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Biology subjects

Santarelli, P.

Publications and source records attributed to Santarelli, P..

2 recordsLinked to original sources

Chronic mycobacteria infection triggers macrophage senescence

Chronic infections with intracellular pathogens such as Mycobacterium abscessus (Mab) pose significant health challenges due to their capacity to persist within host cells and evade immune responses. This study investigates the cellular responses to chronic Mab infection in macrophages, particularly focusing on cellular senescence. Using an in vitro model of chronic infection in murine alveolar-like macrophages, we found that Mab induces a senescent phenotype characterised by decreased proliferation, altered morphology, DNA damage signalling activation, and upregulation of senescence markers such as p21 and SA-{beta}-galactosidase. Intriguingly, senescent macrophages secreted pro-inflammatory cytokines, consistent with a senescence-associated secretory phenotype (SASP), which promoted secondary senescence in neighbouring uninfected cells. This paracrine transmission of senescence underscores a potentially deleterious effect of Mab-induced SASP on tissue microenvironments, fostering a pro-inflammatory niche that may contribute to pathogen persistence. These findings highlight Mab-induced senescence as a key factor in chronic infection pathology, suggesting that targeting senescent cells and SASP-related pathways could enhance treatment outcomes in chronic bacterial infections.

microbiology↗

Biochemical properties of chromatin domains define genome compartmentalization

Chromatin three-dimensional (3D) organization inside the cell nucleus determines the separation of euchromatin and heterochromatin domains. Their segregation results in the definition of active and inactive chromatin compartments, whereby the local concentration of associated proteins, RNA and DNA results in the formation of distinct subnuclear structures. Thus, chromatin domains spatially confined in a specific 3D nuclear compartment are expected to share similar epigenetic features and biochemical properties, in terms of accessibility and solubility. Based on this rationale, we developed the 4f-SAMMY-seq to map euchromatin and heterochromatin based on their accessibility and solubility, starting from as little as 10,000 cells. Adopting a tailored bioinformatic data analysis approach we reconstruct also their 3D segregation in active and inactive chromatin compartments and sub-compartments, thus recapitulating the characteristic properties of distinct chromatin states. A key novelty is the capability to map both the linear segmentation of open and closed chromatin domains, as well as their 3D compartmentalization in one single experiment.

genomics↗