RP-HPLC-Based Flavonoid Profiling Accompanied with Multivariate Analysis: An Efficient Approach for Quality Assessment of Houttuynia cordata Thunb Leaves and Their Commercial Products
Abstract
:1. Introduction
2. Results
2.1. Optimization of RP-HPLC Conditions for Flavonoid Analysis
2.2. Validation of Optimized RP-HPLC Method
2.2.1. Specificity
2.2.2. Precision, Repeatability, Intermediate Precision, and Stability
2.2.3. Accuracy
2.2.4. Linearity, Range, Limit of Detection, and Limit of Quantification
2.3. HPLC-Based Flavonoid Profiles
2.4. Quantification Results of 36 H. cordata Leaves Samples
2.5. Principal Component Analysis (PCA)
2.6. Hierarchical Cluster Analysis (HCA)
3. Discussion
4. Materials and Methods
4.1. Materials and Reagents
4.2. Instrumentations
4.3. Sampling H. cordata Leaves
4.4. Preparation of Flavonoids Standard Solution
4.5. Preparation of Houttuynia Cordata Leaves Sample Solution
4.6. RP-HPLC Method Optimization for the Analysis of the Flavonoids
4.7. RP-HPLC Method Validation
4.7.1. Specificity
4.7.2. Stability
4.7.3. Accuracy
4.7.4. Precision
4.7.5. Linearity and Range
4.7.6. LOD and LOQ
4.8. Quantitative Analysis of Flavonoids Content
4.9. Data Analysis
5. 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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Column | Elution Program | Flow Rate (mL min−1) | Column Temp. | Mobile Phase | Peak | Retention Time (min) | Relative Retention Time (min) | Resolution | Tailing Factor | The Number of Theoretical Plates |
---|---|---|---|---|---|---|---|---|---|---|
Phenomenex 250 mm × 4.6 mm, 5 μm | Program A: 0–15 min: 20% B; 15–25 min: 20–21% B; 25–40 min: 21–70% B. | 1 | 25 °C | AA 0.2% (A):ACN (B) | 1 | 8.07 | 0.923 | ― | 0.999 | 4813 |
2 | 9.75 | 0.892 | 3.652 | ― | 7394 | |||||
3 | 10.12 | 0.885 | 0.457 | ― | 1243 | |||||
4 | 15.62 | 0.857 | 6.060 | 1.126 | 8756 | |||||
5 | 33.06 | 0.860 | 36.027 | 1.879 | 193,035 | |||||
FA 0.1% (A):ACN (B) | 1 | 8.24 | 0.943 | ― | 1.016 | 4864 | ||||
2 | 9.95 | 0.910 | 3.697 | ― | 7746 | |||||
3 | 10.33 | 0.904 | 0.555 | ― | 2010 | |||||
4 | 16.04 | 0.880 | 7.162 | 1.157 | 9116 | |||||
5 | 33.23 | 0.864 | 33.483 | 1.961 | 140,203 | |||||
Program B: 0–10 min: 20% B; 10–30 min: 20–21% B; 30–50 min: 21–70% B. | 0.9 | 25 °C | AA 0.2% (A):ACN (B) | 1 | 8.98 | 1.027 | ― | 0.997 | 5254 | |
2 | 10.84 | 0.992 | 3.809 | ― | 8156 | |||||
3 | 11.25 | 0.984 | 0.600 | ― | 2513 | |||||
4 | 17.31 | 0.950 | 7.688 | 1.124 | 10377 | |||||
5 | 39.03 | 1.015 | 40.597 | 1.297 | 160,129 | |||||
FA 0.1% (A):ACN (B) | 1 | 9.01 | 1.031 | ― | 1.026 | 5196 | ||||
2 | 10.92 | 0.999 | 3.886 | ― | 8315 | |||||
3 | 11.34 | 0.992 | 0.645 | ― | 3035 | |||||
