The Effects of Persimmon (Diospyros kaki L.f.) Oligosaccharides on Features of the Metabolic Syndrome in Zebrafish
Abstract
:1. Introduction
2. Materials and Methods
2.1. Preparation and Extraction of D. kaki Fruit Extract and Source of the Oligosaccharides
2.2. The Investigation of the Chemical Constituent of D. kaki Fruit Extract
2.3. Animals
2.4. Anti-Insulin Resistance in Zebrafish
2.5. Obesity-Preventing Effect in Zebrafish
2.6. Molecular Docking of Isolated Compounds and PTP1B
2.7. Enzyme Activity Assays of PTP1B
2.8. Real Time-Quantitative Polymerase Chain Reaction (RT-qPCR)
2.9. Statistical Analysis
3. Results and Discussions
3.1. Screening of D. kaki Fruits Extracts for Anti-Insulin Resistance in Zebrafish
3.2. Chemical Constituent Analysis by HPLC-MS/MS
3.3. Molecular Docking of PTP1B to the Oligosaccharide from D. kaki Fruit
3.4. Anti-Insulin Resistance in Zebrafish Induced by Oligosaccharides from D. kaki Fruit
3.5. The Investigation of the Obesity-Preventing Effect of the D. kaki Fruit Extract and Its Oligosaccharides
3.6. Genes Expression on High-Fat-Diet-Induced Obesity in Zebrafish Larvae
3.7. Enzyme Activity Assays of PTP1B to D. kaki Fruit and Oligosaccharides
4. Conclusions
Author Contributions
Funding
Institutional Review Board Statement
Informed Consent Statement
Data Availability Statement
Acknowledgments
Conflicts of Interest
References
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Gene | Forward Sequence | Reverse Sequence |
---|---|---|
TNF-α | GCT TAT GAG CCA TGC AGT GA | TGC CCA GTC TGT CTC CTT CT |
IL6 | AAG GGG TCA GGA TCA GCA C | GCT GTA GAT TCG CGT TAG ACA TC |
IL1B | TGG CGA ACG TCA TCC AAG | GGA GCA CTG GGC GAC GCA TA |
SREBF1 | CAT CCA CAT GGC TCT GAG TG | CTC ATC CAC AAA GAA GCG GT |
FASN | GAG AAA GCT TGC CAA ACA GG | GAG GGT CTT GCA GGA GAC AG |
CPT1A | CAT GAG GCT CTT CGG CAA | AAG AGC AGG CCT AAG GAT G |
RT | Height | Mass | Identification Result |
---|---|---|---|
LC-ESI-MS/MS chromatograms | |||
1.661 | 497,154 | 504.17 | Raffinose |
1.749 | 4,200,859 | 342.1166 | Gentiobiose |
1.991 | 482,479 | 342.1165 | Gentiobiose |
2.188 | 1,329,997 | 646.1966 | beta-D-4-Deoxy-delta4-GlcA-(1->4)-beta-D-Glc-(1->4)-alpha-L-Rha-(1->3)-beta-D-Glc |
2.318 | 294,628 | 342.1169 | Gentiobiose |
2.33 | 73,904 | 192.0268 | 2,5-Didehydro-D-gluconate |
2.464 | 252,822 | 219.1112 | Pantothenic Acid |
2.602 | 1,051,653 | 224.0327 | Dehydrochorismic acid |
2.811 | 145,798 | 342.1157 | D-(+)-Cellobiose |
5.836 | 415,037 | 382.1839 | 1,2,10-Trihydroxydihydro-trans-linalyl oxide 7-O-beta-D-glucopyranoside |
46.14 | 208,962 | 294.1834 | Myrsinone |
48.25 | 409,723 | 328.2251 | (9R,10S,12Z)-9,10-Dihydroxy-8-oxo-12-octadecenoic acid |
LC+ESI-MS/MS chromatograms | |||
