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Meca-Laguna, G.

Publications and source records attributed to Meca-Laguna, G..

3 recordsLinked to original sources

The Old genetically heterogeneous Mouse Model Recapitulates Chronic and Persistent Idiopathic Pulmonary Fibrosis with Strong Senescence Signatures

Idiopathic Pulmonary Fibrosis (IPF) is a chronic and progressive lung disease that primarily afflicts people over the age of 65. IPF is characterized by lung scarring, an elevated senescence burden, and interstitial pneumonia, resulting in disability and mortality. The growing aging population worldwide, limited effectiveness of current treatments, and high economic burden underscore the need for robust models to investigate the underlying mechanisms and test novel interventions. Despite broad preclinical use, the bleomycin-induced murine model has notable limitations. Animals subjected to a single dose of bleomycin administration undergo recovery in weight and behavior between 21 and 28 days after administration, which is contrary to the progressive nature of IPF. Previous reports have shown that repetitive instillation of bleomycin phenocopies this aspect of the human disease. However, these methods are time-consuming and complex. Although IPF is typically associated with advanced age, most research is conducted in 6 to 8-week-old mice, which lack the age-related structural and metabolic deficits seen in humans. In this study, we report an improved model of IPF using 17-month-old UM-HET3 mice subjected to a single oropharyngeal bleomycin dosing that better mimics the persistent nature of the disease. Lung histology and immunohistochemistry (IHC) confirm persistence of fibrosis and senescence in mice 10 weeks after bleomycin administration. Furthermore, bulk RNA sequencing (RNA-Seq) analysis revealed a distinct set of gene expression signatures that is more consistent with chronic human fibrosis. This model offers greater insight into IPF pathogenesis, and we anticipate that it will enhance confidence in the human translatability of candidate therapeutic interventions.

molecular biology↗

γδ T Cells Target and Ablate Senescent Cells in Aging and Alleviate Pulmonary Fibrosis

A variety of physiological and pathological stimuli elicit the cellular senescence response. Immune cells are known to execute surveillance of infected, cancerous, and senescent cells, and yet senescent cells accumulate with age and drive inflammation and age-related disease. Understanding the roles of different immune cells in senescent cell surveillance could enable the development of immunotherapies against biological aging and age-related disease. Here, we report the role of human gamma delta ({gamma}{delta}) T cells in eliminating senescent cells. Human donor V{gamma}9v{delta}2 T cells selectively remove senescent cells of different cell types and modes of induction while sparing healthy cells, with parallel findings in mouse cells. We find that senescent cells express high levels of multiple {gamma}{delta} T cell ligands, including cell-surface BTN3A1. Individually blocking NKG2D or {gamma}{delta} TCR of {gamma}{delta} T cells only partially reduces V{gamma}9v{delta}2 T cell cytotoxicity, evidencing their versatility in senescence removal. {gamma}{delta} T cells expand in response to the induction of a mouse model of idiopathic pulmonary fibrosis (IPF), accompanied by the emergence of senescent cells, and colocalize with senescent cells in lung tissue from patients with IPF. Finally, we show that adoptive cell transfer of {gamma}{delta} T cells into an IPF mouse model reduces the number of p21-expressing senescent cells in affected lung tissue and improves outcomes. {gamma}{delta} T cells or modalities that activate their surveillance activity present a potent approach for removing senescent cells and their attendant contribution to aging and disease.

immunology↗

Inhibition of PIKfyve kinase induces senescent cell death by suppressing lysosomal exocytosis and leads to improved outcomes in a mouse model of idiopathic pulmonary fibrosis

Cellular senescence is a pivotal hallmark of aging, which limits lifespan and contributes to the development of age-related diseases. Efforts to identify senolytics - drugs that selectively eliminate senescent cells, have so far yielded candidates with limited translational potential. Here, we characterize the senescent cell surface proteomic landscape and identify proteins that are abnormally present on the plasma membrane of senescent cells. Many of these proteins are lysosomal enzymes, pointing to lysosomal exocytosis as a likely mechanism that leads to their persistent display on the cell surface. Blocking lysosomal exocytosis via PIKfyve kinase inhibition with a small molecule drug apilimod results in selective killing of senescent cells in vitro, while this treatment does not affect quiescent and proliferating cells. Furthermore, apilimod can be safely administered in vivo and effectively removes senescent cells and reduces tissue remodeling in a bleomycin mouse model of pulmonary fibrosis. We conclude that apilimod is an effective and well-tolerated senolytic that may be useful for the treatment of senescence-associated diseases of aging.

molecular biology↗