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Arrestin-1 engineering facilitates complex stabilization with native rhodopsin
Haider, R. S., Wilhelm, F., Rizk, A., Mutt, E., Deupi, X., Peterhans, C., … Ostermaier, M. K. (2019). Arrestin-1 engineering facilitates complex stabilization with native rhodopsin. Scientific Reports, 9(1), 439 (13 pp.). https://doi.org/10.1038/s41598-018-36881-4
Regulation of VEGFR2 trafficking and signaling by Rab GTPase-activating proteins
Xie, Y., Mansouri, M., Rizk, A., & Berger, P. (2019). Regulation of VEGFR2 trafficking and signaling by Rab GTPase-activating proteins. Scientific Reports, 9(1), 13342 (12 pp.). https://doi.org/10.1038/s41598-019-49646-4
Baculovirus for gene delivery to mammalian cells: past, present and future
Mansouri, M., & Berger, P. (2018). Baculovirus for gene delivery to mammalian cells: past, present and future. Plasmid, 98, 1-7. https://doi.org/10.1016/j.plasmid.2018.05.002
Multigene delivery in mammalian cells: recent advances and applications
Mansouri, M., & Berger, P. (2018). Multigene delivery in mammalian cells: recent advances and applications. Biotechnology Advances, 36(4), 871-879. https://doi.org/10.1016/j.biotechadv.2018.01.012
Baculovirus-based genome editing in primary cells
Mansouri, M., Ehsaei, Z., Taylor, V., & Berger, P. (2017). Baculovirus-based genome editing in primary cells. Plasmid, 90, 5-9. https://doi.org/10.1016/j.plasmid.2017.01.003
Highly efficient baculovirus-mediated multigene delivery in primary cells
Mansouri, M., Bellon-Echeverria, I., Rizk, A., Ehsaei, Z., Cianciolo Cosentino, C., Silva, C. S., … Berger, P. (2016). Highly efficient baculovirus-mediated multigene delivery in primary cells. Nature Communications, 7, 11529 (13 pp.). https://doi.org/10.1038/ncomms11529
Subcellular object quantification with Squassh3C and SquasshAnalyst
Rizk, A., Mansouri, M., Ballmer-Hofer, K., & Berger, P. (2015). Subcellular object quantification with Squassh3C and SquasshAnalyst. BioTechniques, 59(5), 309-311. https://doi.org/10.2144/000114352
NRP1 Presented in trans to the endothelium arrests VEGFR2 endocytosis, preventing angiogenic signaling and tumor initiation
Koch, S., Van Meeteren, L. A., Morin, E., Testini, C., Weström, S., Björkelund, H., … Claesson-Welsh, L. (2014). NRP1 Presented in trans to the endothelium arrests VEGFR2 endocytosis, preventing angiogenic signaling and tumor initiation. Developmental Cell, 28(6), 633-646. https://doi.org/10.1016/j.devcel.2014.02.010
Strategies for multigene expression in eukaryotic cells
Mansouri, M., & Berger, P. (2014). Strategies for multigene expression in eukaryotic cells. Plasmid, 75, 12-17. https://doi.org/10.1016/j.plasmid.2014.07.001
Segmentation and quantification of subcellular structures in fluorescence microscopy images using Squassh
Rizk, A., Paul, G., Incardona, P., Bugarski, M., Mansouri, M., Niemann, A., … Sbalzarini, I. F. (2014). Segmentation and quantification of subcellular structures in fluorescence microscopy images using Squassh. Nature Protocols, 9(3), 586-596. https://doi.org/10.1038/nprot.2014.037
Coordination of VEGF receptor trafficking and signaling by coreceptors
Nakayama, M., & Berger, P. (2013). Coordination of VEGF receptor trafficking and signaling by coreceptors. Experimental Cell Research, 319(9), 1340-1347. https://doi.org/10.1016/j.yexcr.2013.03.008
Neuropilin-1 promotes VEGFR-2 trafficking through Rab11 vesicles thereby specifying signal output
Ballmer-Hofer, K., Andersson, A. E., Ratcliffe, L. E., & Berger, P. (2011). Neuropilin-1 promotes VEGFR-2 trafficking through Rab11 vesicles thereby specifying signal output. Blood, 118(3), 816-826. https://doi.org/10.1182/blood-2011-01-328773
Integration of multiple expression cassettes into mammalian genomes in a single step
Berger, P., Kriz, A., Schmid, K., & Ballmer, K. (2011). Integration of multiple expression cassettes into mammalian genomes in a single step (Protocol exchange). https://doi.org/10.1038/protex.2011.249
The CMT4B disease-causing proteins MTMR2 and MTMR13/SBF2 regulate AKT signalling
Berger, P., Tersar, K., Ballmer-Hofer, K., & Suter, U. (2011). The CMT4B disease-causing proteins MTMR2 and MTMR13/SBF2 regulate AKT signalling. Journal of Cellular and Molecular Medicine, 15(2), 307-315. https://doi.org/10.1111/j.1582-4934.2009.00967.x
A plasmid-based multigene expression system for mammalian cells
Kriz, A., Schmid, K., Baumgartner, N., Ziegler, U., Berger, I., Ballmer-Hofer, K., & Berger, P. (2010). A plasmid-based multigene expression system for mammalian cells. Nature Communications, 1(8), 120. https://doi.org/10.1038/ncomms1120
Automated unrestricted multigene recombineering for multiprotein complex production
Bieniossek, C., Nie, Y., Frey, D., Olieric, N., Schaffitzel, C., Collinson, I., … Berger, I. (2009). Automated unrestricted multigene recombineering for multiprotein complex production. Nature Methods, 6(6), 447-450. https://doi.org/10.1038/nmeth.1326
Identification of the variant Ala335Val of MED25 as responsible for CMT2B2: Molecular data, functional studies of the SH<sub>3</sub> recognition motif and correlation between wild-type MED25 and PMP22 RNA levels in CMT1A animal models
Leal, A., Huehne, K., Bauer, F., Sticht, H., Berger, P., Suter, U., … Rautenstrauss, B. (2009). Identification of the variant Ala335Val of MED25 as responsible for CMT2B2: Molecular data, functional studies of the SH3 recognition motif and correlation between wild-type MED25 and PMP22 RNA levels in CMT1A animal models. Neurogenetics, 10(4), 275-287. https://doi.org/10.1007/s10048-009-0183-3
Anti-Mullerian-hormone-dependent regulation of the brain serine-protease inhibitor neuroserpin
Lebeurrier, N., Launay, S., Macrez, R., Maubert, E., Legros, H., Leclerc, A., … Vivien, D. (2008). Anti-Mullerian-hormone-dependent regulation of the brain serine-protease inhibitor neuroserpin. Journal of Cell Science, 121(20), 3357-3365. https://doi.org/10.1242/jcs.031872
Multiprotein Expression Strategy for Structural Biology of Eukaryotic Complexes
Fitzgerald, D. J., Schaffitzel, C., Berger, P., Wellinger, R., Bieniossek, C., Richmond, T. J., & Berger, I. (2007). Multiprotein Expression Strategy for Structural Biology of Eukaryotic Complexes. Structure, 15(3), 275-279. https://doi.org/10.1016/j.str.2007.01.016
Mtmr13/Sbf2-deficient mice: An animal model for CMT4B2
Tersar, K., Boentert, M., Berger, P., Bonneick, S., Wessig, C., Toyka, K. V., … Suter, U. (2007). Mtmr13/Sbf2-deficient mice: An animal model for CMT4B2. Human Molecular Genetics, 16(24), 2991-3001. https://doi.org/10.1093/hmg/ddm257