| Literature DB >> 32012912 |
Prince Edwin Das1, Imad A Abu-Yousef2, Amin F Majdalawieh2, Srinivasan Narasimhan1, Palmiro Poltronieri3.
Abstract
: The synthesis of metal nanoparticles using plant extracts is a very promising method in green synthesis. The medicinal value of Moringa oleifera leaves and the antimicrobial activity of metallic copper were combined in the present study to synthesize copper nanoparticles having a desirable added-value inorganic material. The use of a hydroalcoholic extract of M. oleifera leaves for the green synthesis of copper nanoparticles is an attractive method as it leads to the production of harmless chemicals and reduces waste. The total phenolic content in the M. oleifera leaves extract was 23.0 ± 0.3 mg gallic acid equivalent/g of dried M. oleifera leaves powder. The M. oleifera leaves extract was treated with a copper sulphate solution. A color change from brown to black indicates the formation of copper nanoparticles. Characterization of the synthesized copper nanoparticles was performed using ultraviolet-visible light (UV-Vis) spectrophotometry, Fourier-transform infrared (FTIR) spectrometry, high-resolution transmission electron microscopy (HRTEM), scanning electron microscopy (SEM), and X-ray diffraction (XRD). The synthesized copper nanoparticles have an amorphous nature and particle size of 35.8-49.2 nm. We demonstrate that the M. oleifera leaves extract and the synthesized copper nanoparticles display considerable antioxidant activity. Moreover, the M. oleifera leaves extract and the synthesized copper nanoparticles exert considerable anti-bacterial activity against Escherichia coli, Klebsiella pneumoniae, Staphylococcus aureus, and Enterococcus faecalis (MIC values for the extract: 500, 250, 250, and 250 µg/mL; MIC values for the copper nanoparticles: 500, 500, 500, and 250 µg/mL, respectively). Similarly, the M. oleifera leaves extract and the synthesized copper nanoparticles exert relatively stronger anti-fungal activity against Aspergillus niger, Aspergillus flavus, Candida albicans, and Candida glabrata (MIC values for the extract: 62.5, 62.5, 125, and 250 µg/mL; MIC values for the copper nanoparticles: 125, 125, 62.5, and 31.2 µg/mL, respectively). Our study reveals that the green synthesis of copper nanoparticles using a hydroalcoholic extract of M. oleifera leaves was successful. In addition, the synthesized copper nanoparticles can be potentially employed in the treatment of various microbial infections due to their reported antioxidant, anti-bacterial, and anti-fungal activities.Entities:
Keywords: Moringa oleifera; anti-bacterial; anti-fungal; antioxidant; copper nanoparticles; polyphenolics
Mesh:
Substances:
Year: 2020 PMID: 32012912 PMCID: PMC7037650 DOI: 10.3390/molecules25030555
Source DB: PubMed Journal: Molecules ISSN: 1420-3049 Impact factor: 4.411
Phytochemical analysis of the Moringa oleifera leaves extract. The presence is indicated with (+).
| Functional Group | Test Method | |
|---|---|---|
| Alkaloids | Dragendroff’s test | + |
| Tannins | Ferric chloride test | + |
| Flavonoids | Shinoda test | + |
| Steroids | Salkowski reaction test | + |
| Saponins | Foam test | + |
| Polyphenols | Puncal-D test | + |
| Glycosides | Conc. H2SO4 and heat | + |
| Carbohydrates | Anthrone test | + |
| Proteins | Ninhydrin test | + |
| Amino acids | Millon’s test | + |
Figure 1Chemical structures of major phytochemicals present in M. oleifera leaves extract.
Estimation of total phenolic content before and after the synthesis of copper nanoparticles.
| Sample | Total Phenolic Content (mg/g of Dried Leaves) |
|---|---|
| 23.0 ± 0.3 | |
| 17.0 ± 0.4 |
Scheme 1Schematic representation of the synthesis of copper nanoparticles.
Figure 2Transmission electron microscopy (TEM) images of the synthesized copper nanoparticles.
Figure 3Energy dispersive X-ray spectroscopy (EDS) spectrum with peaks corresponding to copper.
Figure 4Scanning electron microscopy (SEM) image of the synthesized copper nanoparticles.
