The bloodstream form of Trypanosoma brucei displays non-canonical gluconeogenesis
Kovarova, J.; Moos, M.; Barrett, M. P.; Horn, D.; Zikova, A.
Show abstract
Trypanosoma brucei is a causative agent of the Human and Animal African Trypanosomiases. The mammalian stage parasites infect various tissues and organs including the bloodstream, central nervous system, skin, adipose tissue and lungs. They rely on ATP produced in glycolysis, consuming large amounts of glucose, which is readily available in the mammalian host. In addition to glucose, glycerol can also be used as a source of carbon and ATP and as a substrate for gluconeogenesis. However, the physiological relevance of glycerol-fed gluconeogenesis for the mammalian-infective life cycle forms remains elusive. To demonstrate its (in)dispensability, first we must identify the enzyme(s) of the pathway. Loss of the canonical gluconeogenic enzyme, fructose-1,6-bisphosphatase, does not abolish the process hence at least one other enzyme must participate in gluconeogenesis in trypanosomes. Using a combination of CRISPR/Cas9 gene editing and RNA interference, we generated mutants for four enzymes potentially capable of contributing to gluconeogenesis: fructose-1,6-bisphoshatase, sedoheptulose-1,7-bisphosphatase, phosphofructokinase and transaldolase, alone or in various combinations. Metabolomic analyses revealed that flux through gluconeogenesis was maintained irrespective of which of these genes were lost. Our data render unlikely a previously hypothesised role of a reverse phosphofructokinase reaction in gluconeogenesis and preclude the participation of a novel biochemical pathway involving transaldolase in the process. The sustained metabolic flux in gluconeogenesis in our mutants, including a triple-null strain, indicates the presence of a unique enzyme participating in gluconeogenesis. Additionally, the data provide new insights into gluconeogenesis and the pentose phosphate pathway, and improve the current understanding of carbon metabolism of the mammalian-infective stages of T. brucei. Author SummaryTrypanosoma brucei is a unicellular parasite causing sleeping sickness in humans and nagana disease in cattle. The parasite invades the bloodstream and cerebrospinal fluid and only recently, it has been shown to infect additional tissues such as skin, adipose tissue, or lungs. While the glucose-based metabolism of the bloodstream form is well understood, the parasites metabolism in these secondary tissues has not been sufficiently explored, despite its importance for drug development. One possibility is the use of gluconeogenesis since the mammalian-infective stages can use glycerol as a carbon and ATP source. First, enzymes involved in gluconeogenesis have to be identified, then it can be tested if the pathway is advantageous for the survival of the parasite. We generated mutants in four different enzymes potentially involved in this metabolic pathway. Surprisingly, the flux in gluconeogenesis was maintained in all cell lines tested, implying that another non-canonical enzyme participates in the production of glucose from glycerol in these parasites.
Matching journals
The top 9 journals account for 50% of the predicted probability mass.
Similar papers in this journal
- Efficient flavinylation of glycosomal fumarate reductase by its own ApbE domain in Trypanosoma brucei 95%
- The ribosome-associated complex regulates cytosolic translation upon mitoprotein-induced stress 93%
- Discovery and mechanistic characterization of a probiotic-origin 3β-OH-Δ5-6-cholesterol-5β-reductase directly converting cholesterol to coprostanol 92%
Similar papers in this journal
- Proteomic identification of the UDP-GlcNAc : PI α1-6 GlcNAc-transferase subunits of the glycosylphosphatidylinositol biosynthetic pathway of <Trypanosoma brucei>. 94%
- Shotgun proteomic profiling of dormant, 'non-culturable' Mycobacterium tuberculosis 93%
- The histone modification regulator, SIN3, plays a role in the cellular response to changes in glycolytic flux 93%
Similar papers in this journal
- Metabolic selection of a homologous recombination mediated loss of glycosomal fumarate reductase in Trypanosoma brucei 95%
- Seo1p, a high affinity, plasma membrane transporter of the gamma-Glu-met dipeptide in yeasts and fungi 92%
- Function and regulation of an aldehyde dehydrogenase essential for ethanol and methanol metabolism of the yeast,Komagataella phaffii 92%
Similar papers in this journal
- Glycolysis-dependent Sulfur Metabolism Orchestrates Morphological Plasticity and Virulence in Fungi 95%
- An atypical DYRK kinase connects quorum-sensing with posttranscriptional gene regulation in Trypanosoma brucei 94%
- OXPHOS deficiencies affect peroxisome proliferation by downregulating genes controlled by the SNF1 signaling pathway 94%
Similar papers in this journal
"Similar papers" are the closest papers from that journal in the model's embedding space. They show what the match is built on, but the ranking comes mostly from a classifier over the whole training set, not from these examples alone.