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Integration of metabolomics and transcriptomics reveals convergent pathways driving radiation-induced salivary gland dysfunction

生物 转录组 代谢组学 谷胱甘肽 表型 新陈代谢 基因 内科学 内分泌学 唾液 基因表达 代谢途径 生物信息学 癌症研究 唾液腺 生物化学 医学
作者
Lauren Meeks,Diogo de Oliveira Pessôa,Jessica A. Martinez,Kirsten H. Limesand,Megha Padi
出处
期刊:Physiological Genomics [American Physiological Society]
卷期号:53 (3): 85-98 被引量:13
标识
DOI:10.1152/physiolgenomics.00127.2020
摘要

Radiation therapy for head and neck cancer causes damage to the surrounding salivary glands, resulting in salivary gland hypofunction and xerostomia. Current treatments do not provide lasting restoration of salivary gland function following radiation; therefore, a new mechanistic understanding of the radiation-induced damage response is necessary for identifying therapeutic targets. The purpose of the present study was to investigate the metabolic phenotype of radiation-induced damage in parotid salivary glands by integrating transcriptomic and metabolomic data. Integrated data were then analyzed to identify significant gene-metabolite interactions. Mice received a single 5 Gy dose of targeted head and neck radiation. Parotid tissue samples were collected 5 days following treatment for RNA sequencing and metabolomics analysis. Altered metabolites and transcripts significantly converged on a specific region in the metabolic reaction network. Both integrative pathway enrichment using rank-based statistics and network analysis highlighted significantly coordinated changes in glutathione metabolism, energy metabolism (TCA cycle and thermogenesis), peroxisomal lipid metabolism, and bile acid production with radiation. Integrated changes observed in energy metabolism suggest that radiation induces a mitochondrial dysfunction phenotype. These findings validated previous pathways involved in the radiation-damage response, such as altered energy metabolism, and identified robust signatures in salivary glands, such as reduced glutathione metabolism, that may be driving salivary gland dysfunction.
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