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Tascon, I.

Publications and source records attributed to Tascon, I..

2 recordsLinked to original sources

A synthetic CRISPR-Cas nuclease with expanded enzymatic activities

Clustered regularly interspaced short palindromic repeats (CRISPR)-associated endonucleases have revolutionized biotechnology for their potential as programmable genome editors. Yet, most natural nucleases and their variants have limitations. Here, we report a fully synthetic CRISPR-associated (Cas) nuclease (-synCas) designed by Ancestral Sequence Reconstruction (ASR) that displays a set of robust and distinct targeting properties, not found in any other known CRISPR-Cas Class 2 system. We show that -synCas is a PAMless nuclease able to catalyse RNA-guided, specific cleavage of dsDNA, ssDNA and ssRNA. The synthetic enzyme is also capable of sequence-nonspecific degradation of dsDNA, ssDNA and ssRNA following activation by complementary dsDNA, ssDNA and ssRNA targets. Furthermore, -synCas exhibits a robust genome editing activity in human cells and bacteria. Cryo-electron microscopy structures of -synCas ternary and quaternary complexes provide a framework to understand the structural basis for its expanded enzymatic activities. The capability for programmable multimodal targeting of virtually any nucleic acid sequence distinguishes -synCas as a promising new tool to extend current CRISPR-based technologies.

molecular biology↗

Cyclic di-AMP traps proton-coupled K+ transporters of the KUP 1 family in an inward-occluded conformation

Cyclic di-AMP is the only known essential second messenger in bacteria and archaea, regulating different proteins indispensable for numerous physiological processes. In particular, it controls various potassium and osmolyte transporters involved in osmoregulation. In Bacillus subtilis, the K+/H+ symporter KimA of the KUP family is inactivated by c-di-AMP. KimA sustains survival at potassium limitation at low external pH by mediating K+ ions uptake. However, at elevated intracellular K+ concentrations, further K+ accumulation would be toxic. In this study, we reveal the molecular basis of how c-di-AMP binding inhibits KimA. We report cryo-EM structures of KimA with bound c-di-AMP in detergent solution and reconstituted in amphipols. By combining structural data with functional assays and molecular dynamics simulations we reveal how c-di-AMP modulates transport. We show that an intracellular loop in the transmembrane domain interacts with c-di-AMP bound to the adjacent cytosolic domain. This reduces the mobility of transmembrane helices at the cytosolic side of the K+ binding site and therefore traps KimA in an inward-occluded conformation.

biophysics↗