Chemical Profiling, Bioactive Properties, and Anticancer and Antimicrobial Potential of Juglans regia L. Leaves
Abstract
:1. Introduction
2. Results
2.1. Total Phenolic, Flavonoid, and Proanthocyanidin Contents
2.2. Antioxidant Activity
2.3. Cell Viability
2.4. Antibacterial Potential
2.5. Identification and Quantification of Phenolic Compounds
3. Materials and Methods
3.1. Materials and Reagents
3.2. Plant Material
3.3. Preparation of Extract
3.4. Determination of Total Phenolic, Flavonoid and Proanthocyanidin Content
3.5. Determination of Antioxidant Activity
3.5.1. Superoxide Radical Scavenging Activity Assay (O2●− Method)
3.5.2. Hydroxyl Radical Scavenging Activity Assay (OH● Method)
3.5.3. Chelating Ability of Ferrous Ion (ChA Method)
3.5.4. ABTS●+ Radical Scavenging Activity (ABTS Method)
3.5.5. Determination of Copper Ion Reduction (CUPRAC Method)
3.6. Cell Culture
3.7. MTS Cell Viability Assay
3.8. Antimicrobial and Antifungal Activity
3.9. Determination of Polyphenols Profile by UPLC-Q-TOF-MS
3.10. Statistical Analysis
4. Conclusions
Supplementary Materials
Author Contributions
Funding
Institutional Review Board Statement
Informed Consent Statement
Data Availability Statement
Conflicts of Interest
Sample Availability
References
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TPC | TFC | TPA | |
---|---|---|---|
(mg GAE/g dw) | (mg QE/g dw) | (mg CYE/g dw) | |
J. regia leaves | 342.72 ± 0.49 | 55.64 ± 0.06 | 26.24 ± 0.01 |
O2•− | OH− | ChA | ABTS | CUPRAC | |
---|---|---|---|---|---|
IC50 (µg/mL) | (mmol TE/g dw) | ||||
J. regia leaves | 67.78 ± 0.94 | 193.29 ± 2.80 | 388.61 ± 1.62 | 9.09 ± 0.09 | 1.16 ± 0.01 |
No. | Cell Line | J. regia Leaves | ||
---|---|---|---|---|
IC50 (µg/mL) | ||||
24 h | 48 h | 72 h | ||
1 | CCD 841 CoN | 501.10 ± 4.16 | 388.58 ± 10.05 | 307.22 ± 2.22 |
2 | DLD-1 | 244.18 ± 4.27 | 214.11 ± 4.59 | 267.34 ± 19.64 |
3 | Caco-2 | 270.65 ± 22.65 | 250.03 ± 10.27 | 276.02 ± 11.97 |
4 | MCF-7 | 307.03 ± 1.90 | 255.99 ± 13.81 | 282.10 ± 5.71 |
5 | U87MG | 377.33 ±13.84 | 370.87 ± 13.20 | 327.11 ± 0.63 |
6 | U251MG | 379.05 ± 16.78 | 340.90 ± 13.82 | 285.24 ± 5.33 |
7 | SK-Mel-29 | 379.89 ± 15.80 | 360.46 ± 3.04 | 361.55 ± 2.21 |
No. | Compound | Rt | λmax | [M-H] m/z | Content | |
---|---|---|---|---|---|---|
min | nm | MS | MS/MS | mg/g dw | ||
1 | Chlorogenic acid * | 2.27 | 299 sh, 327 | 353 | 191 | 2.78 ± 0.01 jk |
2 | Caffeic acid 3-O-glucoside | 2.48 | 299 sh, 324 | 341 | 179 | 1.30 ± 0.00 g |
3 | Caffeic acid 4-O-glucoside | 2.62 | 299 sh, 324 | 341 | 179 | 0.42 ± 0.02 ab |
4 | Undefined caffeic acid derivative | 2.71 | 279 | 463 | 179 | 0.43 ± 0.08 ab |
5 | 3-O-Coumaroylquinic acid | 2.79 | 310 | 337 | 163, 119 | 5.49 ± 0.08 p |
6 | 4-O-Coumaroylquinic acid | 2.94 | 310 | 337 | 163, 119 | 1.27 ± 0.06 g |
7 | 3-O-Coumaric acid glucoside | 3.06 | 312 | 325 | 163 | 3.76 ± 0.11 m |
8 | Caffeic acid * | 3.23 | 299 sh, 324 | 179 | 135 | 1.98 ± 0.11 h |
9 | 4-O-Coumaric acid glucoside | 3.36 | 312 | 325 | 163 | 0.86 ± 0.01 ef |
10 | 4,8-dihydroxy-tetralone-4-O-glucoside | 3.43 | 310 | 339 | 159 | 1.27 ± 0.01 g |
11 | 4-O-Coumaric acid glucoside | 3.48 | 312 | 325 | 163 | 0.73 ± 0.01 def |
12 | Ferulic acid 4-O-glucoside | 3.55 | 320 | 355 | 193, 175 | 0.79 ± 0.03 def |
13 | Di-metoxycinnamoyl hexoside | 3.65 | 328 | 369 | 207, 189 | 0.42 ± 0.05 ab |
