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Giannotti, M.

Publications and source records attributed to Giannotti, M..

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Lipid-driven SRC self-association modulates its transformation capacity

Src tyrosine kinase is anchored to the plasma membrane, however, the contribution of membrane lipids to its regulation remains elusive. Here we report Src self-association through a lysine cluster in the Src SH4 region mediated by lipids in human cells and in vitro. Mutation of the lysine cluster to arginine modulates Src self-association and its transforming function in human cells. This mechanism may also apply to other membrane-associated signaling proteins that have similar lysine clusters in their unstructured regions. Lipid-anchored micron-sized condensates of full length Src are formed in supported homogeneous lipid bilayers (i.e independently of lipid phase separation). Condensates are also formed by the purified Src N-terminal regulatory element, including the myristoylated SH4 domain, the intrinsically disordered Unique domain and the globular SH3 domain. The isolated SH4 domain forms small protein-lipid clusters, but not micron-size condensates. Our findings reveal lipid-mediated kinase self-association as an additional mechanism for Src regulation. Significance StatementCondensate formation, often associated to intrinsically disordered protein regions is emerging as a widespread regulatory mechanism. Protein phase separation has been linked to the regulation of kinases recruited to condensates formed by other proteins. Here we show i) that the N-terminal disordered region of Src kinase drives lipid-mediated self-association to form condensates on the cell surface, ii) a lysine cluster in the N-terminal SH4 domain is essential for this process, iii) mutation of these lysine residues to arginine increases self-association in vitro and in vivo, and iv) self-association of Src results in enhanced transforming capacity in human cells. Similar lysine clusters are present in juxtamembrane regions suggest a general mechanism for modulating protein-protein interactions by lipids. The article shows the formation of condensates by Src on supported lipid membranes mediated by lipids, dependent of a conserved lysine cluster in its SH4 domain, and modulating Srcs transforming capacity. O_LIFull length Src and truncated variants including its myristoylated SH4 domain self-associate on the surface of homogeneous lipid bilayers. C_LIO_LIThe interaction of a lysine cluster in SH4 domain with lipids modulates Src self-association C_LIO_LIAtomic force microscopy shows the formation of micron-size condensates and smaller clusters on the surface of supported lipid bilayers, depending on the lipid composition or the presence of mutations in the lysine cluster C_LIO_LISrc self-association is confirmed in human cells and the Src transforming function of Src in human cells is modulated by lipid-mediated self-association C_LI

molecular biology↗