Publikationen von S. N. Lindner
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Zeitschriftenartikel (26)
1.
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Lindner, S. N. Automated in vivo enzyme engineering accelerates biocatalyst optimization. Nature Communications 15, (2024).
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Schulz-Mirbach, H., , , Gomez Coronado, P. A., , , Bar-Even, A., Lindner, S. N. & Implementation of the β-hydroxyaspartate cycle increases growth performance of Pseudomonas putida on the PET monomer ethylene glycol. Metabolic Engineering 76, 97–109 (2023).
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Kim, S., Giraldo, N., Rainaldi, V., Machens, F., , , , Bar-Even, A. & Lindner, S. N. Optimizing E. coli as a formatotrophic platform for bioproduction via the reductive glycine pathway. Frontiers in Bioengineering and Biotechnology 11, (2023).
4.
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Wu, T., Gomez Coronado, P. A., Kubis, A., Lindner, S. N., , , Bar-Even, A. & He, H. Engineering a synthetic energy-efficient formaldehyde assimilation cycle in Escherichia coli. Nature Communications 14, (2023).
5.
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Schulz-Mirbach, H., Mueller, A., Wu, T., , Aslan, S., , , Bar-Even, A. & Lindner, S. N. On the flexibility of the cellular amination network in E. coli. eLife 11, (2022).
6.
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Wenk, S., & Lindner, S. N. Synthetic metabolism approaches: A valuable resource for systems biology. Current Opinion in Systems Biology 30, (2022).
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Iacometti, C., Marx, K., Hönick, M., Biletskaia, V., Schulz-Mirbach, H., Dronsella, B., Satanowski, A., , , , , , , Bar-Even, A. & Lindner, S. N. Activating Silent Glycolysis Bypasses in Escherichia coli. BioDesign Research 2022, (2022).
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Lindner, S. N., & Coupling electrochemical CO2 reduction to microbial product generation – identification of the gaps and opportunities. Current Opinion in Biotechnology 74, 154–163 (2022).
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Lindner, S. N., Cotton, C. A. R., Bar-Even, A. & Toward a glycyl radical enzyme containing synthetic bacterial microcompartment to produce pyruvate from formate and acetate. Proceedings of the National Academy of Sciences of the United States of America 119, (2022).
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Orsi, E., , & Lindner, S. N. Growth-coupled selection of synthetic modules to accelerate cell factory development. Nature Communications 12, (2021).
11.
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Ramirez, L. C., Meyer, S. N., , , , , Bar-Even, A. & Lindner, S. N. Change in cofactor specificity of oxidoreductases by adaptive evolution of an escherichia coli nadph-auxotrophic strain. mBio 12, (2021).
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Bonder, D., Torregrosa-Barragan, L., , , , , , & Lindner, S. N. Evolving a New Efficient Mode of Fructose Utilization for Improved Bioproduction in Corynebacterium glutamicum. Frontiers in Bioengineering and Biotechnology 9, (2021).
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Cotton, C. A. R., , He, H., , , , Dronsella, B., Erban, A., Toman, S., Dempfle, M., de Maria, A., Kopka, J., Lindner, S. N., & Bar-Even, A. Underground isoleucine biosynthesis pathways in E. coli. eLife 9, (2020).
14.
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Ramirez, L. C., , , Lindner, S. N., , , , Bar-Even, A. & In vivo selection for formate dehydrogenases with high efficiency and specificity towards NADP+. ACS Catalysis 10, 7512–7525 (2020).
15.
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Aslan, S., , Benito-Vaquerizo, S., Lindner, S. N. & Bar-Even, A. Design and engineering of E. coli metabolic sensor strains with a wide sensitivity range for glycerate. Metabolic Engineering 57, 96–109 (2020).
16.
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Kim, S., Lindner, S. N., Aslan, S., Yishai, O., Wenk, S., Schann, K. & Bar-Even, A. Growth of E. coli on formate and methanol via the reductive glycine pathway. Nature Chemical Biology 16, 538–545 (2020).
17.
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Lindner, S. N., Aslan, S., Mueller, A., , Behrens, P., Edlich-Muth, C., & Bar-Even, A. A synthetic glycerol assimilation pathway demonstrates biochemical constraints of cellular metabolism. The FEBS Journal 287, 160–172 (2020).
18.
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Satanowski, A., Dronsella, B., , , He, H., Wichmann, P., , Lindner, S. N. & Bar-Even, A. Awakening a latent carbon fixation cycle in Escherichia coli. Nature Communications 11, (2020).
19.
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Lindner, S. N., , , & Expression of Formate-Tetrahydrofolate Ligase Did Not Improve Growth but Interferes With Nitrogen and Carbon Metabolism of Synechocystissp. PCC 6803. Frontiers in Microbiology 11, (2020).
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Wenk, S., Schann, K., He, H., Rainaldi, V., Kim, S., Lindner, S. N. & Bar-Even, A. An “energy-auxotroph” E. coli provides an in vivo platform for assessing NADH regeneration systems. Biotechnology and Bioengineering 117, 3422–3434 (2020).