Browse > Article
http://dx.doi.org/10.4014/jmb.1711.11037

Formulation of Ceftriaxone Conjugated Gold Nanoparticles and Their Medical Applications against Extended-Spectrum β-Lactamase Producing Bacteria and Breast Cancer  

El-Rab, Sanaa M.F. Gad (Department of Biotechnology, Faculty of Science, Taif University)
Halawani, Eman M. (Division of Microbiology, Department of Biology, Faculty of Science, Taif University)
Hassan, Aziza M. (Department of Biotechnology, Faculty of Science, Taif University)
Publication Information
Journal of Microbiology and Biotechnology / v.28, no.9, 2018 , pp. 1563-1572 More about this Journal
Abstract
Gold nanoparticles (AuNP) and their conjugates have been gaining a great deal of recognition in the medical field. Meanwhile, extended-spectrum ${\beta}$-lactamases (ESBL)-producing bacteria are also demonstrating a challenging problem for health care. The aim of this study was the biosynthesis of AuNP using Rosa damascenes petal extract and conjugation of ceftriaxone antibiotic (Cef-AuNP) in inhibiting ESBL-producing bacteria and study of in vitro anticancer activity. Characterization of the synthesized AuNP and Cef-AuNP was studied. ESBL-producing strains, Acinetobacter baumannii ACI1 and Pseudomonas aeruginosa PSE4 were used for testing the efficacy of Cef-AuNP. The cells of MCF-7 breast cancer were treated with previous AuNP and Cef-AuNP at different time intervals. Cytotoxicity effects of apoptosis and its molecular mechanism were evaluated. Ultraviolet-visible spectroscopy and Fourier transform infrared spectroscopy established the formation of AuNP and Cef-AuNP. Transmission electron microscope demonstrated that the formed nanoparticles were of different shapes with sizes of 15~35 nm and conjugation was established by a slight increase in size. Minimum inhibitory concentration (MIC) values of Cef-AuNP against tested strains were obtained as 3.6 and $4{\mu}g/ml$, respectively. Cef-AuNP demonstrated a decrease in the MIC of ceftriaxone down to more than 27 folds on the studied strains. The biosynthesized AuNP displayed apoptotic and time-dependent cytotoxic effects in the cells of MCF-7 at a concentration of $0.1{\mu}g/ml$ medium. The Cef-AuNP have low significant effects on MCF-7 cells. These results enhance the conjugating utility in old unresponsive ceftriaxone with AuNP to restore its efficiency against otherwise resistant bacterial pathogens. Additionally, AuNP may be used as an alternative chemotherapeutic treatment of MCF-7 cancer cells.
Keywords
Ceftriaxone conjugated gold nanoparticles; antimicrobial activity; extended spectrum ${\beta}$-lactamase (ESBL) producing bacteria; MCF-7 Cells; MTT assay;
Citations & Related Records
연도 인용수 순위
  • Reference
1 Hassan AM A-AS, Abdel-Wahhab MA. 2012. Modulation of DNA damage and alteration of gene expression during aflatoxicosis via dietary supplementation of Spirulina (Arthrospira) and whey protein concentrate. Ecotoxicol. Environ. Saf. 79: 294-300.   DOI
2 Du J ZZ, Zhang X, Wu S, Xiong J, Wang W, Luo Q 2017. Biosynthesis of gold nanoparticles by flavonoids from Lilium casa blanca. J. Cluster Sci. 28: 3149-3158.   DOI
3 Yang N WL, Hao L. 2014. Biosynthesis of Au nanoparticles using agricultural waste mango peel extract and its in-vitro cytotoxic effect on two normal cells. Mat. Lett. 134: 67-70.   DOI
4 Zaki NM HM. 2012. Enhanced antibacterial effect of ceftriaxone sodium-loaded chitosan nanoparticles against intracellular Salmonella typhimurium. AAPS Pharm. Sci. Tech. 13: 411-421.   DOI
5 Shaikh S RS, Shakil S, Hussain T, Alshammari TM, Ahmad W, Tabrez S, et al. 2017. Synthesis and characterization of cefotaxime conjugated gold nanoparticles and their use to target drug-resistant CTX-M-producing bacterial pathogens. J. Cell. Biochem. 9999: 1-7.
