Digital Transformation of the Laboratory. Группа авторов

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(accessed 1 February 2020).

      78 78 Quantum computers flip the script on spin chemistry (2020). https://www.ibm.com/blogs/research/2020/02/quantum-spin-chemistry/ (accessed 1 February 2020).

      79 79 Kevin Hartnett. Quantum supremacy is coming: here's what you should know. https://www.quantamagazine.org/quantum-supremacy-is-coming-heres-what-you-should-know-20190718/ (accessed 1 February 2020).

      80 80 Chong, F., Franklin, D., and Martonosi, M. (2017). Programming languages and compiler design for realistic quantum hardware. Nature 549: 180–187. https://doi.org/10.1038/nature23459.

      81 81 Edinburgh EPCC https://www.epcc.ed.ac.uk/facilities/archer (accessed 1 February 2020).

      82 82 Argonne National Lab https://www.anl.gov/article/supercomputing-powerhouse (accessed 1 February 2020).

      83 83 China Super Computing https://en.wikipedia.org/wiki/Supercomputing_in_China (accessed 1 February 2020).

      84 84 Amazon is now offering quantum computing as a service (2019). https://www.theverge.com/2019/12/2/20992602/amazon-is-now-offering-quantum-computing-as-a-service (accessed 1 February 2020).

      85 85 Schneider, P., Walters, W.P., Plowright, A.T. et al. (2019). Rethinking drug design in the artificial intelligence era. Nature Reviews. Drug Discovery 19: 353–364. https://doi.org/10.1038/s41573-019-0050-3.

      86 86 Mak, K. and Pichika, M. (2019). Artificial intelligence in drug development: present status and future prospects. Drug Discovery Today 24 (3): 773–780. https://doi.org/10.1016/j.drudis.2018.11.014.

      87 87 For a set of other potentially “hot” scientific areas as picked out in 2017. https://www.timeshighereducation.com/features/what-are-the-hot-research-areas-that-might-spark-the-next-big-bang (accessed 1 February 2020).

      88 88 FDA https://www.fda.gov/consumers/consumer-updates/what-gene-therapy-how-does-it-work (accessed 1 February 2020).

      89 89 National Cancer Institute https://www.cancer.gov/about-cancer/treatment/research/car-t-cells (accessed 1 February 2020).

      90 90 Parida, S.K., Madansein, R., Singh, N. et al. (2015). Cellular therapy in tuberculosis. International Journal of Infectious Diseases 32: 32–38. https://doi.org/10.1016/j.ijid.2015.01.016.

      91 91 Maldini, C.R., Ellis, G., and Riley, J.L. (2018). CAR‐T cells for infection, autoimmunity and allotransplantation. Nature Reviews. Immunology 18: 605–616. https://doi.org/10.1038/s41577-018-0042-2.

      92 92 Stem cells: what they are and what they do. https://www.mayoclinic.org/tests-procedures/bone-marrow-transplant/in-depth/stem-cells/art-20048117 (accessed 1 February 2020).

      93 93 Bui, F., Almeida‐da‐Silva, C.L.C., Huynh, B. et al. (2019). Association between periodontal pathogens and systemic disease. Biomedical Journal 42 (1): 27–35. https://doi.org/10.1016/j.bj.2018.12.001.

      94 94 Kakasis, A. and Panitsa, G. (2019). Bacteriophage therapy as an alternative treatment for human infections. A comprehensive review. International Journal of Antimicrobial Agents 53 (1): 16–21. https://doi.org/10.1016/j.ijantimicag.2018.09.004.

      95 95 Lu, R., Hwang, Y.‐C., Liu, I.‐J. et al. (2020). Development of therapeutic antibodies for the treatment of diseases. Journal of Biomedical Science 27: 1. https://doi.org/10.1186/s12929-019-0592-z.

      96 96 Bajan, S. and Hutvagner, G. (2020). RNA‐based therapeutics: from antisense oligonucleotides to miRNAs. Cells 9: 137. https://doi.org/10.3390/cells9010137.

      97 97 Fosgerau, K. and Hoffmann, T. (2015). Peptide therapeutics: current status and future directions. Drug Discovery Today 20 (1): 122–128; https://doi.org/10.1016/j.drudis.2014.10.003.

      98 98 Burslem, G.M. and Crews, C.M. (2020). Proteolysis‐targeting chimeras as therapeutics and tools for biological discovery. Cell 181: 1. https://doi.org/10.1016/j.cell.2019.11.031.

      99 99 Ursell, L.K., Metcalf, J.L., Parfrey, L.W., and Knight, R. (2012). Defining the human microbiome. Nutrition Reviews 70 (Suppl 1): S38–S44. https://doi.org/10.1111/j.1753-4887.2012.00493.x.

      100 100 Eloe‐Fadrosh, E.A. and Rasko, D.A. (2013). The human microbiome: from symbiosis to pathogenesis. Annual Review of Medicine 64: 145–163. https://doi.org/10.1146/annurev-med-010312-133513.

      101 101 Russell, W.M.S. and Burch, R.L. (1959). The Principles of Humane Experimental Technique. London. ISBN 0900767782 [1]: Methuen.

      102 102 (i) NC3Rs https://www.nc3rs.org.uk/. (ii) European Union: Directive 2010/63/EU. https://eur-lex.europa.eu/legal-content/EN/TXT/?uri=celex%3A32010L0063 (accessed 1 February 2020).

      103 103 Wenner Moyer, M. (2011). Organs‐on‐a‐chip for faster drug development. Scientific American. https://www.scientificamerican.com/article/organs-on-a-chip/ (accessed 1 February 2020).

      104 104 Voigtländer, B. (2015). Scanning Probe Microscopy. NanoScience and Technology. London, UK: Springer‐Verlag. https://doi.org/10.1007/978-3-662-45240-0.

      105 105 Milne, J.L., Borgnia, M.J., Bartesaghi, A. et al. (2012). Cryo‐electron microscopy–a primer for the non‐microscopist. The FEBS Journal 280 (1): 28–45. https://doi.org/10.1111/febs.12078.

      106 106 Gao, L., Zhao, H., Li, T. et al. (2018).

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