3,998
Views
34
CrossRef citations to date
0
Altmetric
Research Article

Development of Lactobacillus kimchicus DCY51T-mediated gold nanoparticles for delivery of ginsenoside compound K: in vitro photothermal effects and apoptosis detection in cancer cells

, , , , , , , , , , & show all
Pages 30-44 | Received 15 Jun 2018, Accepted 13 Oct 2018, Published online: 19 Jan 2019

References

  • Kim DH. Gut microbiota-mediated pharmacokinetics of ginseng saponins. J Ginseng Res. 2018;42(3):255–263.
  • Kim DH. Metabolism of ginsenosides to bioactive compounds by intestinal microflora and its industrial application. J Ginseng Res. 2009;33:165–176.
  • Mathiyalagan R, Subramaniyam S, Kim YJ, et al. Ginsenoside compound K-bearing glycol chitosan conjugates: synthesis, physicochemical characterization, and in vitro biological studies. Carbohydr Polym. 2014;112:359–366.
  • Voruganti S, Qin JJ, Sarkar S, et al. Oral nano-delivery of anti-cancer ginsenoside 25-OCH3-PPD, a natural inhibitor of the MDM2 oncogene. Nanoparticle preparation, characterization, in vitro anti-prostate cancer activity and mechanism of action. Oncotarget. 2015;6:21379–21394.
  • Yang ZS, Gao J, Wang T, et al. Enhancement of oral bioavailability of 20(S)-ginsenoside Rh2 through improved understanding of its absorption and efflux mechanisms. Drug Metab Dispos. 2011;39:1866–1872.
  • Kautzka Z, Clement S, Goldys EM, et al. Light-triggered liposomal cargo delivery platform incorporating photosensitizers and gold nanoparticles for enhanced singlet oxygen generation and increased cytotoxicity. IJN. 2017;12:969–977.
  • Yeo ELL, Joshua U, Cheah J, et al. Exploiting the protein corona around gold nanorods for low-dose combined photothermal and photodynamic therapy. J Mater Chem B. 2017;5:254–268.
  • Leonard K, Ahmmad B, Okamura H, et al. In situ green synthesis of biocompatible ginseng capped gold nanoparticles with remarkable stability. Colloids Surf B Biointerfaces. 2011;82:391–396.
  • Shanmugam V, Selvakumar S, Yeh CS. Near-infrared light-responsive nanomaterials in cancer therapeutics . Chem Soc Rev. 2014;43:6254–6287.
  • Alkilany AM, Thompson LB, Boulos SP, et al. Gold nanorods: their potential for photothermal therapeutics and drug delivery, tempered by the complexity of their biological interactions. Adv Drug Deliv Rev. 2012;64:190–199.
  • Zhang Z, Wang J, Chen C. Near-infrared light-mediated nanoplatforms for cancer thermo-chemotherapy and optical imaging. Adv Mater. 2013;25:3869–3880.
  • Hu SH, Fang RH, Chen YW, et al. Photoresponsive protein-graphene hybrid capsules with dual targeted heat triggered drug delivery approach for enhanced tumor therapy. Adv Funct Mater. 2014;24:4144–4155.
  • Ma Y, Liang X, Tong S, et al. Gold nanoshell nanomicelles for potential magnetic resonance imaging, light-triggered drug release and photothermal therapy. Adv Funct Mater. 2013;23:815–822.
  • Chen Q, Liang C, Wang C, et al. An imagable and photothermal “Abraxane-like” nanodrug for combination cancer therapy to treat subcutaneous and metastatic breast tumors. Adv Mater. 2015;27:903–910.
  • Zhang Z, Wang J, Nie X, et al. Near infrared laser-induced targeted cancer therapy using thermoresponsive polymer encapsulated gold nanorods. J Am Chem Soc. 2014;136:7317–7326.