4 | 17.54 | 0.963 | 8.232 | 1.156 | 10489 | |||||
5 | 39.16 | 1.018 | 44.222 | 1.069 | 287,119 | |||||
Phenomenex 150 mm × 4.6 mm, 5 μm | Program C: 0–5 min: 20% B; 5–25 min: 20–21% B; 25–45 min: 21–50% B. | 0.6 | 25 °C | FA 0.1% (A):ACN (B) | 1 | 7.88 | 0.902 | ― | 0.992 | 7465 |
2 | 9.93 | 0.909 | 5.221 | ― | 8870 | |||||
3 | 10.35 | 0.906 | 0.909 | ― | 6873 | |||||
4 | 16.45 | 0.903 | 10.798 | 0.904 | 10,870 | |||||
5 | 37.35 | 0.971 | 42.743 | 1.058 | 185,427 | |||||
40 °C | FA 0.1% (A):ACN (B) | 1 | 5.69 | 0.651 | ― | 1.019 | 4905 | |||
2 | 7.10 | 0.650 | 4.184 | ― | 6561 | |||||
3 | 7.40 | 0.647 | 0.659 | ― | 2850 | |||||
4 | 11.71 | 0.643 | 8.329 | 0.867 | 9489 | |||||
5 | 33.83 | 0.880 | 59.77 | 0.999 | 272,802 |
Standards | Precision | Intermediate Precision | Repeatability | Stability | ||||||
---|---|---|---|---|---|---|---|---|---|---|
Intra-Day (n = 6) | Inter-Day (n = 6) | Intra-Day and Inter-Day (n = 12) | (n = 5) | 0, 3, 6, 9, and 12 h | ||||||
Mean | %RSD | Mean | %RSD | Mean | %RSD | Mean | %RSD | Mean | %RSD | |
Rutin hydrate | 173,008.3 | 1.76 | 175,346.8 | 1.40 | 174,177.6 | 1.13 | 173,715 | 1.62 | 175,213.2 | 1.45 |
Hyperin | 300,690.2 | 0.38 | 310,497.3 | 0.89 | 305,593.8 | 1.80 | 300,476 | 0.37 | 305,351.6 | 1.69 |
Isoquercitrin | 63,249.83 | 1.26 | 667,22.17 | 1.21 | 64,986 | 1.27 | 63,043 | 1.37 | 65,089 | 1.97 |
Quercitrin | 1,267,000 | 0.25 | 1,308,277 | 0.95 | 1,287,638 | 1.80 | 1,267,369 | 0.27 | 1,290,176 | 1.49 |
Quercetin | 32,355.83 | 1.14 | 33,940 | 1.48 | 33,147.92 | 1.12 | 32,245 | 0.87 | 32,882 | 2.76 |
Standards | Added Conc. (µg/mL) | Detected Conc. (µg/mL) | Recovery * (%) |
---|---|---|---|
Rutin (1) (73.13 µg/mL) | 58.56 | 131.71 | 100.03 |
73.12 | 147.23 | 101.34 | |
88.04 | 160.51 | 99.25 | |
Hyperin (2) (32.06 µg/mL) | 25.64 | 58.14 | 101.72 |
32.06 | 64.22 | 100.31 | |
38.43 | 71.16 | 101.74 | |
Isoquercitrin (3) (10.42 µg/mL) | 8.32 | 18.81 | 100.84 |
10.42 | 20.73 | 98.94 | |
12.48 | 23.12 | 101.76 | |
Quercitrin (4) (120.25 µg/mL) | 96.16 | 215.93 | 99.50 |
120.20 | 241.75 | 101.08 | |
144.24 | 265.87 | 100.96 | |
Quercetin (5) (1.14 µg/mL) | 0.92 | 2.07 | 101.09 |
1.11 | 2.23 | 98.20 | |
1.41 | 2.53 | 98.58 |
Standards | Calibration Curve | Correlation Coefficient (R2) | Linear Range (μg/mL) | LOD (μg/mL) | LOQ (μg/mL) |
---|---|---|---|---|---|
Rutin | y = 0.000190444x − 0.477933 | 0.9999 | 5–200 | 1.41 | 5.26 |
Hyperin | y = 0.0000918087x − 1.65027 | 0.9999 | 16–200 | 1.42 | 7.68 |
Isoquercitrin | y = 0.000180095x + 0.0143035 | 0.9999 | 1–100 | 0.35 | 1.03 |
Quercitrin | y = 0.000177146x − 2.8326 | 0.9999 | 48–1000 | 9.13 | 33.44 |
