Model-based characterisation of growth performance and l-lactic acid production with high optical purity by thermophilic Bacillus coagulans in a lignin-supplemented mixed substrate medium.

Robert Glaser, Joachim Venus

Journal: New biotechnology 2017;37(Pt B):180-193

PMID: 28188935

Abstract

Three Bacillus coagulans strains were characterised in terms of their ability to grow in lignin-containing fermentation media and to consume the lignocellulose-related sugars glucose, xylose, and arabinose. An optical-density high-throughput screening was used for precharacterisation by means of different mathematical models for comparison (Logistic, Gompertz, Baranyi, Richards & Stannard, and Schnute). The growth response was characterised by the maximum growth rate and lag time. For a comparison of the screening and fermentation results, an unstructured mathematical model was proposed to characterise the lactate production, bacterial growth and substrate consumption. The growth model was then applied to fermentation procedures using wheat straw hydrolysates. The results indicated that the unstructured growth model can be used to evaluate lactate producing fermentation. Under the experimental fermentation conditions, one strain showed the ability to tolerate a high lignin concentration (2.5g/L) but lacked the capacity for sufficient pentose uptake. The lactate yield of the strains that were able to consume all sugar fractions of glucose, xylose and arabinose was ∼83.4%. A photometric measurement at 280nm revealed a dynamic change in alkali-lignin concentrations during lactate producing fermentation. A test of decolourisation of vanillin, ferulic acid, and alkali-lignin samples also showed the decolourisation performance of the B. coagulans strains under study.

Copyright © 2017 The Author(s). Published by Elsevier B.V. All rights reserved.

Address: Leibniz Institute for Agricultural Engineering and Bioeconomy (reg. assoc.), Max-Eyth-Allee 100, 14469 Potsdam, Germany. Electronic address: [email protected].; Leibniz Institute for Agricultural Engineering and Bioeconomy (reg. assoc.), Max-Eyth-Allee 100, 14469 Potsdam, Germany. Electronic address: [email protected].

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