  • Okuno T, Kato S, Hatakeyama Y, et al. Photothermal therapy of tumors in lymph nodes using gold nanorods and near-infrared laser light. J Control Release. 2013;172:879–884.
  • Iravani S. Bacteria in nanoparticle synthesis: current status and future prospects. Int Sch Res Notices. 2014;2014:359316.
  • Nair B, Pradeep T. Coalescence of nanoclusters and formation of submicron crystallites assisted by Lactobacillus strains. Cryst Growth Des. 2002;2:293–298.
  • Liang ZQ, Srinivasan S, Kim YJ, et al. Lactobacillus kimchicus sp. nov., a β-glucosidase-producing bacterium isolated from kimchi. Int J Syst Evol Microbiol. 2011;61:894–897.
  • Markus J, Mathiyalagan R, Kim YJ, et al. Intracellular synthesis of gold nanoparticles with antioxidant activity by probiotic Lactobacillus kimchicus DCY51T isolated from Korean Kimchi. Enzyme Microb Technol. 2016;95:85–93.
  • Singh P, Kim YJ, Wang C, et al. Microbial synthesis of flower shaped gold nanoparticles. Artif Cells Nanomed Biotechnol. 2015;44:1–1474.
  • Haiss W, Thanh NT, Aveyard J, et al. Determination of size and concentration of gold nanoparticles from UV–vis spectra. Anal Chem. 2007;79:4215–4221.
  • Hu Y, Liu W, Wu F. Novel multi-responsive polymer magnetic microgels with folate or methyltetrahydrofolate ligand as anticancer drug carriers. RSC Adv. 2017;7:10333–10344.
  • Madhusudhan A, Reddy GB, Venkatesham M, et al. Efficient pH dependent drug delivery to target cancer cells by gold nanoparticles capped with carboxymethyl chitosan. Int J Mol Sci. 2014;15:8216–8234.
  • Tannock IF, Rotin D. Acid pH in tumors and its potential for therapeutic exploitation. Cancer Res. 1989;49:4373–4384.
  • Khan N, In S, Jeong IS, et al. Analysis of minor and trace elements in milk and yogurts by inductively coupled plasma-mass spectrometry (ICP-MS). Food Chem. 2014;147:220–224.
  • Aceituno VC, Ahn S, Simu SY, et al. Silver nanoparticles from Dendropanax morbifera Léveille inhibit cell migration, induce apoptosis, and increase generation of reactive oxygen species in A549 lung cancer cells. In Vitro Cell Dev Biol Anim. 2016;52:1012–1019.
  • Ahn S, Siddiqi MH, Aceituno VC, et al. Ginsenoside Rg5:Rk1 attenuates TNF-α/IFN-γ-induced production of thymus- and activation-regulated chemokine (TARC/CCL17) and LPS-induced NO production via downregulation of NF-κB/p38 MAPK/STAT1 signaling in human keratinocytes and macrophages. In Vitro Cell Dev Biol Anim. 2016;52:287–295.
  • Wang D, Markus J, Kim YJ, et al. Coalescence of functional gold and monodisperse silver nanoparticles mediated by black Panax ginseng Meyer root extract. IJN. 2016;11:6621–6634.
  • Markus J, Kim YJ, Wang C, et al. Biosynthesis, characterization, and bioactivities evaluation of silver and gold nanoparticles mediated by the roots of Chinese herbal Angelica pubescens Maxim. Nanoscale Res Lett. 2017;12:46.
  • Lee SA, Kang SH. Fluorescent-free detection on nanobiochips based on wavelength-dependent single plasmonic nanoparticles by differential interference contrast microscopy. Biosens Bioelectron. 2014;60:45–51.
  • Shedbalkar U, Singh R, Wadhwani S, et al. Microbial synthesis of gold nanoparticles: current status and future prospects. Adv Colloid Interface Sci. 2014;209:40–48.
