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首页> 外文期刊>Pain. >Comparative transcriptome profiling of the human and mouse dorsal root ganglia: an RNA-seq-based resource for pain and sensory neuroscience research
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Comparative transcriptome profiling of the human and mouse dorsal root ganglia: an RNA-seq-based resource for pain and sensory neuroscience research

机译:人和小鼠背根神经节的比较转录组分析:基于RNA-SEQ的疼痛和感官神经科学研究

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摘要

Molecular neurobiological insight into human nervous tissues is needed to generate next-generation therapeutics for neurological disorders such as chronic pain. We obtained human dorsal root ganglia (hDRG) samples from organ donors and performed RNA-sequencing (RNA-seq) to study the hDRG transcriptional landscape, systematically comparing it with publicly available data from a variety of human and orthologous mouse tissues, including mouse DRG (mDRG). We characterized the hDRG transcriptional profile in terms of tissue-restricted gene coexpression patterns and putative transcriptional regulators, and formulated an information-theoretic framework to quantify DRG enrichment. Relevant gene families and pathways were also analyzed, including transcription factors, G-protein-coupled receptors, and ion channels. Our analyses reveal an hDRG-enriched protein-coding gene set (similar to 140), some of which have not been described in the context of DRG or pain signaling. Most of these show conserved enrichment in mDRG and were mined for known drug-gene product interactions. Conserved enrichment of the vast majority of transcription factors suggests that the mDRG is a faithful model system for studying hDRG, because of evolutionarily conserved regulatory programs. Comparison of hDRG and tibial nerve transcriptomes suggests trafficking of neuronal mRNA to axons in adult hDRG, and are consistent with studies of axonal transport in rodent sensory neurons. We present our work as an online, searchable repository (https://www.utdallas.edu/bbs/painneurosciencelab/sensoryomics/drgtxome), creating a valuable resource for the community. Our analyses provide insight into DRG biology for guiding development of novel therapeutics and a blueprint for cross-species transcriptomic analyses.
机译:需要分子神经生物学洞察人类神经组织,以产生慢性疼痛等神经系统疾病的下一代治疗剂。我们从器官供体中获得了人的背根神经节(HDRG)样品,并进行了RNA测序(RNA-SEQ)以研究HDRG转录景观,系统地将其与来自各种人类和直肠组织的公共可用数据进行比较,包括小鼠DRG (MDRG)。我们在组织限制基因共表达模式和推定转录调节器方面表征了HDRG转录概况,并制定了一种信息 - 理论框架,以量化DRG富集。还分析了相关的基因家族和途径,包括转录因子,G蛋白偶联受体和离子通道。我们的分析显示了富含HDRG的蛋白质编码基因集(类似于140),其中一些尚未在DRG或疼痛信号中描述。这些大多数这些展示了MDRG中的富集,并且被用于已知的药物基因产物相互作用。保守丰富大多数转录因素的富集表明,由于进化的监管计划,MDRG是研究HDRG的忠实模型系统。 HDRG和胫骨神经转录om的比较表明将神经元mRNA贩运到成人HDRG中的轴突,并与啮齿动物感觉神经元中的轴突运输的研究一致。我们将我们的工作作为在线,可搜索的存储库(https://www.utdallas.edu/bbs/painneuroscienceLab/sensoryomics/drgtxome),为社区创建了宝贵的资源。我们的分析提供了对DRG生物学的洞察,以指导新的治疗方法和交叉种类转录组分析的蓝图。

著录项

  • 来源
    《Pain.》 |2018年第7期|共21页
  • 作者单位

    Univ Texas Dallas Sch Behav &

    Brain Sci BSB 14-102G 800 W Campbell Rd Richardson TX 75080 USA;

    Univ Texas Dallas Sch Behav &

    Brain Sci BSB 14-102G 800 W Campbell Rd Richardson TX 75080 USA;

    Univ Texas Dallas Sch Behav &

    Brain Sci BSB 14-102G 800 W Campbell Rd Richardson TX 75080 USA;

    Univ Texas Dallas Sch Behav &

    Brain Sci BSB 14-102G 800 W Campbell Rd Richardson TX 75080 USA;

    Univ Texas Dallas Sch Behav &

    Brain Sci BSB 14-102G 800 W Campbell Rd Richardson TX 75080 USA;

    Univ Texas Dallas Sch Behav &

    Brain Sci BSB 14-102G 800 W Campbell Rd Richardson TX 75080 USA;

    Univ Texas Dallas Sch Behav &

    Brain Sci BSB 14-102G 800 W Campbell Rd Richardson TX 75080 USA;

    Univ Texas Dallas Sch Behav &

    Brain Sci BSB 14-102G 800 W Campbell Rd Richardson TX 75080 USA;

    Univ Texas Dallas Dept Biol Sci Richardson TX 75083 USA;

    Univ Texas Dallas Dept Biol Sci Richardson TX 75083 USA;

    Univ Texas Dallas Sch Behav &

    Brain Sci BSB 14-102G 800 W Campbell Rd Richardson TX 75080 USA;

    Univ Texas Dallas Sch Behav &

    Brain Sci BSB 14-102G 800 W Campbell Rd Richardson TX 75080 USA;

  • 收录信息
  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类 诊断学;
  • 关键词

    Dorsal root ganglion; Comparative transcriptomics; Target identification; Human sensory neuroscience;

    机译:背根神经节;比较转录组织;目标鉴定;人类感官神经科学;

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