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Jans, D. C.

Publications and source records attributed to Jans, D. C..

2 recordsLinked to original sources

Three-dimensional multi-target super-resolution microscopy of cells using Metal-Induced Energy Transfer and DNA-PAINT

AbsrtactAchieving nanometer precision in 3D remains a major challenge in super-resolution microscopy. DNA-PAINT offers excellent lateral resolution and versatile multiplexing, but its axial localization precision is typically 3-5 times poorer, limiting quantitative 3D imaging. Here, we present MIET-PAINT, which combines DNA-PAINT with Metal-Induced Energy Transfer (MIET) to overcome this limitation. We implement MIET-PAINT on both wide-field fluorescence lifetime and confocal TCSPC platforms. Wide-field MIET-PAINT enables robust, multiplexed imaging of focal adhesion proteins and actin in fixed cells. To address the lateral resolution limits of lifetime cameras, we further developed confocal MIET-PAINT, which leverages optical background rejection and high-efficiency SPAD detection. This modality achieves [~]12 nm lateral precision and resolves the 3D architecture of microtubules, vimentin, and actin with high fidelity. MIET-PAINT thus unites nanometer-scale axial accuracy with the multiplexing versatility of DNA-PAINT, establishing a powerful tool for quantitative 3D cell biology.

biophysics↗

Endogenous BAX and BAK form mosaic rings of variable size and composition on apoptotic mitochondria

One hallmark of apoptosis is the oligomerization of BAX and BAK to form a pore in the mitochondrial outer membrane, which mediates the release of pro-apoptotic intermembrane space proteins into the cytosol. Cells overexpressing BAX or BAK fusion proteins are a powerful model system to study the dynamics and localization of these proteins in cells. However, it is unclear whether overexpressed BAX and BAK form the same ultrastructural assemblies following the same temporal hierarchy as endogenously expressed proteins. Combining live- and fixed-cell STED super-resolution microscopy, we show that overexpression of BAK results in novel BAK structures, which are virtually absent in non-overexpressing apoptotic cells. We further demonstrate that in wildtype cells, BAK is recruited to apoptotic pores before BAX. Both proteins together form unordered, mosaic rings on apoptotic mitochondria in immortalized cell culture models as well as in human primary cells. In BAX- or BAK-single-knockout cells, the remaining protein is able to form rings independently. The heterogeneous nature of these rings corroborates the toroidal apoptotic pore model.

cell biology↗