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Biology subjects

Caire, R.

Publications and source records attributed to Caire, R..

2 recordsLinked to original sources

Microtubule architecture connects AMOT stability to YAP/TAZmechanotransduction and Hippo signaling

Cellular mechanotransduction is a fundamental informational system by which cells read the structural features of their environment to control their own form and function. The YAP/TAZ transcriptional regulators are universal effectors of physical signals. Yet, the identity of proteins and subcellular structures serving as mechano-rheostats remains elusive. Here we demonstrate that perinuclear centrosome and microtubules architecture act functionally downstream of F-actin as cornerstones of cellular mechanotransduction. The mechanism revolves around the stability of AMOT proteins, that act as cytoplasmic inhibitory sinks for YAP/TAZ. Being degraded in mechano-activated cells and stabilized in mechanically-inhibited cells, AMOT serves as primary mechanical rheostat. In mechanically inhibited cells, microtubules form a cage-like network surrounding the nucleus, but, in mechanically activated cells, switch their architecture with formation of the centrosome from which microtubules sprout toward the cell periphery. In these conditions, AMOT proteins bound to the Dynein/Dynactin complex are subject to fast retrograde transport through the microtubular aster toward the pericentrosomal proteasome for quantitative and timely degradation. Restoring centrosomal condensation in mechanically inhibited cells by NLP1 overexpression is sufficient to restore mechanosignaling and YAP activation. AMOT proteins serves as universal integrator of distinct physical inputs from the ECM and the cytoskeleton, and their ablation renders cells invariably mechano-insensitive. Our findings also provide a unifying model that mechanistically merges mechanosignaling with the Hippo cascade. The current model by which YAP/TAZ are regulated by Hippo kinases is through direct YAP/TAZ phosphorylation. Our data instead show that, at least in the context of mechanotransduction, Hippo signaling inhibits YAP/TAZ largely indirectly, through LATS phosphorylation of AMOT averting it from its degradation route. We further show that Ras/RTK oncogenes hijack the AMOT degradation route to promote YAP/TAZ-mediated tumorigenesis. The findings imply the AMOT stabilization machinery as novel target for YAP/TAZ therapeutic modulation. In sum, our work reveals a previously unknown hierarchical coordination of distinct cytoskeletal and transport systems orchestrating mechanosignaling at the whole cell level.

cell biology↗

YAP promotes cell-autonomous immune responses to tackle intracellular Staphylococcus aureus in vitro

Transcriptional cofactors YAP/TAZ have recently been found to support autophagy and inflammation, which are part of cell autonomous immunity and are critical in antibacterial defense. Here, we studied the role of YAP against Staphylococcus aureus using CRISPR/Cas9-mutated HEK293 cells and a primary cell-based organoid model. We found that S. aureus infection increases YAP transcriptional activity, which is required to reduce intracellular S. aureus replication. A 770-gene targeted transcriptomic analysis revealed that YAP upregulates genes involved in autophagy/lysosome and inflammation pathways in both infected and uninfected conditions. The YAP/TEAD transcriptional activity promotes autophagic flux and lysosomal acidification, which are important for defense against intracellular S. aureus. Furthermore, the staphylococcal toxin C3 exoenzyme EDIN-B was found effective in preventing YAP-mediated cell-autonomous immune response. This study provides new insights on the anti-S. aureus activity of YAP, which could be conserved for defense against other intracellular bacteria. GRAPHICAL ABSTRACT O_FIG O_LINKSMALLFIG WIDTH=200 HEIGHT=177 SRC="FIGDIR/small/492111v1_ufig1.gif" ALT="Figure 1"> View larger version (47K): org.highwire.dtl.DTLVardef@6158f1org.highwire.dtl.DTLVardef@1164aedorg.highwire.dtl.DTLVardef@911558org.highwire.dtl.DTLVardef@11044b2_HPS_FORMAT_FIGEXP M_FIG C_FIG

cell biology↗