Literature & Scientific Publications

Discover our core technology of rapid growth microbial testing. 

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Integration of rapid bioburden testing into production quality management systems and process control.

Irina Ramos (AstraZeneca), Michelle Najera (Evotec), Gene Schaefer (NIIMBL) (2024)

Biotechnology Progress

Evaluation of polymyxin B in combination with 13 other antibiotics against carbapenemase-producing Klebsiella pneumoniae in time-lapse microscopy and time-kill experiments.

Wistrand-Yuen, P., Olsson, A., Skarp, K., Friberg, L. E., Nielsen, E. I., Lagerbäck, P., & Tängdén, T. (2020).

Clinical Microbiology and Infection

Evaluation of the efficacy of antibiotic combinations against multidrug-resistant Pseudomonas aeruginosa in automated time-lapse microscopy and static time-kill experiments.

Olsson, A., Wistrand-Yuen, P., Nielsen, E. I., Friberg, L. E., Sandegren, L., Lagerbäck, P., & Tängdén, T. (2020).

Antimicrobial Agents and Chemotherapy

The most heat‐resistant conidia observed to date are formed by distinct strains of Paecilomyces variotii.

van den Brule, T., Punt, M., Teertstra, W., Houbraken, J., Wösten, H., & Dijksterhuis, J. (2019).

Environmental microbiology

Rapid antimicrobial susceptibility testing and β-lactam-induced cell morphology changes of Gram-negative biological threat pathogens by optical screening.

McLaughlin, H. P., & Sue, D. (2018).

BMC microbiology, 18(1), 218

Advances in online methods for monitoring microbial growth.

Zhang, X., Jiang, X., Hao, Z., & Qu, K. (2018).

Biosensors and Bioelectronics

Real-Time Digital Bright Field Technology for Rapid Antibiotic Susceptibility Testing.

Canali, C., Spillum, E., Valvik, M., Agersnap, N., & Olesen, T. (2018).

Antibiotic Resistance Protocols (pp. 75-84). Humana Press, New York, NY

Automated time-lapse microscopy a novel method for screening of antibiotic combination effects against multidrug-resistant Gram-negative bacteria.

Ungphakorn, W., Lagerbäck, P., Nielsen, E. I., & Tängdén, T. (2017).

Clinical Microbiology and Infection

Imaging for monitoring downstream processing of fermentation broths.

Moiseyenko, R., Baum, A., Jørgensen, T. M., Glanville, S., Laursen, C. N., Mansouri, S. S., & Gernaey, K. V. (2017).

In Recent Advances in Fermentation Technology (RAFT 2017)

Optical screening for rapid antimicrobial susceptibility testing and for observation of phenotypic diversity among strains of the genetically clonal species Bacillus anthracis.

McLaughlin HP, Gargis AS, Michel P, Sue D, Weigel LM. (2017).

J Clin Microbiol 55:959–970

Evaluation of automated time-lapse microscopy for assessment of in vitro activity of antibiotics.

Ungphakorn, W., Malmberg, C., Lagerbäck, P., Cars, O., Nielsen, E. I., & Tängdén, T. (2017).

Journal of Microbiological Methods, 132, 69-75

Real-time monitoring of fungal inhibition and morphological changes.

Aunsbjerg, S. D., Andersen, K. R., & Knøchel, S. (2015).

Journal of microbiological methods, 119, 196-202

Automated image analysis for quantification of filamentous bacteria.

Fredborg, M., Rosenvinge, F. S., Spillum, E., Kroghsbo, S., Wang, M., & Sondergaard, T. E. (2015).

BMC microbiology, 15(1), 255

Real-time optical antimicrobial susceptibility testing

Fredborg, M., Andersen, K. R., Jørgensen, E., Droce, A., Olesen, T., Jensen, B. B., Rosenvinge, F. S., & Sondergaard, T. E. (2013)

Journal of clinical microbiology, 51(7), 2047-2053

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