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The Journal of Biological Chemistry|March 14, 2022
In vivo growth of Staphylococcus lugdunensis is facilitated by the concerted function of heme and non-heme iron acquisition mechanismsRonald S Flannagan, Jeremy R Brozyna, Brijesh Kumar, et al.
FEMS Microbiology Letters|June 21, 2011
Genome sequence of Staphylococcus lugdunensis N920143 allows identification of putative colonization and virulence factorsSimon Heilbronner, Matthew T G Holden, Andries van Tonder, et al.
The ISME Journal|July 11, 2024
Nasal commensals reduce Staphylococcus aureus proliferation by restricting siderophore availabilityYanfeng Zhao, Alina Bitzer, Jeffrey John Power, et al.
Antimicrobial Agents and Chemotherapy|October 27, 2020
Secretion of and Self-Resistance to the Novel Fibupeptide Antimicrobial Lugdunin by Distinct ABC Transporters in Staphylococcus lugdunensisSophia Krauss, Alexander Zipperer, Sebastian Wirtz, et al.
Infection and Immunity|April 2, 2014
IsdC from Staphylococcus lugdunensis induces biofilm formation under low-iron growth conditionsAntonino Missineo, Antonella Di Poto, Joan A Geoghegan, et al.
Elife|June 10, 2020
An ECF-type transporter scavenges heme to overcome iron-limitation in Staphylococcus lugdunensisAngelika Jochim, Lea Adolf, Darya Belikova, et al.
Nature Communications|December 19, 2023
A type VII-secreted lipase toxin with reverse domain arrangementStephen R Garrett, Nicole Mietrach, Justin Deme, et al.
The Journal of Infectious Diseases|January 9, 2016
Shear-Resistant Binding to von Willebrand Factor Allows Staphylococcus lugdunensis to Adhere to the Cardiac Valves and Initiate EndocarditisLaurens Liesenborghs, Marijke Peetermans, Jorien Claes, et al.
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