This article has been reviewed according to Science X's editorial process and policies. Editors have highlighted the following attributes while ensuring the content's credibility: Nanobodies are extremely small antibody fragments that bind to specific molecules. When nanobodies are labeled with dyes, they can be used as probes to enhance super-resolution microscopy.
However, conventional blinking dyes often perform poorly when attached to nanobodies, limiting their practical advantages. An international research team led by the University of Göttingen and the University Medical Center Göttingen (UMG) has now shown that self-blinking dyes—which can switch between bright and dark states on their own—bypass this limitation. The new approach combines the high labeling accuracy of nanobodies with the robust and straightforward imaging enabled by self-blinking dyes—simplifying experiments, improving reproducibility and increasing the throughput of super-resolution microscopy.
The results are published in Nano Letters. A self-blinking dye is a fluorescent molecule that switches spontaneously between a bright "on" state and a dark "off" state. This blinking is essential for super-resolution microscopy because it allows individual fluorescent molecules to be detected one after another and localized very precisely.
Conventional dyes can also blink, but they usually need specially prepared chemical buffers and carefully controlled imaging conditions. In addition, one of the most widely used dyes performs poorly when attached to nanobodies, resulting in poor image quality. "Nanobodies offer excellent precision, but their use in super-resolution microscopy has been limited by the poor performance of conventional blinking dyes," says Dr.
Felipe Opazo at the Center for Biostructural Imaging of Neurodegeneration (BIN) at UMG. "Combining nanobodies with self-blinking dyes preserves high labeling accuracy while restoring robust blinking, making super-resolution imaging simpler, more reproducible and easier to use." The team demonstrated that the approach works across different super-resolution microscopy techniques, including some of the most precise fluorescence microscopy techniques currently available. The successful application in the MINFLUX microscope highlights the potential of the method—from conventional super-resolution microscopy to cutting-edge nanoscopy.
"Our goal is to make super-resolution microscopy easier to use beyond specialized microscopy labs," says Dr. Roman Tsukanov, senior postdoctoral researcher at Göttingen University. "Self-blinking dyes make the imaging workflow much more straightforward and lower the barrier to entry into the super-resolution microscopy field for researchers who are not microscopy experts—including biologists, chemists, clinicians and those in other fields of research." Samrat Basak et al, Self-Blinking Dye Restores Efficient Use of Nanobodies in Single-Molecule Localization Microscopy, Nano Letters (2026).
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