Role of Ajwa Date Fruit Pulp and Seed in the Management of Diseases through In Vitro and In Silico Analysis
Abstract
:Simple Summary
Abstract
1. Introduction
2. Materials and Methods
2.1. Materials
2.2. Preparation of Extracts
2.3. Phytochemical Screening
2.4. Evaluation of Phenolic Content
2.5. Evaluation of Flavonoid Contents in Extracts
2.6. Reducing Capacity Assessment
2.7. Scavenging of Hydrogen Peroxide (H2O2)
2.8. DPPH Assay
2.9. Albumin Denaturation Inhibition Activity
2.10. Inhibition of Proteinase Action
2.11. Inhibition of Egg Albumin Denaturation
2.12. Assessment of Potential of Membrane Stabilization
- a
- Preparation of Red Blood Cell (RBC) Suspension
- b
- Heat Induced Hemolysis
- c
- Inhibition of Hyposaline Induced Hemolysis
2.13. Screening of Antiglycating and AGEs Formation Inhibiting Potential
- a
- Incubation of Extracts with In Vitro Glycation System
- b
- Assessment of Browning Intensity
- c
- Effect on Protein Aggregation Index
- d
- Percent Inhibition of Fibrillar State: Congo Red Assay
2.14. Antimicrobial Activity
2.15. Dilutions and Inoculum Preparations
2.16. Procedure for Performing the Well Diffusion Test
2.17. Statistical Analysis
3. Docking Studies
3.1. The Receptors
3.2. The Ligands
3.3. Molecular Docking
4. Results
4.1. Preliminary Screening, Flavonoid, and Phenolic Content
4.2. Hydrogen Peroxide (H2O2) Radical Scavenging
4.3. DPPH Radical Scavenging Assay
4.4. Determination of Protein Denaturation inhibition
4.5. Anti-Proteinase Activity
4.6. Inhibition of Egg Albumin Denaturation Inhibition
4.7. Test for Membrane Stabilization Potential
4.8. Heat Induced Hemolysis
4.9. Protection from Hypotonicity Induced Hemolysis
4.10. Effect of Extract on Browning Intensity of Glycated Samples
4.11. Effect of Seed Extract on Protein Aggregation Index
4.12. Congo Red (CR) Assay
4.13. Antimicrobial Activity of Seed and Fruit Pulp Extract
4.14. Receptor–Ligand Interaction Study by Molecular Docking
5. Discussion
6. Conclusions
Author Contributions
Funding
Institutional Review Board Statement
Informed Consent Statement
Data Availability Statement
Acknowledgments
Conflicts of Interest
References
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Preliminary Screening | Ajwa Fruit Pulp | Ajwa Seed |
---|---|---|
Weight of dry powder of rhizome | 100 g | 100 g |
Yield | 18.79% | 21.19% |
Extract | Methanol | Methanol |
Color | Reddish brown | Brown |
Odour | Sweet | No specific |
Texture | Sticky | Sticky |
Flavonoid (alkaline reagent test) | + | + |
Phenolic compounds (FeCl3 test) | + | + |
Phytochemical Constituents | Fruit Pulp | Seed |
---|---|---|
Alkaloids | + | + |
Saponins | + | + |
Tannins | ND | ND |
Flavonoids | + | + |
Glycosides | + | + |
Terpenoids | + | + |
Phenolic compounds (FeCl3 test) | + | + |
Test Organisms | Seed Extract (The Diameter of the Zone of Inhibition in mm) | |
---|---|---|
