160
Views
8
CrossRef citations to date
0
Altmetric
Research Article

Smart tetrazole-based antibacterial nanoparticles as multifunctional drug carriers for cancer combination therapy

, &
Pages 1963-1977 | Received 12 Apr 2017, Accepted 14 Jul 2017, Published online: 03 Aug 2017

References

  • Sun Y, Kang C, Zhang A, et al. Co-delivery of dual-drugs with nanoparticle to overcome multidrug resistance. Eur J Bio Med Res. 2016;2:12–18.
  • Gao Z, Zhang L, Sun Y. Nanotechnology applied to overcome tumor drug resistance. J Control Release. 2012;162:45–55.
  • Tzakos AG, Briasoulis E, Thalhammer T, et al. Novel oncology therapeutics: targeted drug delivery for cancer. J Drug Deliv. 2013;2013:1–6.
  • Masood F. Polymeric nanoparticles for targeted drug delivery system for cancer therapy. Mater Sci Eng C Mater Biol Appl. 2016;60:569–578.
  • Liu J, Huang Y, Kumar A, et al. pH-Sensitive nano-systems for drug delivery in cancer therapy. Biotechnol Adv. 2014;32:693–710.
  • Kim SH, Kaplan JA, Sun Y, et al. The self‐assembly of anticancer camptothecin–dipeptide nanotubes: a minimalistic and high drug loading approach to increased efficacy. Chem Eur J. 2015;21:101–105.
  • Creixell M, Peppas NA. Co-delivery of siRNA and therapeutic agents using nanocarriers to overcome cancer resistance. Nano Today. 2012;7:367–379.
  • Wang H-p, Sun Y, Zhou Y, et al. Advances in privileged structure 4-quinolones as antitumor agents research. Chinese J Med Chem. 2012;22:59–67.
  • Sun Y, Wang H, Zhou Y, et al. Recent advances in non-campto-thecin DNA topoisomerase I inhibitors as anticancer drugs. Prog Pharm Sci. 2011;35:385–395.
  • Sun Y, Kang C, Wang M, et al. Nanosized camptothecin conjugates for single and combined drug delivery. Eur J Bio Med Res. 2016;2:8–14.
  • Alibek K, Bekmurzayeva A, Mussabekova A, et al. Using antimicrobial adjuvant therapy in cancer treatment: a review. Infect Agents Cancer. 2012;7:1–10.
  • Margaret A. Gale encyclopedia of cancer, a guide to cancer and its treatments: antibiotics. Bingley, UK: The Gale Group Inc; 2002. p. 76.
  • Carmona-Ribeiro AM, Melo Carrasco LD. Cationic antimicrobial polymers and their assemblies. Int J Mol Sci. 2013;14:9906–9946.
  • Mohammed M, Tahar B, Aicha D, et al. Antibacterial activity of quaternary ammonium salt from diethylaminoethyl methacrylate. J Chem Educ. 2010;7:S61–S66.
  • Vigliotta G, Mella M, Rega D, et al. Modulating antimicrobial activity by synthesis: dendritic copolymers based on nonquaternized 2-(dimethylamino) ethyl methacrylate by Cu-mediated ATRP. Biomacromolecules. 2012;13:833–841.
  • He J, Söderling E, Österblad M, et al. Synthesis of methacrylate monomers with antibacterial effects against S. mutans. Molecules. 2011;16:9755–9763.
  • Zhang Y, Jiang J, Chen Y. Synthesis and antimicrobial activity of polymeric guanidine and biguanidine salts. Polymer. 1999;40:6189–6198.
  • Vitt A, Sofrata A, Slizen V, et al. Antimicrobial activity of polyhexamethylene guanidine phosphate in comparison to chlorhexidine using the quantitative suspension method. Ann Clin Microbiol Antimicrob. 2015;14:1–9.
  • Rizzotto M. Metal complexes as antimicrobial agents: INTECH Open Access Publisher. Faculty of Biochemistry and Pharmacy National University of Rosario, Argentina; 2012.
  • Engler AC, Wiradharma N, Ong ZY, et al. Emerging trends in macromolecular antimicrobials to fight multi-drug-resistant infections. Nano Today. 2012;7:201–222.
  • Li P, Li X, Saravanan R, et al. Antimicrobial macromolecules: synthesis methods and future applications. RSC Adv. 2012;2:4031–4044.
  • Timofeeva L, Kleshcheva N. Antimicrobial polymers: mechanism of action, factors of activity, and applications. Appl Microbiol Biotechnol. 2011;89:475–492.
  • Wei C-X, Bian M, Gong G-H. Tetrazolium compounds: synthesis and applications in medicine – a review. Molecules. 2015;20:5528–5553.
  • Berezin AS, Ishmetova RI, Rusinov GL, et al. Tetrazole derivatives of chitosan: synthetic approaches and evaluation of toxicity. Russ Chem Bull. 2014;63:1624–1632.
  • Rao SN, Ravisankar T, Latha J, et al. Synthesis, characterization and antimicrobial activity of novel biphenyl tetrazoles. Der Pharma Chem. 2012;4:1093–1103.
  • Kumar CNSSP, Parida DK, Santhoshi A, et al. Synthesis and biological evaluation of tetrazole containing compounds as possible anticancer agents. Med Chem Commun. 2011;2:486–492.