Quercetin | y = 0.0000435515x + 0.0374795 | 0.9999 | 0.2–8 | 0.09 | 0.22 |
Sample | Rutin | Hyperin | Isoquercitrin | Quercitrin | Quercetin |
---|---|---|---|---|---|
HC01 | 0.8866 ± 0.0059 | 1.1959 ± 0.0006 | 0.5344 ± 0.0008 | 6.8148 ± 0.0322 | 0.0249 ± 0.0003 |
HC02 | 1.5230 ± 0.0104 | 2.1001 ± 0.0057 | 0.8719 ± 0.0098 | 8.6587 ± 0.0266 | 0.0505 ± 0.0010 |
HC03 | 1.6269 ± 0.0061 | 1.7714 ± 0.0010 | 0.5941 ± 0.0043 | 9.4315 ± 0.0011 | 0.0373 ± 0.0002 |
HC04 | 0.4965 ± 0.0001 | 0.7087 ± 0.0009 | 0.3938 ± 0.0005 | 6.0251 ± 0.0066 | 0.0655 ± 0.0010 |
HC05 | 0.0410 ± 0.0013 | 0.021 ± 0.0004 | 0.0265 ± 0.0002 | 0.2572 ± 0.0055 | 0.0098 ± 0.0001 |
HC06 | 0.7678 ± 0.0016 | 1.1615 ± 0.0005 | 0.5380 ± 0.0024 | 5.3637 ± 0.0256 | 0.0234 ± 0.0002 |
HC07 | 0.5144 ± 0.0012 | 0.6056 ± 0.0004 | 0.4051 ± 0.0017 | 4.3838 ± 0.0078 | 0.0191 ± 0.0003 |
HC08 | 0.2340 ± 0.0001 | 0.2165 ± 0.0001 | 0.0742 ± 0.0004 | 0.4037 ± 0.0004 | 0.0165 ± 0.0001 |
HC09 | 0.7595 ± 0.0002 | 1.6164 ± 0.0001 | 0.6194 ± 0.0002 | 7.1828 ± 0.0047 | 0.1126 ± 0.0001 |
HC10 | 1.3060 ± 0.0080 | 2.2296 ± 0.0085 | 0.9085 ± 0.0031 | 10.8441 ± 0.0763 | 0.0336 ± 0.0000 |
HC11 | 0.3922 ± 0.0072 | 0.5278 ± 0.0032 | 0.2566 ± 0.0023 | 4.1260 ± 0.0244 | 0.0102 ± 0.0002 |
HC12 | 1.2201 ± 0.0035 | 1.3328 ± 0.0003 | 0.6561 ± 0.0027 | 8.8097 ± 0.0237 | 0.0299 ± 0.0003 |
HC13 | 0.4605 ± 0.0042 | 0.4094 ± 0.0015 | 0.1632 ± 0.0011 | 3.7457 ± 0.0342 | 0.0191 ± 0.0005 |
HC14 | 1.6428 ± 0.0048 | 2.0960 ± 0.0086 | 0.8210 ± 0.0053 | 13.1371 ± 0.0314 | 0.0450 ± 0.0004 |
HC15 | 0.9696 ± 0.0062 | 0.8089 ± 0.0046 | 0.3204 ± 0.0032 | 5.7219 ± 0.0258 | 0.0208 ± 0.0004 |
HC16 | 1.4710 ± 0.0236 | 1.8131 ± 0.0154 | 0.6079 ± 0.0059 | 9.4754 ± 0.1420 | 0.0298 ± 0.0004 |
HC17 | 0.7509 ± 0.0014 | 1.0327 ± 0.0013 | 0.5109 ± 0.0029 | 4.9715 ± 0.0129 | 0.0208 ± 0.0003 |
HC18 | 1.3927 ± 0.0091 | 1.3874 ± 0.0043 | 0.8232 ± 0.0129 | 6.8171 ± 0.0277 | 0.0167 ± 0.0010 |
HC19 | 1.0374 ± 0.0036 | 1.7311 ± 0.0119 | 0.8956 ± 0.0095 | 6.9409 ± 0.0330 | 0.0409 ± 0.0004 |
HC20 | 0.7412 ± 0.0208 | 1.6961 ± 0.0009 | 0.7570 ± 0.0027 | 4.3134 ± 0.0874 | 0.1265 ± 0.0012 |
HC21 | 0.8791 ± 0.0073 | 1.6441 ± 0.0015 | 0.6607 ± 0.0050 | 7.6156 ± 0.0397 | 0.0317 ± 0.0033 |
HC22 | 0.7867 ± 0.0123 | 1.1246 ± 0.0141 | 0.5793 ± 0.0138 | 5.9696 ± 0.0698 | 0.0255 ± 0.0012 |
HC23 | 1.2055 ± 0.0043 | 1.6909 ± 0.0001 | 0.8860 ± 0.0030 | 8.4155 ± 0.0126 | 0.0283 ± 0.0003 |
HC24 | 1.0392 ± 0.0028 | 1.7227 ± 0.0049 | 0.8921 ± 0.005 | 6.9002 ± 0.0233 | 0.0420 ± 0.0007 |
HC25 | 0.5392 ± 0.0079 | 0.4673 ± 0.0044 | 0.2838 ± 0.0049 | 4.3088 ± 0.0739 | 0.0181 ± 0.0003 |
HC26 | 0.1838 ± 0.0028 | 0.2007 ± 0.0037 | 0.0966 ± 0.0013 | 1.3089 ± 0.0109 | 0.0061 ± 0.0003 |
