Ectoines in cell stress protection: Uses and biotechnological production

Microorganisms produce and accumulate compatible solutes aiming at protecting themselves from environmental stresses. Among them, the wide spread in nature ectoines are receiving increasing attention by the scientific community because of their multiple applications. In fact, increasing commercial d...

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Published inBiotechnology advances Vol. 28; no. 6; pp. 782 - 801
Main Authors Pastor, José M., Salvador, Manuel, Argandoña, Montserrat, Bernal, Vicente, Reina-Bueno, Mercedes, Csonka, Laszlo N., Iborra, José L., Vargas, Carmen, Nieto, Joaquín J., Cánovas, Manuel
Format Journal Article
LanguageEnglish
Published Kidlington Elsevier Inc 01.11.2010
Elsevier
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Abstract Microorganisms produce and accumulate compatible solutes aiming at protecting themselves from environmental stresses. Among them, the wide spread in nature ectoines are receiving increasing attention by the scientific community because of their multiple applications. In fact, increasing commercial demand has led to a multiplication of efforts in order to improve processes for their production. In this review, the importance of current and potential applications of ectoines as protecting agents for macromolecules, cells and tissues, together with their potential as therapeutic agents for certain diseases are analyzed and current theories for the understanding of the molecular basis of their biological activity are discussed. The genetic, biochemical and environmental determinants of ectoines biosynthesis by natural and engineered producers are described. The major limitations of current bioprocesses used for ectoines production are discussed, with emphasis on the different microorganisms, environments, molecular engineering and fermentation strategies used to optimize the production and recovery of ectoines. The combined application of both bioprocess and metabolic engineering strategies, allowing a deeper understanding of the main factors controlling the production process is also stated. Finally, this review aims to summarize and update the state of the art in ectoines uses and applications and industrial scale production using bacteria, emphasizing the importance of reactor design and operation strategies, together with the metabolic engineering aspects and the need for feedback between wet and in silico work to optimize bioproduction.
AbstractList Microorganisms produce and accumulate compatible solutes aiming at protecting themselves from environmental stresses. Among them, the wide spread in nature ectoines are receiving increasing attention by the scientific community because of their multiple applications. In fact, increasing commercial demand has led to a multiplication of efforts in order to improve processes for their production. In this review, the importance of current and potential applications of ectoines as protecting agents for macromolecules, cells and tissues, together with their potential as therapeutic agents for certain diseases are analyzed and current theories for the understanding of the molecular basis of their biological activity are discussed. The genetic, biochemical and environmental determinants of ectoines biosynthesis by natural and engineered producers are described. The major limitations of current bioprocesses used for ectoines production are discussed, with emphasis on the different microorganisms, environments, molecular engineering and fermentation strategies used to optimize the production and recovery of ectoines. The combined application of both bioprocess and metabolic engineering strategies, allowing a deeper understanding of the main factors controlling the production process is also stated. Finally, this review aims to summarize and update the state of the art in ectoines uses and applications and industrial scale production using bacteria, emphasizing the importance of reactor design and operation strategies, together with the metabolic engineering aspects and the need for feedback between wet and in silico work to optimize bioproduction.
Microorganisms produce and accumulate compatible solutes aiming at protecting themselves from environmental stresses. Among them, the wide spread in nature ectoines are receiving increasing attention by the scientific community because of their multiple applications. In fact, increasing commercial demand has led to a multiplication of efforts in order to improve processes for their production. In this review, the importance of current and potential applications of ectoines as protecting agents for macromolecules, cells and tissues, together with their potential as therapeutic agents for certain diseases are analyzed and current theories for the understanding of the molecular basis of their biological activity are discussed. The genetic, biochemical and environmental determinants of ectoines biosynthesis by natural and engineered producers are described. The major limitations of current bioprocesses used for ectoines production are discussed, with emphasis on the different microorganisms, environments, molecular engineering and fermentation strategies used to optimize the production and recovery of ectoines. The combined application of both bioprocess and metabolic engineering strategies, allowing a deeper understanding of the main factors controlling the production process is also stated. Finally, this review aims to summarize and update the state of the art in ectoines uses and applications and industrial scale production using bacteria, emphasizing the importance of reactor design and operation strategies, together with the metabolic engineering aspects and the need for feedback between wet and in silico work to optimize bioproduction.
Author Argandoña, Montserrat
Salvador, Manuel
Iborra, José L.
Csonka, Laszlo N.