For 50 mg/mL | For 100 mg/mL | |
S. aureus | 13 | 19 |
E. coli | 10 | 15 |
K. pneumoniae | 12 | 16 |
P. aeruginosa | 9 | 14 |
E. faecalis | 11 | 16 |
Test Organisms | MIC Value of Seed Extract (mg/mL) |
---|---|
S. aureus | 25 |
E. coli | 25 |
K. pneumoniae | 25 |
P. aeruginosa | 50 |
E. faecalis | 25 |
Enzymes | Catalase (1DGH) | Superoxide Dismutase (5YTU) | |||
---|---|---|---|---|---|
Ligands | PubChem CID | Binding Energy (kcal/mol) | Interacting Amino Acids | Binding Energy (kcal/mol) | Interacting Amino Acids |
3,3′-Di-O-methyl ellagic acid | 5488919 | −9.9 | Arg72, Arg112, Asn148, Gly131, His75, Tyr358, Val73, Val74, Val146, Ala133 | −5.1 | Arg143, leu144, Pro13 |
Rhamnetin | 5281691 | −10.4 | Phe132, Arg112, Arg365, Val73, Val146, His75, Tyr358, Ala133, Arg72 | −5.8 | Asp11, Thr39, Gly37, Arg143, Leu144, Pro13 |
Caffeic acid | 689043 | −7.3 | His362, Ser114, Arg365, Arg72 | −5.0 | Thr39, Gly37, Leu144 |
Ferulic acid | 445858 | −7.4 | Arg365, Ile332, Arg72, Phe334, His362 | −4.6 | Gly37, Thr39, Gly12, Asp11, Leu144, Pro13, Val14 |
Quercetin rutinoside | 124221768 | −4.7 | His166, Thr361, Ala357, Val73, Ile165 | −6.1 | Gly37, Pro13, Leu144 |
6′′′-Malonylicariin | 135398032 | −8.5 | Asn148, Tyr358, Asp360, Ala357, Phe161, Pro158, Phe356, Pro162 | −5.7 | Asp11, Gly12, Leu38, Gly37, Pro13 |
4-Hydroxy benzoic acid | 135 | −6.5 | His75, Phe334, Arg72, Arg365, Ala133 | −4.0 | Leu144, Pro13, Asp11 |
Phytol | 5280435 | −8.2 | His218, Ser217, Tyr358, Met350, Phe153, Pro158, Ala357, Phe161, Arg354, Val74, Arg72 | −4.1 | Asp11, His43, Pro13, Leu144 |
Punicalagin | 44584733 | 19.7 | His364, Asp360, Met350, Pro162, Ala357, Arg354, Val74, Ala133, Val146 | −5.6 | Leu38, Lys36, Gly37 |
Isoquercitrin | 5280804 | −8.6 | Ala357, His75, Phe161, Arg354, Val74 | −5.4 | Gly37, Leu144, Asp11 |
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Anwar, S.; Raut, R.; Alsahli, M.A.; Almatroudi, A.; Alfheeaid, H.; Alzahrani, F.M.; Khan, A.A.; Allemailem, K.S.; Almatroodi, S.A.; Rahmani, A.H. Role of Ajwa Date Fruit Pulp and Seed in the Management of Diseases through In Vitro and In Silico Analysis. Biology 2022, 11, 78. https://doi.org/10.3390/biology11010078
Anwar S, Raut R, Alsahli MA, Almatroudi A, Alfheeaid H, Alzahrani FM, Khan AA, Allemailem KS, Almatroodi SA, Rahmani AH. Role of Ajwa Date Fruit Pulp and Seed in the Management of Diseases through In Vitro and In Silico Analysis. Biology. 2022; 11(1):78. https://doi.org/10.3390/biology11010078
Chicago/Turabian StyleAnwar, Shehwaz, Ravindra Raut, Mohammed A. Alsahli, Ahmad Almatroudi, Hani Alfheeaid, Faisal M. Alzahrani, Amjad Ali Khan, Khaled S. Allemailem, Saleh A. Almatroodi, and Arshad Husain Rahmani. 2022. "Role of Ajwa Date Fruit Pulp and Seed in the Management of Diseases through In Vitro and In Silico Analysis" Biology 11, no. 1: 78. https://doi.org/10.3390/biology11010078