Hunt Benjamin C, Brix Vitus, Vath Joseph, Guterman Beryl L, Taddei Steven M, Learman Brian S, Brauer Aimee L, Shen Shichen, Qu Jun, Armbruster Chelsie E
Department of Microbiology and Immunology, Jacobs School of Medicine and Biomedical Sciences, State University of New York at Buffalo, Buffalo, NY, 14203, United States of America.
Department of Pharmaceutical Sciences, School of Pharmacy and Pharmaceutical Sciences, State University of New York at Buffalo, Buffalo, NY, 14203, United States of America.
bioRxiv. 2024 Jun 4:2023.03.17.533237. doi: 10.1101/2023.03.17.533237.
Polymicrobial biofilms play an important role in the development and pathogenesis of CAUTI. and are common CAUTI pathogens that persistently co-colonize the catheterized urinary tract and form biofilms with increased biomass and antibiotic resistance. In this study, we uncover the metabolic interplay that drives biofilm enhancement and examine the contribution to CAUTI severity. Through compositional and proteomic biofilm analyses, we determined that the increase in biofilm biomass stems from an increase in the protein fraction of the polymicrobial biofilm matrix. We further observed an enrichment in proteins associated with ornithine and arginine metabolism in polymicrobial biofilms compared to single-species biofilms. We show that L-ornithine secretion by promotes arginine biosynthesis in and that disruption of this metabolic interplay abrogates the biofilm enhancement we see and leads to significant decreases in infection severity and dissemination in a murine CAUTI model.
多种微生物生物膜在导尿管相关尿路感染(CAUTI)的发生发展和发病机制中起重要作用。 是常见的CAUTI病原体,它们持续共同定殖于导尿的尿道,并形成生物量增加且具有抗生素抗性的生物膜。在本研究中,我们揭示了驱动生物膜增强的代谢相互作用,并研究了其对CAUTI严重程度的影响。通过生物膜的成分和蛋白质组分析,我们确定生物膜生物量的增加源于多种微生物生物膜基质中蛋白质部分的增加。与单物种生物膜相比,我们进一步观察到多种微生物生物膜中与鸟氨酸和精氨酸代谢相关的蛋白质富集。我们发现 分泌的L-鸟氨酸促进了 中的精氨酸生物合成,并且这种代谢相互作用的破坏消除了我们所观察到的生物膜增强现象,并导致小鼠CAUTI模型中的感染严重程度和扩散显著降低。