Literature DB >> 31924614

Dual Agarolytic Pathways in a Marine Bacterium, Vibrio sp. Strain EJY3: Molecular and Enzymatic Verification.

Sora Yu1, Eun Ju Yun1, Dong Hyun Kim1, So Young Park1, Kyoung Heon Kim2.   

Abstract

Vibrio sp. strain EJY3 is an agarolytic marine bacterium that catabolizes 3,6-anhydro-l-galactose (AHG), a monomeric sugar unit of agarose. While the AHG catabolic pathway in EJY3 has been discovered recently, the complete agarolytic system of EJY3 remains unclear. We have identified five enzymes, namely, the β-agarases VejGH50A, VejGH50B, VejGH50C, and VejGH50D and the α-neoagarooligosaccharide (NAOS) hydrolase VejGH117, involved in the agarolytic system of EJY3. Based on the characterization of recombinant enzymes and intracellular metabolite analysis, we found that EJY3 catabolizes agarose via two different agarolytic pathways. Among the four β-agarases of EJY3, VejGH50A, VejGH50B, and VejGH50C were found to be extracellular agarases, producing mainly neoagarotetraose (NeoDP4) and neoagarobiose. By detecting intracellular NeoDP4 in EJY3 grown on agarose, NeoDP4 was observed being taken up by cells. Intriguingly, intracellular NeoDP4 acted as a branching point for the two different downstream agarolytic pathways. First, via the well-known agarolytic pathway, NeoDP4 was depolymerized into monomeric sugars by the exo-type β-agarase VejGH50D and the α-NAOS hydrolase VejGH117. Second, via the newly found alternative agarolytic pathway, NeoDP4 was depolymerized into AHG and agarotriose (AgaDP3) by VejGH117, and AgaDP3 then was completely depolymerized into monomeric sugars by sequential reactions of the agarolytic β-galactosidases (ABG) VejABG and VejGH117. Therefore, by experimentally verifying agarolytic enzymatic activity and transport of NeoDP4 into EJY3 cells, we revealed that EJY3 possesses both the known pathway and the newly discovered alternative pathway that involves α-NAOS hydrolase and ABG.IMPORTANCE Agarose is the main polysaccharide of red macroalgae and is composed of galactose and 3,6-anhydro-l-galactose. Many marine bacteria possess enzymes capable of depolymerizing agarose into oligomers and then depolymerizing the oligomers into monomers. Here, we experimentally verified that both a well-known agarolytic pathway and a novel agarolytic pathway exist in a marine bacterium, Vibrio sp. strain EJY3. In agarolytic pathways, agarose is depolymerized mainly into 4-sugar-unit oligomers by extracellular enzymes, which are then transported into cells. The imported oligomers are intracellularly depolymerized into galactose and 3,6-anhydro-l-galactose by two different agarolytic pathways, using different combinations of intracellular enzymes. These results elucidate the depolymerization routes of red macroalgal biomass in the ocean by marine bacteria and provide clues for developing industrial processes for efficiently producing sugars from red macroalgae.
Copyright © 2020 American Society for Microbiology.

Entities:  

Keywords:  Vibrio sp. strain EJY3; agarolytic pathway; agarolytic β-galactosidase; agarose; neoagarotetraose; red macroalgae; α-neoagarooligosaccharide hydrolase

Year:  2020        PMID: 31924614      PMCID: PMC7054104          DOI: 10.1128/AEM.02724-19

Source DB:  PubMed          Journal:  Appl Environ Microbiol        ISSN: 0099-2240            Impact factor:   4.792


  30 in total

1.  Purification and characterization of neoagarotetraose from hydrolyzed agar.

Authors:  Ming-Kyung Jang; Dong-Guen Lee; Nam-Young Kim; Ki-Hwan Yu; Hye-Ji Jang; Sueng Woo Lee; Hyo Jung Jang; Ye Ji Lee; Sang-Hyeon Lee
Journal:  J Microbiol Biotechnol       Date:  2009-10       Impact factor: 2.351

2.  Neoagarobiose as a novel moisturizer with whitening effect.

Authors:  R Kobayashi; M Takisada; T Suzuki; K Kirimura; S Usami
Journal:  Biosci Biotechnol Biochem       Date:  1997-01       Impact factor: 2.043

3.  Gene cloning, expression and characterization of a neoagarotetraose-producing β-agarase from the marine bacterium Agarivorans sp. HZ105.

Authors:  Bokun Lin; Guoyong Lu; Yandan Zheng; Wei Xie; Shengkang Li; Zhong Hu
Journal:  World J Microbiol Biotechnol       Date:  2011-12-27       Impact factor: 3.312

4.  Genomic and proteomic analyses of the agarolytic system expressed by Saccharophagus degradans 2-40.

Authors:  Nathan A Ekborg; Larry E Taylor; Atkinson G Longmire; Bernard Henrissat; Ronald M Weiner; Steven W Hutcheson
Journal:  Appl Environ Microbiol       Date:  2006-05       Impact factor: 4.792

Review 5.  Agar degradation by microorganisms and agar-degrading enzymes.