6 Alkilany AM MC. 2010. Toxicity and cellular uptake of gold nanoparticles: what we have learned so far? J. Nanoparticle Res. 12: 2313-2333.   DOI
7 Brown AN SK, Samuels TA, Lu J, Obare SO, Scott ME. 2012. Nanoparticles functionalized with ampicillin destroy multiple-antibiotic-resistant isolates of Pseudomonas aeruginosa and Enterobacter aerogenes and methicillin-resistant Staphylococcus aureus. Appl. Environ. Microbiol. 78: 2768-2774.   DOI
8 Grace AN PK. 2007. Quinolone antibiotic-capped gold nanoparticles and their antibacterial efficacy against gram positive and gram negative organisms. J. Bionanosci. 1: 96-105.   DOI
9 Kalita S KR, Sharma KK, Kataki AC, Deka M, Kotoky J. 2016. Amoxicillin functionalized gold nanoparticles reverts MRSA resistance. Mater. Sci. Eng. C Mater. Biol. Appl. 61: 720-727.   DOI
10 Sengstock DM TR, Apalara J, Mira A, Chopra T, Kaye KS. 2010. Multidrug-resistant Acinetobacter baumannii: an emerging pathogen among older adults in community hospitals and nursing homes. Clin. Infect. Dis. 50: 1611-1616.   DOI
11 Patil MP KG. 2017. Eco-friendly approach for nanoparticles synthesis and mechanism behind antibacterial activity of silver and anticancer activity of gold nanoparticles. Appl. Microbiol. Biotechnol. 101: 79-92.   DOI
12 Albrecht MA EC, Raston CL. 2006. Green chemistry and the health implications of nanoparticles. Green Chem. 8: 417-432.   DOI
13 Arachchige MC RY, Andreev OA. 2015. Advanced targeted nanomedicine. J. Biotechnol. 20: 88-97.
14 Anand K GR, Phulukdaree A, Chuturgoon A. . 2015. Agroforestry waste Moringa oleifera petals mediated green synthesis of gold nanoparticles and their anti-cancer and catalytic activity. J. Ind. Eng. Chem. 21: 1105-1111.   DOI
15 Raghunandan D RB, Sharanbasava G, Mahesh DB, Harsoor V, Yalagatti MS, Bhagawanraju M, et al. 2011. Anti-cancer studies of noble metal nanoparticles synthesized using different plant extracts. Cancer Nanotechnol. 2: 57-65.   DOI
16 Biju V. 2014. Chemical modifications and bioconjugate reactions of nanomaterials for sensing, imaging, drug delivery and therapy. Chem. Soc. Rev. 43: 737-962   DOI
17 Demurtas M PC. 2014. Facile one-pot synthesis of amoxicillin-coated gold nanoparticles and their antimicrobial activity. Gold Bull. 47: 103-107.   DOI
18 Cui Y ZY, Tian Y, Zhang W, Lu X, Jiang X. 2012. The molecular mechanism of action of bactericidal gold nanoparticles on Escherichia coli. Biomaterials 33: 2327-2333.   DOI
19 Gad El-Rab SMF HE, Elzahrani S. 2018. Synthesis of Rifampicin conjugated gold nanoparticled and antimicrobial application against MDR Pseudomonas aeruginosa. Res. J. Biotechnol. (In Press).
20 Mohseni N SF, Ardestani MS, Kazemi-Lomedasht F, Ghorbani M. 2016. Inhibitory effect of gold nanoparticles conjugated with interferon gamma and methionine on breast cancer cell line. Asian Pac. J. Trop. Biomed. 6: 173-178.   DOI
21 Das S DJ, Samadder A, Bhattacharyya SS, Das D, Khuda-Bukhsh AR. 2013. Biosynthesized silver nanoparticles by ethanolic extracts of Phytolacca decandra, Gelsemium sempervirens, Hydrastis canadensis and Thuja occidentalis induce differential cytotoxicity through G2/M arrest in A375 cells. Colloid Surf. B. 101: 325-336.   DOI
22 Raghunandan D BP, Bendegumble B, Bedre MD, Bhagawanraju M, Yalagatti MS. 2011a. Microwave-assisted rapid extracellular biosynthesis of silver nanoparticles using carom seed (Trachyspermum copticum) extract and in vitro studies. Am. J. Anal. Chem. 2: 475-483.   DOI
23 Selim ME HA. 2012. Gold nanoparticles induce apoptosis in MCF-7 human breast cancer cells. Asian Pacific J. Cancer Prev. 15: 9471-9473.
