Green synthesis of gold nanoparticles from Stachytarpheta jamaicensis: An eco-friendly approach with promising anticancer potency

1. Liu L, Corma A. Metal catalysts for heterogeneous catalysis: from single atoms to nanoclusters and nanoparticles. Chem Rev. 2018; 118(10): 4981-5079.
2.    Gao P, Pan W, Li N, Tang B. Boosting cancer therapy with organelle-targeted nanomaterials. ACS Appl Mater Interfaces. 2019;11(30): 26529-2658.
3.    Wang M, Mohanty SK, Mahendra S. Nanomaterial-supported enzymes for water purification and monitoring in point-of-use water supply systems. Acc Chem Res. 2019; 52(4): 876-885.
4.    Liu XY, Wang JQ, Ashby CR Jr, Zeng L, Fan YF, Chen ZS. Gold nanoparticles: synthesis, physiochemical properties and therapeutic applications in cancer. Drug Discov Today. 2021; 26(5): 1284-1292.
5.    Alex S, Tiwari A. Functionalized gold nanoparticles: synthesis, properties and applications: a review. J Nanosci Nanotechnol. 2015; 15(3): 1869-1894.
6.    Sarfraz N, Khan I. Plasmonic gold nanoparticles (AuNPs): properties, synthesis and their advanced energy, environmental and biomedical applications. Chem Asian J. 2021; 16(7): 720-742.
7.    Son D, Bao Z. Correction to nanomaterials in skin-inspired electronics: toward soft and robust skin-like electronic nanosystems. ACS Nano. 2018; 12(12): 12943.
8.    Boruah JS, Devi C, Hazarika U, Reddy PVB, Chowdhury D, Barthakur M, et al. Green synthesis of gold nanoparticles using an antiepileptic plant extract: in vitro biological and photo-catalytic activities. RSC Adv. 2021; 11(45): 28029-28041.
9.    Mostafa EM, Abdelgawad MA, Musa A, Alotaibi NH, Elkomy MH, Ghoneim MM, et al. Chitosan silver and gold nanoparticle formation using endophytic fungi as powerful antimicrobial and anti-biofilm potentialities. Antibiotics (Basel). 2022; 11(5).
10.    Bharadwaj KK, Rabha B, Pati S, Sarkar T, Choudhury BK, Barman A, et al. Green synthesis of gold nanoparticles using plant extracts as beneficial prospect for cancer theranostics. Molecules. 2021; 26(21).
11.    Rajasekar T, Karthika K, Muralitharan G, Maryshamya A, Sabarika S, Anbarasu S, et al. Green synthesis of gold nanoparticles using extracellular metabolites of fish gut microbes and their antimicrobial properties. Braz J Microbiol. 2020; 51(3): 957-967.
12.    Timoszyk A, Grochowalska R. Mechanism and antibacterial activity of gold nanoparticles (aunps) functionalized with natural compounds from plants. Pharmaceutics. 2022; 14(12).
13.    Muddapur UM, Alshehri S, Ghoneim MM, Mahnashi MH, Alshahrani MA, Khan AA, et al. Plant-based synthesis of gold nanoparticles and theranostic applications: A review. Molecules. 2022; 27(4).
14.    Akrami M, Samimi S, Alipour M, Bardania H, Ramezanpour S, Najafi N, et al. Potential anticancer activity of a new pro-apoptotic peptide-thioctic acid gold nanoparticle platform. Nanotechnology. 2021; 32(14): 145101.
15.    Maity R, Chatterjee M, Banerjee A, Das A, Mishra R, Mazumder S, et al. Gold nanoparticle-assisted enhancement in the anti-cancer properties of theaflavin against human ovarian cancer cells. Mater Sci Eng C Mater Biol Appl. 2019; 104:109909.
16.    Adhikari C, Das A, Chakraborty A. Controlled release of a sparingly water-soluble anticancer drug through pH-responsive functionalized gold-nanoparticle-decorated liposomes. Chemphyschem. 2015; 16(4): 866-871.
17.    Peng J, Liang X. Progress in research on gold nanoparticles in cancer management. Medicine (Baltimore). 2019; 98(18): e15311.
18.    Lim ZZ, Li JE, Ng CT, Yung LY, Bay BH. Gold nanoparticles in cancer therapy. Acta Pharmacol Sin. 2011; 32(8): 983-990.
