Literature DB >> 36076243

Valorization of cheese whey to lactobionic acid by a novel strain Pseudomonas fragi and identification of enzyme involved in lactose oxidation.

Jiawei Wu1, Peng Liu2, Zhaojuan Zheng3, Jia Ouyang4.   

Abstract

BACKGROUND: Efficient upgrading of inferior agro-industrial resources and production of bio-based chemicals through a simple and environmentally friendly biotechnological approach is interesting Lactobionic acid is a versatile aldonic acid obtained from the oxidation of lactose. Several microorganisms have been used to produce lactobionic acid from lactose and whey. However, the lactobionic acid production titer and productivity should be further improved to compete with other methods.
RESULTS: In this study, a new strain, Pseudomonas fragi NL20W, was screened as an outstanding biocatalyst for efficient utilization of waste whey to produce lactobionic acid. After systematic optimization of biocatalytic reactions, the lactobionic acid productivity from lactose increased from 3.01 g/L/h to 6.38 g/L/h in the flask. In batch fermentation using a 3 L bioreactor, the lactobionic acid productivity from whey powder containing 300 g/L lactose reached 3.09 g/L/h with the yield of 100%. Based on whole genome sequencing, a novel glucose dehydrogenase (GDH1) was determined as a lactose-oxidizing enzyme. Heterologous expression the enzyme GDH1 into P. putida KT2440 increased the lactobionic acid yield by 486.1%.
CONCLUSION: This study made significant progress both in improving lactobionic acid titer and productivity, and the lactobionic acid productivity from waste whey is superior to the ever reports. This study also revealed a new kind of aldose-oxidizing enzyme for lactose oxidation using P. fragi NL20W for the first time, which laid the foundation for further enhance lactobionic acid production by metabolic engineering.
© 2022. The Author(s).

Entities:  

Keywords:  Cell biocatalysis; Glucose dehydrogenase; Lactobionic acid; Lactose oxidation; Pseudomonas fragi; Whey

Mesh:

Substances:

Year:  2022        PMID: 36076243      PMCID: PMC9461264          DOI: 10.1186/s12934-022-01907-0

Source DB:  PubMed          Journal:  Microb Cell Fact        ISSN: 1475-2859            Impact factor:   6.352


  20 in total

1.  Production of organic acids by periplasmic enzymes present in free and immobilized cells of Zymomonas mobilis.

Authors:  Eloane Malvessi; Sabrina Carra; Flávia Cristina Pasquali; Denise Bizarro Kern; Mauricio Moura da Silveira; Marco Antônio Záchia Ayub
Journal:  J Ind Microbiol Biotechnol       Date:  2012-09-30       Impact factor: 3.346

2.  Identifying membrane-bound quinoprotein glucose dehydrogenase from acetic acid bacteria that produce lactobionic and cellobionic acids.

Authors:  Takaaki Kiryu; Taro Kiso; Daisuke Koma; Shigemitsu Tanaka; Hiromi Murakami
Journal:  Biosci Biotechnol Biochem       Date:  2019-02-19       Impact factor: 2.043

3.  Selection method of pH conditions to establish Pseudomonas taetrolens physiological states and lactobionic acid production.

Authors:  Saúl Alonso; Manuel Rendueles; Mario Díaz
Journal:  Appl Microbiol Biotechnol       Date:  2012-12-21       Impact factor: 4.813

4.  Simultaneous production of lactobionic and gluconic acid in cheese whey/glucose co-fermentation by Pseudomonas taetrolens.

Authors:  Saúl Alonso; Manuel Rendueles; Mario Díaz
Journal:  Bioresour Technol       Date:  2015-07-29       Impact factor: 9.642

5.  Involvement of Acetobacter orientalis in the production of lactobionic acid in Caucasian yogurt ("Caspian Sea yogurt") in Japan.

Authors:  T Kiryu; T Kiso; H Nakano; K Ooe; T Kimura; H Murakami
Journal:  J Dairy Sci       Date:  2009-01       Impact factor: 4.034

6.  Efficient production of lactobionic acid using genetically engineered Pseudomonas taetrolens as a whole-cell biocatalyst.

Authors:  Yu-Ri Oh; Young-Ah Jang; Soon Ho Hong; Jeong Jun Han; Gyeong Tae Eom
Journal:  Enzyme Microb Technol       Date:  2020-09-12       Impact factor: 3.493

7.  Feeding strategies for enhanced lactobionic acid production from whey by Pseudomonas taetrolens.

Authors:  Saúl Alonso; Manuel Rendueles; Mario Díaz
Journal:  Bioresour Technol       Date:  2013-02-11       Impact factor: 9.642

8.  Regulation of Pyrroloquinoline Quinone-Dependent Glucose Dehydrogenase Activity in the Model Rhizosphere-Dwelling Bacterium Pseudomonas putida KT2440.

Authors:  Ran An; Luke A Moe
Journal:  Appl Environ Microbiol       Date:  2016-07-29       Impact factor: 4.792

9.  The utilization of Pseudomonas taetrolens to produce lactobionic acid.

Authors:  Kamila Goderska; Artur Szwengiel; Zbigniew Czarnecki
Journal:  Appl Biochem Biotechnol       Date:  2014-07-01       Impact factor: 2.926

10.  Efficient production of sugar-derived aldonic acids by Pseudomonas fragi TCCC11892.

Authors:  Shuhong Mao; Yanna Liu; Yali Hou; Xiaoyu Ma; Juanjuan Yang; Haichao Han; Jianlin Wu; Longgang Jia; Huimin Qin; Fuping Lu
Journal:  RSC Adv       Date:  2018-11-30       Impact factor: 3.361

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