Neighbours matter: Effects of genomic organization on gene expression plasticity in response to environmental stresses during biological invasions.

Comp Biochem Physiol Part D Genomics Proteomics

Research Center for Eco-Environmental Sciences, Chinese Academy of Sciences, 18 Shuangqing Road, Haidian District, Beijing 100085, China; University of Chinese Academy of Sciences, Chinese Academy of Sciences, 19A Yuquan Road, Shijingshan District, Beijing 100049, China. Electronic address:

Published: June 2022

AI Article Synopsis

  • Gene expression plays a crucial role in how organisms adapt to environmental changes, but the impact of gene organization on this process during invasions is still under-researched.
  • A study using the invasive species Ciona robusta revealed that neighboring genes tend to be co-expressed and a significant percentage of stress-responsive genes are physically clustered, with their expression influenced by their spatial arrangement.
  • High salinity challenges were shown to disrupt this coordinated expression, indicating that gene clustering and organization affect adaptability during environmental stress.

Article Abstract

Gene expression regulation has been widely recognized as an important molecular mechanism underlying phenotypic plasticity in environmental adaptation. However, it remains largely unexplored on the effects of genomic organization on gene expression plasticity under environmental stresses during biological invasions. Here, we use an invasive model ascidian, Ciona robusta, to investigate how genomic organization affects gene expression in response to salinity stresses during range expansions. Our study showed that neighboring genes were co-expressed and approximately 30% of stress responsive genes were physically clustered on chromosomes. Such coordinated expression was substantially affected by the physical distance and orientation of genes. Interestingly, the overall expression correlation of neighboring genes was significantly decreased under high salinity stresses, illustrating that the co-expression regulation could be disrupted by salinity challenges. Furthermore, the clustering of genes was associated with their function constraints and expression patterns - operon genes enriched in gene expression machinery had the highest transcriptional activity and expression stability. Notably, our analyses showed that the tail-to-tail genes, mainly involved in biological functions related to phosphorylation, homeostatic process, and ion transport, exhibited higher intrinsic expression variability and greater response to salinity challenges. Altogether, the results obtained here provide new insights into the effects of gene organization on gene expression plasticity under environmental challenges, hence improving our knowledge on mechanisms of rapid environmental adaptation during biological invasions.

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Source
http://dx.doi.org/10.1016/j.cbd.2022.100992DOI Listing

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