Search bioRxiv⌕ Search

Biology subjects

Quarta, N.

Publications and source records attributed to Quarta, N..

2 recordsLinked to original sources

The structured hairpin region of the bacterial ESCRT-III protein IM30 orchestrates stress-induced condensate formation

Biomolecular condensates are well characterized in eukaryotes, but their role in bacteria remains largely elusive. In the cyanobacteriumn Synechocystis sp. PCC 6803, the protein IM30, a member of the ESCRT-III superfamily of membrane remodeling proteins, forms stress-induced puncta across diverse environmental challenges, indicating a general adaptive response. Live-cell imaging reveals that IM30 is uniformly distributed throughout the cytoplasm at low concentrations but assembles into puncta upon exceeding a critical saturation threshold, a hallmark of liquid-liquid phase separation. Crucially, stress triggers puncta formation even below this threshold, suggesting stress lowers the phase-separation barrier. Super-resolution microscopy confirms spherical, condensate-like morphologies, while FRAP demonstrates rapid fluorescence recovery, consistent with with a fluid interior and dynamic exchange between puncta and the cytosol. Cellular IM30 levels exceed the in vitro determined critical concentration, placing the protein in a supersaturated state primed for condensation. Domain mapping identifies the structured 1-3 helical hairpin as the minimal phase separation driver; in contrast, the disordered 4-6 segment alone cannot phase-separate. Phase separation occurs within a physiologically relevant pH range (4.5-6.5), matching the localized acidification of the cyanobacterial cytoplasm at damaged thylakoid membranes. This directly links membrane stress, pH changes, and IM30 recruitment. Collectively, these findings establish IM30 puncta as bona fide, stress-responsive biomolecular condensates that function as rapid stress sensors and effectors, providing a mechanistic framework for phase separation and condensate formation by bacterial ESCRT-III proteins during environmental adaptation.

biochemistry↗

Membrane binding of a cyanobacterial ESCRT-III protein crucially involves the helix α1-3 hairpin conserved in all superfamily members

IM30, the inner membrane-associated protein of 30 kDa (also known as Vipp1) is essential for thylakoid membrane biogenesis and/or maintenance in chloroplasts and cyanobacteria. IM30 and its bacterial homolog PspA belong to the ESCRT-III superfamily, proteins previously thought to be restricted to eukaryotes and archaea. Despite low sequence similarity, IM30 shares key structural and functional features with eukaryotic ESCRT-IIIs, including a conserved 1-2 helical hairpin core and the ability to form oligomeric barrel- or rod assemblies that mediate membrane remodeling. Using IM30 variants, we now show that initial membrane recruitment of IM30 is driven by electrostatic interactions between the positively charged 1-3 helical hairpin and negatively charged lipid surfaces, paralleling the role of charged helical regions in some eukaryotic ESCRT-IIIs. This likely initiates lateral assembly of IM30 into higher-order barrel or rod structures on the membrane. Once assembled, 0 helices within these oligomers engage and stabilize internalized membrane tubules, mirroring membrane interaction strategies of eukaryotic ESCRT-IIIs, which use both N-terminal sequences and charged residues on 1/2. Thus, our findings demonstrate a conserved membrane binding and remodeling mechanism across the ESCRT-III superfamily, underscoring an evolutionary link in membrane dynamics between pro- and eukaryotes. SignificanceIM30, a membrane-associated protein found in cyanobacteria and chloroplasts, along with its bacterial homolog PspA, belongs to the ESCRT-III superfamily. Despite low sequence conservation, these proteins share structural and functional features with eukaryotic ESCRT-III proteins. We show that IM30 binds membranes via a conserved structural motif, followed by lateral assembly into higher-order complexes. This supports a mechanism of membrane remodeling that is conserved in prokaryotic and eukaryotic members of the ESCRT-III superfamily.

biochemistry↗