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Prins, M. W. J.

Publications and source records attributed to Prins, M. W. J..

2 recordsLinked to original sources

Simulation-Guided Exploration of PAINT Parameter Space for Accurate Molecular Quantification

Molecular quantification using Point Accumulation for Imaging in Nanoscale Topography (PAINT) depends critically on probe kinetics, imaging conditions, and surface molecular properties. This study presents a simulation-guided framework to systematically explore the PAINT parameter space and identify conditions that enable molecular quantification with high accuracy. Detection thresholds for key PAINT outputs, namely point spread function density, localization cloud density, and binding event density, are defined to ensure [≥] 90% accuracy in density estimates and statistical interpretability of spatial distributions. A neural network surrogate model, trained on Monte Carlo simulations, is used to perform Sobol sensitivity analysis, revealing that probe kinetics and concentration are the dominant contributors to output variability. The model also enables rapid mapping of viable parameter regimes and shows that interpretable quantification of spatial distributions in high-density, clustered systems requires either a priori knowledge of the molecular architecture or improved spatial resolution. Overall, this framework provides quantitative guidance for optimizing PAINT experiments and supports the rational design of non-DNA-based, PAINT-compatible probes, thereby expanding the applicability of PAINT to a broader range of molecular systems.

biophysics↗

Reversible Sandwich-Based Particle Nanoswitch for Continuous Protein Monitoring at Picomolar Concentrations with Automated Calibration

Continuous monitoring of specific proteins is essential for understanding the dynamics of biological systems and for enabling real-time measurement-and-control strategies in bioprocesses. Ideally, sensors for continuous monitoring should be intrinsically reversible and able to perform accurate measurements over long time spans. Here, we present a particle nanoswitch sensor containing two different antibody fragments that bind reversibly to a protein of interest and thus form transient sandwich complexes. The antibody fragments are incorporated into the sensor using site-specific conjugation strategies to achieve optimal antibody orientation. Short-lived sandwich complexes are detected with single-molecule resolution, by tracking the motion of tethered particles. The sensing concept is demonstrated for lactoferrin, an iron-binding and immune-modulating protein. We show continuous measurements of picomolar concentrations with a response time of [~]10 min over periods of 12-15 h. Automated calibration strategies are described that result in a mean absolute relative difference below 10% compared to reference measurements. These results demonstrate how continuous fast protein sensing at picomolar concentrations can be achieved using reversible sandwich-based particle nanoswitches, enabling long-term monitoring of dynamic bioprocesses.

bioengineering↗