Ethiopia has a long history of using medicinal herbs for treating both human and animal illnesses. Nonetheless, not enough research has been done on the antibacterial properties and possible bioactive components of the majority of medicinal plants. Therefore, this study deals with the evaluation of phytochemical, antimicrobial, antioxidant activities, phenol content and XRF analysis of Commelina Diffusa Burm.F. plant extracts. Mean values of the antimicrobial activity, MIC, antioxidant activities, phenol content and XRF analysis were reported as mean ± standard deviation. The chloroform leaf extracts of the plant gave the highest yield 23.4% followed by methanol 22.27%. The presence of several metabolite components, including alkaloids, diterpenes, flavonoids, glycosides, phenol, protein, saponin, steroids, tannins, terpenoids, tri-terpenoids and amino acids, has been shown by qualitative phytochemical analysis of plant parts. Significant antibacterial activity against the test bacterial strains was demonstrated by steam extracts of Commelina Diffusa Burm.F. Moreover, the methanolic extract of the plant demonstrated notable antioxidant activity. The highest value of phenolic content was obtained in Commelina Diffusa Burm.F. steam methanol extract followed by leaf extract while Commelina Diffusa Burm.F. root extract shows lower phenolic content. In this study, threaten elements were determined in the Commelina Diffusa Burm.F. plant part by using XRF spectroscopy. Overall, this research contributes to the understanding of pharmacological potential of Commelina Diffusa Burm.F. and highlights the importance of further exploring its medicinal properties. The findings provide valuable insights into utilizing medicinal plants for disease treatment and support the development of natural therapeutic agents.
Published in | Journal of Diseases and Medicinal Plants (Volume 10, Issue 3) |
DOI | 10.11648/j.jdmp.20241003.11 |
Page(s) | 40-51 |
Creative Commons |
This is an Open Access article, distributed under the terms of the Creative Commons Attribution 4.0 International License (http://creativecommons.org/licenses/by/4.0/), which permits unrestricted use, distribution and reproduction in any medium or format, provided the original work is properly cited. |
Copyright |
Copyright © The Author(s), 2024. Published by Science Publishing Group |
Antibacterial Activity, Antioxidant Activity, XRF
Plant name | Parts used | Solvent | Weight of extract obtained (g) | Yield percentage % |
---|---|---|---|---|
Commelina Diffusa Burm.F. | Root | Methanol | 0.56 | 2.81 |
Chloroform | 0.49 | 2.46 | ||
n-hexane | 0.59 | 2.96 | ||
Distill Water | 0.22 | 1.10 | ||
Commelina Diffusa Burm.F. | Stem | Methanol | 2.71 | 13.57 |
Chloroform | 3.67 | 18.35 | ||
n-hexane | 0.82 | 4.11 | ||
Distill Water | 0.54 | 2.7 | ||
Commelina Diffusa Burm.F. | Leaf | Methanol | 4.45 | 22.27 |
Chloroform | 4.68 | 23.4 | ||
n-hexane | 3.85 | 19.26 | ||
Distill Water | 0.42 | 2.1 |
Phytochemical Analysis | Test | Methanol extract | n-hexane extract | Ethyl acetate extract | ||||||
---|---|---|---|---|---|---|---|---|---|---|
Root | Stem | Leaf | Root | Stem | Leaf | Root | Stem | Leaf | ||
Alkaloids | Mayer’s | + | + | _ | _ | _ | _ | + | + | + |
Dragondroff’s | + | + | _ | _ | _ | _ | + | + | + | |
Wagner’s | + | + | _ | _ | _ | _ | + | + | + | |
Anthraqunies | Free and combined anthraquinones | _ | _ | _ | _ | _ | _ | _ | _ | _ |
Diterpenes | General test | _ | + | _ _ | _ | + | + | + | + | + |
Flavonoids | Lead acetate | + | + | _ | _ | _ | _ | _ | _ | _ |
Sodium hydroxide | + | + | _ | _ | _ | _ | _ | _ | _ | |
Glycosides | Keller-Killani | _ | _ | + | _ | _ | + | _ | + | _ |
Phenol | General Test | _ | _ | _ | _ | + | + | _ | + | _ |
Protein | Ninhydrin | _ | + | + | _ | _ | _ | _ | _ | |
Saponin | Frothing | _ | _ | _ | _ | _ | _ | _ | _ | _ |
Steroids | Salkowski’s | _ | + | + | _ | _ | _ | _ | _ | _ |
