Literature DB >> 18568850

Biotechnological applications of acetic acid bacteria.

Peter Raspor1, Dusan Goranovic.   

Abstract

The acetic acid bacteria (AAB) have important roles in food and beverage production, as well as in the bioproduction of industrial chemicals. In recent years, there have been major advances in understanding their taxonomy, molecular biology, and physiology, and in methods for their isolation and identification. AAB are obligate aerobes that oxidize sugars, sugar alcohols, and ethanol with the production of acetic acid as the major end product. This special type of metabolism differentiates them from all other bacteria. Recently, the AAB taxonomy has been strongly rearranged as new techniques using 16S rRNA sequence analysis have been introduced. Currently, the AAB are classified in ten genera in the family Acetobacteriaceae. AAB can not only play a positive role in the production of selected foods and beverages, but they can also spoil other foods and beverages. AAB occur in sugar- and alcohol-enriched environments. The difficulty of cultivation of AAB on semisolid media in the past resulted in poor knowledge of the species present in industrial processes. The first step of acetic acid production is the conversion of ethanol from a carbohydrate carried out by yeasts, and the second step is the oxidation of ethanol to acetic acid carried out by AAB. Vinegar is traditionally the product of acetous fermentation of natural alcoholic substrates. Depending on the substrate, vinegars can be classified as fruit, starch, or spirit substrate vinegars. Although a variety of bacteria can produce acetic acid, mostly members of Acetobacter, Gluconacetobacter, and Gluconobacter are used commercially. Industrial vinegar manufacturing processes fall into three main categories: slow processes, quick processes, and submerged processes. AAB also play an important role in cocoa production, which represents a significant means of income for some countries. Microbial cellulose, produced by AAB, possesses some excellent physical properties and has potential for many applications. Other products of biotransformations by AAB or their enzymes include 2-keto-L-gulonic acid, which is used for the production of vitamin C; D-tagatose, which is used as a bulking agent in food and a noncalorific sweetener; and shikimate, which is a key intermediate for a large number of antibiotics. Recently, for the first time, a pathogenic acetic acid bacterium was described, representing the newest and tenth genus of AAB.

Entities:  

Mesh:

Substances:

Year:  2008        PMID: 18568850     DOI: 10.1080/07388550802046749

Source DB:  PubMed          Journal:  Crit Rev Biotechnol        ISSN: 0738-8551            Impact factor:   8.429


  49 in total

1.  Evidence for a key role of cytochrome bo3 oxidase in respiratory energy metabolism of Gluconobacter oxydans.

Authors:  Janine Richhardt; Bettina Luchterhand; Stephanie Bringer; Jochen Büchs; Michael Bott
Journal:  J Bacteriol       Date:  2013-07-12       Impact factor: 3.490

2.  Quantifying the sensitivity of G. oxydans ATCC 621H and DSM 3504 to osmotic stress triggered by soluble buffers.

Authors:  B Luchterhand; T Fischöder; A R Grimm; S Wewetzer; M Wunderlich; T Schlepütz; J Büchs
Journal:  J Ind Microbiol Biotechnol       Date:  2015-02-03       Impact factor: 3.346

3.  Mutational analysis of the pentose phosphate and Entner-Doudoroff pathways in Gluconobacter oxydans reveals improved growth of a Δedd Δeda mutant on mannitol.

Authors:  Janine Richhardt; Stephanie Bringer; Michael Bott
Journal:  Appl Environ Microbiol       Date:  2012-07-27       Impact factor: 4.792

4.  Phylogenetic analysis and metabolic potential of microbial communities in an industrial bagasse collection site.

Authors:  Pattanop Kanokratana; Wuttichai Mhuantong; Thanaporn Laothanachareon; Sithichoke Tangphatsornruang; Lily Eurwilaichitr; Kusol Pootanakit; Verawat Champreda
Journal:  Microb Ecol       Date:  2013-03-17       Impact factor: 4.552

5.  LAMP, PCR, and real-time PCR detection of Acetobacter aceti in yogurt.

Authors:  Wei Zhou; Yan Zhang; Shuang Wang; Yuehua Li; Jingjing Zhang; Cuixia Zhang; Zan Wang; Zhisheng Zhang
Journal:  Food Sci Biotechnol       Date:  2017-02-28       Impact factor: 2.391

6.  Genome sequences of the high-acetic acid-resistant bacteria Gluconacetobacter europaeus LMG 18890T and G. europaeus LMG 18494 (reference strains), G. europaeus 5P3, and Gluconacetobacter oboediens 174Bp2 (isolated from vinegar).

Authors:  Cristina Andrés-Barrao; Laurent Falquet; Sandra P Calderon-Copete; Patrick Descombes; Ruben Ortega Pérez; François Barja
Journal:  J Bacteriol       Date:  2011-03-25       Impact factor: 3.490

7.  Screening and characterization of ethanol-tolerant and thermotolerant acetic acid bacteria from Chinese vinegar Pei.

Authors:  Yang Chen; Ye Bai; Dongsheng Li; Chao Wang; Ning Xu; Yong Hu
Journal:  World J Microbiol Biotechnol       Date:  2015-12-28       Impact factor: 3.312

8.  16S rRNA in situ Hybridization Followed by Flow Cytometry for Rapid Identification of Acetic Acid Bacteria Involved in Submerged Industrial Vinegar Production.

Authors:  Janja Trček; Luka Lipoglavšek; Gorazd Avguštin
Journal:  Food Technol Biotechnol       Date:  2016-03       Impact factor: 3.918

9.  Gluconobacter as well as Asaia species, newly emerging opportunistic human pathogens among acetic acid bacteria.

Authors:  Corentine Alauzet; Corinne Teyssier; Estelle Jumas-Bilak; Anne Gouby; Raphael Chiron; Christian Rabaud; François Counil; Alain Lozniewski; Hélène Marchandin
Journal:  J Clin Microbiol       Date:  2010-09-08       Impact factor: 5.948

10.  Combined fluxomics and transcriptomics analysis of glucose catabolism via a partially cyclic pentose phosphate pathway in Gluconobacter oxydans 621H.

Authors:  Tanja Hanke; Katharina Nöh; Stephan Noack; Tino Polen; Stephanie Bringer; Hermann Sahm; Wolfgang Wiechert; Michael Bott
Journal:  Appl Environ Microbiol       Date:  2013-02-01       Impact factor: 4.792

View more

北京卡尤迪生物科技股份有限公司 © 2022-2023.