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Biology subjects

Da Costa, R.

Publications and source records attributed to Da Costa, R..

4 recordsLinked to original sources

SeaB is a conserved Salmonella enterica extracellular matrix binding protein involved in biofilm formation and infection

Salmonella enterica is a leading cause of gastroenteritis worldwide. Exacerbating this issue is the emergence of multi-drug-resistant strains, posing a major threat to human health. Type 5 secretion system proteins play a major role in virulence and are viable vaccine targets. However, only a limited number of these proteins have been functionally characterized to date. In this study, we characterized SeaB, which belongs to the Type 5a secretion system. We demonstrated that SeaB is localized to the cell surface and is involved in binding to the extracellular matrix. Our results indicate that SeaB is involved in aggregation, biofilm formation and contributes to virulence. Furthermore, immunization with SeaB elicits antibodies and provides protection against Salmonella challenge in a mouse model of infection.

microbiology↗

Circulating immune profiling reveals impaired monocyte states and trajectories driving immunosuppression in glioblastoma

Glioblastoma (GBM) is an aggressive and lethal brain tumor marked by profound local and systemic immune dysfunction. Yet, the diagnostic and therapeutic relevance of peripheral impairments remains undefined. To clinically dissect their underlying mechanisms and pathological implications, we combined mass and flow cytometry with single-cell RNA-sequencing of peripheral blood mononuclear cells from GBM patients and healthy donors. GBM blood profiles were characterized by heterogeneous changes in classical monocytes, encompassing expanded, reduced and unchanged subsets, presenting distinct functional states, including antigen-presenting, interferon and metabolic subsets. Additional adaptations included myeloid-derived suppressor cell (MDSC) expansion and loss of non-classical monocytes. Trajectory analyses positioned MDSCs as an intermediate state, in continuum with the metabolic subset. Single-cell RNA-sequencing further showed antigen-presenting monocyte propensity to differentiate into tumor-associated macrophages. Circulating monocytes shared a "GBM-classical monocytic signature" exhibiting low MHC class II expression, altered cell-cell communication and increased anti-inflammatory mediators, such as IL1R2 and CD163. Lastly, lymphocyte alterations included decreased proportions of CD4+ T, natural killer (NK) and CD56+ T cells, retaining relatively conserved activation profiles, exemplified by up-regulation of alarmins S100A8/S100A9. These findings map systemic immune reprogramming in GBM, suggesting new avenues for non-invasive biomarker discovery and therapeutic strategies to restore anti-tumor immunity.

cancer biology↗

Lysosome-Dependent Sphingolipid Regulation as a potential therapeutic Target for Cohen Syndrome

Cohen Syndrome (CS) is a rare autosomal recessive disorder caused by biallelic mutations in the VPS13B gene, affecting approximately 50,000 individuals worldwide. Clinical features include postnatal microcephaly, developmental delay, intellectual disability, neutropenia, and retinal dystrophy. VPS13B belongs to the bridge-like lipid transfer protein (BLTP) family, which also includes VPS13A, VPS13C, and VPS13D in mammals. Although its precise function remains unclear, VPS13B localizes to the Golgi complex, and its loss leads to Golgi fragmentation, a consistent cellular phenotype observed in VPS13B-deficient models. We used the rescue of this cell-autonomous phenotype as the basis for a microscopy-based high-throughput screening assay, through which we identified several small molecules capable of restoring Golgi morphology. Most of these compounds shared a common mechanism of action, relying on lipid accumulation in acidic organelles due to their cationic amphiphilic properties (CADs). Lipidomic profiling revealed a reduction in C18-N-acyl sphingolipids as a characteristic feature of VPS13B knockout (KO) cells, a defect that was reversed by the majority of the identified compounds. To evaluate the physiological relevance of these findings, we tested two compounds, azelastine and raloxifene, in cortical organoids (COs) derived from VPS13B KO human pluripotent stem cells. These organoids exhibited smaller size and reduced neurite outgrowth, reminiscent of the secondary microcephaly observed in CS patients. Treatment with either compound significantly recovered the neurite outgrowth phenotype, reinforcing physiological relevance of the compound effect. Taken together, our findings highlight a potential effect of the CAD on lysosome-dependent sphingolipid regulation, allowing the recovery of Golgi integrity and partial rescue in the cortical organoid CS model. Although additional studies are required to delineate the exact molecular targets, this work uncovers a potential mechanism that could be leveraged for the treatment of CS.

cell biology↗

Transposon mutagenesis reveals differential essential pathways in model Salmonella Typhimurium strains SL1344 and SL3261

Salmonella enterica is a globally disseminated pathogen that is the cause of over 100 million infections per year. The resulting diseases caused by S. enterica are dependent upon host susceptibility and the infecting serovar. For example, Typhoid fever is a human exclusive disease caused by S. enterica serovar Typhi. As S. enterica serovar Typhimurium induces a typhoid like disease in mice, this model has been used extensively to illuminate various aspects of Salmonella infection and host responses. However, the infection is so severe that even one infectious bacterium injected intravenously will cause mortality in 100% of animals within one week of infection. Due to this severity, researchers often use strains of mice resistant to infection or attenuated Salmonella strains to understand adaptive immunity and infection dynamics. Despite decades of research, many aspects of Salmonella infection and fundamental biology remain poorly understood. Here, we use a Transposon Insertion Sequencing (TIS) technique to interrogate the essential genomes of widely used isogenic wild-type and attenuated S. Typhimurium strains. We reveal differential essential pathways between strains, provide a direct link between iron starvation, DNA synthesis and bacterial membrane integrity, and show S. Typhi and S. Typhimurium have similar requirements for iron.

microbiology↗