Search bioRxiv⌕ Search

Biology subjects

Ishiwata, T.

Publications and source records attributed to Ishiwata, T..

2 recordsLinked to original sources

Identification and characterization of inflammatory LILR and fibrotic SPP1 macrophages in chronic lung allograft dysfunction

Chronic lung allograft dysfunction (CLAD) is a major cause of death after lung transplantation and manifests principally as bronchiolitis obliterans syndrome (BOS) or restrictive allograft syndrome (RAS). Although pulmonary macrophages are key regulators of lung injury and repair, their contributions to CLAD pathogenesis remain under-examined. We performed single-cell RNA sequencing-based transcriptomic analysis of CLAD (7 BOS, 7 RAS) and control lung tissue (n = 6), complemented by comparative and functional analyses. Two distinct macrophage populations were identified in CLAD: inflammatory macrophages expressing leukocyte immunoglobulin-like receptors (LILR), and fibrotic macrophages characterized by expression of osteopontin (SPP1). LILR macrophages were present in both BOS and RAS, whereas SPP1 macrophages were selectively enriched in RAS. Both populations were identified in idiopathic pulmonary fibrosis and cross-tissue comparisons. Surface marker-based sorting strategies were developed to isolate both populations. Functional studies demonstrated that LILR macrophages exhibited enhanced phagocytic activity, promoted T cell chemotaxis and secreted inflammatory mediators, whereas SPP1 macrophages produced soluble factors that drove fibroblast activation and contraction. These findings identify distinct inflammatory and fibrotic macrophage programs associated with CLAD, link RAS to conserved fibrotic macrophage states observed in pulmonary fibrosis and highlight macrophage populations as potential therapeutic targets for inflammatory and fibrotic allograft injury.

immunology↗

Distinct fibrotic, epithelial and immune transcriptomic programs in phenotypes of chronic lung allograft dysfunction

BackgroundChronic lung allograft dysfunction (CLAD) is the major cause of late mortality after lung transplantation and includes two principal phenotypes, bronchiolitis obliterans syndrome (BOS) and restrictive allograft syndrome (RAS). RAS and other phenotypes with RAS-like opacities (RLO) on chest imaging have a poorer prognosis. Despite clear clinical and pathological differences, molecular distinctions between phenotypes remain poorly defined. We aimed to explore gene transcriptional profiles across CLAD phenotypes and relevant controls. MethodsWe performed bulk RNA sequencing on explanted lung tissue from 45 lung transplant recipients with end-stage CLAD (20 with RLO and 25 without RLO). Samples from twenty-seven control donor and lobectomy lungs and sixteen idiopathic pulmonary fibrosis (IPF) lungs served as comparators. Non-negative matrix factorization (NMF) was used to identify latent transcriptomic signatures, which were correlated with clinical, radiologic, and histopathologic features. ResultsNMF identified seven distinct gene signatures that segregated CLAD phenotypes. RLO-CLAD lungs were enriched for extracellular matrix remodeling and B-cell/plasma cell-associated signatures, overlapping partly with IPF, whereas non-RLO-CLAD showed relative enrichment of epithelial injury and surfactant-response pathways. Signatures related to epithelial homeostasis and ciliary/microtubule function were progressively reduced from control lungs to non-RLO-CLAD and were most suppressed in RLO-CLAD. ConclusionsRLO-CLAD and non-RLO-CLAD, aligning with RAS and BOS phenotypes, show distinct transcriptomic signatures. RLO-CLAD is characterized by profibrotic and humoral immune signatures with profound epithelial dysfunction, whereas non-RLO-CLAD shows relative enrichment of epithelial injury responses. These data provide molecular stratification of CLAD and support the development of phenotype-specific biomarkers and targeted therapies.

bioinformatics↗