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result(s) for
"Andrade-Alviárez, Diego"
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Exploring glycolytic enzymes in disease: potential biomarkers and therapeutic targets in neurodegeneration, cancer and parasitic infections
by
Quiñones, Wilfredo
,
Andrade-Alviárez, Diego
,
Rojas-Pirela, Maura
in
Animals
,
Biomarkers
,
Biomarkers - metabolism
2025
Glycolysis, present in most organisms, is evolutionarily one of the oldest metabolic pathways. It has great relevance at a physiological level because it is responsible for generating ATP in the cell through the conversion of glucose into pyruvate and reducing nicotinamide adenine dinucleotide (NADH) (that may be fed into the electron chain in the mitochondria to produce additional ATP by oxidative phosphorylation), as well as for producing intermediates that can serve as substrates for other metabolic processes. Glycolysis takes place through 10 consecutive chemical reactions, each of which is catalysed by a specific enzyme. Although energy transduction by glucose metabolism is the main function of this pathway, involvement in virulence, growth, pathogen–host interactions, immunomodulation and adaptation to environmental conditions are other functions attributed to this metabolic pathway. In humans, where glycolysis occurs mainly in the cytosol, the mislocalization of some glycolytic enzymes in various other subcellular locations, as well as alterations in their expression and regulation, has been associated with the development and progression of various diseases. In this review, we describe the role of glycolytic enzymes in the pathogenesis of diseases of clinical interest. In addition, the potential role of these enzymes as targets for drug development and their potential for use as diagnostic and prognostic markers of some pathologies are also discussed.
Journal Article
Characterization of GH18 chitinase in Leishmania braziliensis: expression, structural insights, and implications for vaccine and therapeutic development
by
Quiñones, Wilfredo
,
Rojas-Pirela, Maura
,
Cáceres, Ana J.
in
Acids
,
Amastigotes
,
Amino Acid Sequence
2026
Chitinases, a group of glycosyl hydrolases (GHs), catalyze the degradation of chitin by releasing N-acetylglucosamine subunits. GHs can be found in all three domains of life. Among the three GH families (GH18, GH19, and GH20), GH18 chitinases are the most conserved and extensively studied. These enzymes have been implicated in nutrition, immune modulation, invasion, and virulence across diverse pathogens. In some parasitic protists, GH18 chitinases are essential for transmission. However, in kinetoplastids, including
Leishmania
spp., these enzymes remain poorly characterized. This study aimed to identify and characterize chitinase across kinetoplastids, with a particular focus on GH18 chitinase in
Leishmania braziliensis
, the causative agent of muco-cutaneous leishmaniasis. A bioinformatic pipeline was implemented to retrieve and annotate chitinase genes from multiple databases. Catalytic domains and subcellular localization were identified using dedicated computational tools. Phylogenetic relationships were reconstructed in MEGA12 using maximum likelihood and neighbor-joining methods. RNA-seq data were analyzed to evaluate stage-specific expression. Structural models of
L. braziliensis
GH18 chitinase (Lbr_ChGH18) were created with AlphaFold and subsequently refined. We identified GH18 chitinases genes across
Leishmania
species and other kinetoplastids, together with GH19 and GH20 chitinase genes. Lbr_ChGH18 was detected across all life-cycle stages, with peak levels in amastigotes. Docking analyses identified closantel, argifin, and argadin as potential inhibitors of Lbr_ChGH18. Epitope prediction revealed conserved B- and T-cell epitopes in GH18 chitinases from Old and New World
Leishmania
, capable of binding multiple HLA class I and II molecules, highlighting their potential as diagnostic and vaccine candidates. The discovery of GH20 chitinase-like genes in
Trypanosoma
species offers new insights into the evolution and functional diversification of GHs in kinetoplastids. The high conservation and expression of GH18 chitinases underscore their potential as promising targets for drug and vaccine development against leishmaniasis.
