• Title/Summary/Keyword: 벤질알코올 갈락토사이드

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Enzymatic synthesis of benzyl alcohol galactoside using Escherichia coli β-galactosidase (대장균 β-galactosidase를 이용한 benzyl alcohol galactoside의 합성 연구)

  • Jung, Kyung-Hwan
    • Journal of the Korean Applied Science and Technology
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    • v.36 no.2
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    • pp.572-580
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    • 2019
  • Recently, it has been reported that benzyl alcohol (BzOH) as an additive in cosmetics, food, and medicine lead to toxicity and allergy problem. Then, to circumvent this hurdle, we carried out the synthesis of benzyl alcohol galactoside (BzO-gal). Previously, it was confirmed that BzO-gal was synthesized by transgalactosylation reaction using Escherichia coli (E. coli) ${\beta}$-galactosidase (${\beta}-gal$). Meanwhile, in this study, two peaks of BzO-gal as sodium adduct ion (m/z=293.1004) and protonated ion (m/z=271.1180) were detected in the reaction mixture by liquid chromatography/electrospray ionization mass spectrometry (LC/ESI-MS). In addition, the amount of ${\beta}-gal$ and BzOH concentration, temperature, pH, and lactose concentration, respectively, were optimized (${\beta}-gal$, 0.75 U/mL; BzOH, 185 mM; temperature, $40^{\circ}C$, pH, 7.5; lactose, 350 g/l). Under these optimal conditions, 185 mM BzOH was converted into about 131 mM BzO-gal, in which the conversion yield was about 72%. In the future, BzO-gal will be applicable as a substitute for BzOH as a less toxic preservative for the cosmetic, pharmaceutical, and food industries, and we are planning to investigate the characteristics of BzO-gal as a preservative.

NMR Spectroscopy and Mass Spectrometry of Phenylethanol Galactoside synthesized using Escherichia coli 𝛽-Galactosidase (대장균 베타-갈락토시데이즈를 이용하여 합성된 Phenylethanol Galactoside의 NMR Spectroscopy 및 Mass spectrometry)

  • Lee, Hyang-Yeol;Jung, Kyung-Hwan
    • Journal of the Korean Applied Science and Technology
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    • v.37 no.5
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    • pp.1323-1329
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    • 2020
  • To characterize the molecular structure of PhE-gal synthesized using Escherichia coli 𝛽-gal, NMR (1H- and 13C-) spectroscopy and mass spectrometry of PhE-gal were conducted. 1H NMR spectrum of PhE-gal showed multiple peaks corresponding to the galactosyl group, which is an evidence of galactosylation on 2-phenylethanol (PhE). Downfield proton peaks at 𝛿H 7.30~7.21 ppm showed the presence of aromatic protons of PhE as well as benzyl CH2 protons at 𝛿H 2.88 ppm. Up field proton peaks at 𝛿H 4.31 ppm, 4.07 ppm and multiple peaks from 𝛿H 3.86~3.38 ppm are indicative of galactocylation on PhE. 13C NMR spectrum revealed the presence of 12 carbons suggestive of PhE-gal. Among 12 carbon peaks from PhE-gal, the four peaks at 138.7, 129.0, 128.6 and 126.5 were assigned aromatic carbons in the phenyl ring. Three peaks at 129.0, 128.6 and 126.5 showed high intensities, indicating CH aromatic carbons. 13C NMR data of PhE-gal showed 6 monosaccharide peaks from galactose and 2 peaks from aliphatic chain of PhE, indicating that PhE-gal was galactosyl PhE. The mass value (sodium adduct ion of PhE-gal, m/z = 307.1181) from mass spectrometry analysis of PhE-gal, and 1H and 13C NMR spectral data were in good agreement with the expecting structure of PhE-gal. We are expecting that through future study it will eventually be able to develop a new additive with low cytotoxicity.