J].
Liu, Feng ;
Bai, Libin ;
Zhang, Hailei ;
Song, Hongzan ;
Hu, Liandong ;
Wu, Yonggang ;
Ba, Xinwu .
ACS APPLIED MATERIALS & INTERFACES, 2017, 9 (37) :31626-31633
[34]   Chitosan-halloysite nanotubes nanocomposite scaffolds for tissue engineering [J].
Liu, Mingxian ;
Wu, Chongchao ;
Jiao, Yanpeng ;
Xiong, Sheng ;
Zhou, Changren .
JOURNAL OF MATERIALS CHEMISTRY B, 2013, 1 (15) :2078-2089
[35]   Cation Exchange Capacity of Kaolinite [J].
Chi Ma ;
Richard A. Eggleton .
Clays and Clay Minerals, 1999, 47 (2) :174-180
[36]   Polymeric and inorganic nanoscopical antimicrobial fillers in dentistry [J].
Makvandi, Pooyan ;
Gu, Jun Ting ;
Zare, Ehsan Nazarzadeh ;
Ashtari, Behnaz ;
Moeini, Arash ;
Tay, Franklin R. ;
Niu, Li-na .
ACTA BIOMATERIALIA, 2020, 101 :69-101
[37]   Covalently modified halloysite clay nanotubes: synthesis, properties, biological and medical applications [J].
Massaro, M. ;
Lazzara, G. ;
Milioto, S. ;
Noto, R. ;
Riela, S. .
JOURNAL OF MATERIALS CHEMISTRY B, 2017, 5 (16) :2867-2882
[38]   Dual drug-loaded halloysite hybrid-based glycocluster for sustained release of hydrophobic molecules [J].
Massaro, M. ;
Riela, S. ;
Baiamonte, C. ;
Blanco, J. L. J. ;
Giordano, C. ;
Lo Meo, P. ;
Milioto, S. ;
Noto, R. ;
Parisi, F. ;
Pizzolanti, G. ;
Lazzara, G. .
RSC ADVANCES, 2016, 6 (91) :87935-87944
[39]   Influence of surface roughness on streptococcal adhesion forces to composite resins [J].
Mei, Li ;
Busscher, Henk J. ;
van der Mei, Henny C. ;
Ren, Yijin .
DENTAL MATERIALS, 2011, 27 (08) :770-778
[40]   Chitosan and its antimicrobial potential - a critical literature survey [J].
Raafat, Dina ;
Sahl, Hans-Georg .
MICROBIAL BIOTECHNOLOGY, 2009, 2 (02) :186-201