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Alvarez-Mena, A.

Publications and source records attributed to Alvarez-Mena, A..

3 recordsLinked to original sources

A bacterial lipid triggers membrane mechanosensing immunity in Arabidopsis

The plant immune system engages cell-surface receptors that detect microbe-associated molecular patterns to initiate pattern-triggered immunity (PTI), and intracellular receptors that sense microbe-secreted effectors to activate effector-triggered immunity (ETI). Whether additional modes of microbial detection exist remains unclear. Here, we define membrane mechanosensing immunity (MSI), a third layer of immune signaling. A bacterial lipid, the main diffusible signal factor (DSF) from Xanthomonas campestris pv. campestris, acts as a membrane-active molecule that alters plasma membrane biophysical properties, activates Mechanosensitive Channel of Small Conductance (MscS)-like (MSL)-dependent immune signaling, and triggers a broad transcriptional reprogramming that overlaps with PTI and ETI. MSI modulates PTI signaling and requires both PTI and ETI components for effective disease resistance. These findings establish the sensing of metabolite-induced membrane perturbations as a mechanism of microbial detection.

plant biology↗

ATP-driven membrane binding and polymerization of bacterial actin MreB promotes local membrane fluidization

The bacterial actin homologue MreB plays a key role in rod cell shape determination. We recently showed that MreB from the Gram-positive bacterium Geobacillus stearothermophilus (MreBGs) polymerizes into straight pairs of protofilaments in the presence of both ATP and a lipid surface. Membrane interaction is thought to be mediated by electrostatic interactions with anionic lipids, with final anchoring relying on two spatially close hydrophobic motifs that protrude from the MreBGs monomers, forming a putative membrane-insertion domain. Here, we determined the binding properties of ATP and ADP to MreBGs using fluorescence anisotropy, and monitored ATP-mediated binding and polymer formation on lipid bilayers using liposome binding assays and AFM, respectively. Finally, we used solid-state NMR to visualize the interaction between the membrane and MreBGs at the atomic level. Our findings reveal that MreBGs has similar affinity for both ATP and ADP, unlike eukaryotic actin. We also show that monomeric MreBGs establishes peripheral contacts with the membrane likely through electrostatic interactions, while ATP-induced MreBGs filaments insert into the lipid bilayer without interfering with the membrane lamellar phase and have a significant local fluidifying effect. Statement of significanceBacteria rely on the actin-like protein MreB to determine and maintain their cell shape, like actin does in eukaryotic cells. To perform its tightly regulated morphogenetic function, MreB forms membrane-associated nanofilaments in vivo, which control the cell wall biosynthetic machinery. We recently demonstrated that, in vitro, MreB from the Gram-positive bacterium Geobacillus stearothermophilus requires both ATP and lipids to polymerize into pairs of filaments. Here, we show that in the presence of ATP, Geobacillus MreB forms membrane-bound filaments that directly impact local membrane fluidity, which could translate into a regulatory effect on cell wall synthetic enzymes. We further reveal that MreB binds both ATP and ADP with similar affinity, unlike eukaryotic actin, which preferentially binds ATP over ADP, and speculate that this could be a mechanism modulating the pool of polymerization-competent MreB in bacteria.

biophysics↗

CapP mediates the structural formation of biofilm-specific pili in the opportunistic human pathogen Bacillus cereus

Polymeric proteinaceous filaments are structural scaffolds that diversify the functionality of the bacterial extracellular matrix. Here, we report a previously uncharacterized bacterial factor called bc1280 that is exclusive to B. cereus group and indispensable for the establishment of a biofilm lifestyle. We propose that BC1280 is an essential chaperone for the assembly of the filamentous platform that tightly controls the polymerization of heteropili containing CalY and TasA as major subunits in a concentration-dependent manner. Additionally, BC1280 modulates the expression of EPS via an uncharacterized pathway that is activated by a protease and an ECF-type sigma factor. The pilus biogenesis system described in this work highlights the complexity of extracellular matrix assembly in B. cereus and introduces a singular three-part structuration mechanism during biofilm formation and maturation. Graphical abstractDuring the process of biofilm formation in B. cereus, TasA, CapP, and CalY serve as the main components, in addition to other factors, ensuring that the extracellular matrix correctly assembles. The three proteins are produced and processed by the signal peptidase SipW and subsequently secreted through the Sec pathway in an unfolded conformation. At early biofilm formation stages, CapP is initially present at low levels, associates with the cell wall and is secreted into the ECM where it interacts with unfolded subunits of CalY, facilitating CalY folding and initiating fibril growth. CalY serves as a nucleator for incorporating TasA subunits into the pilus, forming TasA-CalY heteropolymers. Once the ECM scaffold is established, CapP levels increase, forming stable complexes with CalY that prevent its folding and arrest filament growth. O_FIG O_LINKSMALLFIG WIDTH=200 HEIGHT=142 SRC="FIGDIR/small/582368v2_ufig1.gif" ALT="Figure 1"> View larger version (55K): org.highwire.dtl.DTLVardef@df9d9dorg.highwire.dtl.DTLVardef@e4b712org.highwire.dtl.DTLVardef@1af2421org.highwire.dtl.DTLVardef@16d02c7_HPS_FORMAT_FIGEXP M_FIG C_FIG

microbiology↗