<p>The central nervous system (CNS) represents a uniquely immune-privileged environment, with inflammatory responses involving several resident CNS-specific cell types. While stereotyped cellular and transcriptional responses recur across varied diseases, relevant signaling pathways and regulatory networks are not fully understood. Here, we investigate multi-modal inflammatory gene networks at large scale by developing a high-throughput RNA-seq screening and analysis workflow. As proof-of-concept, we investigate genetically heterogeneous mice from a large-scale chemical mutagenesis screen to identify novel functionally relevant variants in six genes previously linked to human CNS disorders: <i>Nrros</i>, <i>Ctsd</i>, <i>Smpd1</i>, <i>Idua</i>, <i>Nlrp1a</i>, and <i>Inpp5d</i>. We leverage the readily interpretable data from our large-scale study to demarcate distinct inflammatory states arising from each mutation. In all, our work provides a validated analysis framework for identifying discrete gene expression modules that are engaged divergently across disease contexts, which can be used to discover novel regulators of CNS neuroimmune homeostasis.</p>

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Modular inflammation network discovery from large-scale phenotypic screening in genetically heterogeneous mouse brains

  • Monica Xiong,
  • Lisa A. Miosge,
  • Carolina Correa-Ospina,
  • Claudia M. Y. Yan,
  • Tiffany Cripps,
  • Stefan Bauernfried,
  • Yuanyuan Wang,
  • Maggie Crow,
  • Lucy X. Morris,
  • T. Daniel Andrews,
  • Andrew Trujillo,
  • Mitchell G. Rezzonico,
  • Yuxin Liang,
  • Qixin Bei,
  • Zora Modrusan,
  • Kimberly L. Stark,
  • Tracy J. Yuen,
  • Brad A. Friedman,
  • Jesse E. Hanson,
  • Edward M. Bertram,
  • Christopher J. Bohlen

摘要

The central nervous system (CNS) represents a uniquely immune-privileged environment, with inflammatory responses involving several resident CNS-specific cell types. While stereotyped cellular and transcriptional responses recur across varied diseases, relevant signaling pathways and regulatory networks are not fully understood. Here, we investigate multi-modal inflammatory gene networks at large scale by developing a high-throughput RNA-seq screening and analysis workflow. As proof-of-concept, we investigate genetically heterogeneous mice from a large-scale chemical mutagenesis screen to identify novel functionally relevant variants in six genes previously linked to human CNS disorders: Nrros, Ctsd, Smpd1, Idua, Nlrp1a, and Inpp5d. We leverage the readily interpretable data from our large-scale study to demarcate distinct inflammatory states arising from each mutation. In all, our work provides a validated analysis framework for identifying discrete gene expression modules that are engaged divergently across disease contexts, which can be used to discover novel regulators of CNS neuroimmune homeostasis.