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Monedero, V.

Publications and source records attributed to Monedero, V..

2 recordsLinked to original sources

Ppx1 putative exopolyphosphatase is essential for polyphosphate accumulation in Lacticaseibacillus paracasei

The linear polymer polyphosphate (poly-P) is present across all three domains of life and serves diverse physiological functions. The enzyme polyphosphate kinase (Ppk) is responsible for poly-P synthesis, whereas poly-P degradation is carried out by the enzyme exopolyphosphatase (Ppx). In many Lactobacillaceae, the Ppk-encoding gene (ppk) is found clustered together with two genes encoding putative exopolyphosphatases (ppx1 and ppx2) each having different domain compositions, with the gene order ppx1-ppk-ppx2. However, the specific function of these ppx genes remains unexplored. An in-frame deletion of ppx1 in Lacticaseibacillus paracasei BL23 resulted in bacteria unable to accumulate poly-P, whereas disruption of ppx2 had no effect on poly-P synthesis. Expression of ppk was not altered in the {Delta}ppx1 strain, and poly-P synthesis in this strain was only restored by expressing ppx1 in trans. Moreover, no poly-P synthesis was observed when ppk was expressed from a plasmid in the {Delta}ppx1 strain. Purified Ppx2 exhibited in vitro exopolyphosphatase activity, whereas no in vitro enzymatic activity could be demonstrated for Ppx1. This observation corresponds with the absence in Ppx1 of conserved motifs essential for catalysis found in characterized exopolyphosphatases. Furthermore, assays with purified Ppk and Ppx1 evidenced that Ppx1 enhanced Ppk activity. These results demonstrate that Ppx1 is essential for poly-P synthesis in Lc. paracasei and have unveiled, for the first time, an unexpected role of Ppx1 exopolyphosphatase in poly-P synthesis. ImportancePoly-P is a pivotal molecular player in bacteria, participating in a diverse array of processes ranging from stress resilience to pathogenesis, while also serving as a functional component in probiotic bacteria. The synthesis of poly-P is tightly regulated, but the underlying mechanisms remain incompletely elucidated. Our study sheds light on the distinctive role played by the two exopolyphosphatases (Ppx) found in the Lactobacillaceae bacterial group, of relevance in food and health. This particular group is noteworthy for possessing two Ppx enzymes, supposedly involved in poly-P degradation. Remarkably, our investigation uncovers an unprecedented function of Ppx1 in Lacticaseibacillus paracasei, where its absence leads to the total cessation of poly-P synthesis, paralleling the impact observed upon eliminating the poly-P forming enzyme, poly-P kinase. Unlike the anticipated role as a conventional exopolyphosphatase, Ppx1 demonstrates an unexpected function. Our results added a layer of complexity to our understanding of poly-P dynamics in bacteria.

microbiology↗

Microbiota depletion promotes human rotavirus replication in an adult mouse model

The study of human rotavirus (RV) infectivity in vivo has been limited by the lack of small animal models able to efficiently replicate the principal human RV genotypes. In recent years, intestinal microbiota-virus-host interaction has emerged as a key factor in mediating enteric virus pathogenicity. With the aim of developing an adult mouse infection model for RV we performed faecal microbiota transplant (FMT) with healthy infants as donors in antibiotic-treated mice. Contrarily to control mice, in the FMT group, but also in antibiotic-treated mice without FMT, challenge with the human RV G1P[8] genotype, Wa strain (RVwa), resulted in viral shedding in the faeces for 6 days. RV titres in faeces were also significantly higher in antibiotic-treated animals with or without FMT. This excluded the hypothesis that donors microbiota promoted infection. Antibiotic treatment followed by self-FMT resulted in incomplete re-establishment of mouse microbiota which partially restored suppression of RVwa infection. Microbial composition analysis revealed profound changes in the intestinal microbiota of antibiotic-treated animals, whereas some bacterial groups, including members of Lactobacillus, Bilophila, Mucispirillum and Oscillospira, reappeared after self-FMT. In antibiotic-treated and FMT animals, differences were observed in gene expression of immune mediators such as IL10, TNF- and IFN{gamma} and the fucosyltransferase FUT2, responsible for H-type antigen synthesis in the small intestine. Collectively, our results suggest that antibiotic-induced microbiota depletion eradicates the microbial taxa that restrict human RV infectivity in mice. Viral permissiveness could involve changes in the innate immune system at the small intestine and alterations in the bacteria population that potentially interact with RV, creating a favourable environment for human RV replication in mice.

microbiology↗