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Biology subjects

Dembska, J.

Publications and source records attributed to Dembska, J..

3 recordsLinked to original sources

Fluorescent timer-based screening of protein turnover modulators in human neurons

Disturbances in protein homeostasis are a defining feature of aging and neurodegenerative diseases. However, current proteomics approaches do not enable screening-scale pharmacological interrogation of protein turnover in post-mitotic human neurons. Here we establish a Mammalian Cell-optimized Fluorescent Timer (MCFT)-based live-cell imaging platform to quantify global protein synthesis and degradation rates in human embryonic stem cell-derived neurons at screening scale. Among 5,897 tested compounds, 199 increased protein synthesis and degradation rates, and three selected compounds upregulated translation-associated genes in human neurons. We then tested their ability to suppress the accumulation of pathogenic -synuclein aggregates in models of Lewy body-like pathology. All three compounds induced efficient clearance of -synuclein aggregates in mouse primary neurons, and one compound demonstrated similar efficacy in human dopaminergic neurons. This platform provides a broadly applicable strategy for identifying biomedically-relevant compounds that enhance protein turnover across pluripotent stem cell-derived cellular models.

cell biology↗

An integrated synthetic biology and robotics approach for neutralising landmines in post-war communities

Unexploded ordnances (UX.Os) and landmines endanger lives and hinder the economic progress of communities living in post-conflict zones. Currently, the primary method for clearing UX.Os relies on metal detection and manual removal of UX.Os - an expensive, time-consuming, and hazardous process. This study, derived from the 2024 EPFL iGEM project SYNPLODE, presents a new approach that integrates synthetic biology and aerial drone robotics, proposing a novel, end-to-end, safe, and efficient solution to address UX.Os. Starting from bacteria engineered to detect and degrade 2,4,6-trinitrotoluene (TNT), a common explosive in landmines, our solution is designed for three main tasks: detecting TNT and RDX, breaking these compounds down into non-explosive byproducts, and confirming explosive neutralisation. To deploy this solution safely in UXO-contaminated areas, we designed, built, and tested an aerial drone capable of spraying explosive-degrading bacteria. Combining synthetic biology, robotics, mathematical modelling, and affected community engagement, our solution aims to improve UXO and landmine clearance by offering a scalable and cost-effective approach for deactivating UX.Os without risking human lives.

synthetic biology↗

Coordination of protein synthesis and decay in mammalian cells

The maintenance of cellular homeostasis requires tight regulation of proteome concentration and composition. To achieve this, protein production and elimination must be robustly coordinated. However, the mechanistic basis of this coordination remains unclear. Here, we address this question using quantitative live cell imaging, computational modeling, transcriptomics, and proteomics approaches. We found that protein decay rates systematically adapt to global alterations of protein synthesis rates. This adaptation is driven by a core passive mechanism supplemented by facultative changes in mTOR signaling. Passive adaptation hinges on changes in the production rate of the machinery governing protein decay and allows partial maintenance of the cellular proteome. Sustained changes in mTOR signaling provide an additional layer of adaptation unique to naive pluripotent stem cells, allowing near-perfect maintenance of proteome composition. Our work unravels the mechanisms protecting the integrity of mammalian proteomes upon variations in protein synthesis rates.

cell biology↗