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Fernández, A.

Publications and source records attributed to Fernández, A..

2 recordsLinked to original sources

Lipid-mediated dimerization of membrane-anchored c-Src is driven by a cluster of lysine residues in the N-terminal SH4 domain.

The membrane-anchored c-Src tyrosine kinase mediates signaling from a wide range of cell surface receptors controlling cell growth, adhesion, and survival. c-Src deregulation is associated with cancer. Dimerization appears to be a novel layer of regulation through a yet unclear mechanism. Binding of c-Src tyrosine kinase to the plasma membrane is mediated by the myristoylated and strongly positively charged N-terminal SH4 domain. Although activation of c-Src is known to require phosphorylation by a second c-Src molecule, electrostatic repulsion between the charged residues was considered to prevent dimerization. Here we show that a cluster of positively charged lysine residues in c-Src SH4 domain not only does not prevent dimerization but, in fact, enhances it through a lipid-mediated process. Dimerization not only depends on the number of positive charges but also on their position and the nature of the charged residues. Replacement of lysine by arginine increases dimerization in vitro and in vivo and, in HEK293T cells, causes a two-fold increase in tyrosine phosphorylation. Lipid mediated protein-protein interactions induced by clusters of basic residues may represent a general mechanism for modulating cell signaling, consistent with the abundance of positively charged residues in the juxta membrane region of many signaling proteins.

biophysics↗

Evolution of CRISPR-associated Endonucleases as Inferred from Resurrected Proteins

Clustered regularly interspaced short palindromic repeats (CRISPR)-associated Cas9 protein is an effector that plays a major role in a prokaryotic adaptive immune system, by which invading DNA can be targeted and cut for inactivation. The Cas9 endonuclease is directed to target sites by a guide RNA (gRNA) where Cas9 can recognize specific sequences (PAMs) in foreign DNA, which then serve as an anchoring point for cleavage of the adjacent RNA-matching DNA region. Although the CRISPR-Cas9 system has been widely studied and repurposed for diverse applications (notably, genome editing), its origin and evolution remain to be elucidated. Here, we investigate the evolution of Cas9 from resurrected ancient nucleases (anCas) in extinct firmicutes species as old as 2600 myr to the current day. Surprisingly, we demonstrate that these ancient forms were much more flexible in their PAM and gRNA scaffold requirements compared to modern day Cas9 enzymes. In addition, anCas portrays a gradual paleoenzymatic adaptation from nickase to double-strand break activity, suggesting a mechanism by which ancient CRISPR systems could propagate when harboring Cas enzymes with minimal PAMs. The oldest anCas also exhibit high levels of activity with ssDNA and ssRNA targets, resembling Cas nucleases in related system types. Finally, we illustrate editing activity of the anCas enzymes in human cells. The prediction and characterization of anCas proteins uncovers an unexpected evolutionary trajectory leading to ancient enzymes with extraordinary properties.

evolutionary biology↗