We report the design, synthesis, and evaluation of fluorescent flipper probes for single-molecule super-resolution imaging of membrane tension in living cells. Reversible switching from bright-state ketones to dark-state hydrates, hemiacetals, and hemithioacetals is demonstrated for twisted and planarized mechanophores in solution and membranes. Broadband femtosecond fluorescence up-conversion spectroscopy evinces ultrafast chalcogen-bonding cascade switching in the excited state in solution. According to fluorescence lifetime imaging microscopy, the new flippers image membrane tension in live cells with record red shifts and photostability. Single-molecule localization microscopy with the new tension probes resolves membranes well below th...
Super-resolution fluorescence imaging based on single-molecule localization microscopy (SMLM) enable...
Cells and organelles are delimited by lipid bilayers in which high deformability is essential to man...
Lateral forces in biological membranes affect a variety of dynamic cellular processes. Recent synthe...
Mechanosensitive flipper probes are attracting interest as fluorescent reporters of membrane order a...
In 2016, Flipper-TR® has been introduced as the first small fluorescent molecule capable of visualiz...
HydroFlippers are introduced as the first fluorescent membrane tension probes that report simultaneo...
In this report, “fluorescent flippers” are introduced to create planarizable push–pull probes with t...
To image the membrane tension in living cells, planarizable push–pull probes have been introduced. T...
Tools to image membrane tension in response to mechanical stimuli are badly needed in mechanobiology...
Tools to image membrane tension in response to mechanical stimuli are badly needed in mechanobiology...
In this report, “fluorescent flippers” are introduced to create planarizable push–pull probes with t...
Imaging membranes in live cells with nanometer-scale resolution promises to reveal ultrastructural d...
Measuring forces inside cells is particularly challenging. With the development of quantitative micr...
Abstract Measuring forces within living cells remains a technical challenge. We developed hydrophobi...
Planarizable push–pull fluorescent probes, also referred to as flipper probes, have been introduced ...
Super-resolution fluorescence imaging based on single-molecule localization microscopy (SMLM) enable...
Cells and organelles are delimited by lipid bilayers in which high deformability is essential to man...
Lateral forces in biological membranes affect a variety of dynamic cellular processes. Recent synthe...
Mechanosensitive flipper probes are attracting interest as fluorescent reporters of membrane order a...
In 2016, Flipper-TR® has been introduced as the first small fluorescent molecule capable of visualiz...
HydroFlippers are introduced as the first fluorescent membrane tension probes that report simultaneo...
In this report, “fluorescent flippers” are introduced to create planarizable push–pull probes with t...
To image the membrane tension in living cells, planarizable push–pull probes have been introduced. T...
Tools to image membrane tension in response to mechanical stimuli are badly needed in mechanobiology...
Tools to image membrane tension in response to mechanical stimuli are badly needed in mechanobiology...
In this report, “fluorescent flippers” are introduced to create planarizable push–pull probes with t...
Imaging membranes in live cells with nanometer-scale resolution promises to reveal ultrastructural d...
Measuring forces inside cells is particularly challenging. With the development of quantitative micr...
Abstract Measuring forces within living cells remains a technical challenge. We developed hydrophobi...
Planarizable push–pull fluorescent probes, also referred to as flipper probes, have been introduced ...
Super-resolution fluorescence imaging based on single-molecule localization microscopy (SMLM) enable...
Cells and organelles are delimited by lipid bilayers in which high deformability is essential to man...
Lateral forces in biological membranes affect a variety of dynamic cellular processes. Recent synthe...