  • Romagnoli R, Baraldi PG, Salvador MK, et al. Synthesis and evaluation of 1,5-disubstituted tetrazoles as rigid analogues of combretastatin A-4 with potent antiproliferative and antitumor activity. J Med Chem. 2012;55:475–488.
  • Ali OM, Amr AE-G, Rmiz MMM, et al. Synthesis and antimicrobial activity of new tetrazole derivatives from 1((1H-tetrazol-5-yl) methyl)-1H-benzo[d][1,2,3]triazole as synthon. J Am Sci. 2011;7:1–7.
  • Singh H, Chawla AS, Kapoor VK, et al. Medicinal chemistry of tetrazoles. Prog Med Chem. 1980;17:151–183.
  • Qiu LY, Bae YH. Polymer architecture and drug delivery. Pharm Res. 2006;23:1–30.
  • Salehi R, Davaran S, Rashidi MR, et al. Thermosensitive nanoparticles prepared from poly(N-isopropylacrylamide-acrylamide-vinilpyrrolidone) and its dlend with poly(lactide-co-glycolide) for efficient drug delivery system. J Appl Polym Sci. 2009;111:1905–1910.
  • Rasouli R, Davaran S, Rasouli F, et al. Synthesis, characterization and pH-controllable methotrexate release from biocompatible polymer/silica nanocomposite for anticancer drug delivery. Drug Deliv. 2014;21:155–163.
  • Salehi R, Rasouli S, Hamishehkar H. Smart thermo/pH responsive magnetic nanogels for the simultaneous delivery of doxorubicin and methotrexate. Int J Pharm. 2015;487:274–284.
  • Zakerzadeh E, Alizadeh E, Kafil HS, et al. Novel antibacterial polymeric nanocomposite for smart co-delivery of anticancer drugs. Artif Cells Nanomed Biotechnol. 2016. DOI:org/10.1080/21691401.2016.1260576
  • Salehi R, Irani M, Eskandani M, et al. Interaction, controlled release, and antitumor activity of doxorubicin hydrochloride from pH-sensitive P(NIPAAm-MAA-VP) nanofibrous scaffolds prepared by green electrospinning. Int. J Polym Mater Polym Biomater. 2014;63:609–619.
  • Salehi R, Hamishehkar H, Eskandari M, et al. Development of dual responsive nanocomposite for simultaneous delivery of anticancer drugs. J Drug Target. 2014;22:327–342.
  • Rasoulia S, Davaran S, Rasouli F, et al. Positively charged functionalized silica nanoparticles as nontoxic carriers for triggered anticancer drug release. Des Monomers Polym. 2014;17:227–237.
  • Jin Q, Qu F, Jiang J, et al. A pH-sensitive controlled dual-drug release from meso-macroporous silica/multilayer-polyelectrolytes coated SBA-15 composites. J Sol–Gel Sci Technol. 2013;66:466–471.
  • Lee ES, Oh KT, Kim D, et al. Tumor pH-responsive flower-like micelles of poly(L-lactic acid)-b-poly(ethylene glycol)-b-poly(L-histidine). J Control Release. 2007;123:19–26.
  • Varadaraji D, Suban SS, Ramasamy VR, et al. Synthesis and evaluation of a series of 1-substituted tetrazole derivatives as antimicrobial agents. Org Commun. 2010;3:45–56.
  • Rahimi M, Safa KD, Alizadeh E, et al. Dendritic chitosan as a magnetic and biocompatible nanocarrier for the simultaneous delivery of doxorubicin and methotrexate to MCF-7 cell line. New J Chem. 2017;41:3177–3189.
  • Bazmi zeynabad F, Salehi R, Alizadeh E, et al. pH-Controlled multiple-drug delivery by a novel antibacterial nanocomposite for combination therapy. RSC Adv. 2015;5:105678–105691.
  • Ling YH, El-Naggar AK, Priebe W, et al. Cell cycle-dependent cytotoxicity, G2/M phase arrest, and disruption of p34cdc2/cyclin B1 activity induced by doxorubicin in synchronized P388 cells. Mol Pharmacol. 1996;49:832–841.
  • Spurlock CF, Tossberg JT, Fuchs HA, et al. Methotrexate increases expression of cell cycle checkpoint genes via JNK activation. Arthritis Rheum. 2012;64:1780–1789.
  • Sen S, Erba E, D’Incalc M. Synchronisation of cancer cell lines of human origin using methotrexate. Cytometry. 1990;11:595–602.

Reprints and Corporate Permissions

Please note: Selecting permissions does not provide access to the full text of the article, please see our help page How do I view content?

To request a reprint or corporate permissions for this article, please click on the relevant link below:

Academic Permissions

Please note: Selecting permissions does not provide access to the full text of the article, please see our help page How do I view content?

Obtain permissions instantly via Rightslink by clicking on the button below:

If you are unable to obtain permissions via Rightslink, please complete and submit this Permissions form. For more information, please visit our Permissions help page.