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Checa, S. K.

Publications and source records attributed to Checa, S. K..

2 recordsLinked to original sources

The Cu-induced ScsD reductase is a membrane-bound redox partner of ScsB in the Salmonella envelope

The intracellular environment Salmonella confronts during infection is characterized by multiple redox stressors including reactive oxygen species (ROS) and copper (Cu) ions. Under these conditions, alternative systems of thiol oxidoreductases such as the Cu induced Scs system are required to protect and repair periplasmic proteins. The scsABCD operon encodes three Dsb-like enzymes, ScsB, ScsC, and ScsD, and an accessory protein, ScsA. These proteins are required both for Cu resistance and H2O2 tolerance. ScsB and ScsC function analogously to the canonical DsbD/DsbC redox pair of thiol oxidoreductases. The absence of ScsC was shown to affect the folding/activity of periplasmic proteins involved in amino acid transport and redox homeostasis. Here, we focus in ScsD, the least characterized member of this system. Upon Cu-induced expression, ScsD localizes to the inner membrane, enabling its predicted C-terminal Dsb-like domain to be exposed to the periplasm. Functional analysis indicates that ScsD exists in a reduced state in the Salmonella envelope and serves as a redox partner of ScsB. ScsD exhibits in vivo disulfide reductase activity and restores a deficient disulfide reduction pathway in Salmonella. Similar to ScsC and ScsB, ScsD binds Cu(I) via the Cys residues of its Dsb-like domain; however, this metal interaction appears to lack relevance in Cu detoxification as no impact on intracellular Cu levels was observed. Our results define ScsD as a specialized membrane-bound thiol-disulfide reductase in the Salmonella envelope and highlight the versatility of the Scs system in maintaining periplasmic proteostasis when canonical pathways are compromised by host-imposed Cu stress. ImportanceCopper is a key component of the innate immune system, serving as a primary defense against pathogens like Salmonella. Copper overload targets the bacterial envelope, specifically attacking protein sulfhydryl groups. This causes protein misfolding and inactivation, disrupting essential processes like metabolism, transport and virulence. To survive this stress and restore thiol homeostasis, Salmonella utilizes the scsABCD operon. While the ScsB-ScsC redox pair is well-documented and some protein substrates identified, the role of ScsD remains undefined. This work characterizes ScsD as an inner-membrane-anchored thiol reductase and a new redox partner for ScsB. The ScsD/ScsB pair expands the bacteriums protein quality control capacity, allowing Salmonella to maintain envelope homeostasis within the hostile, copper-rich environment of the host.

microbiology↗

CuiT is a Cu importer required for metal homeostasis in Salmonella enterica

Copper (Cu) is an essential micronutrient that serves as a cofactor for redox enzymes but becomes toxic when unregulated. In bacteria, while Cu efflux systems are well characterized, mechanisms of Cu import remain poorly understood. Here, we characterize the major facilitator superfamily transporter CuiT (STM1486) as a key Cu importer in Salmonella enterica. Comparative genomics revealed that cuiT is evolutionarily conserved across Enterobacteriaceae, and structural modeling predicts a 12-transmembrane-helix architecture with conserved His, Met, and Cys residues suitable for Cu coordination. Functional analyses demonstrated that deletion of cuiT reduces intracellular Cu accumulation, slows Cu uptake kinetics, and diminishes expression of Cu-responsive genes, including copA, cueP, cueO, and golB. Conversely, overexpression of CuiT increases intracellular Cu but sensitizes cells to Cu stress, highlighting the need for tight regulation. Kinetic modeling indicates that CuiT mediates rapid Cu import, supporting larger intracellular Cu pools compared to Pseudomonas influx transporters. These findings position CuiT as a central component of the Salmonella Cu homeostasis network, linking Cu import to transcriptional regulation, redox balance, and stress adaptation. Our work provides mechanistic insights into bacterial Cu acquisition and suggests CuiT and associated pathways as potential targets for antimicrobial strategies. SignificanceCopper (Cu) is essential for bacterial redox enzymes but toxic when dysregulated. While Cu efflux pathways are well studied, mechanisms of Cu import are poorly understood. We identify CuiT, a conserved major facilitator superfamily transporter, as a key Cu importer in Salmonella enterica. CuiT controls intracellular Cu levels, influences Cu-responsive gene expression, and maintains redox balance and stress adaptation. Disruption or overexpression of CuiT perturbs Cu homeostasis, highlighting its regulatory importance. These findings reveal a critical bacterial Cu acquisition pathway and suggest CuiT and its network as potential antimicrobial targets, advancing understanding of metal homeostasis in pathogens.

microbiology↗