A New Synthesis of Copper Nanoparticles and Its Application as a Beta-Hematin Inhibitor

https://doi.org/10.22146/ijc.85583

Rana Abd Al-Aly Khamees Al-Refaia(1*), Eman Alrikabi(2), Ahmed Ali Alkarimi(3), Rafaela Vasiliadou(4)

(1) Department of Chemistry, College of Sciences, University of Babylon, Babylon 51002, Iraq
(2) Department of Chemistry, College of Sciences, University of Babylon, Babylon 51002, Iraq
(3) Department of Chemistry, College of Sciences, University of Babylon, Babylon 51002, Iraq
(4) School of Life, Health and Chemical Sciences, The Open University, Walton Hall, Karen Hills, Milton Keynes, MK7 6AA, United Kingdom
(*) Corresponding Author

Abstract


To prevent the development of drug resistance and unwanted side effects, nanomaterials have been studied for their potential to inhibit beta-hematin, an important protein for the survival of malaria parasites. The use of nanomaterials as a medication against parasites and mosquito vectors has recently shown promising drug therapeutic strategies. One of the newest areas of interest in nanotechnology and nanoscience is the environmentally friendly production of nanoparticles. Green synthesis to produce metal nanoparticles is the most important strategy to overcome the possible dangers of toxic chemicals for a safe and harmless environment. For this study, copper nanoparticles (CuNPs) were synthesized using Iraqi basil leaf extract, demonstrating its novelty in nanosciences. The formation of CuNPs can be seen visually as a color shift from green to brownish. UV-vis absorption spectra, Fourier transform infrared (FTIR), X-ray diffraction (XRD), energy dispersive X-ray (EDX), and scanning electron microscopy (SEM) were used to characterize the synthesized nanoparticles. The surface plasmon resonance property (SPR) of CuNPs is revealed by UV-vis analysis, which shows a distinctive absorption peak at 420430 nm, whereas SEM reveals the spherical shape of CuNPs with sizes ranging from 30 to 50 nm.


Keywords


beta-hematin; CuNPs; malaria; nanoparticles



References

[1] Neves Borgheti-Cardoso, L., San Anselmo, M., Lantero, E., Lancelot, A., Serrano, J.L., Hernández-Ainsa, S., Fernàndez-Busquets, X., and Sierra, T., 2020, Promising nanomaterials in the fight against malaria, J. Mater. Chem. B, 8 (41), 9428–9448.

[2] Amir, A., Cheong, F.W., Ryan de Silva, J., Liew, J.W.K., and Lau, Y.L., 2018, Plasmodium knowlesi malaria: Current research perspectives, Infect. Drug Resist., 11, 1145–1155.

[3] Huy, N.T., Kamei, K., Yamamoto, T., Kondo, Y., Kanaori, K., Takano, R., Tajima, K., and Hara, S., 2002, Clotrimazole binds to heme and enhances heme-dependent hemolysis: Proposed antimalarial mechanism of clotrimazole, J. Biol. Chem., 277 (6), 4152–4158.

[4] Coban C., 2020, The host targeting effect of chloroquine in malaria, Curr. Opin. Immunol., 66, 98–107.

[5] Al-Refaia, R.A., and Alkarimi, A.A., 2020, Synthesis and hemozoin inhibitor of side-chain modified copper-chloroquine derivatives, IOP Conf. Ser.: Mater. Sci. Eng., 987 (1), 012021.

[6] Rahman, K., Khan, S.U., Fahad, S., Chang, M.X., Abbas, A., Khan, W.U., Rahman, L., Haq, Z.U., Nabi, G., and Khan, D., 2019, Nano-biotechnology: A new approach to treat and prevent malaria, Int. J. Nanomed., 14, 1401–1410.

[7] Thakkar, K.N., Mhatre, S.S., and Parikh, R.Y., 2010, Biological synthesis of metallic nanoparticles, Nanomedicine, 6 (2), 257–262.

[8] Herlekar, M., Barve, S., and Kumar, R., 2014, Plant‐mediated green synthesis of iron nanoparticles, J. Nanopart., 2014, 140614.

