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Muirhead, K.

Publications and source records attributed to Muirhead, K..

2 recordsLinked to original sources

Resolution of glycogen and glycogen-degrading activities reveals correlates of Lactobacillus crispatus dominance in a cohort of young African women

BackgroundA healthy vaginal microbiome is dominated by Lactobacillus species that produce lactic acid, lowering vaginal pH and limiting colonization by pathogens. Lactobacillus dominance (LD) is established during puberty, but many women, especially those of Black race, lose LD during their reproductive years. Glycogen is thought to be a key host nutrient that supports vaginal lactobacilli and their fermentative lactic acid production, but mechanisms of glycogen utilization by Lactobacillus species are incompletely understood. By partitioning glycogen and glycogen-derived maltodextrin, as well as the activity of glycogen-degrading pullulanase enzymes, this work refines understanding of vaginal glycogen catabolism and identifies correlates of LD. ResultsVaginal swab samples were collected from a cohort of young women with limited sexual experience in Thika, Kenya (N=17, ages 17-20). Metagenomic profiling of the vaginal microbiome revealed that most samples exhibited LD, particularly dominant Lactobacillus crispatus. Amylopullulanase activity, cleavage of glycogen -1,4 and -1,6 linkages by individual/multifunctional enzymes, showed a significant positive correlation with glycogen-derived maltodextrin, but no relationship with L. crispatus dominance. Pullulanase activity, which specifically targets glycogen -1,6 linkages, was 3-fold higher in L. crispatus-dominated samples and significantly correlated with D-lactic acid levels. Metagenomics and targeted PCR revealed that 36% of L. crispatus-dominated metagenomes from our African cohort lacked a functional L. crispatus pullulanase (pulA) gene, a 3-fold higher frequency of gene loss than that seen in metagenomes from European and North American women. Our findings suggest pulA gene loss or inactivation may correspond with reductions in L. crispatus abundance, pullulanase activity and lactic acid levels compared to samples dominated by pulA-competent L. crispatus. ConclusionsOur results indicate that although amylase activity drives the accumulation of glycogen catabolites in vaginal fluid, pullulanase appears to specifically contribute to maximal D-lactic acid production by L. crispatus. However, this is only possible when a functional pulA gene is present, which was not the case in a substantial proportion of young African women with dominant L. crispatus. Scaling this analysis to a larger cohort will address whether genomic and enzymatic indicators of L. crispatus pullulanase activity are predictive of sustained LD and vaginal health.

microbiology↗

Plasmodiophora brassicae chitin-binding effectors guard and mask spores during infection

Plants have a sophisticated and multilayered immune system. However, plant pathogens, helped by effector proteins, have found several strategies to evade plant immunity. For instance, the clubroot pathogen, Plasmodiophora brassicae, is able to turn the roots of the susceptible hosts into nutrient-sink galls surpassing patterns-triggered immunity (PTI) and effector-triggered immunity (ETI). Chitin, the main component of P. brassicae spores cell walls and a well-known pathogens-associated molecular pattern (PAMP), can elicit PTI but is also the target of plant chitinases and chitin deacetylases. The fact that P. brassicae does not trigger PTI during the infection of the susceptible hosts motivated a genome-wide search of genes coding for secreted chitin-related proteins. We found that P. brassicae genome encodes a large repertoire of candidate-secreted effectors containing the chitin-binding domain carbohydrate-binding module family 18 (CBM18), along with chitinases and chitin deacetylases domains. The role of such proteins in the pathogenicity of the clubroot pathogen is unknown. Here, we characterized the function of two effectors, PbChiB2 and PbChiB4, which are transcriptionally activated during the spores transition to uninucleate primary plasmodium and during the spore formation. Through co-precipitation, we found that recombinant PbChiB2 and PbChiB4 bind to the spores and to chitin oligomers in vitro. We also showed that both proteins suppress chitin-triggered activation of the immune MPK3 and MPK6 in the host Brassica napus. These findings suggest a dual role for the P. brassicae CBM18 proteins as effectors for protecting zoospores and resting spores formation and for suppressing chitin-triggered immunity during the infection.

microbiology↗