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Marabelli, C.

Publications and source records attributed to Marabelli, C..

2 recordsLinked to original sources

Cardiac Calsequestrin is a Physiological Dimer that Polymerizes through a Ca2+-Triggered Cooperative Switch

Cardiac Calsequestrin (CASQ2) polymerizes within the junctional sarcoplasmic reticulum to buffer Ca{superscript 2} and regulate ryanodine receptor 2 (RyR2) gating, yet the molecular mechanism governing this process remains poorly understood. Using an integrated set of complementary approaches spanning single-particle biophysics, bulk solution measurements, and polymer chemistry, we demonstrate that CASQ2 is an intrinsic dimer at nanomolar concentrations and under physiological ionic conditions, independently of Ca{superscript 2}. In addition, Ca{superscript 2}-dependent polymerization operates as a highly cooperative switch between a stable oligomeric phase and a high-order polymeric state. Physiological amounts of K ions modulate this switch through a biphasic electrostatic mechanism, supporting polymerization at low concentrations and inhibiting it beyond charge neutralization ([~]194 mM). These findings redefine CASQ2 as an intrinsic dimer with polymerization-switch properties, and provide a mechanistic framework for understanding how catecholaminergic polymorphic ventricular tachycardia type 2 mutations, distributed evenly across the CASQ2 surface, cause disease through two distinct pathological trajectories.

biochemistry↗

THE RIBOREGULATION MECHANISM OF HUMAN SERINE HYDROXYMETHYLTRANSFERASE IS ROOTED IN AN ALLOSTERIC SWITCH

RNA can directly control protein activity in a process called riboregulation; only a few mechanisms of riboregulation have been described in detail, none of these being characterized on structural grounds. Here we present a comprehensive structural, functional, and phylogenetic analysis of riboregulation of cytosolic serine hydroxymethyltransferase (SHMT1), the enzyme interconverting serine and glycine in one-carbon metabolism. We show that the RNA modulator competes with polyglutamylated folates and acts as an allosteric switch, selectively altering the enzymes reactivity vs. serine. In addition, we identify the tetrameric assembly and a flap structural motif as key structural elements necessary for binding of RNA to eukaryotic SHMT1. The results presented here suggest that riboregulation may have played a role in the evolution of eukaryotic SHMT1 and the compartmentalization of one-carbon metabolism. The findings also provide insights for RNA-based therapeutic strategies targeting this cancer-linked metabolic pathway.

biochemistry↗