24 Dipankar C MS. 2012. The green synthesis, characterization and evaluation of the biological activities of silver nanoparticles synthesized from Iresine herbstii leaf aqueous extracts. Colloid. Surf. B. 98: 112-119.   DOI
25 Shaker MA SM. 2017. Formulation of carbapenems loaded gold nanoparticles to combat multi-antibiotic bacterial resistance: in vitro antibacterial study. Int. J. Pharmaceutics 525: 71-84.   DOI
26 Garza-Navarro MA A-RJ, Llanas-Vazquez EE, Moreno-Cortez IE, Torres-Castro A, Gonzalez-Gonzalez V. 2013. Totally Ecofriendly synthesis of silver nanoparticles from aqueous dissolutions of polysaccharides. Int. J. Polym. Sci. 2013: 1-8.
27 Yu J XD, Guan HN, Wang C, Huang LK. 2016. Facile one-step green synthesis of gold nanoparticles using Citrus maxima aqueous extracts and its catalytic activity. Mater. Lett. 166: 110-112.   DOI
28 Harshiny M MM, Arthanareeswaran G, Kumaran S, Rajasree S. 2015. Enhancement of antibacterial properties of silver nanoparticles- ceftriaxone conjugate through Mukia maderaspatana leaf extract mediated synthesis. Ecotoxicol. Environ. Saf. 121: 135-141.   DOI
29 Kanmani P LS. 2013. Synthesis and characterization of pullulan-mediated silver nanoparticles and its antimicrobial activities. Carbohydr. Polym. 97: 421-428.   DOI
30 Pani A LJ, Yun S. 2016. Autoclave mediated one-pot-one-minute synthesis of AgNPs and Au-Ag nanocomposite from Melia azedarach bark extract with antimicrobial activity against food pathogens. Chem. Cent J. 10: 15.   DOI
31 Szende B TE, Trezl L. 2001. Role of arginine and its methylated derivatives in cancer biology and treatment. Cancer Cell Int. 17: 1-3.
32 Horiuchi N NK, Sasaki Y, Minato K, Fujiwara Y, Nezu K, et al. 1998. In vitro antitumor activity of mitomycin C derivative (RM- 49) and a new anticancer antibiotic (FK973) against lung cancer cell lines determined by tetrazolium dye (MTT) assay. Cancer Chemother. Pharmacol. 22: 246-250.
33 Brun ME GS, Girard C, Bouton K, De Massy B, De Sario A. 2006. Characterization and expression analysis during embryo development of the mouse ortholog of MLL3. Gene 371: 25-33.   DOI
34 Shaikh S FJ, Shakil S, Rizvi SMD, Kamal MA. 2015. Prevalence of multidrug resistant and extended spectrum beta-lactamase producing Pseudomonas aeruginosa in a tertiary care hospital. Saudi J. Biol. Sci. 22: 62-64.   DOI
35 Litake GM GV, Niphadkar KB and Joshi SG. 2015. Phenotypic ESBL detection in Acinetobacter baumannii: a real challenge. Am. J. Infect. Dis. 11: 48-53.   DOI
36 LB R. 2010. Progress and challenges in implementing the research on ESKAPE pathogens. Infect. Control Hospital Epidemiol. 31: S7-S10.   DOI
37 Centers for Disease Control and Prevention (CDC). Antibiotic resistance threats in the United States. Atlanta. GA. 2013.
38 Paterson DL BR. 2005. Extended-spectrum beta-lactamases: a clinical update. Clin. Microbiol. Rev. 18: 657-686.   DOI
39 Mishra SK RB, Pokhrel BM. 2013. Emerging threat of multidrug resistant bugs-Acinetobacter calcoaceticus baumannii complex and methicillin resistant Staphylococcus aureus. BMC Res. Notes 6: 98-103.   DOI
40 Yares R. 1999. New intervention strategies for reducing antibiotic resistance. Chest 115: 245-275.
41 Prat C LA. 2016. Bacteria in the respiratory tract-how to treat? Or do not treat? Int. J. Infect. Dis. 51: 113-122.   DOI