bioRxiv Science⌕ Search

Biology subjects

Carreno, S.

Publications and source records attributed to Carreno, S..

5 recordsLinked to original sources

Moesin activation controls bone resorption and tunneling nanotube-dependent osteoclast fusion

Cell-cell fusion is an evolutionarily conserved process that is essential for many functions, including fertilisation and the formation of placenta, muscle and osteoclasts, multinucleated cells that are unique in their ability to resorb bone. The mechanisms of osteoclast multinucleation involve dynamic interactions between the actin cytoskeleton and the plasma membrane that are still poorly characterized. Here, we found that moesin, a cytoskeletal linker protein member of the Ezrin/Radixin/Moesin (ERM) protein family, is activated during osteoclast maturation and plays an instrumental role in both osteoclast fusion and function. In mouse and human osteoclast precursors, moesin inhibition favors their ability to fuse into multinucleated osteoclasts. Accordingly, we demonstrated that moesin depletion decreases membrane-to-cortex attachment and enhances the formation of tunneling nanotubes (TNTs), F-actin-based intercellular bridges that we reveal here to trigger cell-cell fusion. Moesin also controls HIV-1- and inflammation-induced cell fusion. In addition, moesin regulates the formation of the sealing zone, the adhesive structure determining osteoclast bone resorption area, and thus controls bone degradation, via a {beta}3-integrin/RhoA/SLK pathway. Supporting our results, moesin-deficient mice present a reduced density of trabecular bones and increased osteoclast abundance and activity. These findings provide a better understanding of the regulation of cell-cell fusion and osteoclast biology, opening new opportunities to specifically target osteoclast activity in bone disease therapy.

cell biology↗

STRIPAK controls cell-cell communication by promoting cytoneme biogenesis through the membrane-sculpting function of Slik.

Cytonemes are signaling filopodia that facilitate long-range cell-cell communication by forming synapses between cells. Initially discovered in Drosophila for transporting morphogens during embryogenesis, they have since been identified in mammalian cells and recently implicated in carcinogenesis. Yet, despite their importance, the mechanisms controlling cytoneme biogenesis remain elusive. Here, we demonstrate that the Ser/Thr kinase Slik drives remote cell proliferation by promoting cytoneme formation. We discovered that this function depends on the coiled-coil domain of Slik (SlikCCD), which directly sculpts membranes into tubules. Importantly, Slik plays paradoxical roles in cytoneme biogenesis. While its membrane-sculpting activity promotes cytoneme formation, it is counteracted by its kinase activity, which enhances actin association with the plasma membrane via Moesin phosphorylation. In vivo, SlikCCD enhances formation of cytonemes in one epithelial layer of the wing disc to promote cell proliferation in an adjacent layer. Finally, we found that this function relies on the STRIPAK complex, which controls cytoneme formation and governs proliferation at a distance by regulating Slik association with the plasma membrane. Our study unveils the first family of kinases that directly sculpts membranes, a function crucial for cytoneme-mediated control of cell proliferation.

cell biology↗

The membrane-actin linkers ezrin, radixin, and moesin are dispensable for macrophage migration and cortex mechanics.

The cellular actin cortex provides crucial mechanical support and plays critical roles in numerous functions, including cell division and migration. The proteins of the ERM family, ezrin, radixin, and moesin, are central to these processes by linking the plasma membrane to the actin cytoskeleton. To investigate the individual contributions of these three proteins to leukocyte migration, we generated single and triple ERM knock-out macrophages. Surprisingly, we found that even in the absence of ERMs, macrophages can still form the different actin structures promoting cell migration, such as filopodia, lamellipodia, podosomes, and ruffles. Furthermore we discovered that, unlike every other cell type previously investigated, the single or triple knock-out of ERMs does not affect macrophage migration in a large diversity of contexts. Finally, we demonstrated that the loss of ERMs in macrophages does not affect the mechanics of their actin cortex. These findings challenge the notion that ERMs are universally essential for cortex mechanics and cell migration and support the notion that the macrophage cortex may have diverged from that of other cells to allow for their adaptive cortical plasticity.

cell biology↗

The G protein-coupled receptor TBXA2R activates ERMs to promote motility, invasion, and metastasis of triple-negative breast cancer cells.

Cell migration and invasion are critical processes for cancer cell metastasis, relying on the ability of cells to adapt their morphology. Proteins of the ezrin, radixin, and moesin (ERM) family are key regulators of cell morphogenesis and essential determinants of cancer cell metastasis. However, the mechanisms by which ERMs are activated in metastatic cells remain poorly understood. Here, we identify the thromboxane A2 receptor (TBXA2R), a G protein-coupled receptor overexpressed in multiple cancers, as a critical activator of ERMs, enhancing the motility and invasion of triple-negative breast cancer (TNBC) cells. We found that TBXA2R activates ERMs by engaging the Gq/11 and G12/13 subfamilies, the small GTPase RhoA, and its Ser/Thr kinase effectors SLK and LOK. Furthermore, we demonstrate that TBXA2R promotes TNBC cell motility and invasion in vitro and metastatic colonization in vivo, dependent on ERM function. These findings reveal a novel signaling axis by which a member of the largest class of receptors activates key metastatic determinants, thereby controlling various aspects of metastasis. This discovery opens new avenues for developing targeted therapies against cancer metastasis.

cancer biology↗

Interphase microtubule disassembly is a signaling cue that drives cell rounding at mitotic entry.

Reorganization of the cortical actin cytoskeleton at mitotic entry is essential to increase membrane tension for cell rounding1,2. This spherical shape is necessary for the biogenesis and organization of the mitotic spindle2-6. Proteins of the Ezrin, Radixin, Moesin (ERM) family play essential roles in mitotic morphogenesis by linking actomyosin forces to the plasma membrane2,3,7-10. While ERMs drive metaphase cell rounding, the cell-cycle signals that prompt their conformational activation in mitosis are unknown11. We screened a library of small molecules using novel ERM biosensors12 and we unexpectedly found that drugs that disassemble microtubules promote ERM activation. Remarkably, cells disassemble their interphase microtubules while entering mitosis13. We further discovered that this disassembly of microtubules acts as a cell-cycle signal that directs ERM activation and metaphase cell rounding. We show that GEF-H1, a Rho-GEF inhibited by microtubule binding, acts downstream of microtubule disassembly to activate ERMs via RhoA and its kinase effector SLK. In addition, we demonstrate that GEF-H1 and Ect2, another Rho-GEF responsible for the generation of mitotic actomyosin forces6,14, act together to drive metaphase ERM activation and cell rounding. In summary, we report microtubule disassembly as a cell cycle signal that triggers a signaling network ensuring that actomyosin forces are efficiently integrated at the plasma membrane to promote cell rounding at mitotic entry.

cell biology↗