Bioinspired Synthesis of Magnetic Nanoparticles Based on Iron Oxides Using Orange Waste and Their Application as Photo-Activated Antibacterial Agents

被引:9
作者
Garcia, David Giancarlo [1 ]
Garzon-Romero, Cristina [2 ]
Salazar, Mateo Alejandro [2 ]
Lagos, Karina J. [1 ]
Campana, Kleber Orlando [1 ]
Debut, Alexis [3 ]
Vizuete, Karla [3 ]
Rivera, Miryan Rosita [2 ]
Niebieskikwiat, Dario [4 ]
Benitez, Maria J. [5 ]
Romero, Maria Paulina [1 ]
机构
[1] Escuela Politecn Nacl EPN, Dept Mat, Quito 170525, Ecuador
[2] Pontificia Univ Catolica Ecuador PUCE, Fac Ciencias Exactas & Nat, Ctr Invest Salud Amer Latina CISeAL, Lab Invest Citogenet & Biomol Anfibios LICBA, Quito 170143, Ecuador
[3] Univ Las Fuerzas Armadas ESPE, Ctr Nanociencia & Nanotecnol, Sangolqui 171103, Ecuador
[4] Univ San Francisco Quito, Colegio Ciencias & Ingn, Dept Fis, Quito 170901, Ecuador
[5] Escuela Politecn Nacl EPN, Dept Fis, Quito 170525, Ecuador
关键词
green synthesis; antibacterial PTT; iron oxide nanoparticles; orange peel extract; cytotoxicity; superparamagnetic behavior; ASSISTED GREEN SYNTHESIS; FE3O4; NANOPARTICLES; ANTIMICROBIAL ACTIVITY; CYTOTOXICITY; MAGHEMITE; HEMATITE; EXTRACT;
D O I
10.3390/ijms24054770
中图分类号
Q5 [生物化学]; Q7 [分子生物学];
学科分类号
071010 ; 081704 ;
摘要
Magnetic nanoparticles based on iron oxides (MNPs-Fe) have been proposed as photothermal agents (PTAs) within antibacterial photothermal therapy (PTT), aiming to counteract the vast health problem of multidrug-resistant bacterial infections. We present a quick and easy green synthesis (GS) to prepare MNPs-Fe harnessing waste. Orange peel extract (organic compounds) was used as a reducing, capping, and stabilizing agent in the GS, which employed microwave (MW) irradiation to reduce the synthesis time. The produced weight, physical-chemical features and magnetic features of the MNPs-Fe were studied. Moreover, their cytotoxicity was assessed in animal cell line ATCC RAW 264.7, as well as their antibacterial activity against Staphylococcus aureus and Escherichia coli. We found that the 50GS-MNPs-Fe sample (prepared by GS, with 50% v/v of NH4OH and 50% v/v of orange peel extract) had an excellent mass yield. Its particle size was similar to 50 nm with the presence of an organic coating (terpenes or aldehydes). We believe that this coating improved the cell viability in extended periods (8 days) of cell culture with concentrations lower than 250 mu g center dot mL(-1), with respect to the MNPs-Fe obtained by CO and single MW, but it did not influence the antibacterial effect. The bacteria inhibition was attributed to the plasmonic of 50GS-MNPs-Fe (photothermal effect) by irradiation with red light (630 nm, 65.5 mW center dot cm(-2), 30 min). We highlight the superparamagnetism of the 50GS-MNPs-Fe over 60 K in a broader temperature range than the MNPs-Fe obtained by CO (160.09 K) and MW (211.1 K). Therefore, 50GS-MNPs-Fe could be excellent candidates as broad-spectrum PTAs in antibacterial PTT. Furthermore, they might be employed in magnetic hyperthermia, magnetic resonance imaging, oncological treatments, and so on.
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页数:23
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共 117 条
[1]   Magnetic Iron Oxide Nanoparticle (IONP) Synthesis to Applications: Present and Future [J].
Ajinkya, Nene ;
Yu, Xuefeng ;
Kaithal, Poonam ;
Luo, Hongrong ;
Somani, Prakash ;
Ramakrishna, Seeram .
MATERIALS, 2020, 13 (20) :1-35
[2]   Fabrication and Characterization of Polymeric Pharmaceutical Emulgel Co-Loaded with Eugenol and Linalool for the Treatment of Trichophyton rubrum Infections [J].
Akram, Muhammad Abdullah ;
Khan, Barkat Ali ;
Khan, Muhammad Khalid ;
Alqahtani, Ali ;
Alshahrani, Sultan M. ;
Hosny, Khaled M. .
POLYMERS, 2021, 13 (22)
[3]  
Alamar B., 2015, RESAZURIN CELL VIABI, V4998, P1919
[4]   Iron Oxide Nanoparticles Induce Oxidative Stress, DNA Damage, and Caspase Activation in the Human Breast Cancer Cell Line [J].
Alarifi, Saud ;
Ali, Daoud ;
Alkahtani, Saad ;
Alhader, M. S. .
BIOLOGICAL TRACE ELEMENT RESEARCH, 2014, 159 (1-3) :416-424
[5]   The magnetic inorganic-organic nanocomposite based on ZnFe2O4-Imatinib-liposome for biomedical applications, in vivo and in vitro study [J].
Amiri, Mahnaz ;
Gholami, Tahereh ;
Amiri, Omid ;
Pardakhti, Abbas ;
Ahmadi, Meysam ;
Akbari, Ahmad ;
Amanatfard, Arezoo ;
Salavati-Niasari, Masoud .
JOURNAL OF ALLOYS AND COMPOUNDS, 2020, 849
[6]   Treatment of breast cancer in vivo by dual photodynamic and photothermal approaches with the aid of curcumin photosensitizer and magnetic nanoparticles [J].
Ashkbar, Ali ;
Rezaei, Fatemeh ;
Attari, Farnoosh ;
Ashkevarian, Saboura .
SCIENTIFIC REPORTS, 2020, 10 (01)
[7]   Relation between the redox state of iron-based nanoparticles and their cytotoxicity toward Escherichia coli [J].
Auffan, Melanie ;
Achouak, Wafa ;
Rose, Jerome ;
Roncato, Marie-Anne ;
Chaneac, Corinne ;
Waite, David T. ;
Masion, Armand ;
Woicik, Joseph C. ;
Wiesner, Mark R. ;
Bottero, Jean-Yves .
ENVIRONMENTAL SCIENCE & TECHNOLOGY, 2008, 42 (17) :6730-6735
[8]   Microwave-assisted green synthesis of superparamagnetic nanoparticles using fruit peel extracts: surface engineering, T2 relaxometry, and photodynamic treatment potential [J].
Bano, Shazia ;
Nazir, Samina ;
Nazir, Alia ;
Munir, Saeeda ;
Mahmood, Tariq ;
Afzal, Muhammad ;
Ansari, Farzana Latif ;
Mazhar, Kehkashan .
INTERNATIONAL JOURNAL OF NANOMEDICINE, 2016, 11 :3833-3848
[9]  
Bedanta S., 2015, SUPERMAGNETISM, V23
[10]   Investigating the effect of outer layer of magnetic particles on cervical cancer cells HeLa by magnetic fluid hyperthermia [J].
Bhardwaj, Anand ;
Jain, Neeraj ;
Parekh, Kinnari .
CANCER NANOTECHNOLOGY, 2021, 12 (01)