  • Mittal AK, Kaler A, Mulay AV, et al. Synthesis of gold nanoparticles using whole cells of Geotrichum candidum. J Nanopart. 2013;2013:1.
  • Jazayeri MH, Amani H, Pourfatollah AA, et al. Various methods of gold nanoparticles (GNPs) conjugation to antibodies. Sens Biosens Res. 2016;9:17–22.
  • Singh P, Singh H, Aceituno VC, et al. Bovine serum albumin as a nanocarrier for the efficient delivery of ginsenoside compound K: preparation, physicochemical characterizations and in vitro biological studies. RSC Adv. 2017;7:15397–15407.
  • Wang C, Mathiyalagan R, Kim YJ, et al. Rapid green synthesis of silver and gold nanoparticles using Dendropanax morbifera leaf extract and their anticancer activities. IJN. 2016;11:3691–3701.
  • Upadhyaya L, Singh J, Agarwal V, et al. Efficient water soluble nanostructured ZnO grafted O-carboxymethyl chitosan/curcumin-nanocomposite for cancer therapy. Process Biochem. 2015;50:678–688.
  • Kishen A. Current and potential clinical applications. In: Nanotechnology in endodontics. Switzerland: Springer International Publishing; 2015.
  • Poon RT, Borys N. Lyso-thermosensitive liposomal doxorubicin: a novel approach to enhance efficacy of thermal ablation of liver cancer. Expert Opin Pharmacother. 2009;10:333–343.
  • Ramamurthy C, Padma M, Mareeswaran R, et al. The extra cellular synthesis of gold and silver nanoparticles and their free radical scavenging and antibacterial properties. Colloids Surf B Biointerfaces. 2013;102:808–815.
  • Rahman S. Size and concentration analysis of gold nanoparticles with ultraviolet–visible spectroscopy. Undergrad J Math Model. 2016;2(1): Article 2.
  • Hoskins C, Min Y, Gueorguieva M, et al. Hybrid gold-iron oxide nanoparticles as a multifunctional platform for biomedical application. J Nanobiotechnol. 2012;10:27.
  • Bhattacharjee S. DLS and zeta potential – what they are and what they are not? J Control Release. 2016;235:337–351.
  • Debnath R, Purkayastha DD, Hazra S, et al. Biogenic synthesis of antioxidant, shape selective gold nanomaterials mediated by high altitude lichens. Mater Lett. 2016;169:58–61.
  • Elbeshehy EK, Elazzazy AM, Aggelis G. Silver nanoparticles synthesis mediated by new isolates of Bacillus spp., nanoparticle characterization and their activity against Bean Yellow Mosaic Virus and human pathogens. Front Microbiol. 2015;6:453.
  • Kumar CS, Raja M, Sundar DS, et al. Hyaluronic acid co-functionalized gold nanoparticle complex for the targeted delivery of metformin in the treatment of liver cancer (HepG2 cells). Carbohydr Polym. 2015;128:63–74.
  • Li P, Zhou X, Qu D, et al. Preliminary study on fabrication, characterization and synergistic anti-lung cancer effects of self-assembled micelles of covalently conjugated celastrol-polyethylene glycol-ginsenoside Rh2. Drug Deliv. 2017;24:834–845.
  • Ankrum JA, Miranda OR, Ng KS, et al. Engineering cells with intracellular agent-loaded microparticles to control cell phenotype. Nat Protoc. 2014;9:233–245.
  • Fröhlich E. The role of surface charge in cellular uptake and cytotoxicity of medical nanoparticles. Int J Nanomedicine. 2012;7:5577–5591.
  • Zhang AW, Guo WH, Qi YF, et al. Synergistic effects of gold nanocages in hyperthermia and radiotherapy treatment. Nanoscale Res Lett. 2016;11:279.
  • Lee J, Chatterjee DK, Lee MH, et al. Gold nanoparticles in breast cancer treatment: promise and potential pitfalls. Cancer Lett. 2014;347:46–53.