PO.TB10.01 · 肿瘤生物学

肺祖细胞中年龄相关的转录及可变剪接变化易致免疫功能障碍

Age-related transcriptional and alternative splicing changes in lung progenitor cells predisposing to immune dysfunction

海报缩略图:肺祖细胞中年龄相关的转录及可变剪接变化易致免疫功能障碍
编号 2256 展板 5 时间 4/20 09:00–12:00 区域 Section 33 主讲 Mohammed Toufiq, B Eng
分会场 Tumorigenesis and Early Microenvironmental Trajectories
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作者与单位 Authors & Affiliations

Mohammed Toufiq1, Florentina Marches2, Hyeon Gu Kang2, Te-Chia Wu2, Ryan Englander2, Sanaz Keshavarz Shahbaz2, Marina Yurieva2, Phylip Chen3, Mark E Peeples4, Adolfo Garcia-Sastre5, Michael Schotsaert6, Damien Chaussabel2, Karolina Palucka1, Olga A. Anczukow-Camarda1

1The Jackson Laboratory for Genomic Medicine, Institute for Systems Genomics, University of Connecticut, Farmington, CT,2The Jackson Laboratory for Genomic Medicine, Farmington, CT,3Center for Microbe and Immunity Research, Abigail Wexner Research Institute at Nationwide Children's Hospital, Columbus, OH,4Center for Microbe and Immunity Research, Abigail Wexner Research Institute at Nationwide Children's, Department of Pediatrics, College of Medicine, and Infectious Disease Institute The Ohio State University, Columbus, OH,5Department of Microbiology, Global Health and Emerging Pathogens Institute, Department of Medicine, Division of Infectious Diseases, The Tisch Cancer Institute, Department of Pathology, Molecular and Cell-Based Medicine, Icahn School of Medicine at Mount Sinai, New York, NY,6Department of Microbiology, Global Health and Emerging Pathogens Institute, Icahn Genomics Institute, Marc and Jennifer Lipschultz Institute for Precision Medicine, Icahn School of Medicine at Mount Sinai, New York, NY

摘要 Abstract

中文摘要
目的:衰老是肺癌的最大风险因素,而肺癌是全球癌症相关死亡的首要原因。随着年龄增长,免疫监视受损和细胞衰老形成促肿瘤微环境,破坏上皮稳态并促进致癌性重塑。然而,肺内年龄相关的转录和剪接变化如何导致免疫失调和癌症易感性的分子机制仍知之甚少。我们对肺祖细胞进行了整合转录组分析,以识别易致免疫功能障碍和早期致瘤变化的年龄相关分子改变。 方法:来自年轻(年龄:18岁至27岁,n=5)和年老(年龄:42岁至67岁,n=5)供者的原代人支气管上皮细胞,按照Fulcher等人的方法在2D培养中富集祖细胞7天。我们进行了Illumina短读长和PacBio长读长RNA测序。通过IsoSeq3和SQANTI3对长读长进行异构体水平分析。差异表达使用DESeq2(FDR < 0.05)分析,可变剪接使用rMATS(>10% Delta PSI,FDR < 0.05)结合长读长衍生的转录组进行分析。剪接事件的功能后果使用SpliceDecoder预测。 结果:我们鉴定出47个差异表达基因(随年龄36个上调,11个下调)。值得注意的是,IL18、MMP25、PGLYRP4、THY1、CDH2、MFAP5和PLXNC1在年老供者中上调,反映出炎症和免疫应答程序的激活以及上皮和细胞外基质重塑的改变。我们还检测到991个年龄相关的差异剪接事件,涉及632个基因。其中,内含子保留发生在免疫基因中,包括HLA-A、HLA-B、HLA-C、TRIM65和FOSB,而盒式外显子剪接见于IFNAR2-IL10RB、DMKN、HLA-F-AS1和NOD1。SpliceDecoder预测这些年龄相关的剪接改变会引入提前终止密码子、改变编码序列并修饰蛋白结构域,可能导致功能获得或功能丧失效应。最后,长读长RNA测序鉴定出42,206个全长剪接异构体,其中大多数为新型且不存在于参考转录组中,揭示了肺祖细胞中广泛的异构体多样性。 结论:我们的整合方法表明,衰老通过基因表达和剪接的变化重塑转录组图景,这可能导致免疫功能障碍和上皮重塑。这些变化可能形成促炎环境,增强对致癌转化的易感性并破坏组织稳态。总之,这些发现揭示了将衰老与肺癌风险联系起来的分子机制,并确定了用于预防和干预的潜在生物标志物和治疗靶点。
查看英文原文 English abstract
Purpose: Aging is the greatest risk factor for lung cancer, the leading cause of cancer-related deaths worldwide. With advancing age, impaired immune surveillance and cellular senescence create a pro-tumorigenic microenvironment that disrupts epithelial homeostasis and promotes oncogenic remodeling. However, the molecular mechanisms by which age-related transcriptional and splicing changes in lung contribute to immune dysregulation and cancer susceptibility remain poorly understood. We performed integrated transcriptomic profiling of lung progenitor cells to identify age-associated molecular alterations predisposing to immune dysfunction and early tumorigenic changes. Methods: Primary human broncho-epithelial cells from young (age: 18y to 27y, n=5) and old (age: 42y to 67y, n=5) donors were enriched for progenitor cells in 2D culture for seven days following Fulcher et al. We performed Illumina short-read and PacBio long-read RNA-sequencing. Isoform-level analysis on long-reads was performed through IsoSeq3 and SQANTI3. Differential expression was analyzed using DESeq2 (FDR < 0.05) and alternative splicing using rMATS (>10% Delta PSI, FDR < 0.05) with a long-read derived transcriptome. Functional consequences of splicing events were predicted using SpliceDecoder. Results: We identified 47 differentially expressed genes (36 upregulated, 11 downregulated with age). Notably, IL18, MMP25, PGLYRP4, THY1, CDH2, MFAP5, and PLXNC1 were upregulated in older donors, reflecting activation of inflammatory and immune response programs alongside altered epithelial and extracellular matrix remodeling. We also detected 991 age-related differentially spliced events in 632 genes. Among these, intron retention occurred in immune genes including HLA-A, HLA-B, HLA-C, TRIM65, and FOSB, while splicing of cassette exons was observed in IFNAR2-IL10RB, DMKN, HLA-F-AS1, and NOD1. SpliceDecoder predicted that these age-related splicing alterations introduce premature stop codons, alter coding sequences, and modify protein domains, potentially leading to gain- or loss-of-function effects. Finally, long-read RNA-sequencing identified 42,206 full-length spliced isoforms, the majority of which were novel and absent from reference transcriptomes, revealing extensive isoform diversity in lung progenitor cells. Conclusions: Our integrated approach demonstrates that aging reshapes the transcriptomic landscape through changes in gene expression and splicing, that may contribute to immune dysfunction and epithelial remodeling. These changes may create a pro-inflammatory environment that enhances susceptibility to oncogenic transformation and disrupts tissue homeostasis. Together, these findings uncover molecular mechanisms linking aging to lung cancer risk and identify potential biomarkers and therapeutic targets for prevention and intervention.
利益披露 Disclosure
M. Toufiq, None.. F. Marches, None.. H. Kang, None.. T. Wu, None.. R. Englander, None.. M. Yurieva, None.. P. Chen, None.. M. E Peeples, None.. A. Garcia-Sastre, None.. M. Schotsaert, None.. D. Chaussabel, None.. K. Palucka, None.. O. A. Anczukow-Camarda, None.

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