1.59 | 142,819 | 317.1212 | N-(1-Deoxy-1-fructosyl) histidine |
1.762 | 4,633,119 | 504.1678 | Neokestose |
1.933 | 6,561,444 | 261.1204 | Epidermin |
1.958 | 1,734,862 | 342.1152 | Melibiose |
2.05 | 1,517,744 | 504.1676 | Sophorotriose |
2.234 | 735,399 | 438.1151 | Loquatoside |
2.301 | 6,245,852 | 271.1647 | Prolyl-Arginine |
2.519 | 998,209 | 342.1153 | Sucrose |
2.703 | 1,104,006 | 366.1413 | N-(1-Deoxy-1-fructosyl) tryptophan |
3.013 | 6,275,606 | 187.063 | 3-Amino-2-naphthoic acid |
3.486 | 1,147,920 | 422.2117 | 6alpha-Fluoro-17-hydroxycorticosterone 21-acetate |
3.615 | 266,556 | 418.1823 | Glu Arg Asp |
3.841 | 595,699 | 478.1672 | Kelampayoside A |
4.406 | 758,433 | 444.2559 | Arg Asn Arg |
4.912 | 1,230,160 | 361.233 | Lys Lys Ser |
5.13 | 1,574,844 | 510.2643 | Nebramycin factor 5′ |
5.498 | 4,669,055 | 436.2273 | Flurandrenolide |
5.82 | 568,261 | 404.1644 | Asp Asp Arg |
6.418 | 1,185,915 | 532.3082 | 5β-Cyprinolsulfate |
6.879 | 3,665,061 | 458.2718 | Arg Gln Arg |
8.719 | 2,455,730 | 486.3239 | Docosahexaenoyl Serotonin |
10.941 | 1,224,227 | 568.3056 | Ceanothine E |
16.685 | 162,831 | 538.2945 | Euphorbia factor Ti2 |
21.609 | 2,415,031 | 672.4863 | PE-Cer(d14:2(4E,6E)/20:1(11Z)(2OH)) |
28.06 | 5,609,787 | 775.6128 | PE(21:0/17:0) |
42.038 | 1,513,417 | 273.2659 | C16 Sphinganine |
43.05 | 1,422,944 | 229.24 | Xestoaminol C |
48.205 | 1,502,361 | 317.2921 | Phytosphingosine |
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Nuankaew, W.; Lee, H.K.; Nam, Y.H.; Shim, J.H.; Kim, N.W.; Shin, S.W.; Kim, M.C.; Shin, S.Y.; Hong, B.N.; Dej-adisai, S.; et al. The Effects of Persimmon (Diospyros kaki L.f.) Oligosaccharides on Features of the Metabolic Syndrome in Zebrafish. Nutrients 2022, 14, 3249. https://doi.org/10.3390/nu14163249
Nuankaew W, Lee HK, Nam YH, Shim JH, Kim NW, Shin SW, Kim MC, Shin SY, Hong BN, Dej-adisai S, et al. The Effects of Persimmon (Diospyros kaki L.f.) Oligosaccharides on Features of the Metabolic Syndrome in Zebrafish. Nutrients. 2022; 14(16):3249. https://doi.org/10.3390/nu14163249
Chicago/Turabian StyleNuankaew, Wanlapa, Hyo Kyu Lee, Youn Hee Nam, Ji Heon Shim, Na Woo Kim, Sung Woo Shin, Min Cheol Kim, Seung Yeon Shin, Bin Na Hong, Sukanya Dej-adisai, and et al. 2022. "The Effects of Persimmon (Diospyros kaki L.f.) Oligosaccharides on Features of the Metabolic Syndrome in Zebrafish" Nutrients 14, no. 16: 3249. https://doi.org/10.3390/nu14163249
APA StyleNuankaew, W., Lee, H. K., Nam, Y. H., Shim, J. H., Kim, N. W., Shin, S. W., Kim, M. C., Shin, S. Y., Hong, B. N., Dej-adisai, S., Kwak, J. H., & Kang, T. H. (2022). The Effects of Persimmon (Diospyros kaki L.f.) Oligosaccharides on Features of the Metabolic Syndrome in Zebrafish. Nutrients, 14(16), 3249. https://doi.org/10.3390/nu14163249