microRNA-375 modulates the NF-κB pathway in miiuy croaker by targeting DUSP1 gene

Yuena Sun1, Qing Chu2, Xueyan Zhao3

  • 1Laboratory of Fish Biogenetics & Immune Evolution, College of Marine Science, Zhejiang Ocean University, Zhoushan 316022, China; Key Laboratory of Exploration and Utilization of Aquatic Genetic Resources (Shanghai Ocean University), Ministry of Education, 201306, China; International Research Center for Marine Biosciences at Shanghai Ocean University, Ministry of Science and Technology, 201306, China; National Pathogen Collection Center for Aquatic Animals, Shanghai Ocean University, 201306, China.

Insights

MicroRNAs (miRNAs) regulate gene expression. This study shows miR-375 negatively regulates DUSP1 in fish, impacting the NF-κB pathway and revealing complex gene regulation in teleost fish.

Area of Science:

  • Molecular Biology
  • Genomics
  • Fish Biology

Background:

  • microRNAs (miRNAs) are small non-coding RNAs regulating biological processes.
  • Dual-Specificity Phosphatases (DUSPs), particularly DUSP1, are key in MAPK regulation.
  • DUSP1's role in fish gene regulation remains understudied.

Purpose of the Study:

  • To investigate the regulatory role of miRNAs on DUSP1 in fish.
  • To elucidate the specific interaction between miR-375 and DUSP1.
  • To understand the impact of this regulation on cellular signaling pathways.

Main Methods:

  • Dual-luciferase reporter assay to confirm miRNA-target interaction.
  • Western blotting to assess protein level changes.
  • Utilized miR-375 mimics and pre-miR-375 plasmid in miiuy croaker.

Main Results:

  • miR-375 was confirmed to negatively regulate DUSP1 expression in miiuy croaker.
  • The interaction occurs via binding to the 3' untranslated region of the DUSP1 gene.
  • miR-375 negatively impacts the NF-κB signaling pathway by targeting DUSP1.

Conclusions:

  • miR-375 acts as a negative regulator of DUSP1 in teleost fish.
  • This interaction provides insights into miRNA-mediated gene expression control in fish.
  • The findings contribute to understanding complex genomic regulatory networks in fish.

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