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Ruiz Carrillo, D.

Publications and source records attributed to Ruiz Carrillo, D..

2 recordsLinked to original sources

Linking MSMEG_1353 to lipid metabolism and envelope integrity in Mycolicibacterium smegmatis

Mycobacterium tuberculosis (Mtb) poses a significant global health burden. Rv0647c, an essential Mtb cell wall protein, is a potential drug target. We studied its Mycolicibacterium smegmatis (MSMEG) homologue, MSMEG_1353, using a CRISPRi conditional knockdown. MSMEG_1353 depletion increased cell width and volume, delayed log-phase initiation, slowed aggregation, reduced biofilm formation, and heightened susceptibility to antibiotics and sodium dodecyl sulfate (SDS). AlphaFold, sequence alignment, and UNIPROT analyses suggest MSMEG_1353 functions as a protein kinase, with conserved residues in intermediate high-confidence regions potentially forming an ATP-binding site. Investigating its role in cell envelope biosynthesis, mass spectrometry revealed elevated levels of mycolic acid biosynthesis proteins upon MSMEG_1353 knockdown. RT-qPCR confirmed upregulation of the fabD-acpM-kasA-KasB-accD6 operon, encoding key mycolic acid synthesis enzymes. Notably, a strong negative correlation with MSMEG_0911, the predominant isocitrate lyase, important in the glyoxylate cycle, was observed via both MS and RT-qPCR. Collectively, MSMEG_1353 deficiency compromises cell wall integrity, likely due to altered lipid composition resulting from dysregulated mycolic acid biosynthesis and lipid metabolism. These findings support the development of models explaining MSMEG_1353s involvement in these pathways.

microbiology↗

Sla2 is a core interaction hub for Clathrin Light Chain and the Pan1/End3/Sla1Complex

The interaction network of Sla2, a vital adaptor protein in the endocytic mid-coat, undergoes constant rearrangement incorporating or replacing interacting proteins over time. Sla2 serves as a scaffold linking the membrane to the actin cytoskeleton, with this role modulated by Clathrin Light Chain (CLC), which inhibits Sla2s function under certain conditions. We show that Sla2 has two independent binding sites for CLC: one previously described in homologs of Fungi (Sla2) and Metazoa (Hip1R), and a second found only in Fungi. We present the structural model of the Sla2 actin-binding domains in the context of regulatory structural domains by electron cryo-microscopy. We provide an interaction map of Sla2 and the regulatory proteins Sla1 and Pan1, predicted by AI modelling and confirmed by molecular biophysics techniques. Pan1 competes with CLC for the conserved binding site on Sla2. These results enhance the mapping of crucial interactions at endocytic checkpoints and highlight the divergence between Metazoa and Fungi in this vital process. TeaserSla2 forms complexes with three regulatory proteins in the endocytic pit, two of which compete for the same site

molecular biology↗