bioRxiv Science⌕ Search

Biology subjects

Haggarty, J.

Publications and source records attributed to Haggarty, J..

4 recordsLinked to original sources

Comparative lipidomic profiling of the livestock pathogens Trypanosoma congolense and Trypanosoma brucei

African Animal Trypanosomosis (AAT) is a disease affecting domestic animals, in particular cattle, in sub-Saharan Africa, resulting in billion-dollar losses annually. New drugs to combat and control AAT are urgently required, yet few treatment candidates are currently on the horizon. This can be attributed, in part, to the relative challenges associated with culturing the clinically relevant parasite species in a laboratory environment. Particularly, effective culture of bloodstream form Trypanosoma congolense, the trypanosome species responsible for a large proportion of AAT disease in cattle, requires the use of goat serum, whilst T. brucei is typically cultured in FBS-supplemented culture. This constrains in vitro studies on biology, especially comparative analyses between AAT-causing species. The differing serum supplementation requirements of these two trypanosome species point to metabolic distinctions, which may be important considerations in developing experimental systems to enable the identification and design of novel, pan-species therapies. In this study, untargeted LC-MS lipidomics analyses were conducted to determine the relative lipidomic profiles of T. congolense and T. brucei bloodstream form parasites. Employing a new media formulation that permits effective in vitro culture of both species, it was possible to establish that their global lipidomic profiles are distinct. Notably, T. congolense exhibits a relatively low abundance of ether phospholipids compared to T. brucei, whilst also possessing an enrichment of long-chain polyunsaturated fatty acids (PUFAs). These observations indicate that there are significant differences in the ways these parasites synthesise and remodel their lipid complement, highlighting an evolutionary divergence between the species that likely carries implications for host-pathogen interactions as well as trypanosome membrane biology. Furthermore, this study demonstrates that fine-tuning fatty acid supplementation may aid in optimising a universal medium suited for multiple species of AAT parasites. SummaryMultiple species of protozoan parasites can cause African Animal Trypanosomosis (AAT) in livestock and other animals. However, AAT research has largely centred on a single species, Trypanosoma brucei, partially due to the comparative difficulties in sustaining the other economically important parasite species - Trypanosoma congolense and Trypanosoma vivax - in laboratory culture. In this work, we aimed to determine whether distinctions in use of lipids between T. brucei and T. congolense explains their differing in vitro culture requirements. Using a newly designed media formulation, it was possible to culture mammalian-infective forms of both parasite species under identical conditions, enabling direct comparison of their lipidome - a complete inventory of the different fats and lipids the cells contain. We demonstrate that the T. congolense lipidome significantly differs from that of T. brucei, and that T. congolense shows a preference for longer, more unsaturated lipids. These differences are likely to underlie species-specific differences observed during host infections. Furthermore, our work demonstrates that understanding the lipid biology of protozoan parasites aids in optimisation of laboratory culturing conditions, thereby facilitating further research into these understudied pathogens, including the development of new therapies.

microbiology↗

Spermidine enhances metabolic flexibility and attenuates inflammation associated with ageing in farmed Atlantic salmon

Metabolic ageing and associated changes in lipid mobilisation have been most heavily studied in humans and model taxa, yet remain poorly understood in farmed animals, with potentially important uncharacterised implications for health and welfare outcomes in food production systems. Here, we study both processes in domesticated Atlantic salmon (Salmo salar), the worlds most commercially valuable farmed fish, comparing three stages of aquaculture production. Our sampling captures a key life-cycle change where juvenile fish transition from freshwater into seawater (smoltification), followed by the ongoing ageing process during a final period of growth in seawater. Integrating lipidomics and proteomics of visceral adipose and skeletal muscle tissue, we firstly identified a metabolic-ageing profile akin to that observed in humans, which was distinct from lipid-associated remodelling associated with earlier smoltification. This was marked by impaired triglyceride storage, dysfunctional autophagy-lysosomal pathways, inflammation, fibrosis and reduced pathogen clearance pathways in visceral adipose tissue. In skeletal muscle, ageing was accompanied by reduced metabolic flexibility together with triglyceride and fatty acid accumulation, depletion of phospholipids, and a reduction in free fatty acids required for ATP production. We go on to provide experimental in vivo evidence that dietary spermidine supplementation suppresses adipose inflammation and reverses age-associated metabolic flexibility by re-establishing the buffering role of adipose tissue and enhancing fatty acid metabolism in skeletal muscle. Importantly, spermidine appears to reprogram lipid flux to counter metabolic ageing. As farmed Atlantic salmon exhibit key features of metabolic ageing observed in humans that appear linked to its recent domestication history, this species offers a novel model for ageing related studies of vertebrate metabolism.

molecular biology↗

The Type VI Secretion System Antifungal Effector Tfe2 Inhibits Protein Translation and Drives Hyperactivation of TORC1.

Type VI Secretion Systems (T6SS) are utilised by many bacteria to deliver toxic effectors into neighbouring bacterial, fungal or host cells. Whilst many antibacterial effectors are well characterised, much less is known regarding the identity or mode-of-action of antifungal effectors. Here we combine structural modelling with proteomics and in vivo approaches, to show that the Serratia marcescens antifungal effector Tfe2 adopts a novel fold and functions as a potent inhibitor of protein translation leading to hyperactivation of the TORC1 kinase. We show that Tfe2 expression in Saccharomyces cerevisiae, or treatment with the protein translation inhibitor cycloheximide, drive identical increases in free intracellular amino acids and hyperactivation of TORC1. This, in turn, triggers the Tfe2 and cycloheximide-mediated rapid turnover of amino acid transporters through stimulating substrate-independent endocytosis. Polysome profiling, however, revealed differences in Tfe2 and cycloheximide-mediated protein translation inhibition, with Tfe2 inhibiting initiation of translation. Tfe2-mediated hyperactivation of TORC1 may also underpin adaptive responses to this effector which include significant remodelling of the lipidome and notable alterations in organelle and cell wall structures. Collectively this study has provided new insight into the mode-of-action of a structurally novel antifungal effector Tfe2.

microbiology↗

Genome-wide CRISPR base-editing screening defines drug response networks in Leishmania

We present a CRISPR/Cas9 cytosine base editing library for genome-wide loss-of-function screening in L. mexicana and apply it to dissect the genetics of Leishmania drug response. The results, accessible at https://www.LeishBASEeditDB.net, revealed novel response biomarkers for SbIII, miltefosine, amphotericin B, pentamidine, and the arylmethylaminosteroid 1c. We identified hundreds of loci linked to altered drug responses, including opposing effects among paralogs, cross-resistance, and collateral sensitivity. Among 41 validated candidates, we identified sterol defects in two novel amphotericin B markers, discovered a regulator of intracellular miltefosine transporter complex localization, and uncovered evidence that flagellar-associated defects reduce drug sensitivity. Parallel viability and motility screens revealed, for the first time, genome-wide fitness contributions of unique and multi-copy genes in Leishmania promastigotes. Our approach enables powerful reverse genetic screens across Leishmania species, advancing drug mechanism studies and guiding combination therapy designs. The library is available for others to screen a multitude of additional loss-of-function phenotypes.

microbiology↗