Search bioRxiv⌕ Search

Biology subjects

Pietrancosta, N.

Publications and source records attributed to Pietrancosta, N..

4 recordsLinked to original sources

Exploring the multi-protein assembly of the enzymes of the de novo purine nucleotide biosynthetic pathway from Pseudomonas aeruginosa

Purine nucleotide biosynthesis is a crucial metabolic pathway responsible that produces building blocks essential for a plethora of cellular processes. In bacteria, the de novo purine nucleotide biosynthetic pathway (DNPNB) involves fifteen chemical steps catalysed by fourteen different enzymes. While the mammalian orthologues have been extensively shown to interact and form a metabolon named "purinosome", the possible existence of a prokaryotic equivalent was only recently revealed for the case of Escherichia coli. In this study, we explored the potential conservation of a bacterial purinosome-like complex in Pseudomonas aeruginosa, an opportunistic pathogen known for its high antibiotic resistance. Using a bacterial two-hybrid system, we mapped protein-protein interactions among all tested DNPNB enzymes in P. aeruginosa and revealed a dense interaction network. An in-silico protein-protein docking approach on three core enzymes allowed the structural reconstitution of a complex composed of PurK, PurE and PurC with a 4:8:8 stoichiometry, respectively. Interestingly, a tunnel connecting the different active sites has been revealed, showing a metabolon-like property for possible efficient substrate channelling. These findings support a conserved regulatory organization of purine biosynthesis in bacteria, providing deeper insights into bacterial metabolism and paving the way for potential antibiotic targets.

biochemistry↗

"Smurf Mice": revolutionising our understanding of age-related and end-of-life animal physiology

Living animals reach their end-of-life through a stereotypic set of fascinating but poorly understood processes. The discovery, first in flies and later in nematodes and zebrafish, of the "Smurf phenotype" is a central tool for picking this complex "lock of biology", that one of ageing. Using the Smurfs, we have shown an evolutionarily conserved end-of-life transition across Drosophilids, nematodes and zebrafish. This tool has been key to identify the discontinuous nature of ageing and predict impending death from natural causes as well as from environmental stresses. This phenotype allowed us to discover that ageing is made up of two successive phases : a first phase where individuals are healthy and have no risk of mortality, but show an age-dependent and increasing risk of entering a second phase, characterized by the so-called hallmarks of ageing and a high risk of death. Here, we test whether these two consecutive phases of ageing separated by the Smurf transition are a conserved feature of ageing in the mammals using Mus musculus as a model. We performed a longitudinal longevity study using both males and females from two different mouse genetic backgrounds and by integrating physiological, metabolic and molecular measurements with the life history of approximately 150 mice. We show the existence of a phenotypic signature typical of the last phase of life, observable at any chronological age. Validating the two-phase ageing model in a mammalian organism allows better characterized the high risk of imminent death and would extend its implications to a broader range of species for ageing research.

physiology↗

A tunable and versatile chemogenetic near infrared fluorescent reporter

Near-infrared (NIR) fluorescent reporters provide additional colors for highly multiplexed imaging of cells and organisms, and enable imaging with less toxic light and higher contrast and depth. Here, we present the engineering of nirFAST, a small tunable chemogenetic NIR fluorescent reporter that is brighter than top-performing NIR fluorescent proteins in cultured mammalian cells. nirFAST is a small genetically encoded protein of 14 kDa that binds and stabilizes the fluorescent state of synthetic, highly cell-permeant, fluorogenic chromophores (so-called fluorogens) that are otherwise dark when free. Engineered to emit NIR light, nirFAST can also emit far-red or red lights through change of chromophore. nirFAST allows the imaging of proteins in live cultured mammalian cells, chicken embryo tissues and zebrafish larvae. Its near infrared fluorescence provides an additional color for high spectral multiplexing. We showed that nirFAST is well-suited for stimulated emission depletion (STED) nanoscopy, allowing the efficient imaging of proteins with subdiffraction resolution in live cells. nirFAST enabled the design of a chemogenetic green-NIR fluorescent ubiquitination-based cell cycle indicator (FUCCI) for the monitoring of the different phases of the cell cycle. Finally, bisection of nirFAST allowed the design of a fluorogenic chemically induced dimerization technology with NIR fluorescence readout, enabling the control and visualization of protein proximity.

cell biology↗

An engineered multifunctional protein tag for advanced fluorescence imaging

Biocompatible fluorescent reporters with spectral properties spanning the entire visible spectrum are indispensable tools for imaging the biochemistry of living cells and organisms in real time. Here, we present the engineering of a fluorescent chemogenetic reporter with tunable optical and spectral properties. A collection of live-cell compatible fluorogenic chromophores with various electronic properties enables to generate bimolecular fluorescent assemblies that cover the visible spectrum from blue to red using a single protein tag engineered and optimized by directed evolution and rational design. We showed that the ability to tune the fluorescence color and properties through simple molecular modulation provides an unprecedent experimental versatility for imaging proteins in live cells, including delicate cultured hippocampal neurons, and in multicellular organisms. The ability to tune the spectral properties and fluorescence performance enables to match the spectral specifications and requirements of the most advanced imaging techniques, and allowed us to achieve efficient stimulated emission depletion (STED) nanoscopy of fusion proteins in live cells and live primary cultured neurons.

molecular biology↗