Abstract
Manganese (Mn) is an essential trace element that is supplemented in microbial media with varying benefits across species and growth conditions. We found that growth of Lactococcus cremoris was unaffected by manganese omission from the growth medium. The main proteome adaptation to manganese omission involved increased manganese transporter production (up to 2,000-fold), while the remaining 10 significant proteome changes were between 1.4- and 4-fold. Further investigation in translationally blocked (TB), nongrowing cells showed that Mn supplementation (20 mM) led to approximately 1.5 X faster acidification compared with Mn-free conditions. However, this faster acidification stagnated within 24 h, likely due to draining of intracellular NADH that coincides with substantial loss of culturability. Conversely, without manganese, nongrowing cells persisted to acidify for weeks, albeit at a reduced rate, but maintaining redox balance and culturability. Strikingly, despite being unculturable, a-keto acid-derived aldehydes continued to accumulate in cells incubated in the presence of manganese, whereas without manganese cells predominantly formed the corresponding alcohols. This is most likely reflecting NADH availability for the alcohol dehydrogenase-catalyzed conversion. Overall, manganese influences the lactococcal acidification rate, and flavor formation capacity in a redox dependent manner. These are important industrial traits especially during cheese ripening, where cells are in a non-growing, often unculturable state. IMPORTANCE In nature as well as in various biotechnology applications, microorganisms are often in a nongrowing state and their metabolic persistence determines cell survival and functionality. Industrial examples are dairy fermentations where bacteria remain active during the ripening phases that can take up to months and even years. Here we investigated environmental factors that can influence lactococcal metabolic persistence throughout such prolonged periods. We found that in the absence of manganese, acidification of nongrowing cells remained active for weeks while in the presence of manganese it stopped within 1 day. The latter coincided with the accumulation of amino acid derived volatile metabolites. Based on metabolic conversions, proteome analysis, and a reporter assay, we demonstrated that the manganese elicited effects were NADH dependent. Overall the results show the effect of environmental modulation on prolonged cell-based catalysis, which is highly relevant to nongrowing cells in nature and biotechnological applications.
| Original language | English |
|---|---|
| Article number | e02708-21 |
| Pages (from-to) | 1-14 |
| Number of pages | 14 |
| Journal | Microbiology spectrum |
| Volume | 10 |
| Issue number | 3 |
| Early online date | 31 May 2022 |
| DOIs | |
| Publication status | Published - Jun 2022 |
Bibliographical note
Funding Information:The project is organized by and executed under the auspices of TiFN, a public– private partnership on precompetitive research in food and nutrition. H.B. is employed by NIZO Food Research. The authors have declared that no competing interests exist in the writing of this publication. Funding for this research was obtained from Friesland Campina (Wageningen, the Netherlands), CSK Food Enrichment (Wageningen, the Netherlands), and the Topsector Agri & Food.
Funding Information:
This study was funded by the Top Institute Food & Nutrition (TIFN, Program 16MF01, Wageningen, the Netherlands).
Funding Information:
Editor Eva C. Sonnenschein, Technical University of Denmark Copyright © 2022 Nugroho et al. This is an open-access article distributed under the terms of the Creative Commons Attribution 4.0 International license. Address correspondence to Herwig Bachmann, [email protected]. The authors declare a conflict of interest. The project is organized by and executed under the auspices of TiFN, a public - private partnership on precompetitive research in food and nutrition. H.B. is employed by NIZO Food Research. The authors have declared that no competing interests exist in the writing of this publication. Funding for this research was obtained from Friesland Campina (Wageningen, The Netherlands), CSK Food Enrichment (Wageningen, The Netherlands) and the Top-sector Agri&Food. Received 26 December 2021 Accepted 26 April 2022 Published 31 May 2022
Funding Information:
We thank Roelie Holleman for the HPLC measurement of organic acids, Wilma Wesselink for the HS-SPME GC-MS measurement of volatiles, Peter Ruhdal Jensen who kindly provided strain MG1363(pAK80) and MG1363(pCPC75::atpAGD), as well as Jacques Vervoort for the constructive discussion. The project is organized by and executed under the auspices of TiFN, a public–private partnership on precompetitive research in food and nutrition. H.B. is employed by NIZO Food Research. The authors have declared that no competing interests exist in the writing of this publication. Funding for this research was obtained from Friesland Campina (Wageningen, the Netherlands), CSK Food Enrichment (Wageningen, the Netherlands), and the Topsector Agri & Food. A.D.W.N., M.K., and H.B. conceived and designed the study; A.D.W.N., B.v.O., S.B., and S.A.B. carried out the experiments; all authors analyzed the data; A.D.W.N., M.K., and H.B. wrote the paper. This study was funded by the Top Institute Food & Nutrition (TIFN, Program 16MF01, Wageningen, the Netherlands).
Publisher Copyright:
Copyright © 2022 Nugroho et al.
Funding
The project is organized by and executed under the auspices of TiFN, a public– private partnership on precompetitive research in food and nutrition. H.B. is employed by NIZO Food Research. The authors have declared that no competing interests exist in the writing of this publication. Funding for this research was obtained from Friesland Campina (Wageningen, the Netherlands), CSK Food Enrichment (Wageningen, the Netherlands), and the Topsector Agri & Food. This study was funded by the Top Institute Food & Nutrition (TIFN, Program 16MF01, Wageningen, the Netherlands). Editor Eva C. Sonnenschein, Technical University of Denmark Copyright © 2022 Nugroho et al. This is an open-access article distributed under the terms of the Creative Commons Attribution 4.0 International license. Address correspondence to Herwig Bachmann, [email protected]. The authors declare a conflict of interest. The project is organized by and executed under the auspices of TiFN, a public - private partnership on precompetitive research in food and nutrition. H.B. is employed by NIZO Food Research. The authors have declared that no competing interests exist in the writing of this publication. Funding for this research was obtained from Friesland Campina (Wageningen, The Netherlands), CSK Food Enrichment (Wageningen, The Netherlands) and the Top-sector Agri&Food. Received 26 December 2021 Accepted 26 April 2022 Published 31 May 2022 We thank Roelie Holleman for the HPLC measurement of organic acids, Wilma Wesselink for the HS-SPME GC-MS measurement of volatiles, Peter Ruhdal Jensen who kindly provided strain MG1363(pAK80) and MG1363(pCPC75::atpAGD), as well as Jacques Vervoort for the constructive discussion. The project is organized by and executed under the auspices of TiFN, a public–private partnership on precompetitive research in food and nutrition. H.B. is employed by NIZO Food Research. The authors have declared that no competing interests exist in the writing of this publication. Funding for this research was obtained from Friesland Campina (Wageningen, the Netherlands), CSK Food Enrichment (Wageningen, the Netherlands), and the Topsector Agri & Food. A.D.W.N., M.K., and H.B. conceived and designed the study; A.D.W.N., B.v.O., S.B., and S.A.B. carried out the experiments; all authors analyzed the data; A.D.W.N., M.K., and H.B. wrote the paper. This study was funded by the Top Institute Food & Nutrition (TIFN, Program 16MF01, Wageningen, the Netherlands).
Keywords
- cellular redox status
- fermentation
- Lactococcus
- manganese
- nongrowing
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