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Marquardt, M.

Publications and source records attributed to Marquardt, M..

2 recordsLinked to original sources

Arginine metabolism has a pivotal function for the encystation of Giardia duodenalis

Arginine metabolism plays a key role in the energy metabolism of the intestinal parasite Giardia duodenalis, an amitochondrial protozoan that infects humans and animals and causes significant morbidity. An arginine deiminase (ADI) has been implicated in virulence, but it is currently unknown if ADI allele variants from the different genetic G. duodenalis subgroups (assemblages) differ in function. Here, the hypothesis was tested that sequence variation detected between G. duodenalis ADI alleles from the two G. duodenalis assemblage types found in humans affects functional parameters of the enzyme with potential consequences in life cycle progression. The ADI enzyme affinity for arginine was drastically reduced in sub-assemblage AII isolates, a human specific assemblage, in comparison to zoonotic sub-assemblage AI and B isolates. We identified the two amino acid residues responsible for the lower substrate affinity of ADIAII variant. Using genetic approaches to generate ADI knockout mutants, biochemical approaches to unravel substrate affinity as well as cellular approaches to determine efficiency of life cycle progression, we show that ADI is essential for efficient encystation of the parasite and that the lower substrate affinity in ADIAII correlates with lower encystation efficiency. We further demonstrate that arginine is essential for efficient encystation, and by generating ADI knock-out parasites we present evidence that ADI is the functional correlate for this arginine dependence. Thus, our data describe ADI as a quantitative trait that affects life cycle progression of G. duodenalis with putative clinical and epidemiological relevance. Author summaryIn the human pathogenic parasite Giardia duodenalis, arginine deiminase (ADI) mediates the first step in the arginine dehydrolase pathway (ADH), metabolizing arginine to provide chemical energy in form of ATP. The bacterial-derived ADH pathway had been inherited by horizontal gene transfer, and ADI has been proposed as a virulence factor. We show here by biochemical and genetic approaches with ADI knock-out mutants that arginine and its metabolizing enzyme ADI are essential for efficient life cycle progression (encystation) to form infectious cysts. Furthermore, we show a drastically impaired arginine substrate affinity for the human-specific G. duodenalis genotype AII in comparison to the zoonotic genotypes AI and B and identified the molecular entities responsible for this altered substrate affinity. This lower substrate affinity also correlated with lower cyst formation in the AII genotype.

microbiology↗

A modular cloning toolbox including CRISPRi for the engineering of the human fungal pathogen and biotechnology host Candida glabrata

The yeast Candida glabrata is an emerging, often drug-resistant opportunistic human pathogen, that can cause severe systemic infections in immunocompromised individuals. At the same time, it is a valuable biotechnology host that naturally accumulates high levels of pyruvate - a valuable chemical precursor. Tools for the facile engineering of this yeast could greatly accelerate studies on its pathogenicity and its optimization for biotechnology. While a few tools for plasmid-based expression and CRISPR/Cas-based genome engineering have been developed, there is no well-characterized cloning toolkit available that would allow the assembly of pathways or genetic circuits in a modular fashion. Here, by re-using and characterizing the Saccharomyces cerevisiae-based yeast molecular cloning toolkit (YTK) in C. glabrata and by adding missing components, we build a well-characterized CgTK (Candida glabrata toolkit). We used the CgTK to build a CRISPR interference system for C. glabrata that can be used to generate selectable phenotypes via single-gRNA targeting such as required for genome-wide library screens.

microbiology↗