bioRxiv Science⌕ Search

Biology subjects

Leverrier, P.

Publications and source records attributed to Leverrier, P..

2 recordsLinked to original sources

Stress-induced Membrane Insertion at the β-Barrel Assembly Machinery Complex Regulates BepA Metalloprotease Activity

Proteases must be tightly regulated to prevent uncontrolled degradation, yet the mechanisms ensuring such control remain poorly understood. Members of the widespread M48 metalloprotease family are kept inactive by an autoinhibitory plug that blocks catalytic water activation, but how this plug is released was unknown. Here, using genetic, biochemical and cryo-EM approaches, we discover the activation mechanism of BepA, a quality-control protease that preserves outer membrane integrity by surveilling the {beta}-barrel assembly machinery (BAM) in Gram-negative bacteria. Our cryo-EM analysis of BepA engaged with a stalled BAM-substrate assembly complex revealed that a flexible, unstructured 6-lid covering the active site in the latent protein functions as a molecular harpoon, inserting into the outer membrane when a substrate stalls at BAM and thereby docking BepA at the complex. This membrane anchoring promotes displacement of the autoinhibitory plug and unlocks protease activity precisely where and when it is needed. Thus, a dual enzyme activation mechanism is coupled to membrane association under stress, ensuring that BepA remains inactive until properly localized. Our findings reveal how membranes themselves can license protease activation, a principle that may extend beyond M48 metalloproteases.

microbiology↗

A genetically-encoded cysteine biosensor to monitor cysteine dynamics across life domains

Cysteine is a central metabolite in cellular redox regulation and iron-sulfur cluster assembly. Despite its critical role, monitoring cysteine dynamics in living systems has remained a challenge due to the lack of tools that avoid cysteine oxidation and/or do not destroy the cell in the process. Here, we report the development of Cystector (from Cysteine Detector), a genetically encoded, ratiometric green fluorescent biosensor for cysteine that exhibits an exceptional selectivity, minimal pH sensitivity in the physiological range, and a dynamic range of up to 4500%. Furthermore, the sensor retains functionality in the presence of physiological glutathione concentrations. We demonstrate the live-cell functionality of Cystector by monitoring intracellular and extracellular cysteine dynamics in different organisms. In E. coli, we show how cystine reduction in Escherichia coli is dependent on glutathione and glutaredoxins, and that the reduced cysteine is then exported into the extracellular environment. In yeast, we demonstrate how energy metabolism and oxidative stress determine cysteine homeostasis. In mammalian cells, we show how Cystector effectively monitors cysteine depletion in response to treatments such as H2O2, erastin2, and glutamate. Finally, we demonstrate, via a mitochondrially targeted variant, that Cystector can be used to monitor subcellular cysteine dynamics. These results together establish Cystector as a robust tool to unravel cysteine metabolism and transport in live cells across life domains.

molecular biology↗