HC27 | 0.7167 ± 0.0093 | 0.5610 ± 0.0095 | 0.2436 ± 0.0030 | 4.8100 ± 0.0354 | 0.0313 ± 0.0002 |
HC28 | 0.7465 ± 0.0099 | 0.5954 ± 0.0031 | 0.2577 ± 0.0016 | 5.0576 ± 0.0707 | 0.0365 ± 0.0004 |
HC29 | 1.5310 ± 0.0230 | 0.8166 ± 0.0065 | 0.9112 ± 0.0097 | 4.7169 ± 0.4037 | 0.0242 ± 0.0003 |
HC30 | 1.0867 ± 0.0153 | 1.4220 ± 0.0136 | 0.8519 ± 0.0167 | 7.5632 ± 0.0410 | 0.0298 ± 0.0002 |
HC31 | 1.5716 ± 0.0159 | 2.1276 ± 0.0065 | 0.9838 ± 0.0156 | 7.1727 ± 0.0255 | 0.0291 ± 0.0001 |
HC32 | 1.1626 ± 0.0102 | 1.5755 ± 0.0115 | 0.6561 ± 0.0114 | 9.0582 ± 0.1171 | 0.0257 ± 0.0004 |
P01 | 1.5938 ± 0.0032 | 0.8370 ± 0.0053 | 0.9447 ± 0.0434 | 4.5257 ± 0.0672 | 0.0248 ± 0.0001 |
P02 | 1.0091 ± 0.0121 | 1.3975 ± 0.0111 | 0.8203 ± 0.0391 | 7.4174 ± 0.0144 | 0.0282 ± 0.0000 |
P03 | 1.5291 ± 0.0057 | 2.1070 ± 0.0061 | 0.9120 ± 0.0070 | 7.2609 ± 0.0039 | 0.0289 ± 0.0002 |
P04 | 1.0682 ± 0.0116 | 1.3654 ± 0.0075 | 0.5134 ± 0.0058 | 5.4733 ± 0.0364 | 0.0209 ± 0.0001 |
Principal Components | Eigenvalue | Percentage of Variance | Cumulative Variance |
---|---|---|---|
1 | 3.47 | 69.41% | 69.41% |
2 | 0.96 | 19.14% | 88.56% |
3 | 0.34 | 6.74% | 95.30% |
4 | 0.15 | 3.10% | 98.39% |
5 | 0.08 | 1.61% | 100.00% |
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Nguyen, M.H.; Ha, D.L.; Do, B.M.; Chau, N.T.N.; Tran, T.H.; Le, N.T.H.; Le, M.T. RP-HPLC-Based Flavonoid Profiling Accompanied with Multivariate Analysis: An Efficient Approach for Quality Assessment of Houttuynia cordata Thunb Leaves and Their Commercial Products. Molecules 2023, 28, 6378. https://doi.org/10.3390/molecules28176378
Nguyen MH, Ha DL, Do BM, Chau NTN, Tran TH, Le NTH, Le MT. RP-HPLC-Based Flavonoid Profiling Accompanied with Multivariate Analysis: An Efficient Approach for Quality Assessment of Houttuynia cordata Thunb Leaves and Their Commercial Products. Molecules. 2023; 28(17):6378. https://doi.org/10.3390/molecules28176378
Chicago/Turabian StyleNguyen, Minh Hien, Dieu Ly Ha, Binh Minh Do, Ngoc Trong Nghia Chau, Thi Huong Tran, Nguyen Thien Han Le, and Minh Tri Le. 2023. "RP-HPLC-Based Flavonoid Profiling Accompanied with Multivariate Analysis: An Efficient Approach for Quality Assessment of Houttuynia cordata Thunb Leaves and Their Commercial Products" Molecules 28, no. 17: 6378. https://doi.org/10.3390/molecules28176378
APA StyleNguyen, M. H., Ha, D. L., Do, B. M., Chau, N. T. N., Tran, T. H., Le, N. T. H., & Le, M. T. (2023). RP-HPLC-Based Flavonoid Profiling Accompanied with Multivariate Analysis: An Efficient Approach for Quality Assessment of Houttuynia cordata Thunb Leaves and Their Commercial Products. Molecules, 28(17), 6378. https://doi.org/10.3390/molecules28176378