Search results

    Filter results

  • Full text

  • Document type

  • Publication year

  • Organisation

Results: 6,071
Number of items: 6,071
  • Open Access
    Slamanig, S. A. (2026). Development of an intranasal SARS-CoV-2 vaccine: Implementing the Newcastle disease virus vector platform. [Thesis, fully internal, Universiteit van Amsterdam].
  • Open Access
    Chen, L. (2026). Molecular dynamics guided analysis of Bacillus subtilis spore germination mechanisms. [Thesis, fully internal, Universiteit van Amsterdam].
  • Open Access
    Zocca, P. (2026). Tangled in transcription: The web of transcription factors regulating tomato type VI glandular trichome development and specialized metabolsim. [Thesis, fully internal, Universiteit van Amsterdam].
  • Open Access
    Denkers, L.-AM. (2026). Insight on the inside: Phloem-based whitefly resistance in tomato. [Thesis, fully internal, Universiteit van Amsterdam].
  • Open Access
    Lee, K. (2026). Toward biologically plausible predictive coding: From spiking neurons to cortical microcircuits and cortico-subcortical loops. [Thesis, fully internal, Universiteit van Amsterdam].
  • Popowski, J., Warma, L., Abarca Cifuentes, A., Bleeker, P., & Jalaal, M. (2025, June 6). Dataset: Glandular trichome rupture in tomato plants is an ultra-fast & sensitive defense mechanism against insects [Data set]. Zenodo. https://doi.org/10.5281/zenodo.15608443
  • Kramer, G. (2025). MassIVE MSV000099169 - Capturing the RNA-binding proteome from plants using orthogonal organic phase separationSummary RNA-binding proteins (RBPs) regulate many processes related to RNA biogenesis, localization, half-life and function. Here, we present a protocol for the en masse isolation of RBPs cross-linked to RNA and provide a strategy for proteomics analysis. We describe the steps for in vivo UV-crosslinking of RNA-protein complexes, tissue lysis, fractionation and purification of crosslinked RNA-protein adducts using organic solvents. Although the protocol was developed for Nicotiana benthamiana leaves, it can be optimized for use in different plants and tissues. [Data set]. MassIVE. https://doi.org/10.25345/c5kk94r4h
  • Open Access
    Türksoy, G. M., Berka, M., Wippel, K., Koprivova, A., Carron, R. A., Rüger, L., Černý, M., Andersen, T. G., & Kopriva, S. (2025). Bacterial community-emitted volatiles regulate Arabidopsis growth and root architecture in a distinct manner of those from individual strains. Plant communications, 6(6), Article 101351. https://doi.org/10.1016/j.xplc.2025.101351
  • Open Access
    Miguel, A., Zietek, M., Shi, H., Sueki, A., Corona, F., Maier, L., Verheul, J., Blaauwen, T. D., Van Valen, D., Typas, A., & Huang, K. C. (2025). Modulation of bacterial cell size and growth rate via activation of a cell envelope stress response. MBio, 16(11). https://doi.org/10.1128/mbio.02281-25
  • Open Access
    Araragi, N., Petermann, M., Suzuki, M., Larkum, M., Mosienko, V., Bader, M., Alenina, N., & Klempin, F. (2025). Acute Optogenetic Stimulation of Serotonin Neurons Reduces Cell Proliferation in the Dentate Gyrus of Mice. ACS Chemical Neuroscience, 16(5), 781-789. https://doi.org/10.1021/acschemneuro.4c00771
Page 2 of 608