Division of Biological Sciences, University of Montana, Missoula, Montana, USA.
Department of Biology, McMaster University, Hamilton, Ontario, Canada.
Mol Ecol. 2023 Jul;32(13):3483-3496. doi: 10.1111/mec.16953. Epub 2023 Apr 19.
Phenotypic plasticity can play an important role in the ability of animals to tolerate environmental stress, but the nature and magnitude of plastic responses are often specific to the developmental timing of exposure. Here, we examine changes in gene expression in the diaphragm of highland deer mice (Peromyscus maniculatus) in response to hypoxia exposure at different stages of development. In highland deer mice, developmental plasticity in diaphragm function may mediate changes in several respiratory traits that influence aerobic metabolism and performance under hypoxia. We generated RNAseq data from diaphragm tissue of adult deer mice exposed to (1) life-long hypoxia (before conception to adulthood), (2) post-natal hypoxia (birth to adulthood), (3) adult hypoxia (6-8 weeks only during adulthood) or (4) normoxia. We found five suites of co-regulated genes that are differentially expressed in response to hypoxia, but the patterns of differential expression depend on the developmental timing of exposure. We also identified four transcriptional modules that are associated with important respiratory traits. Many of the genes in these transcriptional modules bear signatures of altitude-related selection, providing an indirect line of evidence that observed changes in gene expression may be adaptive in hypoxic environments. Our results demonstrate the importance of developmental stage in determining the phenotypic response to environmental stressors.
表型可塑性在动物耐受环境压力的能力中起着重要作用,但塑性反应的性质和幅度通常取决于暴露的发育时间。在这里,我们研究了高原鹿鼠(Peromyscus maniculatus)膈肌在不同发育阶段暴露于缺氧时的基因表达变化。在高原鹿鼠中,膈肌功能的发育可塑性可能介导了几种呼吸特征的变化,这些变化影响着在低氧环境下的有氧代谢和表现。我们从暴露于(1)终生缺氧(从受孕前到成年)、(2)出生后缺氧(出生到成年)、(3)成年后缺氧(仅在成年期的 6-8 周内)或(4)常氧的成年鹿鼠的膈肌组织中生成了 RNAseq 数据。我们发现了五组受缺氧影响而差异表达的共调控基因,但差异表达的模式取决于暴露的发育时间。我们还鉴定了四个与重要呼吸特征相关的转录模块。这些转录模块中的许多基因都具有与海拔相关的选择特征,这为观察到的基因表达变化可能在低氧环境中具有适应性提供了间接证据。我们的研究结果表明,发育阶段在决定对环境胁迫的表型反应方面起着重要作用。