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Publications by Molecular and Cellular Biotechnology

Are you looking for publications by Section of Molecular and Cellular Biotechnology? On this page you can find all the publications made by the Section of Molecular and Cellular Biotechnology - Department of Biological & Chemical Engineering, Aarhus University.

Below you can find a list of all the publications, their publishing date, their author(s), and titles. The list can be sorted by date, author, and title:

List of Publications

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Irla, M., Nærdal, I., Virant, D., Brautaset, T., Busche, T., Goranovič, D., Haupka, C., Heux, S., Kosec, G., Rückert-Reed, C., Wendisch, V. F., Brito, L. F. & Vicente, C. M. (2025). Systems-level analysis provides insights on methanol-based production of L-glutamate and its decarboxylation product γ-aminobutyric acid by Bacillus methanolicus. Metabolic Engineering, 91, 389-404. https://doi.org/10.1016/j.ymben.2025.06.002
Alamia, A., Ambrose, H. W. & Rattigan, E. (2025). Techno-Economic Integration of Power-to-X Methanation in Biogas Systems: System-Level Optimization Based on Experimental Research. Poster session presented at 33rd European Biomass Conference & Exhibition , Valencia, Spain.
Sieborg, M. U. (2023). Giving CO2 a second chance. [PhD dissertation, Aarhus University]. Aarhus University - Department of Biological and Chemical Engineering.
Lustermans, J. (2023). Electric interactions with cable bacteria: Community studies of flocking bactera. [PhD dissertation, Aarhus University]. Aarhus Universitet.
Larsen, C. K. (2023). Mining the Unexplored Microbiome to Produce High-value Biopharmaceuticals. [PhD dissertation, Aarhus University]. Aarhus Universitet.
Wijesooriya, M. M., Vithanage, M. & Wijesekara, H. (2025). Underestimated Threats: Personal Care Products (PCPs) in Marine and Coastal Environments. In M. Vithanage, S. M. Samarasekara, B. D. James & C. M. Reddy (Eds.), Coastal and Marine Pollution: Source to Sink, Mitigation and Management (pp. 225-248). Wiley. https://doi.org/10.1002/9781394237029.ch12
Zhang, N., Lahmann, V., Bittner, J. P., Domínguez de María, P., Jakobtorweihen, S., Smirnova, I. & Kara, S. (2025). Redox Biocatalysis in Lidocaine-Based Hydrophobic Deep Eutectic Solvents: Non-Conventional Media Outperform Aqueous Conditions. ChemSusChem, 18(6), Article e202402075. https://doi.org/10.1002/cssc.202402075
Xie, J., Veigel, M., Schmidt, H. & Gänzle, M. (2025). Selection of Bacillus spp. as fermentation cultures for production of plant-based cheese analogues. International Journal of Food Microbiology, 435, Article 111178. https://doi.org/10.1016/j.ijfoodmicro.2025.111178
Link, T., Lülf, R. H., Parr, M., Hilgarth, M. & Ehrmann, M. A. (2022). Genome Sequence of the Diploid Yeast Debaryomyces hansenii TMW 3.1188. Microbiology Resource Announcements, 11(11). https://doi.org/10.1128/mra.00649-22
Lülf, R. H., Selg-Mann, K., Hoffmann, T., Zheng, T., Schirmer, M. & Ehrmann, M. A. (2023). Carbohydrate Sources Influence the Microbiota and Flavour Profile of a Lupine-Based Moromi Fermentation. Foods, 12(1), Article 197. https://doi.org/10.3390/foods12010197
Gemeinhardt, K., Jeon, B. S., Ntihuga, J. N., Wang, H., Schlaiß, C., Lucas, T. N., Bessarab, I., Nalpas, N., Zhou, N., Usack, J. G., Huson, D. H., Williams, R. B. H., Maček, B., Aristilde, L. & Angenent, L. T. (2025). Toward industrial C8 production: oxygen intrusion drives renewable n-caprylate production from ethanol and acetate via intermediate metabolite production. Green Chemistry, 27(11), 2931-2949. https://doi.org/10.1039/d5gc00411j
Lara, A. R. & Gosset, G. (2019). Preface. In Minimal Cells: Design, Construction, Biotechnological Applications (pp. v-vi). Springer International Publishing.
de la Cruz, M., Ramírez, E. A., Sigala, J. C., Utrilla, J. & Lara, A. R. (2020). Plasmid DNA production in proteome-reduced Escherichia coli. Microorganisms, 8(9), 1-8. Article 1444. https://doi.org/10.3390/microorganisms8091444
Borja, G. M., Meza Mora, E., Barrón, B., Gosset, G., Ramírez, O. T. & Lara, A. R. (2012). Engineering Escherichia coli to increase plasmid DNA production in high cell-density cultivations in batch mode. Microbial Cell Factories, 11, Article 132. https://doi.org/10.1186/1475-2859-11-132
Taymaz-Nikerel, H. & Lara, A. R. (2016). Editorial: Quantitative systems biology for engineering organisms and pathways. Frontiers in Bioengineering and Biotechnology, 4(MAR), Article 22. https://doi.org/10.3389/fbioe.2016.00022
Fuentes, L. G., Lara, A. R., Martínez, L. M., Ramírez, O. T., Martínez, A., Bolívar, F. & Gosset, G. (2013). Modification of glucose import capacity in Escherichia coli: Physiologic consequences and utility for improving DNA vaccine production. Microbial Cell Factories, 12(1), Article 42. https://doi.org/10.1186/1475-2859-12-42
Jaén, K. E., Lara, A. R. & Ramírez, O. T. (2013). Effect of heating rate on pDNA production by E. coli. Biochemical Engineering Journal, 79, 230-238. https://doi.org/10.1016/j.bej.2013.08.006
Jaén, K. E., Velazquez, D., Delvigne, F., Sigala, J. C. & Lara, A. R. (2019). Engineering E. coli for improved microaerobic pDNA production. Bioprocess and Biosystems Engineering, 42(9), 1457-1466. https://doi.org/10.1007/s00449-019-02142-5
Pablos, T. E., Soto, R., Mora, E. M., Le Borgne, S., Ramírez, O. T., Gosset, G. & Lara, A. R. (2012). Enhanced production of plasmid DNA by engineered Escherichia coli strains. Journal of Biotechnology, 158(4), 211-214. https://doi.org/10.1016/j.jbiotec.2011.04.015