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by Keyword: parasite
Diaz-Fernandez, Sergio, Aleluia, Matilde, Saraiva, Margarida, Soldevilla, Pablo, Torrelles, Jordi B, Sharan, Riti, Verreck, Frank A W, Izzo, Angelo, Vidal, Maria, Moreira, Ana C, Perez de Val, Bernat, Roca, Francisco Jose, Preda, Madalina, Torrents, Eduard, Julian, Esther, Dominguez, Jose, Latorre, Irene, (2026). The study of immunological markers in tuberculosis across animal models and its translation to human research LAB ANIMAL 55, 248-266
Tuberculosis (TB), a disease caused by Mycobacterium tuberculosis, remains one of the major causes of death from infection worldwide, with over a million associated deaths each year. The study of biomarkers for TB is critical for advancing our understanding and management of the disease. Biomarkers, defined as measurable indicators of biological states or conditions, are invaluable for the diagnosis, prognosis and treatment monitoring of TB. Clinical studies have provided critical knowledge on the matter but are also notoriously constrained by economical, ethical and sampling limitations. The use of animal models provides a simpler, more controllable, cost-effective setting with great potential for translation to humans. They also allow the evaluation of biomarkers within the respiratory compartment, when available, which is of particular interest due to the nature of TB pathogenesis. This Review focuses on the current landscape of TB biomarker discovery in several animal models, from invertebrates to large mammals. Here we summarize the basics of host-pathogen immune interaction, describe the main methodological approaches used and highlight the most substantial findings for each animal model studied. Furthermore, we discuss the advantages, challenges and limitations associated with species-specific differences in animal models. We conclude that integrating the data obtained from animal models and human studies is absolutely required to advance the TB field to accelerate the management of this disease.
JTD Keywords: Cd4 t-cells, Drosophila-melanogaster, Experimental airborne tuberculosis, Gamma release assay, Guinea-pig, Host-parasite relationships, Ifn-gamma, Mycobacterium-tuberculosis, Nitric-oxide synthase, Pulmonary tuberculosis
Avalos-Padilla, Yunuen, Bouzon-Arnaiz, Ines, Ramirez, Miriam, Camarero-Hoyos, Claudia, Orozco-Quer, Marc, Arce, Elsa A, Munoz-Torrero, Diego, Fernandez-Busquets, Xavier, (2025). Overexpression in Plasmodium falciparum of an intrinsically disordered protein segment of PfUT impairs the parasite's proteostasis and reduces its growth rate Frontiers in Cellular and Infection Microbiology 15, 1565814
The proteome of Plasmodium falciparum exhibits a marked propensity for aggregation. This characteristic results from the parasite's AT-rich genome, which encodes numerous proteins with long asparagine-rich stretches and low structural complexity, which lead to abundant intrinsically disordered regions. While this poses challenges for the parasite, the propensity for protein aggregation may also serve functional roles, such as stress adaptation, and could therefore be exploited by targeting it as a potential vulnerable spot in the pathogen. Here, we overexpressed an aggregation-prone segment of the P. falciparum ubiquitin transferase (PfUTf), an E3 ubiquitin ligase protein that has been previously demonstrated to regulate the stability of parasite proteins involved in invasion, development and drug metabolism. Overexpression of PfUTf in P. falciparum had evident phenotypic effects observed by transmission electron microscopy and confocal fluorescence microscopy, increased endogenous protein aggregation, disrupted proteostasis, and caused significant growth impairment in the parasite. Combined with dihydroartemisinin treatment, PfUTf overexpression had a synergistic effect that further compromised the parasites viability, linking protein aggregation to proteasome dysfunction. Changes in the distribution of aggregation-prone proteins, shown by the altered subcellular fluorescent pattern of the new investigational aggregated protein dye and antiplasmodial compound YAT2150 in the overexpressing P. falciparum line, highlighted the critical balance between protein aggregation, stress responses, and parasite viability, suggesting proteostasis-targeting therapies as a good antimalarial strategy.
JTD Keywords: plasmodium falciparum, Aggregation, Amyloid formation, Bodie, Disease, E3 ubiquitin ligases, Malaria parasite, Mechanism, Mutations, New antimalarial therapie, Peptides, Protein aggregation, Proteostasis disruption, Sequence, Stress
Román-Alamo, L, Avalos-Padilla, Y, Bouzón-Arnáiz, I, Iglesias, V, Fernández-Lajo, J, Monteiro, JM, Rivas, L, Fisa, R, Riera, C, Andreu, D, Pintado-Grima, C, Ventura, S, Arce, EM, Muñoz-Torrero, D, Fernàndez-Busquets, X, (2024). Effect of the aggregated protein dye YAT2150 on Leishmania parasite viability ANTIMICROBIAL AGENTS AND CHEMOTHERAPY 68, e01127-23
The problems associated with the drugs currently used to treat leishmaniasis, including resistance, toxicity, and the high cost of some formulations, call for the urgent identification of new therapeutic agents with novel modes of action. The aggregated protein dye YAT2150 has been found to be a potent antileishmanial compound, with a half-maximal inhibitory concentration (IC50) of approximately 0.5 mu M against promastigote and amastigote stages of Leishmania infantum. The encapsulation in liposomes of YAT2150 significantly improved its in vitro IC50 to 0.37 and 0.19 mu M in promastigotes and amastigotes, respectively, and increased the half-maximal cytotoxic concentration in human umbilical vein endothelial cells to >50 mu M. YAT2150 became strongly fluorescent when binding intracellular protein deposits in Leishmania cells. This fluorescence pattern aligns with the proposed mode of action of this drug in the malaria parasite Plasmodium falciparum, the inhibition of protein aggregation. In Leishmania major, YAT2150 rapidly reduced ATP levels, suggesting an alternative antileishmanial mechanism. To the best of our knowledge, this first-in-class compound is the only one described so far having significant activity against both Plasmodium and Leishmania, thus being a potential drug for the treatment of co-infections of both parasites.
