| Literature DB >> 35956776 |
Dalma Czett1, Katalin Böddi1, Veronika Nagy1, Anikó Takátsy1, József Deli1,2, Paul Tone3, György T Balogh4,5, Anna Vincze4, Attila Agócs1.
Abstract
Carotenoid succinates were synthesized from hydroxy carotenoids and were coupled to a commercially available derivative of melatonin via amide bond for producing more powerful anti-oxidants and yet new hybrid lipophilic bifunctional molecules with additional therapeutic effects. The coupling reactions produced conjugates in acceptable to good yields. Succinylation increased the water solubility of the carotenoids, while the conjugation with melatonin resulted in more lipophilic derivatives. The conjugates showed self-assembly in aqueous medium and yielded relatively stable colloidal solutions in phosphate-buffered saline. Antioxidant behavior was measured with ABTS and the FRAP methods for the carotenoids, the carotenoid succinates, and the conjugates with melatonin. A strong dependence on the quality of the solvent was observed. TEAC values of the new derivatives in phosphate-buffered saline were found to be comparable to or higher than those of parent carotenoids, however, synergism was observed only in FRAP assays.Entities:
Keywords: aggregation; antioxidant; bifunctional conjugates; carotenoids; hydrophilic; lipophilic; melatonin; oxidative stress; succinates
Mesh:
Substances:
Year: 2022 PMID: 35956776 PMCID: PMC9369794 DOI: 10.3390/molecules27154822
Source DB: PubMed Journal: Molecules ISSN: 1420-3049 Impact factor: 4.927
Preparation of Succinate Esters of Hydroxy Carotenoids.
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| Carotenoid (Car-OH) | Product (Yield) |
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1 in two steps from 8′-apo-β-carotenal.
Figure 1Coupling Reaction of Carotenol Succinates with Amino-melatonin.
Predicted (Using ACD/Labs Percepta Software [34]) and in Vitro Experimental Physicochemical and Early ADME Profile of Investigated Carotenol Derivatives.
| Predicted Parameters | Experimental Data | |||||||||
|---|---|---|---|---|---|---|---|---|---|---|
| Compound | Mw | Strongest | logP/logD7.4 a | HBD/ | TPSA | Aq.Sol. b | Caco-2 Permeability Pe | logBB | Kin.Sol. c | BBB-PAMPA |
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| 417 | - | 8.6 | 1/1 | 17.1 | 5 × 10−5 | 3.2 | 0.03 | ND | ND |
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| 569 | - | 10.8 | 2/2 | 40.5 | 7 × 10−5 | 0.2 | −0.96 | ND | ND |
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| 553 | - | 12.1 | 1/1 | 20.2 | 3 × 10−5 | 0.1 | −2 | ND | ND |
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| 585 | - | 9.3 | 2/3 | 57.5 | 2 × 10−5 | 0.3 | −0.58 | ND | ND |
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| 569 | - | 10.4 | 2/2 | 40.5 | 1 × 10−4 | 0.2 | −0.66 | ND | ND |
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| 519 | 4.4 | 9.3/6.4 | 1/3 | 63.6 | 2 × 10−2 | 5.8 | −1.08 | 52.3 ± 2.4 | ND |
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| 769 | 4.2 | 11.4/6.7 | 2/7 | 127.2 | 4 × 10−1 | 2.2 | −2 | 0.6 ± 0.1 | ND |
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| 653 | 4.4 | 12.5/9.6 | 1/3 | 63.6 | 2 × 10−3 | 0.3 | −2 | 1.3 ± 0.1 | ND |
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| 785 | 4.4 | 10.1/5.3 | 2/8 | 144.3 | 5 × 10−2 | 6.7 | −2 | ND | ND |
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| 769 | 4.2 | 11.2/6.4 | 2/7 | 127.2 | 2 × 10−1 | 2.9 | −2 | ND | ND |
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| 669 | 4.4 | 11.0/8.1 | 2/4 | 83.8 | 4 × 10−3 | 0.4 | −2 | ND | ND |
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| 898 | - | 12.2 | 4/5 | 129.8 | 2 × 10−7 | 0.1 | −2 | ND | ND |