[9] Barabadi, H., Alizadeh, Z., Rahimi, M.T., Barac, A., Maraolo, A.E., Robertson, L.J., Masjedi, A., Shahrivar, F., and Ahmadpour, E., 2019, Nano-biotechnology as an emerging approach to combat malaria: A systematic review, Nanomedicine, 18, 221–233.

[10] Youngs, W.J., Knapp, A.R., Wagers, P.O., and Tessier, C.A., 2012, Nanoparticle encapsulated silver carbene complexes and their antimicrobial and anticancer properties: A perspective, Dalton Trans., 41 (2), 327–336.

[11] Rai, M., Ingle, A.P., Paralikar, P., Gupta, I., Medici, S., and Santos, C.A., 2017, Recent advances in use of silver nanoparticles as antimalarial agents, Int. J. Pharm., 526 (1), 254–270.

[12] Benelli, G., Maggi, F., Pavela, R., Murugan, K., Govindarajan, M., Vaseeharan, B., Petrelli, R., Cappellacci, L., Kumar, S., Hofer, A., Youssefi, M.R., Alarfaj, A.A., Hwang, J.S., and Higuchi, A., 2018, Mosquito control with green nanopesticides: Towards the One Health approach? A review of non-target effects, Environ. Sci. Pollut. Res., 25 (11), 10184–10206.

[13] Kaur, P., Thakur, R., and Chaudhury, A., 2016, Biogenesis of copper nanoparticles using peel extract of Punica granatum and their antimicrobial activity against opportunistic pathogens, Green Chem. Lett. Rev., 9 (1), 33–38.

[14] Delma, M.T. and Jaya Rajan, M., 2016, Green synthesis of copper and lead nanoparticles using Zingiber officinale stem extract, Int. J. Sci. Res. Publ., 6 (11), 134–137.

[15] Shende, S., Ingle, A.P., Gade, A., and Rai, M., 2015, Green synthesis of copper nanoparticles by Citrus medica Linn. (Idilimbu) juice and its antimicrobial activity, World J. Microbiol. Biotechnol., 31 (6), 865–873.

[16] Khani, R., Roostaei, B., Bagherzade, G., and Moudi, M., 2018, Green synthesis of copper nanoparticles by fruit extract of Ziziphus spina-christi (L.) Willd.: Application for adsorption of triphenylmethane dye and antibacterial assay, J. Mol. Liq., 255, 541–549.

[17] Thakur, S., Sharma, S., Thakur, S., and Rai, R., 2018, Green synthesis of copper nanoparticles using Asparagus adscendens Roxb. root and leaf extract and their antimicrobial activities, Int. J. Curr. Microbiol. Appl. Sci., 7 (4), 683–694.

[18] Chung, I., Abdul Rahuman, A., Marimuthu, S., Vishnu Kirthi, A., Anbarasan, K., Padmini, P., and Rajakumar, G., 2017, Green synthesis of copper nanoparticles using Eclipta prostrata leaves extract and their antioxidant and cytotoxic activities, Exp. Ther. Med., 14 (1), 18–24.

[19] Nasrollahzadeh, M., and Mohammad Sajadi, S., 2015, Green synthesis of copper nanoparticles using Ginkgo biloba L. leaf extract and their catalytic activity for the Huisgen [3+2] cycloaddition of azides and alkynes at room temperature, J. Colloid Interface Sci., 457, 141–147.

[20] Nasrollahzadeh, M., Momeni, S.S., and Sajadi, S.M., 2017, Green synthesis of copper nanoparticles using Plantago asiatica leaf extract and their application for the cyanation of aldehydes using K4Fe(CN)6, J. Colloid Interface Sci., 506, 471–477.

[21] Issaabadi, Z., Nasrollahzadeh, M., and Sajadi, S.M., 2017, Green synthesis of the copper nanoparticles supported on bentonite and investigation of its catalytic activity, J. Cleaner Prod., 142, 3584–3591.