19.    Singh M, Harris-Birtill DC, Markar SR, Hanna GB, Elson DS. Application of gold nanoparticles for gastrointestinal cancer theranostics: A systematic review. Nanomedicine. 2015; 11(8): 2083-2098.
20.    Liew PM, Yong YK. Stachytarpheta jamaicensis (L.) Vahl: from traditional usage to pharmacological evidence. Evid Based Complement Alternat Med. 2016; 2016:7842340.
21.    Jagadish NG. Evaluation of analgesic activity of different extracts of Stachytarpheta indica L. (Vahl). IEEE Trans Biomed Eng. 2008; 3: 229-233.
22.    Sulaiman MR, Zakaria ZA, Chiong HS, Lai SK, Israf DA, Azam Shah TM. Antinociceptive and anti-inflammatory effects of Stachytarpheta jamaicensis (L.) Vahl (Verbenaceae) in experimental animal models. Med Princ Pract. 2009; 18(4): 272-279.
23.    Ruma OC, Zipagang TB. Determination of secondary metabolites and antibacterial property of extract from the leaves of Stachytarpheta jamaicensis (L.) Vahl. J Med Plants Stud. 2015; 3(4): 79-81.
24.    Jalalvand AR, Zhaleh M, Goorani S, Zangeneh MM, Seydi N, Zangeneh A, et al. Chemical characterization and antioxidant, cytotoxic, antibacterial, and antifungal properties of ethanolic extract of Allium Saralicum R.M. Fritsch leaves rich in linolenic acid, methyl ester. J Photochem Photobiol B. 2019; 192: 103-112.
25.    Wu G, Liu X, Zhou P, Wang L, Hegazy M, Huang X, et al. A facile approach for the reduction of 4-nitrophenol and degradation of congo red using gold nanoparticles or laccase decorated hybrid inorganic nanoparticles/polymer-biomacromolecules vesicles. Mater Sci Eng C Mater Biol Appl. 2019; 94: 524-533.
26.    Elia P, Zach R, Hazan S, Kolusheva S, Porat Z, Zeiri Y. Green synthesis of gold nanoparticles using plant extracts as reducing agents. Int J Nanomedicine. 2014; 9: 4007-4021.
27.    Aljabali AAA, Akkam Y, Al Zoubi MS, Al-Batayneh KM, Al-Trad B, Abo Alrob O, et al. Synthesis of gold nanoparticles using leaf extract of ziziphus zizyphus and their antimicrobial activity. Nanomaterials (Basel). 2018; 8(3).
28.    Wu T, Duan X, Hu C, Wu C, Chen X, Huang J, et al. Synthesis and characterization of gold nanoparticles from Abies spectabilis extract and its anticancer activity on bladder cancer T24 cells. Artif Cells Nanomed Biotechnol. 2019; 47(1): 512-523.
29.    Dewi FRP, Shoukat N, Alifiyah NI, Wahyuningsih SPA, Rosyidah A, Prenggono MD, et al. Increasing the effect of annonacin using nanodiamonds to inhibit breast cancer cells growth in rats (Rattus norvegicus)-Induced breast cancer. Heliyon. 2022; 8(11): e11418.
30.    Nisa N, Wahyuningsih SPA, Darmanto W, Purnama PR, Dewi FRP, Soegiarti T, et al. Effect of the ethanol extract of red okra pods (Abelmoschus esculentus (L.) Moench) to inhibit cervical cancer cells growth through cell cycle-associated oncogenes. Scientifica (Cairo). 2022; 2022: 1094771.
31.    Huang W, Wang L, Long D, Liu X. Colorimetric determination and recycling of gold(III) ions using label-free plasmonic H(0.3)MoO(3) nanoparticles. Mikrochim Acta. 2023; 190(6): 245.
32.    Costa LASA DJ, Gomes GVP, da Silva JBA, Fonseca AF, Druzian JI. Extraction and characterization of nanocellulose from corn stover. Materials Today: Proceedings 2015; 2: 287-294.
33.    Garcia-Gutierrez L, Delgado MD, Leon J. MYC oncogene contributions to release of cell cycle brakes. Genes (Basel). 2019; 10(3).