Journal Article
Dysregulated Expression of Canonical and Non-Canonical Glycolytic Enzyme Isoforms in Peripheral Blood from Subjects with Alcohol Use Disorder and from Individuals with Acute Alcohol Consumption
by
Quiñones, Wilfredo
,
Pérez-Nieto, María-Ángeles
,
Rueda-Cala, Vanessa
in
alcohol
,
Alcohol use
,
Alcoholism
2025
Glycolysis is primarily involved in ATP production but also modulates oxidative stress. Chronic alcohol consumption is correlated with an increased incidence of multiple diseases, including cancer and neurodegenerative diseases (NDDs), though the underlying mechanisms remain unclear. Guided by a literature review and bioinformatics analysis, we evaluated the expression of 22 genes encoding various isoforms of seven glycolytic enzymes (GEs) in the peripheral blood of patients with alcohol use disorder (AUD), individuals with acute alcohol consumption (AAC), and their respective control groups using qPCR. In parallel, we evaluated the expression of selected genes coding for GEs linked to NDDs, as well as astrocytic markers in primary mouse astrocyte cultures exposed to ethanol. Thirteen GE-related genes, including non-canonical isoforms, were significantly dysregulated in AUD patients; notably, eight of these genes showed similar alterations in individuals with AAC. Several enzymes encoded by these genes are known to be regulated by oxidative stress. Ethanol-exposed astrocytes also showed altered expression of glycolytic genes associated with NDDs and astrocyte function. These findings indicate that glycolytic dysregulation is driven by ethanol intake, regardless of exposure duration or organic damage, highlighting a link between ethanol-driven redox imbalance and glycolytic remodeling, which could contribute to organ damage.
Journal Article
microRNAs: Critical Players during Helminth Infections
by
Quiñones, Wilfredo
,
Castillo, Christian
,
Medina, Lisvaneth
in
3' Untranslated regions
,
Animal cognition
,
Autophagy
2022
microRNAs (miRNAs) are a group of small non-coding RNAs that regulate gene expression post-transcriptionally through their interaction with the 3′ untranslated regions (3′ UTR) of target mRNAs, affecting their stability and/or translation. Therefore, miRNAs regulate biological processes such as signal transduction, cell death, autophagy, metabolism, development, cellular proliferation, and differentiation. Dysregulated expression of microRNAs is associated with infectious diseases, where miRNAs modulate important aspects of the parasite–host interaction. Helminths are parasitic worms that cause various neglected tropical diseases affecting millions worldwide. These parasites have sophisticated mechanisms that give them a surprising immunomodulatory capacity favoring parasite persistence and establishment of infection. In this review, we analyze miRNAs in infections caused by helminths, emphasizing their role in immune regulation and its implication in diagnosis, prognosis, and the development of therapeutic strategies.
Journal Article
Delineating transitions during the evolution of specialised peroxisomes: Glycosome formation in kinetoplastid and diplonemid protists
by
Quiñones, Wilfredo
,
Gualdrón-López, Melisa
,
Bonive-Boscan, Alejandro D.
in
biogenesis
,
Biosynthesis
,
Cell and Developmental Biology
2022
One peculiarity of protists belonging to classes Kinetoplastea and Diplonemea within the phylum Euglenozoa is compartmentalisation of most glycolytic enzymes within peroxisomes that are hence called glycosomes. This pathway is not sequestered in peroxisomes of the third Euglenozoan class, Euglenida. Previous analysis of well-studied kinetoplastids, the ‘TriTryps’ parasites Trypanosoma brucei , Trypanosoma cruzi and Leishmania spp., identified within glycosomes other metabolic processes usually not present in peroxisomes. In addition, trypanosomatid peroxins, i.e. proteins involved in biogenesis of these organelles, are divergent from human and yeast orthologues. In recent years, genomes, transcriptomes and proteomes for a variety of euglenozoans have become available. Here, we track the possible evolution of glycosomes by querying these databases, as well as the genome of Naegleria gruberi , a non-euglenozoan, which belongs to the same protist supergroup Discoba. We searched for orthologues of TriTryps proteins involved in glycosomal metabolism and biogenesis. Predicted cellular location(s) of each metabolic enzyme identified was inferred from presence or absence of peroxisomal-targeting signals. Combined with a survey of relevant literature, we refine extensively our previously postulated hypothesis about glycosome evolution. The data agree glycolysis was compartmentalised in a common ancestor of the kinetoplastids and diplonemids, yet additionally indicates most other processes found in glycosomes of extant trypanosomatids, but not in peroxisomes of other eukaryotes were either sequestered in this ancestor or shortly after separation of the two lineages. In contrast, peroxin divergence is evident in all euglenozoans. Following their gain of pathway complexity, subsequent evolution of peroxisome/glycosome function is complex. We hypothesize compartmentalisation in glycosomes of glycolytic enzymes, their cofactors and subsequently other metabolic enzymes provided selective advantage to kinetoplastids and diplonemids during their evolution in changing marine environments. We contend two specific properties derived from the ancestral peroxisomes were key: existence of nonselective pores for small solutes and the possibility of high turnover by pexophagy. Critically, such pores and pexophagy are characterised in extant trypanosomatids. Increasing amenability of free-living kinetoplastids and recently isolated diplonemids to experimental study means our hypothesis and interpretation of bioinformatic data are suited to experimental interrogation.
Journal Article