Authors:  Won-Jae Chi; Yong-Keun Chang; Soon-Kwang Hong
Journal:  Appl Microbiol Biotechnol       Date:  2012-04-19       Impact factor: 4.813

6.  Identification and biochemical characterization of Sco3487 from Streptomyces coelicolor A3(2), an exo- and endo-type β-agarase-producing neoagarobiose.

Authors:  Uyangaa Temuujin; Won-Jae Chi; Yong-Keun Chang; Soon-Kwang Hong
Journal:  J Bacteriol       Date:  2011-10-21       Impact factor: 3.490

7.  Enzymatic liquefaction of agarose above the sol-gel transition temperature using a thermostable endo-type β-agarase, Aga16B.

Authors:  Jung Hyun Kim; Eun Ju Yun; Nari Seo; Sora Yu; Dong Hyun Kim; Kyung Mun Cho; Hyun Joo An; Jae-Han Kim; In-Geol Choi; Kyoung Heon Kim
Journal:  Appl Microbiol Biotechnol       Date:  2016-09-24       Impact factor: 4.813

8.  Purification and characterization of a novel beta-agarase, AgaA34, from Agarivorans albus YKW-34.

Authors:  Xiao Ting Fu; Hong Lin; Sang Moo Kim
Journal:  Appl Microbiol Biotechnol       Date:  2007-12-11       Impact factor: 4.813

9.  Two distinct arabinofuranosidases contribute to arabino-oligosaccharide degradation in Bacillus subtilis.

Authors:  José Manuel Inácio; Isabel Lopes Correia; Isabel de Sá-Nogueira
Journal:  Microbiology (Reading)       Date:  2008-09       Impact factor: 2.777

10.  Different Levels of Skin Whitening Activity among 3,6-Anhydro-l-galactose, Agarooligosaccharides, and Neoagarooligosaccharides.

Authors:  Ji Hye Kim; Eun Ju Yun; Sora Yu; Kyoung Heon Kim; Nam Joo Kang
Journal:  Mar Drugs       Date:  2017-10-20       Impact factor: 5.118

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  6 in total

1.  Enzymatic characterization of a novel recombinant 1,3-α-3,6-anhydro-L-galactosidase specific for neoagarobiose hydrolysis into monosaccharides.

Authors:  Won Young Jang; Mi Jung Kwon; Ki Yun Kim; Young Ho Kim
Journal:  Appl Microbiol Biotechnol       Date:  2021-05-31       Impact factor: 4.813

2.  A Novel Auxiliary Agarolytic Pathway Expands Metabolic Versatility in the Agar-Degrading Marine Bacterium Colwellia echini A3T.

Authors:  Duleepa Pathiraja; Line Christiansen; Byeonghyeok Park; Mikkel Schultz-Johansen; Geul Bang; Peter Stougaard; In-Geol Choi
Journal:  Appl Environ Microbiol       Date:  2021-05-26       Impact factor: 4.792

3.  A Novel Carrageenan Metabolic Pathway in Flavobacterium algicola.

Authors:  Chengcheng Jiang; Tianyu Zhang; Qiuyang Li; Hong Jiang; Xiangzhao Mao
Journal:  Appl Environ Microbiol       Date:  2022-08-29       Impact factor: 5.005

4.  Multi-Step Enzymatic Production and Purification of 2-Keto-3-Deoxy-Galactonate from Red-Macroalgae-Derived Agarose.

Authors:  Sora Yu; So Young Park; Dong Hyun Kim; Eun Ju Yun; Kyoung Heon Kim
Journal:  Mar Drugs       Date:  2022-04-25       Impact factor: 6.085

5.  In Vitro Prebiotic and Anti-Colon Cancer Activities of Agar-Derived Sugars from Red Seaweeds.

Authors:  Eun Ju Yun; Sora Yu; Young-Ah Kim; Jing-Jing Liu; Nam Joo Kang; Yong-Su Jin; Kyoung Heon Kim
Journal:  Mar Drugs       Date:  2021-04-12       Impact factor: 5.118

6.  Characterization of Agarolytic Pathway in a Terrestrial Bacterium Cohnella sp. LGH.

Authors:  Gen Li; Rui Guo; Shuqi Wu; Si Cheng; Jiaqi Li; Zhenzhen Liu; Wangliang Xie; Xiaolin Sun; Qiuyi Zhang; Zihan Li; JiaZheng Xu; Jun Wu; Zhong Wei; Feng Hu
Journal:  Front Microbiol       Date:  2022-03-31       Impact factor: 5.640

  6 in total

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