JTD Keywords: Animal, Animals, Antileishmanial drugs, Antiprotozoal agent, Antiprotozoal agents, Axenic amastigotes, Colocalization, Differentiation, Discovery, Endothelial cells, Endothelium cell, Human, Humans, Identification, Leishmania, Leishmania infantum, Leishmaniasis, Parasite, Parasites, Protein aggregation, Yat2150, Yeast
Avalos-Padilla, Y, Fernandez-Busquets, X, (2024). Nanotherapeutics against malaria: A decade of advancements in experimental models Wiley Interdisciplinary Reviews-Nanomedicine and Nanobiotechnology 16, e1943
Malaria, caused by different species of protists of the genus Plasmodium, remains among the most common causes of death due to parasitic diseases worldwide, mainly for children aged under 5. One of the main obstacles to malaria eradication is the speed with which the pathogen evolves resistance to the drug schemes developed against it. For this reason, it remains urgent to find innovative therapeutic strategies offering sufficient specificity against the parasite to minimize resistance evolution and drug side effects. In this context, nanotechnology-based approaches are now being explored for their use as antimalarial drug delivery platforms due to the wide range of advantages and tuneable properties that they offer. However, major challenges remain to be addressed to provide a cost-efficient and targeted therapeutic strategy contributing to malaria eradication. The present work contains a systematic review of nanotechnology-based antimalarial drug delivery systems generated during the last 10 years. This article is categorized under: Therapeutic Approaches and Drug Discovery > Nanomedicine for Infectious Disease
JTD Keywords: Adjuvant system, Antimalarial activities, Antimalarial agent, Antimalarial drug, Antimalarial drugs, Antimalarials, Artemisinin resistance, Causes of death, Child, Controlled drug delivery, Diseases, Drug delivery system, Drug delivery systems, Drug interactions, Drug side-effects, Drug-delivery, Experimental modelling, Heparan-sulfate, Human, Humans, In-vitro, Malaria, Malaria vaccine, Mannosylated liposomes, Medical nanotechnology, Models, theoretical, Nanocarriers, Nanomedicine, Nanotechnology, Parasite-, Parasitics, Plasmodium, Plasmodium-falciparum malaria, Red-blood-cells, Targeted delivery, Targeted drug delivery, Theoretical model, Therapeutic strategy
Javier-Reyna, R, Avalos-Padilla, Y, Marion, S, (2023). Editorial: Vesicular transport, the actin cytoskeleton and their involvement in virulence mechanisms during host-parasite interaction Frontiers in Cellular and Infection Microbiology 13, 1229067
Anselmo, MS, Lantero, E, Avalos-Padilla, Y, Bouzón-Arnáiz, I, Ramírez, M, Postigo, A, Serrano, JL, Sierra, T, Hernández-Ainsa, S, Fernández-Busquets, X, (2023). Heparin-Coated Dendronized Hyperbranched Polymers for Antimalarial Targeted Delivery ACS Applied Polymer Materials 5, 381-390
The rampant evolution of resistance in Plasmodium to all existing antimalarial drugs calls for the development of improved therapeutic compounds and of adequate targeted delivery strategies for them. Loading antimalarials in nanocarriers specifically targeted to the parasite will contribute to the administration of lower overall doses, with reduced side effects for the patient, and of higher local amounts to parasitized cells for an increased lethality toward the pathogen. Here, we report the development of dendronized hyperbranched polymers (DHPs), with capacity for antimalarial loading, that are coated with heparin for their specific targeting to red blood cells parasitized by Plasmodium falciparum. The resulting DHP-heparin complexes exhibit the intrinsic antimalarial activity of heparin, with an IC50 of ca. 400 nM, added to its specific targeting to P. falciparum-infected (vs noninfected) erythrocytes. DHP-heparin nanocarriers represent a potentially interesting contribution to the limited family of structures described so far for the loading and targeted delivery of current and future antimalarial compounds.© 2022 The Authors. Published by American Chemical Society.
JTD Keywords: carriers, drug-delivery, efficacy, heparin, malaria, mosquito, nanocarriers, parasite, plasmodium, targeted drug delivery, Dendritic polymers, Red-blood-cells