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| 1228 | - | 13.5 | 6/8 | 219.0 | 3 × 10−10 | 0.1 | −2 | ND | ND |
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| 882 | - | 13.7 | 3/4 | 109.5 | 6 × 10−8 | 0.1 | −2 | ND | ND |
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| 1228 | - | 13.1 | 6/8 | 219.0 | 4 × 10−10 | 0.1 | −2 | ND | ND |
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| 1244 | - | 11.8 | 6/9 | 231.1 | 8 × 10−11 | 0.1 | −2 | ND | ND |
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| 748 | - | 10.2 | 3/4 | 109.5 | 1 × 10−5 | 0.1 | −1 | ND | ND |
| Melatonin | 232 | - | 1.7 | 2/2 | 54.1 | 9 × 10−1 | 58.2 | −0.22 | 123.2 ± 9.4 | 2.97 ± 1.18 |
a Calculated using logP/logD7.4 (Consensus and pKa (Classic) settings within Percepta package. b aqueous solubility: logSpH6.5 (at intestinal conditions) using Drug Profiler unit of Percepta Package. c kinetic solubility values after 2 h, at 37 °C in PBS, pH 7.4.
Scheme 1Average Size (Hydrodynamic Diameter) of the Aggegates Determined by DLS at Different Concentrations.
Water-Dispersibility of Carotenoid Succinates.
| Succinate | Water Dispersibility (mg/100 mL) |
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| 8′-apo-β-carotenol succinate ( | 1.5 |
| zeaxanthin bissuccinate ( | 1.3 |
| β-cryptoxanthin succinate ( | less than 0.5 |
| capsanthin bissuccinate ( | less than 0.6 |
| lutein bissuccinate ( | 1.5 |
| zeaxanthin monosuccinate ( | less than 0.3 |
| underivatized carotenoids ( | 0.05–0.1 |
Scheme 2TEAC values determined using ABTS•+ radical (p < 0.05).
Scheme 3FRAP Values Measured Using FeIII-TPTZ in Acetate Buffer (p < 0.05).
Analytical Data for Each Compounds: Wavelength of Maximum Absorbance (λmax), Slope and R2 of Fitted Calibration Curve, Calculated Limit of Detection (LOD) and Limit of Quantification (LOQ).
| Compound | λmax (nm) | Slope of Fitted Calibration Curve (s) | R2 of Fitted Calibration Curve | LOD (μM) | LOQ (μM) |
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| 467 | 0.0119 | 0.999 | 2.20 | 6.67 |
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| 467 | 0.0009 | 0.995 | 29.08 | 88.14 |
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| 457 | 0.0013 | 0.999 | 20.14 | 61.02 |
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| 472 | 0.0256 | 0.991 | 1.02 | 3.10 |
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| 452 | 0.0084 | 0.995 | 3.12 | 9.44 |
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| 459 | 0.0252 | 0.998 | 1.04 | 3.15 |
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| 456 | 0.0246 | 0.993 | 1.06 | 3.22 |
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| 483 | 0.0190 | 0.985 | 1.38 | 4.17 |
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| 459 | 0.0124 | 0.998 | 2.11 | 6.40 |
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| 452 | 0.0347 | 0.999 | 0.75 | 2.29 |
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| 434 | 0.0267 | 0.999 | 0.98 | 2.97 |
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| 280 | 0.0021 | 0.999 | 12.46 | 37.77 |
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| 458 | 0.0258 | 0.996 | 1.01 | 3.07 |
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| 457 | 0.0380 | 0.999 | 0.69 | 2.09 |
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| 452 | 0.0085 | 0.987 | 3.08 | 9.33 |
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| 452 | 0.0282 | 0.999 | 0.93 | 2.81 |
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| 478 | 0.0126 | 0.999 | 2.08 | 6.30 |
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| 431 | 0.0015 | 0.998 | 17.45 | 52.88 |