Search bioRxiv⌕ Search

Biology subjects

Ramos-Guzman, C. A.

Publications and source records attributed to Ramos-Guzman, C. A..

2 recordsLinked to original sources

Redox Control of S-sulfocysteine Formation in Adenosine Phosphosulfate Reductase

Sulfur assimilation fuels bacterial growth by supplying the reduced sulfur required for the biosynthesis of sulfur-containing biomolecules. Adenosine 5'-phosphosulfate reductase (APSR) catalyzes the first reductive step of this pathway, converting adenosine 5'-phosphosulfate (APS) to adenosine monophosphate. This reaction proceeds through nucleophilic attack by catalytic C256, located in the flexible C-terminal tail, on the sulfur atom of APS, forming a thiosulfonate enzyme intermediate. Here, we investigate this reaction in APSR from Pseudomonas aeruginosa, an opportunistic pathogen associated with severe infections, particularly in patients with cystic fibrosis. APSR contains an iron-sulfur [4Fe-4S] cluster, which participates in redox steps of the reaction. Here, we show that the redox state of the iron-sulfur cluster also controls the catalytic step. Multiscale molecular simulations investigate how oxidized and reduced cluster states affect APS binding, active site organization, and the nucleophilic attack step. Molecular dynamics (MD) simulations show that the oxidized [4Fe-4S]2+; cluster stabilizes substrate interactions and the conformation of the C-terminus, facilitating a catalytically productive orientation of C256. The activation barrier of 17.7 {+/-} 1.7 kcal mol-1 from quantum mechanics/molecular mechanics (QM/MM) umbrella sampling MD simulations at the B3LYP-D3(BJ)/6-31G(d) level of theory is in good agreement with the experimental kinetics. The redox state of the iron-sulfur cluster shows its role in modulating the conformation of conserved K144, which is important for transition state stabilization in the nucleophilic attack. These findings illuminate the mechanism of this P. aeruginosa target and provide broader insight into the roles of iron-sulfur clusters in controlling enzyme reactivity.

biochemistry↗

Molecular basis of noncanonical complement C3 activation by histamine

For fifty years the tick-over mechanism has been considered responsible for priming the activation of the complement systems alternative pathway through the reaction of a nucleophilic water molecule with C3 yielding C3(H2O), even though the exclusivity of this role has been challenged by the existence of extrinsic proteases that can cleave circulating C3 into C3b. Here we show that the biogenic amine histamine can activate C3 by reacting with the internal thioester bond yielding a novel species that is equivalent to C3(H2O), which we have called C3h. Histamine activation of C3 occurs significantly faster than the water-mediated tick-over reaction, leading to the accelerated release of the C3a anaphylatoxin moiety, contributing to inflammation. Importantly, C3h can form an active C3 convertase enzyme that, together with the released C3a, can amplify complement activation and inflammatory responses. These results offer insight into the priming of the complement system activation and support the existence of direct crosstalk between histamine-releasing processes and complement activation.

biochemistry↗