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Wells, T.

Publications and source records attributed to Wells, T..

3 recordsLinked to original sources

High proportion of multiple copies of Plasmodium falciparum Plasmepsin-2 gene in African isolates: Is piperaquine resistance emerging in Africa?

Emergence of Plasmodium falciparum resistance to antimalarial drugs is currently the primary rationale supporting the development of new and well-tolerated drugs. In 2014-2015, a phase 2b clinical study was conducted to evaluate the efficacy of a single oral dose of Artefenomel (OZ439)-piperaquine (PPQ) in Asian and African patients presenting with uncomplicated falciparum malaria. Blood samples collected before treatment offered the opportunity to investigate the proportion of multidrug resistant parasite genotypes including P. falciparum Kelch13 mutations and copy number variation of both P. falciparum plasmepsin2 (Pfpm2) and P. falciparum multidrug resistance 1 (Pfmdr1) genes. Validated Kelch13 resistance mutations including C580Y, I543T, P553L and V568G were only detected in parasites from Vietnamese patients. In Africa, isolates with multiple copies of the Pfmdr1 gene were shown to be more frequent than previously reported (21.1%, range from 12.4% in Burkina Faso to 27.4% in Uganda). More strikingly, high proportions of isolates with multiple copies of the Pfpm2 gene, associated to PPQ resistance, were frequently observed in the African sites, especially in Burkina Faso and Uganda (>30%).\n\nOur findings sharply contrast with the recent description of increased sensitivity to PPQ of Ugandan parasite isolates. This emphasizes the necessity to decipher the genetic background associated with PPQ resistance in Africa by investigating in vitro susceptibilities to PPQ of isolates with multiple copies of the Pfpm2 gene and the urgent need to assess the risk of development of PPQ resistance, along with the efficacy of both current frontline therapies and new antimalarial combinations.

microbiology

Mammalian Cell Entry domains are required for bile resistance and virulence in Salmonella

MCE domains were first reported in Mycobacteria as having a role in Mammalian Cell Entry, with subsequent studies showing their importance during infection. Here, we have examined the function of MCE proteins in Salmonella Typhimurium during mammalian infection. We report that MCE proteins are required for Salmonella virulence, but that this is not related to decreased adherence, entry or survival in mammalian cells. Instead, we reveal that MCE proteins are required for Salmonella bile resistance, in particular to withstand bile salts such as cholate and deoxycholate. Based on our previous work in Escherichia coli, and other studies that have reported roles for MCE proteins in membrane biogenesis, we propose that Salmonella lacking MCE domains have a defective outer membrane that results in bile sensitivity and decreased virulence in vivo. These results suggest that MCE domains mediate fundamental aspects of bacterial membrane physiology as opposed to a proposed direct role in mammalian cell entry, explaining their conservation across both pathogenic and non-pathogenic bacteria.

microbiology

Circulating unacylated-ghrelin impairs hippocampal neurogenesis and memory in mice and is altered in human Parkinson’s disease dementia

Blood-borne factors regulate adult hippocampal neurogenesis (AHN) and cognition in mammals, albeit via mechanisms that are poorly understood. We report that elevating circulating unacylated-ghrelin (UAG), using both pharmacological and genetic methods, reduced hippocampal neurogenesis and plasticity in mice. Spatial memory impairments observed in GOAT-/- mice that lack acyl-ghrelin (AG) but have high levels of UAG, were rescued by treatment with AG. This unexpected finding suggests that the post-translational acylation of ghrelin is an important modulator of neurogenesis and memory in adult mammals. To determine whether this paradigm is relevant to humans we analysed circulating AG:UAG levels in Parkinsons disease (PD) patients diagnosed with dementia (PDD), cognitively intact PD patients and healthy controls. Uniquely, the ratio of plasma AG:UAG was reduced in the PDD cohort and correlated with cognitive performance. Our results identify UAG as a novel regulator of neurogenesis and cognition, and AG:UAG as a circulating diagnostic biomarker of dementia. The findings extend our understanding of adult brain plasticity regulation by circulating factors and suggest that manipulating the post-translational acylation of plasma ghrelin may offer therapeutic opportunities to ameliorate cognitive decline.\n\nHighlightsO_LICirculating UAG impairs markers of neurogenesis and plasticity\nC_LIO_LIGOAT-/-mice have impaired neurogenesis and spatial memory\nC_LIO_LICirculating acyl-ghrelin (AG) rescues spatial memory deficit in GOAT-/-mice\nC_LIO_LICirculating AG:UAG ratio is reduced in Parkinsons disease dementia\nC_LI

neuroscience