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Lopez-Lopez, T.

Publications and source records attributed to Lopez-Lopez, T..

3 recordsLinked to original sources

Coupling lysosomal polarity and purinergic signaling regulates B cell activation

B cell activation is initiated by engagement of the B cell receptor (BCR) with immobilized antigens, which triggers changes in cell polarity promoting the establishment of an immune synapse that is further shaped by signals from the microenvironment. However, how cell polarity coordinates the sensing of extracellular cues to regulate B cell activation remains unclear. Here, we investigated the impact of adenosine triphosphate (ATP), a conventional danger signal related to inflammation, on B cell function. We found that ATP released by B cells, as well as exogenously added ATP, acts as a promoter of the extraction and presentation of immobilized antigens. Endogenous ATP was produced by mitochondria recruited at the immune synapse and locally released via Pannexin 1 channels to sustain purinergic signaling at the immune synapse. We identified P2RX4 trafficking to the plasma membrane through the Rab6a+ trans-Golgi network and VAMP7+/LAMP1+ lysosomes as a key step in this response. In addition, the local activation of P2RX4 at the immune synapse triggered a migratory switch from motile to sessile, suggesting that this receptor acts as a negative regulator of B cell migration. These findings reveal ATP as a local enhancer of B cell function, and an unexpected role of P2RX4 as a molecular switch for B cell activation.

immunology↗

Sympathetic signaling directs macrophage efferocytosis in thermogenic adipose tissue

Brown adipose tissue (BAT) undergoes significant remodeling upon thermogenic activation. During this process, brown adipocytes and immune cells, such as macrophages, contribute to thermogenesis and energy expenditure. Among the various functions exerted by macrophages, the clearance of dying cells, known as efferocytosis, is a key regulator of tissue remodeling across multiple organs in both physiological and pathological contexts. However, whether macrophages contribute to BAT remodeling and thermogenic adaptation through efferocytosis, and what drives efferocytosis in BAT, remain unknown. Here, we identify norepinephrine (NE), which is highly released in BAT upon cold challenge, as a tissue-specific trigger of macrophage efferocytosis. Transcriptomic and lipidomic analyses of BAT after cold exposure revealed a population of lipid-handling macrophages enriched in efferocytosis-related transcripts. Consistently, cold exposure enhanced the efferocytic capacity of BAT macrophages. These effects were recapitulated by stimulation of macrophages with NE and were dependent on {beta}2-adrenergic signaling and the efferocytic receptors AXL and MERTK. Mice lacking Axl and Mertk in macrophages exhibited impaired lipolysis, reduced thermogenic gene expression, and increased adipose tissue inflammation. Together, our findings identify a so far neglected role for NE in adipose tissue, linking sympathetic activation to macrophage efferocytosis and thereby promoting tissue remodeling and metabolic adaptation. Uncovering the role of NE in one of the core functions of macrophages, efferocytosis, not only expands our understanding of the multifaceted effects of NE on the immune system but also highlights therapeutic potential for targeting impaired efferocytosis in metabolic disorders. One sentence summaryNorepinephrine is a novel trigger of macrophage efferocytosis in brown adipose tissue, linking sympathetic signaling to metabolic adaptation and macrophage tissue remodeling responses through {beta}2-adrenergic and Axl/Mertk pathways.

immunology↗

SPARC is a new driver of early breast tumor progression via TGF-β -dependent mechanism.

Ductal carcinoma in situ (DCIS) is a pre-invasive lesion that is thought to be a precursor of invasive ductal carcinoma (IDC). The challenge lies in discriminating between DCIS progressors and DCIS non-progressors, often resulting in over- or under-treatment in many cases. Membrane type 1 (MT1)-matrix metalloproteinase (MMP) has been previously identified as an essential gene involved in DCIS progression. Here, RNA-sequencing analysis of MT1-MMPhigh subpopulation derived from invasive breast tumors in the intraductal xenograft model was compared against a dataset of human high-grade DCIS, and Secreted Protein Acidic and Cysteine Rich (SPARC) has emerged as a master candidate involved in early breast tumor progression. We report that SPARC is up-regulated in DCIS as compared to normal breast epithelial tissues, and further increased in IDC relative to synchronous DCIS foci. We found a positive correlation between SPARC and MT1-MMP expression in DCIS lesions. At the mechanistic level, depletion of SPARC reduced MT1-MMP expression, the degradative capacity of the cells and the activation of the TGF-{beta} signalling canonical pathway. Pharmacological inhibition of the TGF-{beta} signalling pathway decreased SPARC and MT1-MMP at the mRNA and protein level, and concomitantly the cell degradative capacity and 3D cell migration. Strikingly, inhibition of the TGF-{beta} signalling pathway limits the invasive transition of breast tumors in a new triple-negative mouse intraductal syngeneic xenograft model. Moreover, high SPARC expression was positively correlated with both, TGF-{beta} and its receptor, TGFBRI, in a basal type of breast cancer collection supporting our findings. This study identifies SPARC as a new driver of early breast tumor progression via a TGF-{beta}-dependent mechanism, suggesting TGF-{beta} signaling pathway as a potential target for patients with high SPARC expression.

cancer biology↗