<p>The β-glucopyranosyl and β-xylopyranosyl moieties are abundant in lignocellulose and share nearly identical chemical structures, differing mainly in the presence or absence of a hydroxy group at C<sub>6</sub>. Despite this similarity, the degradation characteristics of these moieties under various conditions, such as acidic or alkaline environments, differ significantly. Our research group aims to quantitatively understand the reactivity differences between glucosyl and xylosyl moieties. This study focused on the glycosidic bond cleavage reactions of phenyl β-<span>d</span>-glucopyranoside (<b>PhG</b>) and its xylosyl counterpart (<b>PhX)</b> under alkaline conditions. Kinetic analysis of the degradation reactions of <b>PhG</b> and <b>PhX</b> in 1.0&#xa0;mol/L NaOD/D<sub>2</sub>O under nitrogen showed that these bond cleavages follow the S<sub>N</sub>icB mechanism, involving nucleophilic attack by the C<sub>2</sub>-oxyanion on C<sub>1</sub> in the <sup>1</sup>C<sub>4</sub>-conformer. <b>PhX</b> degraded significantly faster than <b>PhG</b>, explained by <b>PhX</b>’s entropic advantage in activation entropy, Δ<i>S</i><sup>‡</sup> [Δ<i>S</i><sup>‡</sup> =  − 22.0 (<b>PhG</b>), − 10.8 (<b>PhX</b>) cal/mol&#xa0;K at 100&#xa0;°C]. Theoretical calculations at the SCS-MP2//DFT(M06-2X) level revealed that in the nucleophilic substitution process of <b>PhG</b>’s <sup>1</sup>C<sub>4</sub>-conformer, a strong hydrogen bond forms between the departing phenolate ion and the C<sub>6</sub> hydroxy group, causing entropic destabilization of the transition state. Additionally, the <sup>1</sup>C<sub>4</sub>-conformer of <b>PhG</b> is less stable than that of <b>PhX</b> from both potential energetic and entropic perspectives, further contributing to their reactivity differences. These findings suggest that reactivity differences between <b>PhG</b> and <b>PhX</b> are explained by multiple factors, including conformational flexibility and ease of glycosidic bond cleavage.</p>

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Reactivity differences in glycosidic bond cleavage between phenyl β-d-glucoside and xyloside under basic conditions: mechanistic insights from kinetic and computational approaches

  • Sho Takenoshita,
  • Takashi Hosoya,
  • Hisashi Miyafuji

摘要

The β-glucopyranosyl and β-xylopyranosyl moieties are abundant in lignocellulose and share nearly identical chemical structures, differing mainly in the presence or absence of a hydroxy group at C6. Despite this similarity, the degradation characteristics of these moieties under various conditions, such as acidic or alkaline environments, differ significantly. Our research group aims to quantitatively understand the reactivity differences between glucosyl and xylosyl moieties. This study focused on the glycosidic bond cleavage reactions of phenyl β-d-glucopyranoside (PhG) and its xylosyl counterpart (PhX) under alkaline conditions. Kinetic analysis of the degradation reactions of PhG and PhX in 1.0 mol/L NaOD/D2O under nitrogen showed that these bond cleavages follow the SNicB mechanism, involving nucleophilic attack by the C2-oxyanion on C1 in the 1C4-conformer. PhX degraded significantly faster than PhG, explained by PhX’s entropic advantage in activation entropy, ΔSS =  − 22.0 (PhG), − 10.8 (PhX) cal/mol K at 100 °C]. Theoretical calculations at the SCS-MP2//DFT(M06-2X) level revealed that in the nucleophilic substitution process of PhG’s 1C4-conformer, a strong hydrogen bond forms between the departing phenolate ion and the C6 hydroxy group, causing entropic destabilization of the transition state. Additionally, the 1C4-conformer of PhG is less stable than that of PhX from both potential energetic and entropic perspectives, further contributing to their reactivity differences. These findings suggest that reactivity differences between PhG and PhX are explained by multiple factors, including conformational flexibility and ease of glycosidic bond cleavage.