14 | Di-galloyl-deoxyhexoside isomer I | 3.73 | 253 | 467 | 315, 169 | 0.37 ± 0.03 ab |
15 | Di-galloyl-deoxyhexoside isomer II | 3.82 | 253 | 467 | 315, 125 | 0.44 ± 0.03 bc |
16 | Quercetin 3-O-xyloside * | 3.96 | 255, 354 | 433 | 301 | 0.69 ± 0.02 de |
17 | 3-Coumaric acid | 4.13 | 310 | 163 | 119 | 2.53 ± 0.10 ij |
18 | Taxifolin pentoside isomer I | 4.27 | 290 | 435 | 285, 151 | 0.63 ± 0.14 cd |
19 | Quercetin 3-O-glucoside * | 4.35 | 255, 353 | 463 | 301 | 19.38 ± 0.50 s |
20 | Quercetin 3-O-galactoside * | 4.35 | 255, 353 | 463 | 301 | 4.76 ± 0.22 o |
21 | Taxifolin pentoside isomer II | 4.89 | 290 | 435 | 285, 151 | 1.33 ± 0.10 g |
22 | Quercetin pentoside isomer I | 4.95 | 255, 354 | 433 | 301 | 2.11 ± 0.19 ij |
23 | Quercetin pentoside isomer II | 5.06 | 255, 354 | 433 | 301 | 6.81 ± 0.29 q |
24 | Kaempferol 3-O-glucoside * | 5.08 | 264, 338 | 447 | 285 | 3.03 ± 0.04 k |
25 | Quercetin pentoside isomer III | 5.15 | 255, 354 | 433 | 301 | 12.20 ± 0.42 r |
26 | Kaempferol hexoside | 5.34 | 264, 338 | 447 | 285 | 0.66 ± 0.02 de |
27 | Quercetin 3-O-rhamnoside * | 5.36 | 255, 354 | 446 | 301 | 4.36 ± 0.02 n |
28 | Kaempferol pentoside isomer I | 5.51 | 264, 338 | 417 | 285 | 2.30 ± 0.05 hi |
29 | Kaempferol pentoside isomer II | 5.60 | 264, 338 | 417 | 285 | 0.34 ± 0.05 ab |
30 | Di-galloyl-shikimic acid | 5.74 | 290 | 477 | 325, 169 | 1.99 ± 0.12 gh |
31 | Kaempferol pentoside isomer III | 5.51 | 264, 338 | 417 | 285 | 3.23 ± 0.27 l |
32 | Kaempferol 3-O-rhamnoside * | 6.01 | 264, 338 | 431 | 285 | 0.56 ± 0.01 bc |
33 | Unidentified caffeic derivative | 6.24 | 299 sh, 321 | 501 | 179 | 0.90 ± 0.04 ef |
34 | Quercetin acetyl-rhamnoside isomer I | 6.37 | 255, 354 | 489 | 447, 301 | 3.76 ± 0.00 m |
35 | Quercetin acetyl-pentoside | 6.38 | 255, 354 | 475 | 433, 301 | 2.12 ± 0.05 ghi |
36 | Hydrojuglone derivative | 6.68 | 327 | 517 | 175 | 0.30 ± 0.01 a |
37 | Quercetin acetyl-rhamnoside isomer II | 6.80 | 255, 354 | 489 | 447, 301 | 0.83 ± 0.04 ef |
38 | 4′′′-Dehydroxyamentoflavone | 6.95 | 266, 312 | 521 | 375 | 4.30 ± 0.14 n |
39 | Kaempferol acetyl-rhamnoside | 7.12 | 264, 336 | 473 | 431, 285 | 0.84 ± 0.03 ef |
40 | Unidentified caffeic derivative | 7.89 | 299 sh, 324 | 501 | 179 | 2.01 ± 0.13 gh |
Total | 104.28 ± 2.57 |
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Żurek, N.; Pycia, K.; Pawłowska, A.; Potocki, L.; Kapusta, I.T. Chemical Profiling, Bioactive Properties, and Anticancer and Antimicrobial Potential of Juglans regia L. Leaves. Molecules 2023, 28, 1989. https://doi.org/10.3390/molecules28041989
Żurek N, Pycia K, Pawłowska A, Potocki L, Kapusta IT. Chemical Profiling, Bioactive Properties, and Anticancer and Antimicrobial Potential of Juglans regia L. Leaves. Molecules. 2023; 28(4):1989. https://doi.org/10.3390/molecules28041989
Chicago/Turabian StyleŻurek, Natalia, Karolina Pycia, Agata Pawłowska, Leszek Potocki, and Ireneusz Tomasz Kapusta. 2023. "Chemical Profiling, Bioactive Properties, and Anticancer and Antimicrobial Potential of Juglans regia L. Leaves" Molecules 28, no. 4: 1989. https://doi.org/10.3390/molecules28041989
APA StyleŻurek, N., Pycia, K., Pawłowska, A., Potocki, L., & Kapusta, I. T. (2023). Chemical Profiling, Bioactive Properties, and Anticancer and Antimicrobial Potential of Juglans regia L. Leaves. Molecules, 28(4), 1989. https://doi.org/10.3390/molecules28041989