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      Optimization of Culture Conditions for Oxygen-Tolerant Regulatory [NiFe]-Hydrogenase Production from Ralstonia eutropha H16 in Escherichia coli

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          Abstract

          Hydrogenases are abundant metalloenzymes that catalyze the reversible conversion of molecular H 2 into protons and electrons. Important achievements have been made over the past two decades in the understanding of these highly complex enzymes. However, most hydrogenases have low production yields requiring many efforts and high costs for cultivation limiting their investigation. Heterologous production of these hydrogenases in a robust and genetically tractable expression host is an attractive strategy to make these enzymes more accessible. In the present study, we chose the oxygen-tolerant H 2-sensing regulatory [NiFe]-hydrogenase (RH) from Ralstonia eutropha H16 owing to its relatively simple architecture compared to other [NiFe]-hydrogenases as a model to develop a heterologous hydrogenase production system in Escherichia coli. Using screening experiments in 24 deep-well plates with 3 mL working volume, we investigated relevant cultivation parameters, including inducer concentration, expression temperature, and expression time. The RH yield could be increased from 14 mg/L up to >250 mg/L by switching from a batch to an EnPresso B-based fed-batch like cultivation in shake flasks. This yield exceeds the amount of RH purified from the homologous host R. eutropha by several 100-fold. Additionally, we report the successful overproduction of the RH single subunits HoxB and HoxC, suitable for biochemical and spectroscopic investigations. Even though both RH and HoxC proteins were isolated in an inactive, cofactor free apo-form, the proposed strategy may powerfully accelerate bioprocess development and structural studies for both basic research and applied studies. These results are discussed in the context of the regulation mechanisms governing the assembly of large and small hydrogenase subunits.

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          Recombinant protein folding and misfolding in Escherichia coli.

          The past 20 years have seen enormous progress in the understanding of the mechanisms used by the enteric bacterium Escherichia coli to promote protein folding, support protein translocation and handle protein misfolding. Insights from these studies have been exploited to tackle the problems of inclusion body formation, proteolytic degradation and disulfide bond generation that have long impeded the production of complex heterologous proteins in a properly folded and biologically active form. The application of this information to industrial processes, together with emerging strategies for creating designer folding modulators and performing glycosylation all but guarantee that E. coli will remain an important host for the production of both commodity and high value added proteins.
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            Hydrogenases.

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              Escherichia coli physiology in Luria-Bertani broth.

              Luria-Bertani broth supports Escherichia coli growth to an optical density at 600 nm (OD(600)) of 7. Surprisingly, however, steady-state growth ceases at an OD(600) of 0.3, when the growth rate slows down and cell mass decreases. Growth stops for lack of a utilizable carbon source. The carbon sources for E. coli in Luria-Bertani broth are catabolizable amino acids, not sugars.
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                Author and article information

                Contributors
                Role: Academic Editor
                Role: Academic Editor
                Journal
                Microorganisms
                Microorganisms
                microorganisms
                Microorganisms
                MDPI
                2076-2607
                31 May 2021
                June 2021
                : 9
                : 6
                : 1195
                Affiliations
                [1 ]Institute of Biotechnology, Technische Universität Berlin, Chair of Bioprocess Engineering, Ackerstraße 76, D-13355 Berlin, Germany; qin.fan@ 123456campus.tu-berlin.com (Q.F.); peter.neubauer@ 123456tu-berlin.de (P.N.)
                [2 ]Department of Chemistry, Technische Universität Berlin, Straße des 17. Juni 135, D-10623 Berlin, Germany; giorgio.caserta@ 123456tu-berlin.de (G.C.); christian.lorent@ 123456tu-berlin.de (C.L.); oliver.lenz@ 123456tu-berlin.de (O.L.)
                Author notes
                [* ]Correspondence: matthias.gimpel@ 123456tu-berlin.de ; Tel.: +49-(0)30-314-79471
                Author information
                https://orcid.org/0000-0003-0986-3059
                https://orcid.org/0000-0001-9057-4523
                https://orcid.org/0000-0003-4550-5128
                https://orcid.org/0000-0002-1214-9713
                https://orcid.org/0000-0002-5136-8169
                Article
                microorganisms-09-01195
                10.3390/microorganisms9061195
                8229454
                34073092
                49de1ee7-6b0d-4c04-ae97-b3c2b7866c1a
                © 2021 by the authors.

                Licensee MDPI, Basel, Switzerland. This article is an open access article distributed under the terms and conditions of the Creative Commons Attribution (CC BY) license ( https://creativecommons.org/licenses/by/4.0/).

                History
                : 26 April 2021
                : 28 May 2021
                Categories
                Article

                [nife]-hydrogenase,ralstonia eutropha,heterologous protein production,cofactor assembly,difficult-to-express protein,escherichia coli

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