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Gonzalez-Granado, J. M.

Publications and source records attributed to Gonzalez-Granado, J. M..

3 recordsLinked to original sources

Role of Lamin A/C on dendritic cell function in antiviral immunity

Dendritic cells (DCs) play a crucial role in orchestrating immune responses, particularly in promoting IFN{gamma}-producing-CD8 cytotoxic T lymphocytes (CTLs) and IFN{gamma}-producing -CD4 T helper 1 (Th1) cells, which are essential for defending against viral infections. Additionally, the nuclear envelope protein lamin A/C has been implicated in T cell immunity. Nevertheless, the intricate interplay between innate and adaptive immunity in response to viral infections, particularly the role of lamin A/C in DC functions within this context, remains poorly understood. In this study, we demonstrate that mice lacking lamin A/C in myeloid LysM promoter-expressing cells exhibit a reduced capacity to induce Th1 and CD8 CTL responses, leading to impaired clearance of acute primary Vaccinia virus (VACV) infection. Remarkably, in vitro-generated granulocyte macrophage colony-stimulating factor bone marrow-derived DCs (GM-CSF BMDCs) show high levels of lamin A/C. Lamin A/C absence on GM-CSF BMDCs does not affect the expression of costimulatory molecules on the cell membrane but it reduces the cellular ability to form immunological synapses with naive CD4 T cells. Lamin A/C deletion induces alterations in NF{kappa}B nuclear localization, thereby influencing NF{kappa}B-dependent transcription. Furthermore, lamin A/C ablation modifies the epigenetic signature of BMDCs, predisposing these cells to mount a less effective antiviral response upon TLR stimulation. This study highlights the critical role of DCs in interacting with CD4 T cells during antiviral responses and elucidates the molecular mechanisms through which lamin A/C modulates DC function via epigenetic and transcriptional regulation.

immunology↗

Segmental regulation of intestinal motility by colitis and the adaptive immune system in the ileum and colon

Gastrointestinal motility disturbances are common in inflammatory bowel disease (IBD); however, their exact causes remain elusive. This study explores the motility of various intestinal segments in both healthy and IBD states, focusing on the role of the adaptive immune system. Using a dextran sulfate sodium (DSS)-induced colitis model in mice lacking B and T lymphocytes, we evaluated motility in the ileum and colon using an organ bath system. In healthy mice, absence of adaptive lymphocytes in the ileum reduces muscarinic receptor sensitivity or increase cholinesterase activity. Colitis increases motility, intensifying the intensity and frequency of spontaneous contractions while decreasing responsiveness to cholinergic stimuli. In the proximal colon, healthy mice lacking adaptive immune system exhibit increased contractile capacity and frequency, along with reduced muscarinic receptor sensitivity or increased cholinesterase activity. Conversely, colitis diminishes contractile capacity regardless of genotype, while recovery increases frequency of spontaneous contractions. In the mid-colon during colitis, healthy mice lacking adaptive immune system exhibit reduced muscarinic receptor sensitivity or increased cholinesterase activity, while the absence of adaptive lymphocytes during colitis exacerbates both spontaneous and stimuli-induced contractions. Finally, in the distal colon, the adaptive immune system enhances stimuli-induced contractility in health and reduces contractility and enhances muscarinic responses during colitis. Overall, intestinal motility in both the ileum and colon is finely regulated, with the adaptive immune system playing a crucial role. These findings contribute to our understanding of IBD pathology, emphasizing the importance of investigating gastrointestinal motility in IBD research.

immunology↗

Nuclear envelope disruption triggers hallmarks of aging in lung alveolar macrophages

Aging is characterized by gradual immune dysfunction and increased risk for many diseases, including respiratory infections. Genomic instability is thought to play a central role in the aging process but the mechanisms that damage nuclear DNA in aging are insufficiently defined. Cells that migrate or reside within confined environments experience forces applied to their nucleus, leading to transient nuclear envelope (NE) ruptures. NE ruptures are associated with DNA damage, and Lamin A/C is required to limit these events. Here, we show that Lamin A/C protects lung alveolar macrophages from NE rupture and hallmarks of aging. Lamin A/C ablation in immune cells results in a selective depletion of lung alveolar macrophages (AM) and a heightened susceptibility to influenza infection. Lamin A/C-deficient AM that persist display constitutive nuclear envelope rupture marks, DNA damage and p53-dependent senescence. In wild-type mice, we found that AM migrate within constricted spaces in vivo, at heights that induce NE rupture and DNA damage. AM from aged wild-type mice and from Lamin A/C-deficient mice share an upregulated lysosomal signature with CD63 expression, and we find that CD63 is required to clear damaged DNA in macrophages. We propose that induction of genomic instability by NE disruption represents a mechanism of aging in alveolar macrophages.

immunology↗