Figure 5X-ray diffraction (XRD) spectrum of the synthesized copper nanoparticles.
Figure 6Fourier-Transform Infrared (FTIR) spectrum of the M. oleifera leaves extract.
Figure 7FTIR spectrum of the synthesized copper nanoparticles.
Figure 8UV-Vis spectrum of the M. oleifera leaves extract.
Figure 9UV-Vis spectrum of the synthesized copper nanoparticles.
Antioxidant activity percentage (AA%) using DPPH assay.
| Sample | Amount (µg) | ||||
|---|---|---|---|---|---|
| 100 | 200 | 300 | 400 | 500 | |
| Ascorbic acid (standard) | 34.4 | 55.1 | 67.2 | 75.8 | 84.4 |
| 55.1 | 58.6 | 63.7 | 65.5 | 65.5 | |
| Copper nanoparticles | 12.0 | 13.7 | 17.2 | 20.6 | 29.3 |
Total antioxidant capacity (TAC) using phosphomolybdate assay.
| Sample | Concentration (µg/mL) Ascorbic Acid Equivalent | ||||
|---|---|---|---|---|---|
| 50 | 100 | 150 | 200 | 250 | |
| 32.5 | 65.0 | 102.5 | 132.5 | 172.5 | |
| Copper nanoparticles | 12.5 | 12.5 | 17.5 | 25.0 | 47.5 |
Anti-bacterial activity (MIC values).
| Bacterial Species | MIC (µg/mL) |
|---|---|
|
| 500 |
|
| 250 |
|
| 250 |
|
| 250 |
| Copper nanoparticles | |
|
| 500 |
|
| 500 |
|
| 500 |
|
| 250 |
Anti-bacterial activity data (growth (+) and no growth (-)).
| No. | Bacterial Species | Growth of Bacteria | ||||||||||
|---|---|---|---|---|---|---|---|---|---|---|---|---|
| Concentration (µg/mL) | 1000 (1) | 500 (2) | 250 (3) | 125 (4) | 62.5 (5) | 31.2 (6) | 15.6 (7) | 7.8 (8) | Streptomycin (10 µg/500 µL) | Negative Control | Nutrient Broth | |
| 1 |
| - | - | + | + | + | + | + | + | - | + | + |
| 2 |
| - | - | - | + | + | + | + | + | - | + | + |
| 3 |
| - | - | - | + | + | + | + | + | - | + | + |
| 4 |
| - | - | - | + | + | + | + | + | - | + | + |
| Copper Nanoparticles | ||||||||||||
| 1 |
| - | - | + | + | + | + | + | + | - | + | + |
| 2 |
| - | - | + | + | + | + | + | + | - | + | + |
| 3 |
| - | - | + | + | + | + | + | + | - | + | + |
| 4 |
| - | - | - | + | + | + | + | + | - | + | + |
Anti-fungal activity (MIC values).
| Fungal Species | MIC (µg/mL) |
|---|---|
|
| 62.5 |
|
| 62.5 |
|
| 125 |
|
| 250 |
| Copper nanoparticles | |
|
| 125 |
|
| 125 |
|
| 62.5 |
|
| 31.2 |
Anti-fungal activity data (growth (+) and no growth (-)).
| No. | Fungal Species | Growth of Fungi | ||||||||||
|---|---|---|---|---|---|---|---|---|---|---|---|---|
| Concentration (µg/mL) | 1000 (1) | 500 (2) | 250 (3) | 125 (4) | 62.5 (5) | 31.2 (6) | 15.6 (7) | 7.8 (8) | Ketoconazole (10 µg/500 µL) | Negative Control | Nutrient Broth | |
| 1 |
| - | - | - | - | - | + | + | + | - | + | + |
| 2 |
| - | - | - | - | - | + | + | + | - | + | + |
| 3 |
| - | - | - | - | + | + | + | + | - | + | + |
| 4 |
| - | - | - | + | + | + | + | + | - | + | + |
| Copper Nanoparticles | ||||||||||||
| 1 |
| - | - | - | - | + | + | + | + | - | + | + |
| 2 |
| - | - | - | - | + | + | + | + | - | + | + |
| 3 |
| - | - | - | - | - | + | + | + | - | + | + |
| 4 |
| - | - | - | - | - | - | + | + | - | + | + |