In this study, we characterized two novel enzymes of the glycoside hydrolase family 10 (GH10), Xyl10 C and Xyl10E, identified in the termite gut microbiome. The activities of both enzymes were assayed using beechwood xylan, barley beta-glucan, and pretreated Sorghum bicolor bagasse (SBB) as substrates. Both enzymes, assessed individually and in combination, showed activity on beechwood xylan and pretreated SBB, whereas Xyl10E also showed activity on barley beta-glucan. The composition of pretreated SBB mainly consisted of xylose and arabinose content. Purified Xyl10 C showed optimum xylanase activity in the pH range 7.0-8.0 and at a temperature of 50-60 degrees C, while Xyl10E was active at a wider pH range (5.0-10.0) and at 50 degrees C. The residual activities of Xyl10 C and Xyl10E after 8 h of incubation at 40 degrees C were 85% and 70%, respectively. The enzymatic activity of Xyl10 C increased to 115% in the presence of 5 M NaCl, was only inhibited in the presence of 0.5% sodium dodecyl sulfate (SDS), and decreased with beta-mercaptoethanol. The xylanase and glucanase activities of Xyl10E were inhibited only in the presence of MnSO4, NaCl, and SDS. The main hydrolysis enzymatic product of Xyl10 C and Xyl10E on pretreated SBB was xylobiose. In addition, the xylo-oligosaccharides produced by xylanase Xyl10E on pretreated SBB demonstrated promising antioxidant activity. Thus, the hydrolysis products using Xyl10E on pretreated SBB indicate potential for antioxidant activity and other valuable industrial applications.Key pointsTwo novel GH10 xylanases from the termite gut microbiome were characterized.Xylo-oligosaccharides obtained from sorghum bagasse exhibited antioxidant potential.Both enzymes and their hydrolysis product have potential to add value to agro-waste.
Characterization of two GH10 enzymes with ability to hydrolyze pretreated Sorghum bicolor bagasse
Cattaneo A.;Di Donato P.;Poli A.;Finore I.
;
2025
Abstract
In this study, we characterized two novel enzymes of the glycoside hydrolase family 10 (GH10), Xyl10 C and Xyl10E, identified in the termite gut microbiome. The activities of both enzymes were assayed using beechwood xylan, barley beta-glucan, and pretreated Sorghum bicolor bagasse (SBB) as substrates. Both enzymes, assessed individually and in combination, showed activity on beechwood xylan and pretreated SBB, whereas Xyl10E also showed activity on barley beta-glucan. The composition of pretreated SBB mainly consisted of xylose and arabinose content. Purified Xyl10 C showed optimum xylanase activity in the pH range 7.0-8.0 and at a temperature of 50-60 degrees C, while Xyl10E was active at a wider pH range (5.0-10.0) and at 50 degrees C. The residual activities of Xyl10 C and Xyl10E after 8 h of incubation at 40 degrees C were 85% and 70%, respectively. The enzymatic activity of Xyl10 C increased to 115% in the presence of 5 M NaCl, was only inhibited in the presence of 0.5% sodium dodecyl sulfate (SDS), and decreased with beta-mercaptoethanol. The xylanase and glucanase activities of Xyl10E were inhibited only in the presence of MnSO4, NaCl, and SDS. The main hydrolysis enzymatic product of Xyl10 C and Xyl10E on pretreated SBB was xylobiose. In addition, the xylo-oligosaccharides produced by xylanase Xyl10E on pretreated SBB demonstrated promising antioxidant activity. Thus, the hydrolysis products using Xyl10E on pretreated SBB indicate potential for antioxidant activity and other valuable industrial applications.Key pointsTwo novel GH10 xylanases from the termite gut microbiome were characterized.Xylo-oligosaccharides obtained from sorghum bagasse exhibited antioxidant potential.Both enzymes and their hydrolysis product have potential to add value to agro-waste.| File | Dimensione | Formato | |
|---|---|---|---|
|
Characterization of two GH10 enzymes with ability to hydrolyze pretreated Sorghum bicolor bagasse.pdf
accesso aperto
Descrizione: Characterization of two GH10 enzymes with ability to hydrolyze pretreated Sorghum bicolor bagasse
Tipologia:
Versione Editoriale (PDF)
Licenza:
Creative commons
Dimensione
3.22 MB
Formato
Adobe PDF
|
3.22 MB | Adobe PDF | Visualizza/Apri |
I documenti in IRIS sono protetti da copyright e tutti i diritti sono riservati, salvo diversa indicazione.