Tannins | Ferric chloride | _ | _ | + | _ | _ | _ | _ | _ | + |
Terpenoids | Salkowski | _ | _ | _ | _ | _ | _ | _ | _ | _ |
Tri- Terpenoids | General Test | _ | _ | + | + | + | + | _ | _ | _ |
amino acid | General Test | _ | + | + | _ | _ | _ | _ | _ | _ |
Reducing sugar | General Test | _ | _ | + | _ | _ | _ | _ | _ | _ |
Mean valuesa of inhibition zone (mm) | |||
---|---|---|---|
Plant part | Solvents | Inhibition zone of S. auras | Inhibition zone of E. coli |
Root | Methanol | NDc | -b |
Chloroform | ND | - | |
n-hexane | - | ND | |
Distill Water | - | - | |
Steam | Methanol | 25 | 22 |
Chloroform | 23 | 19.5 | |
n-hexane | 18 | 19 | |
Distill Water | - | - | |
Leaf | Methanol | 16 | 15.5 |
Chloroform | 15.2 | 15.9 | |
n-hexane | 17 | 16.5 | |
Distill Water | - | - |
Plant parts | Solvents | MIC of crude extracts (mg/ml) a | |
---|---|---|---|
S. auras | E. coli | ||
Root | Methanol | NDc | -b |
Chloroform | ND | - | |
n-hexane | - | ND | |
Distill Water | - | - | |
Steam | Methanol | 2.109 | 2.234 |
Chloroform | 1.101 | 1.401 | |
n-hexane | 1.098 | 1.539 | |
Distill Water | - | - | |
Leaf | Methanol | 4.562 | 6.251 |
Chloroform | 2.914 | 3.125 | |
n-hexane | 1.243 | 1.625 | |
Distill Water | - | - |
Extracts | Parts used | Total phenolic content (mg GvE/g) |
---|---|---|
Methanol | Root | 53.6 |
Methanol | Stem | 61.9 |
Methanol | Leaf | 53.6 |
S. No | Root | Steam | Leaf | |||
---|---|---|---|---|---|---|
Element | Con (ppm) | Element | Con (ppm) | Element | Con (ppm) | |
1 | Fe | 544.59 | Fe | 4767.55 | Ca | 419.13 |
2 | Ca | 218.35 | Ca | 383.87 | Fe | 273.41 |
3 | Cr | 147.63 | K | 216.95 | K | 168.58 |
4 | Zn | 84.75 | Cr | 177.54 | Cr | 155.53 |
5 | Cu | 42.52 | Zn | 121.32 | Zn | 82.09 |
6 | Sr | 31.68 | Zr | 52.47 | Sr | 38.59 |
7 | V | 29.83 | Cu | 49.46 | Cu | 37.64 |
8 | W | 28.39 | W | 44.39 | V | 32.38 |
9 | Zr | 15.23 | Sr | 39.07 | W | 27.81 |
10 | Mo | 7.69 | V | 31.26 | Zr | 14.3 |
11 | Rb | 7.13 | Rb | 9.99 | Mo | 9.08 |
12 | U | 4.74 | Mo | 8.23 | Rb | 6.96 |
13 | K | <LOD | U | 7.84 | U | 4.57 |
DMSO | Dimethyl Sulfoxide |
DPPH | 2,2-Diphenyl-1-picrylhydrazyl |
MIC | Minimum Inhibitory Concentration |
XRF | X-ray Fluorescence Spectroscopy |
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APA Style
Yahiya, Y. S., Temeche, A. M., Delisho, F. D., Abrar, K. A. (2024). Invitro Antibacterial, Antioxidant and XRF Analysis of Commelina Diffusa Burm.F. Plant Extracts. Journal of Diseases and Medicinal Plants, 10(3), 40-51. https://doi.org/10.11648/j.jdmp.20241003.11
ACS Style
Yahiya, Y. S.; Temeche, A. M.; Delisho, F. D.; Abrar, K. A. Invitro Antibacterial, Antioxidant and XRF Analysis of Commelina Diffusa Burm.F. Plant Extracts. J. Dis. Med. Plants 2024, 10(3), 40-51. doi: 10.11648/j.jdmp.20241003.11
AMA Style
Yahiya YS, Temeche AM, Delisho FD, Abrar KA. Invitro Antibacterial, Antioxidant and XRF Analysis of Commelina Diffusa Burm.F. Plant Extracts. J Dis Med Plants. 2024;10(3):40-51. doi: 10.11648/j.jdmp.20241003.11
@article{10.11648/j.jdmp.20241003.11, author = {Yonas Syraji Yahiya and Aweke Mamo Temeche and Fitusm Dejene Delisho and Kidist Ali Abrar}, title = {Invitro Antibacterial, Antioxidant and XRF Analysis of Commelina Diffusa Burm.F. Plant Extracts }, journal = {Journal of Diseases and Medicinal Plants}, volume = {10}, number = {3}, pages = {40-51}, doi = {10.11648/j.jdmp.20241003.11}, url = {https://doi.org/10.11648/j.jdmp.20241003.11}, eprint = {https://article.sciencepublishinggroup.com/pdf/10.11648.j.jdmp.20241003.11}, abstract = {Ethiopia has a long history of using medicinal herbs for treating both human and animal illnesses. Nonetheless, not enough research has been done on the antibacterial properties and possible bioactive components of the majority of medicinal plants. Therefore, this study deals with the evaluation of phytochemical, antimicrobial, antioxidant activities, phenol