Please use this identifier to cite or link to this item: 10.1016/j.csbj.2021.08.034
Title: Sustainable metabolic engineering for sustainability optimisation of industrial biotechnology
Authors: Stalidzans, Egils
Dace, Elina
Keywords: Biotechnology;Genome-scale metabolic models;Mathematical modelling;Ranking;Sustainability optimisation;Sustainable metabolic engineering;2.9 Industrial biotechnology;2.7 Environmental engineering;1.2 Computer and information sciences;1.1. Scientific article indexed in Web of Science and/or Scopus database;Biotechnology;Biophysics;Structural Biology;Biochemistry;Genetics;Computer Science Applications;SDG 8 - Decent Work and Economic Growth
Issue Date: 1-Jan-2021
Citation: Stalidzans , E & Dace , E 2021 , ' Sustainable metabolic engineering for sustainability optimisation of industrial biotechnology ' , Computational and Structural Biotechnology Journal , vol. 19 , pp. 4770-4776 . https://doi.org/10.1016/j.csbj.2021.08.034
Abstract: Industrial biotechnology represents one of the most innovating and labour-productive industries with an estimated stable economic growth, thus giving space for improvement of the existing and setting up new value chains. In addition, biotechnology has clear environmental advantages over the chemical industry. Still, biotechnology's environmental contribution is sometimes valued with controversy and societal aspects are frequently ignored. Environmental, economic and societal sustainability of various bioprocesses becomes increasingly important due to the growing understanding about complex and interlinked consequences of different human activities. Neglecting the sustainability issues in the development process of novel solutions may lead to sub-optimal biotechnological production, causing adverse environmental and societal problems proportional to the production volumes. In the paper, sustainable metabolic engineering (SME) concept is proposed to assess and optimize the sustainability of biotechnological production that can be derived from the features of metabolism of the exploited organism. The SME concept is optimization of metabolism where economic, environmental and societal sustainability parameters of all incoming and outgoing fluxes and produced biomass of the applied organisms are considered. The extension of characterising features of strains designed by metabolic engineering methods with sustainability estimation enables ab initio improvement of the biotechnological production design.
Description: Funding Information: This research has been supported by the European Regional Development Fund within the project No. 1.1.1.2/VIAA/3/19/528 “Decision Support Tool for an Integrated Food Waste Valorisation System (DeSTInation)” and project No. 1.1.1.1/19/A/047 “Sustainable Microbial Valorisation of Waste Lipids into Biosurfactants”. Funding Information: This research has been supported by the European Regional Development Fund within the project No. 1.1.1.2/VIAA/3/19/528 ?Decision Support Tool for an Integrated Food Waste Valorisation System (DeSTInation)? and project No.?1.1.1.1/19/A/047 ?Sustainable Microbial Valorisation of Waste Lipids into Biosurfactants?. Publisher Copyright: © 2021 The Authors
DOI: 10.1016/j.csbj.2021.08.034
ISSN: 2001-0370
Appears in Collections:Research outputs from Pure / Zinātniskās darbības rezultāti no ZDIS Pure



Items in DSpace are protected by copyright, with all rights reserved, unless otherwise indicated.