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Bayet, M.

Publications and source records attributed to Bayet, M..

3 recordsLinked to original sources

Galleria mellonella as a novel invertebrate model for studying Ehrlichia ruminantium pathogenesis and host-pathogen interactions

Ehrlichia ruminantium, the causative agent of heartwater disease, is an obligate intracellular bacterium that poses significant economic threats to livestock production in endemic regions. Current research models present substantial ethical, logistical, and economic constraints, particularly for studying host-pathogen interactions within arthropod vectors. Here we establish Galleria mellonella larvae as a tractable invertebrate infection model for Ehrlichia ruminantium, enabling experimental investigation of pathogen persistence and host-pathogen interactions in an arthropod system. Following infection, G. mellonella proved susceptible to E. ruminantium with moderate mortality and remarkable bacterial persistence. Using rhodamine-labeled bacteria and fluorescence microscopy, we tracked bacterial dissemination from injection sites to systemic distribution in characteristic segmental patterns throughout the larval body. Critically, we confirmed intracellular localization of E. ruminantium within hemocytes, the primary immune cells of G. mellonella. Quantitative PCR analysis revealed stable bacterial loads over the study period, indicating bacterial persistence within the host. These findings demonstrate that E. ruminantium can hijack the innate immune system of G. mellonella, similar to its behavior in natural hosts. The segmental bacterial distribution suggests exploitation of hemolymph circulation and sessile hemocyte populations, providing new insights into potential mechanisms of pathogen persistence. This model offers significant advantages: ethical acceptability, cost-effectiveness, experimental tractability, and compatibility with high-throughput screening approaches. The G. mellonella system represents a valuable complement to existing mammalian models and provides a unique platform for investigating arthropod-specific aspects of E. ruminantium biology, screening antimicrobial compounds, and understanding mechanisms of immune evasion that may inform strategies for heartwater disease control.

microbiology↗

Targeting glucocorticoid-induced CD20 activation in preclinical models of B-ALL

Pediatric B-cell acute lymphoblastic leukemia (B-ALL) is effectively controlled with contemporary multi-agent chemotherapy, resulting to 5-year survival rates above 90%. However, relapse occurs in 15-20% of patients due to minimal residual disease (MRD), characterized by the presence of persisting and resistant leukemic cells, and associated with a poor clinical outcome. Despite its prognostic relevance, the molecular features driving MRD are poorly characterized. In this study, we developed patient-derived xenograft (PDX) models from matched diagnosis and relapse B-ALL samples combined to chemotherapy to mimic MRD in vivo. Drug-tolerant leukemic cells were profiled using single-cell RNA sequencing and we identified a transcriptionally distinct MRD-like population enriched for cell-quiescence, inflammatory stress, and B-cell receptor pathway signatures. Strikingly, the B-lymphocyte surface antigen CD20, encoding by MS4A1 gene, emerged as a consistent upregulated marker in MRD cells from PDXs and patients with diverse oncogenic subtypes. We further demonstrated that CD20 expression is induced by glucocorticoid exposure, creating a therapeutic opportunity where anti-CD20 monoclonal antibodies selectively eradicated MRD cells in vivo. Our data highlight CD20 not only as a biomarker but as an actionable vulnerability in B-ALL MRD, supporting clinical evaluation of anti-CD20 immunotherapy during induction treatment to kill drug-resistant cells and reduce relapse risk.

cancer biology↗

Loss of HSC stemness identity is associated with exhaustion and hyporesponsiveness in GATA2 deficiency syndrome

Germline GATA2 mutations lead to a syndrome involving both immunodeficiency and myeloid malignancies. Since GATA2 is a key player in hematopoietic initiation and development, we specify the impact of these germline mutations on hematopoietic homeostasis by generated a knock-in mouse model expressing the recurrent Gata2 R396Q missense mutation. These mice exhibit a hematopoietic stem and progenitor cell (HSPC) compartment profoundly impacted with increased HSC number, decreased self-renewal potential and inability to respond to acute inflammatory stimuli. Moreover, mutated HSPCs are predisposed to be hyporesponsive, as evidenced by lower interferon signaling and enrichment of inflammatory stress signatures. Furthermore, a Gata2 allelic specific expression results in a molecular and functional heterogeneity of the mutated Long Term-HSC population. Altogether, we highlight that Gata2 plays a crucial role in the ability of HSCs to perceive and respond to their environment, and that germline mutation contributes to the decline in HSC functionality.

cell biology↗