Reina-Bueno, Mercedes
Cánovas, Manuel
Vargas, Carmen
Nieto, Joaquín J.
Pastor, José M.
Bernal, Vicente
Author_xml – sequence: 1
  givenname: José M.
  surname: Pastor
  fullname: Pastor, José M.
  organization: Department of Biochemistry and Molecular Biology B and Immunology, University of Murcia, Campus de Espinardo, 30100 Murcia, P.O. Box 4021, Spain
– sequence: 2
  givenname: Manuel
  surname: Salvador
  fullname: Salvador, Manuel
  organization: Department of Microbiology and Parasitology, Faculty of Pharmacy, University of Seville, Seville, Spain
– sequence: 3
  givenname: Montserrat
  surname: Argandoña
  fullname: Argandoña, Montserrat
  organization: Department of Microbiology and Parasitology, Faculty of Pharmacy, University of Seville, Seville, Spain
– sequence: 4
  givenname: Vicente
  surname: Bernal
  fullname: Bernal, Vicente
  organization: Department of Biochemistry and Molecular Biology B and Immunology, University of Murcia, Campus de Espinardo, 30100 Murcia, P.O. Box 4021, Spain
– sequence: 5
  givenname: Mercedes
  surname: Reina-Bueno
  fullname: Reina-Bueno, Mercedes
  organization: Department of Microbiology and Parasitology, Faculty of Pharmacy, University of Seville, Seville, Spain
– sequence: 6
  givenname: Laszlo N.
  surname: Csonka
  fullname: Csonka, Laszlo N.
  email: csonka@purdue.edu
  organization: Department of Biological Sciences, Purdue University, West Lafayette, IN 47907-1392, USA
– sequence: 7
  givenname: José L.
  surname: Iborra
  fullname: Iborra, José L.
  organization: Department of Biochemistry and Molecular Biology B and Immunology, University of Murcia, Campus de Espinardo, 30100 Murcia, P.O. Box 4021, Spain
– sequence: 8
  givenname: Carmen
  surname: Vargas
  fullname: Vargas, Carmen
  email: cvargas@us.es
  organization: Department of Microbiology and Parasitology, Faculty of Pharmacy, University of Seville, Seville, Spain
– sequence: 9
  givenname: Joaquín J.
  surname: Nieto
  fullname: Nieto, Joaquín J.
  organization: Department of Microbiology and Parasitology, Faculty of Pharmacy, University of Seville, Seville, Spain
– sequence: 10
  givenname: Manuel
  surname: Cánovas
  fullname: Cánovas, Manuel
  email: mcanovas@um.es
  organization: Department of Biochemistry and Molecular Biology B and Immunology, University of Murcia, Campus de Espinardo, 30100 Murcia, P.O. Box 4021, Spain
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IsPeerReviewed true
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Issue 6
Keywords Compatible solutes
Ectoine
Bioreactors
Hydroxyectoine
Halophiles
Bacterial milking
Abiotic stress protection
Biotechnology
Environmental factor
Stress
Abiotic factor
Bioreactor
Halophily
Production
Bacteria
Protection
Language English
License CC BY 4.0
Copyright © 2010 Elsevier Inc. All rights reserved.
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SSID ssj0015053
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SecondaryResourceType review_article
Snippet Microorganisms produce and accumulate compatible solutes aiming at protecting themselves from environmental stresses. Among them, the wide spread in nature...
SourceID proquest
crossref
pubmed
pascalfrancis
elsevier
SourceType Aggregation Database
Index Database
Publisher
StartPage 782
SubjectTerms Abiotic stress protection
Amino Acids, Diamino - biosynthesis
Amino Acids, Diamino - chemistry
Animals
Bacteria
Bacterial milking
Bioengineering
Biological and medical sciences
Bioreactors
Biotechnology
Cells - metabolism
Compatible solutes
Cytoprotection
Diseases
Ectoine
Fundamental and applied biological sciences. Psychology
Halophiles
Humans
Hydroxyectoine
Macromolecules
Methods. Procedures. Technologies
Microorganisms
Reactor design
Receiving
Spreads
Strategy
Stress, Physiological
Stresses
Various methods and equipments
Title Ectoines in cell stress protection: Uses and biotechnological production
URI https://dx.doi.org/10.1016/j.biotechadv.2010.06.005
https://www.ncbi.nlm.nih.gov/pubmed/20600783
https://search.proquest.com/docview/1770351134
https://search.proquest.com/docview/755405557
https://search.proquest.com/docview/831153113
Volume 28
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