content and XRF analysis of Commelina Diffusa Burm.F. plant extracts. Mean values of the antimicrobial activity, MIC, antioxidant activities, phenol content and XRF analysis were reported as mean ± standard deviation. The chloroform leaf extracts of the plant gave the highest yield 23.4% followed by methanol 22.27%. The presence of several metabolite components, including alkaloids, diterpenes, flavonoids, glycosides, phenol, protein, saponin, steroids, tannins, terpenoids, tri-terpenoids and amino acids, has been shown by qualitative phytochemical analysis of plant parts. Significant antibacterial activity against the test bacterial strains was demonstrated by steam extracts of Commelina Diffusa Burm.F. Moreover, the methanolic extract of the plant demonstrated notable antioxidant activity. The highest value of phenolic content was obtained in Commelina Diffusa Burm.F. steam methanol extract followed by leaf extract while Commelina Diffusa Burm.F. root extract shows lower phenolic content. In this study, threaten elements were determined in the Commelina Diffusa Burm.F. plant part by using XRF spectroscopy. Overall, this research contributes to the understanding of pharmacological potential of Commelina Diffusa Burm.F. and highlights the importance of further exploring its medicinal properties. The findings provide valuable insights into utilizing medicinal plants for disease treatment and support the development of natural therapeutic agents. }, year = {2024} }
TY - JOUR T1 - Invitro Antibacterial, Antioxidant and XRF Analysis of Commelina Diffusa Burm.F. Plant Extracts AU - Yonas Syraji Yahiya AU - Aweke Mamo Temeche AU - Fitusm Dejene Delisho AU - Kidist Ali Abrar Y1 - 2024/07/31 PY - 2024 N1 - https://doi.org/10.11648/j.jdmp.20241003.11 DO - 10.11648/j.jdmp.20241003.11 T2 - Journal of Diseases and Medicinal Plants JF - Journal of Diseases and Medicinal Plants JO - Journal of Diseases and Medicinal Plants SP - 40 EP - 51 PB - Science Publishing Group SN - 2469-8210 UR - https://doi.org/10.11648/j.jdmp.20241003.11 AB - Ethiopia has a long history of using medicinal herbs for treating both human and animal illnesses. Nonetheless, not enough research has been done on the antibacterial properties and possible bioactive components of the majority of medicinal plants. Therefore, this study deals with the evaluation of phytochemical, antimicrobial, antioxidant activities, phenol content and XRF analysis of Commelina Diffusa Burm.F. plant extracts. Mean values of the antimicrobial activity, MIC, antioxidant activities, phenol content and XRF analysis were reported as mean ± standard deviation. The chloroform leaf extracts of the plant gave the highest yield 23.4% followed by methanol 22.27%. The presence of several metabolite components, including alkaloids, diterpenes, flavonoids, glycosides, phenol, protein, saponin, steroids, tannins, terpenoids, tri-terpenoids and amino acids, has been shown by qualitative phytochemical analysis of plant parts. Significant antibacterial activity against the test bacterial strains was demonstrated by steam extracts of Commelina Diffusa Burm.F. Moreover, the methanolic extract of the plant demonstrated notable antioxidant activity. The highest value of phenolic content was obtained in Commelina Diffusa Burm.F. steam methanol extract followed by leaf extract while Commelina Diffusa Burm.F. root extract shows lower phenolic content. In this study, threaten elements were determined in the Commelina Diffusa Burm.F. plant part by using XRF spectroscopy. Overall, this research contributes to the understanding of pharmacological potential of Commelina Diffusa Burm.F. and highlights the importance of further exploring its medicinal properties. The findings provide valuable insights into utilizing medicinal plants for disease treatment and support the development of natural therapeutic agents. VL - 10 IS - 3 ER -