34.    Wuithschick M, Birnbaum A, Witte S, Sztucki M, Vainio U, Pinna N, et al. Turkevich in new robes: key questions answered for the most common gold nanoparticle synthesis. ACS Nano. 2015; 9: 7052-7071.
35.    Slepicka P, Slepickova Kasalkova N, Siegel J, Kolska Z, Svorcik V. Methods of gold and silver nanoparticles preparation. Materials (Basel). 2019; 13(1).
36.    Wagner FE, Haslbeck S, Stievano L, Calogero S, Pankhurst QA, Martinek KP. Before striking gold in gold-ruby glass. Nature. 2000; 407(6805): 691-692.
37.    Cardell C, Guerra I. Natural corrosion-induced gold nanoparticles yield purple color of Alhambra palaces decoration. Sci Adv. 2022; 8(36): eabn2541.
38.    Zuber A, Purdey M, Schartner E, Forbes C, van der Hoek B, Giles D,  et al. Detection of gold nanoparticles with different sizes using absorption and fluorescence based method. Sens Actuators Rep. 2016; 227: 117-27.
39.    He YQ, Liu SP, Kong L, Liu ZF. A study on the sizes and concentrations of gold nanoparticles by spectra of absorption, resonance Rayleigh scattering and resonance non-linear scattering. Spectrochim Acta A Mol Biomol Spectrosc. 2005; 61(13-14): 2861-2866.
40.    Varshney R, Bhadauria S, Gaur MS. Biogenic synthesis of silver nanocubes and nanorods using sundried Stevia rebaudiana leaves. Adv Mater Lett. 2010; 1: 232-237.
41.    Priya MRK, Iyer PR. Antiproliferative effects on tumor cells of the synthesized gold nanoparticles against Hep2 liver cancer cell line. Egypt Liver J. 2020; 10(1): 15.
42.    Majoumouo MS, Sharma JR, Sibuyi NRS, Tincho MB, Boyom FF, Meyer M. Synthesis of biogenic gold nanoparticles from terminalia mantaly extracts and the evaluation of their in vitro cytotoxic effects in cancer cells. Molecules. 2020; 25(19).
43.    Jeyarani S, Vinita NM, Puja P, Senthamilselvi S, Devan U, Velangani AJ, et al. Biomimetic gold nanoparticles for its cytotoxicity and biocompatibility evidenced by fluorescence-based assays in cancer (MDA-MB-231) and non-cancerous (HEK-293) cells. J Photochem Photobiol B. 2020; 202: 111715.
44.    Kus-Liskiewicz M, Fickers P, Ben Tahar I. Biocompatibility and cytotoxicity of gold nanoparticles: recent advances in methodologies and regulations. Int J Mol Sci. 2021; 22(20).
45.    Vijayakumar S, Ganesan S. In vitro cytotoxicity assay on gold nanoparticles with different stabilizing agents. J Nanomater. 2012; 2012(734398).
46.    Meyer N, Penn LZ. Reflecting on 25 years with MYC. Nat Rev Cancer. 2008; 8(12):976-990.
47.    Dang CV, O’Donnell KA, Zeller KI, Nguyen T, Osthus RC, Li F. The c-Myc target gene network. Semin Cancer Biol. 2006;16(4): 253-264.
48.    Chen H, Liu H, Qing G. Targeting oncogenic Myc as a strategy for cancer treatment. Signal Transduct Target Ther. 2018; 3:5.
49.    Montalto FI, De Amicis F. Cyclin D1 in cancer: a molecular connection for cell cycle control, adhesion and invasion in tumor and stroma. Cells. 2020; 9(12).
50.    Liao DJ, Thakur A, Wu J, Biliran H, Sarkar FH. Perspectives on c-Myc, Cyclin D1, and their interaction in cancer formation, progression, and response to chemotherapy. Crit Rev Oncog. 2007; 13(2): 93-158.
51.    Gao FY, Li XT, Xu K, Wang RT, Guan XX. c-MYC mediates the crosstalk between breast cancer cells and tumor microenvironment. Cell Commun Signal. 2023; 21(1): 28.
52.    Jeffreys SA, Becker TM, Khan S, Soon P, Neubauer H, de Souza P, et al. Prognostic and predictive value of ccnd1/ cyclin d1 amplification in breast cancer with a focus on postmenopausal patients: a systematic review and meta-analysis. Front Endocrinol (Lausanne). 2022; 13: 895729.

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