[22] Asghar, M.A., Zahir, E., Shahid, S.M., Khan, M.N., Asghar, M.A., Iqbal, J., and Walker, G., 2018, Iron, copper and silver nanoparticles: Green synthesis using green and black tea leaves extracts and evaluation of antibacterial, antifungal and aflatoxin B1 adsorption activity, LWT, 90, 98–107.

[23] Muthulakshmi, L., Rajini, N., Nellaiah, H., Kathiresan, T., Jawaid, M., and Rajulu, A.V., 2017, Preparation and properties of cellulose nanocomposite films with in situ generated copper nanoparticles using Terminalia catappa leaf extract, Int. J. Biol. Macromol., 95, 1064–1071.

[24] Ahmed, S., Saifullah, M., Ahmad, B., Swami, L., and Ikram, S., 2019, Green synthesis of silver nanoparticles using Azadirachta indica aqueous leaf extract, J. Radiat. Res. Appl. Sci., 9 (1), 1–7.

[25] Al-Khafaji, M.A., Al-Refai'a, R.A., and Al-Zamely, O.M., 2022, Green synthesis of copper nanoparticles using artemisia plant extract, Mater. Today: Proc., 49, 2831–2835.

[26] Skorik, N.A., Filippova, M.M., Bukhol’tseva, E.I., Mal’kov, V.S., and Kurzina, I.A., 2015, Cobalt(II) and copper(II) complexes with carboxylic acids, imidazole, and 2-methylimidazole, Russ. J. Inorg. Chem., 60 (6), 729–735.

[27] Taramelli, D., Recalcati, S., Basilico, N., Olliaro, P., and Cairo, G., 2000, Macrophage preconditioning with synthetic malaria pigment reduces cytokine production via heme iron-dependent oxidative stress, Lab. Invest., 80 (12), 1781–1788.

[28] Slater, A.F., Swiggard, W.J., Orton, B.R., Flitter, W.D., Goldberg, D.E., Cerami, A., and Henderson, G.B., 1991, An iron-carboxylate bond links the heme units of malaria pigment, Proc. Natl. Acad. Sci. U. S. A., 88 (2), 325–329.

[29] Singh, S., Kumar, N., Kumar M., Jyoti, J., Agarwal, A., and Mizaikoff, B., 2017, Electrochemical sensing and remediation of 4-nitrophenol using bio-synthesized copper oxide nanoparticles, Chem. Eng. J., 313, 283–292.

[30] Nasrollahzadeh, M., Sajadi, S.M., Rostami-Vartooni, A., and Hussin, S.M., 2016, Green synthesis of CuO nanoparticles using aqueous extract of Thymus vulgaris L. leaves and their catalytic performance for N-arylation of indoles and amines, J. Colloid Interface Sci., 466, 113–119.

[31] Minelli, C., and Shard, A.G., 2016, Chemical measurements of polyethylene glycol shells on gold nanoparticles in the presence of aggregation, Biointerphases, 11 (4), 04B306.

[32] Sharmila, G., Sakthi Pradeep, R., Sandiya, K., Santhiya, S., Muthukumaran, C., Jeyanthi, J., Manoj Kumar, N., and Thirumarimurugan, M., 2018, Biogenic synthesis of CuO nanoparticles using Bauhinia tomentosa leaves extract: Characterization and its antibacterial application, J. Mol. Struct., 1165, 288–292.

[33] Chinappi, M., Via, A., Marcatili, P., and Tramontano, A., 2010, On the mechanism of chloroquine resistance in Plasmodium falciparum, PloS One, 5 (11), e14064.

[34] Al-Refai’a, R.A., 2019, Cowpea Mosaic Virus (CPMV) as a Carrier Vehicle for Antimalarial Drugs, Modification, and Application, Int. J. Drug Delivery Technol., 3 (3), 490–495.

[35] Katy, N.O., Tam, Q.N., Jeffrey, D.R., and Peter, G.V., 2017, Antimalarials inhibit hematin crystallization by unique drug–surface site interactions, Proc. Natl. Acad. Sci. U. S. A., 114 (29), 7531–7536.



DOI: https://doi.org/10.22146/ijc.85583

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