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Optochemokine Tandem for Light-Control of Intracellular Ca<sup>2+</sup>, , , , , , and . PLoS ONE, 11 (10): e0165344-- (October 2016)Whole-cell imaging of plasma membrane receptors by 3D lattice light-sheet dSTORM, , , , , , and . Nature Communications, 11 (1): 887-- (2020)Superresolution Microscopy of Sphingolipids, and . page 303--311. Springer US, New York, NY, (2021)CD56 Is a Pathogen Recognition Receptor on Human Natural Killer Cells, , , , , , , , , and 3 other author(s). Scientific Reports, 7 (1): 6138-- (2017)Nanoscale imaging of bacterial infections by sphingolipid expansion microscopy, , , , , , , , and . Nature Communications, 11 (1): 6173-- (2020)Azidosphinganine enables metabolic labeling and detection of sphingolipid de novo synthesis, , , , , , , and . Org. Biomol. Chem., 19 (10): 2203--2212 (2021)Characterization of Plasma Membrane Ceramides by Super-Resolution Microscopy, , , , , , and . Angewandte Chemie, (2017)Super-Resolution Microscopy Reveals Local Accumulation of Plasma Membrane Gangliosides at Neisseria meningitidis Invasion Sites, , , , and . Frontiers in Cell and Developmental Biology, (2019)Superagonistic CD28 stimulation induces IFN-γ release from mouse T helper 1 cells in vitro and in vivo, , , , , , and . European Journal of Immunology, 51 (3): 738--741 (March 2021)Click-correlative light and electron microscopy (click-AT-CLEM) for imaging and tracking azido-functionalized sphingolipids in bacteria, , , , , , , , , and 1 other author(s). Scientific Reports, 11 (1): 4300-- (2021)