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Almeida, G. M. d. F.

Publications and source records attributed to Almeida, G. M. d. F..

2 recordsLinked to original sources

Mimicin, an antimicrobial protein encoded by mimivirus

Antimicrobial peptides (AMPs) are innate defense molecules found in all domains of life. Giant viruses of amoeba are known to thrive among complex microbial relationships within its hosts cells, hinting at the existence of virus-derived antimicrobial strategies. Here we show that viruses belonging to the Mimiviridae and Marseilleviridae families contain a higher density of in silico predicted AMPs per genome size than other viruses of amoeba. The investigation of potential AMPs led to the description of Mimicin, a taxonomically restricted 74 amino acid long protein coded by few mimiviruses. Mimicin contains three smaller predicted AMP sequences within it and has a broad in vitro antimicrobial activity against different bacteria, a yeast and two non-enveloped phages. In contrast, it has no activity against a marseillevirus, a mimivirus or human cell lines. When tested against bacterial endosymbionts co-cultured with Acanthamoeba terricola, Mimicin and its SIM-31 portion were able to control the attenuated Protochlamydia amoebophila but not the highly virulent Parachlamydia acanthamoebae. Based on deposited transcriptomic data, Mimicin is coded by an early gene more active during the beginning of the infection process. No structure could be predicted using Alphafold, while additional structural analysis indicate that Mimicin could be a highly disordered protein. In conclusion, we describe evidence of a biologically relevant antimicrobial activity derived from a giant virus. Mimicin highlights the relevance of AMPs from giant viruses for microbial ecology and opens the way for investigating their biotechnological and clinical potential.

microbiology↗

Mucin modulates phage infection dynamics and biofilm formation in enteropathogenic Yersinia enterocolitica

Mucosal barriers serve as a multifunctional interface and nutrient-rich habitat for diverse microbes, including bacteria and bacteriophages. Some phages can bind to mucin glycoproteins via carbohydrate-interacting modules and provide an additional layer of mucosal immunity by shielding the underlying epithelium from invading bacteria. However, the role of mucins in shaping phage-bacterium interactions remains poorly understood. We investigated the dynamics between highly pathogenic Yersinia enterocolitica serotype O:8 and its mucus-adherent phage fMtkYen801 under in vitro mucosal environment. We assessed how mucin supplementation, varying phage doses, nutrient and temperature conditions influence phage-bacterium dynamics and biofilm formation. We found that pre-exposure to mucins led to enhanced phage replication in the bacterial host, with a 2-log increase in phage titers, and high abundance of surviving bacteria. Interestingly, mucin glycoproteins also provided Y. enterocolitica a nutrient source and a chemical cue to modulate its growth and biofilm biogenesis. Genomic analysis of phage-resistant bacterial variants revealed mutations in virulence, quorum sensing, and antibiotic resistance genes in both mucin enrichment and control groups, suggesting potential fitness tradeoffs during resistance evolution. Collectively, these findings highlight the importance of mucosal surfaces as an important ecological driver of phage-host interactions in Y. enterocolitica, a significant enteric pathogen, and emphasize the need for investigating these dynamics under complex, physiologically relevant systems to inform better phage therapy strategies against mucosal bacterial infections.

microbiology↗