Hiring in life sciences? Share your open positions with our professional community. Read more Close

Advertisement

[Effects of combined CaO-CO2 detoxification treatment on the conversion of sugarcane bagasse enzymatic hydrolysate to xanthan gum].

Created on 23 Sep 2026

Authors

Zecheng Wan, Yunkai Zhang, Qingyan Wang, Xiaojuan Liang, Chunxiao Zhao, Guanghao Fu, Xiaobei Zhan, Hongtao Zhang

Published in

Sheng wu gong cheng xue bao = Chinese journal of biotechnology. Volume 42. Issue 9. Pages 4210-4224. Sep 25, 2026.

Abstract

Replacing grain-derived carbon sources with non-grain biomass carbon sources for fermentation is a core research direction in the field of biomanufacturing. However, inhibitory byproducts present in the enzymatic hydrolysate of non-grain biomass severely restrict its practical application. We aim to reduce the dependence of xanthan gum fermentation on grain-based carbon sources, clarify the impacts of typical inhibitors from non-grain biomass enzymatic hydrolysate on xanthan gum synthesis, break through the existing application bottlenecks, and develop a green, low-loss and high-efficiency detoxification technology to overcome the inherent defects of traditional detoxification processes. In this study, we used sugarcane bagasse enzymatic hydrolysate as the fermentation carbon source, and the xanthan gum-producing strain Xanthomonas campestris 1.178 as the research object. We investigated the effects of furfural (FFR) and 5-hydroxymethylfurfural (HMF) on xanthan gum biosynthesis. To address the defects of high sugar loss and massive byproduct generation in the conventional CaO-H3PO4 detoxification process, we developed an innovative CaO-CO2 combined detoxification process, and comparatively analyzed the physicochemical properties of xanthan gum produced via the two detoxification processes. We identified that acetic acid and isovaleric acid are the key inhibitory factors in sugarcane bagasse enzymatic hydrolysate that limit xanthan gum synthesis. After CaO-CO2 treatment, we achieved retention rates of 98.23% for total sugar, 95.63% for reducing sugar, and 95.08% for glucose in the hydrolysate. We obtained a xanthan gum yield as high as 19.76 g/L, which was 19.75% higher than the yield from the CaO-H3PO4 treatment. The xanthan gum prepared in this study shared consistent infrared spectrum characteristics with commercially available xanthan gum, and we confirmed its excellent tolerance under low temperature, alkaline and high-salt conditions. The CaO-CO2 detoxification process developed in this study realizes efficient conversion of sugarcane bagasse enzymatic hydrolysate to xanthan gum, and provides a brand-new green solution for the high-value utilization of non-grain biomass.

PMID:
42773671
Bibliographic data and abstract were imported from PubMed on 23 Sep 2026.

Read full publication at:
Please sign in to see all details.

Advertisement

Stats

  • Community rating n/a 0 votes
  • Reviewers' rating n/a 0 votes
  • Your rating

1-terrible, 9-excellent. How would you rate this publication? Sign in in to submit your rating.

  • Recommendations n/a n/a positive of 0 vote(s)
  • Views 10
  • Comments 0

Recommended by

  • No recommendations yet.

Post a comment

You need to be signed in to post comments. You can sign in here.

Comments

There are no comments yet.

Advertisement