918
Views
0
CrossRef citations to date
0
Altmetric
Articles

Effects of nano-ZnO loaded on eggshell on the growth of Actinobacillus actinomycetemcomitans and Actinomyces viscosus in vitro

, , , , , & show all
Pages 1731-1737 | Received 09 Jul 2021, Accepted 10 Nov 2021, Published online: 31 Dec 2021

References

  • Bartold PM, Van Dyke TE. Periodontitis: a host-mediated disruption of microbial homeostasis. Unlearning learned concepts. Periodontol 2000. 2013;62(1):203–217.
  • Ferraiolo DM. Predicting periodontitis progression? Evid Based Dent. 2016;17(1):19–20.
  • Mj R, Ummer F, Dhivakar CP. Aggregatibacter actinomycetemcomitans – a tooth killer? J Clin Diagnostic Res. 2014;8(8):13–16.
  • Zambon JJ. Actinobacillus actinomycetemcomitans in human periodontal disease. J Clin Periodontol. 1985;12(1):1–20.
  • Tsai CC, Ho YP, Chou YS, et al. Aggregatibacter (Actinobacillus) actimycetemcomitans leukotoxin and human periodontitis – a historic review with emphasis on JP2. Kaohsiung J Med Sci. 2018;34(4):186–193.
  • Hoppenbrouwers PMM, Driessens FCM, Borggreven JMPM. The mineral solubility of human tooth roots. Pergamon. 1987;32(5):319–322.
  • Deng L, Li W, He Y, et al. Cross-kingdom interaction of Candida albicans and Actinomyces viscosus elevated cariogenic virulence. Arch Oral Biol. 2019;100:106–112.
  • Li M, Zhu L, Lin D. Toxicity of ZnO nanoparticles to Escherichia coli: mechanism and the influence of medium components. Environ Sci Technol. 2011;45(5):1977–1983.
  • Brayner R, Ferrari-Iliou R, Brivois N, et al. Toxicological impact studies based on Escherichia coli bacteria in ultrafine ZnO nanoparticles colloidal medium. Nano Lett. 2006;6(4):866–870.
  • Rosenberg M, Visnapuu M, Vija H, et al. Selective antibiofilm properties and biocompatibility of nano-ZnO/Ag coated surfaces. Sci Rep. 2020;10(1):13478.
  • Riaz M, Zia R, Saleemi F, et al. In vitro antimicrobial activity of ZnO based glass–ceramics against pathogenic bacteria. J Mater Sci - Mater Med. 2015;26(12):268.
  • Li Y, Zhou J, Fan Y, et al. Preparation of environment-friendly 3D eggshell membranesupported anatase TiO2 as a reusable photocatalyst for degradation of organic dyes. Chem Phys Lett. 2017; 689:142–114.
  • Alsohaimi IH, Nassar AM, Elnasr TAS, et al. A novel composite silver nanoparticles loaded calcium oxide stemming from egg shell recycling: a potent photocatalytic and antibacterial activities. J Cleaner Prod. 2020;248:119274.
  • Padmavathy N, Vijayaraghavan R. Enhanced bioactivity of ZnO nanoparticles-an antimicrobial study. Sci Technol Adv Mater. 2008;9(3):035004.
  • Podporska-Carroll J, Myles A, Quilty B, et al. Antibacterial properties of F-doped ZnO visible light photocatalyst. J Hazard Mater. 2017;324(Pt A):39–47.
  • Mirhosseini F, Amiri M, Daneshkazemi A, et al. Antimicrobial effect of different sizes of nano zinc oxide on oral microorganisms. Front Dent. 2019;16(2):105–112.
  • Teow Y, Asharani PV, Hande MP, Valiyaveettil S. Health impact and safety of engineered nanomaterials. Chem Commun (Camb). 2011;47(25):7025–7038.
  • García-Hevia L, Valiente R, Martín-Rodríguez R, et al. Nano-ZnO leads to tubulin macrotube assembly and actin bundling, triggering cytoskeletal catastrophe and cell necrosis. Nanoscale. 2016;8(21):10963–10973.
  • Wang X, Fan H, Zhang F, et al. Antibacterial properties of bilayer biomimetic nano-ZnO for dental implants. ACS Biomater Sci Eng. 2020;6(4):1880–1886.
  • Raj I, Mozetic M, Jayachandran VP, et al. Fracture resistant, antibiofilm adherent, self-assembled PMMA/ZnO nanoformulations for biomedical applications: physico-chemical and biological perspectives of nano reinforcement. Nanotechnology. 2018;29(30):305704–305704.
  • Mishra YK, Adelung R, Röhl C, et al. Virostatic potential of micro-nano filopodia-like ZnO structures against herpes simplex virus-1 . Antiviral Res. 2011;92(2):305–312.
  • Gondal MA, Alzahrani AJ, Randhawa MA, et al. Morphology and antifungal effect of nano-ZnO and nano-Pd-doped nano-ZnO against Aspergillus and candida. J Environ Sci Health A. 2012;47(10):1413–1418.
  • Dima S, Lee YY, Watanabe I, et al. Antibacterial effect of the natural polymer ε-polylysine against oral pathogens associated with periodontitis and caries. Polymers. 2020;12(6):1218.
  • Sui L, Wang J, Xiao Z, et al. ROS-scavenging nanomaterials to treat periodontitis. Front Chem. 2020;8:595530.
  • Tomás I, Regueira-Iglesias A, López M, et al. Quantification by qPCR of pathobionts in chronic periodontitis: development of predictive models of disease severity at site-specific level. Front Microbiol. 2017;8:1443.
  • Firestone AR, Feagin FF, Heaven TJ, et al. In vitro demineralization by strains of Actinomyces viscosus and Streptococcus sobrinus of sound and demineralized root surfaces. J Dent Res. 1993;72(8):1180–1183.
  • Zabihi E, Babaei A, Shahrampour D, et al. Facile and rapid in-situ synthesis of chitosan-ZnO nano-hybrids applicable in medical purposes; a novel combination of biomineralization, ultrasound, and bio-safe morphology-conducting agent. Int J Biol Macromol. 2019;131:107–116.
  • Kiwi J, Nadtochenko V. Evidence for the mechanism of photocatalytic degradation of the bacterial wall membrane at the TiO2 interface by ATR-FTIR and laser kinetic spectroscopy. Langmuir. 2005;21(10):4631–4641.