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Manosalva, J.

Publications and source records attributed to Manosalva, J..

2 recordsLinked to original sources

Z-AAT impairs organelle homeostasis and reduces adaptive response to lipids in alpha-1 antitrypsin deficiency models

Alpha-1 antitrypsin deficiency (AATD) caused by the Z variant leads to hepatic accumulation of misfolded AAT polymers and liver disease. Although proteotoxic stress is well established, its impact on lipid metabolism, mitochondrial function, and organelle homeostasis remains incompletely understood. The effects of Z-AAT accumulation were investigated in Z-HepG2 cells and 3D patient-derived ZZ hepatic organoids through protein aggregation, lipid storage, mitochondrial structure and function, peroxisomal dynamics, and comprehensive transcriptomic and proteomic analyses. Z-AAT expression led to intracellular polymer accumulation and reduced secretion, together with lipid accumulation, mitochondrial structural abnormalities, increased mitochondrial number but impaired respiratory capacity. Metabolic profiling revealed reduced oxidative phosphorylation and partial reliance on glucose metabolism. Peroxisomes displayed increased mass, consistent with altered lipid handling. Multi-omics analysis demonstrated widespread transcriptional and proteomic reprogramming related to protein synthesis, lipid metabolism, and mitochondrial function. Proteomic analysis confirmed proteotoxic stress-induced mitochondrial dysfunction, impaired lipid handling, and activation of stress response, inflammatory and vesicular trafficking pathways. Importantly, lipid supplementation elicited adaptive mitochondrial transcriptional responses in control cells, whereas Z-HepG2 cells showed a blunted response to lipid challenge. In conclusion, Z-AAT accumulation disrupts hepatic lipid processing and impaired mitochondrial and peroxisomal homeostasis, producing diminished metabolic flexibility likely contributing to AATD-associated liver disease.

molecular biology↗

Establishing thresholds for azole tolerance and persistence in Aspergillus fumigatus to study their impact on voriconazole treatment in vivo

Antimicrobial tolerance and persistence are phenomena that enable pathogenic microbes to survive for extended periods in the presence of high concentrations of cidal drugs. Current evidence suggests that these phenomena may contribute to treatment failure and could even lead to the development of resistance. However, our understanding of antifungal tolerance and persistence in Aspergillus fumigatus, as well as their potential role in therapeutic failure, remains limited. In this study, we present an optimized, easy-to-perform method for detecting A. fumigatus tolerance and persistence to azole antifungals, based on a single colony-forming unit (CFU) measurement. Additionally, we developed a microscopic approach to investigate the dynamics of conidial killing in medium-throughput assays. Using these methods, we established epidemiological threshold values to classify strains as tolerant or persister and applied them to screen and categorize a collection of clinical isolates. Furthermore, we demonstrate that tolerance--but not persistence--negatively impacts the efficacy of voriconazole treatment in a Galleria mellonella infection model. Based on these findings, we propose that tolerance and persistence should be monitored in clinical isolates and potentially considered when determining therapeutic strategies.

microbiology↗