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Ghose, R.

Publications and source records attributed to Ghose, R..

2 recordsLinked to original sources

Conserved Link between Catalytic Site Interactions and Global Conformation in P-loop Enzymes

P-loop enzymes, ubiquitous in all of lifes domains and viruses, comprise a monophyletic group with pre-LUCA origins that have differentiated into several three-layered /{beta}/- sandwich domain families utilizing a basic {beta}- loop--{beta} structural module housing conserved nucleotide-binding Walker-A and Walker-B sequences. We have analyzed a large dataset of P-loop enzyme structures representing both their KG and ASCE branches as proxies for their sampled conformational landscapes. We developed a novel framework to correlate global conformations and local catalytic site geometry, specifically involving the Walker motifs, to identify conserved signatures despite substantial structural and functional diversity. Our results suggest that P-loop enzymes populate global states broadly classifiable as open or closed. In the closed states, that share similar overall geometries irrespective of family, key catalytic site residues are aligned to optimally engage the critical Mg2+ ion suggesting compatibility with the chemical step. These catalytic site interactions are disrupted in the open states resulting in the loss of the Mg2+- coordinating ability yielding conformations incapable of chemistry. In contrast to the closed states, open states are highly diverse, and this variability is facilitated by differential coupling of specific residues that are part of, or spatially proximal to, the Walker motifs with the clade-specific tertiary fold. We suggest that an essential feature in the activation and nucleotide exchange processes for all P-loop enzymes is the universal coupling between global closure and local reorganization of the catalytic site for efficient coordination of Mg2+ that carries a tightly associated cargo, the substrate NTP.

biochemistry↗

Structural Basis for the Calmodulin-Mediated Activation of eEF-2K

Translation is a highly energy consumptive process1 tightly regulated for optimal protein quality2 and adaptation to energy and nutrient availability. A key facilitator of this process is the -kinase eEF-2K that specifically phosphorylates the GTP-dependent translocase eEF-2, thereby reducing its affinity for the ribosome and suppressing the elongation phase of protein synthesis3,4. eEF-2K activation requires calmodulin binding and auto-phosphorylation at the primary stimulatory site, T348. Biochemical studies have predicted that calmodulin activates eEF-2K through a unique allosteric process5 mechanistically distinct from other calmodulin-dependent kinases6. Here we resolve the atomic details of this mechanism through a 2.3 [A] crystal structure of the heterodimeric complex of calmodulin with the functional core of eEF-2K (eEF-2KTR). This structure, which represents the activated T348-phosphorylated state of eEF-2KTR, highlights how through an intimate association with the calmodulin C-lobe, the kinase creates a "spine" that extends from its N-terminal calmodulin-targeting motif through a conserved regulatory element to its active site. Modification of key spine residues has deleterious functional consequences.

biochemistry↗