bioRxiv Science⌕ Search

Biology subjects

Royes, J.

Publications and source records attributed to Royes, J..

2 recordsLinked to original sources

F1F0-ATP-synthase subunit b head-to-head interactions shape intracellular membranes in Escherichia coli

1Intracellular membrane (ICM) compartments in bacteria remain poorly understood. In Escherichia coli, ICMs form upon the overproduction of certain membrane proteins. Here, we investigate at the molecular level how overproduction of subunit b of the F1Fo-ATP synthase complex shapes ICMs. Through a combination of subunit b deletions, electron microscopy, and biochemical analyses, we demonstrate that ICMs network structuration is mediated by the C-terminal domain of subunit b. High-resolution cryo-electron tomography and molecular dynamics simulations reveal that this domain forms tetrameric assemblies, bridging membranes and maintaining a regular 26 nm spacing. Transcriptomic and proteomic analyses further show that the cell responds to ICMs formation by upregulating energy metabolism genes and the ESCRT-III homolog PspA, while downregulating ribosomal and translational machinery. These results uncover a novel mechanism by which the C-terminal domain of subunit b drives the structuring of intracellular membranes. Additionally, they highlight how E. coli adapts to membrane stress by overexpressing membrane-remodeling proteins, a response that shares similarities with intracellular membrane homeostasis mechanisms in photosynthetic bacteria and unicellular algae.

microbiology↗

Hairpin-Functionalized Gold Nanoparticles as an Adaptable Platform for Detecting MicroRNA Signatures

Early, accurate, and fast diagnosis is essential to ensure positive health outcomes, through effective treatment interventions and disease control, as well as the study of physiological changes related to gene expression. Liquid biopsies and point-of-care (PoC) detection are valuable tools to achieve this goal, allowing the study and monitoring of a patients molecular profile in a timely and simple manner. MicroRNAs (or miRNAs) have been proposed as biomarkers for detection in liquid biopsies, as they are stable in body fluids and their dysregulation is associated with many diseases. In this work, a sensor based on gold nanoparticles (AuNPs) functionalized with oligonucleotides is reported, aiming for the detection of nucleic acids, in particular miRNAs. This sensor is based on the recognition of target sequences by hairpin-shaped oligonucleotide probes, which allows the modulation of the colloidal stability of the AuNPs, producing color changes detectable with the naked eye. The system is used to detect a panel of miRNAs, demonstrating its versatility for the detection of relevant nucleic acid signatures. The sensor detects single miRNAs with good sensitivity and selectivity and, what is more, it can be used to recognize several miRNAs simultaneously at picomolar concentrations. The system was further adapted to a lateral flow assay (LFA) format, producing a visible colored line on lateral flow test strips, and coupled with isothermal amplification to reach femtomolar detection levels. Its properties make it suitable for use in the point-of-care (PoC), contributing to fast and early detection of pathological and physiological molecular profiles.

molecular biology↗