PPARα alleviates inflammation via inhibiting NF-κB/Rel pathway in Vibrio splendidus challenged Apostichopus japonicus

Yingfen Dai1, Zhimeng Lv1, Meixiang You1

  • 1Key Laboratory of Applied Marine Biotechnology, Ministry of Education, Ningbo University, Ningbo, 315211, PR China.

Insights

Sea cucumbers use PPARα to reduce inflammation by inhibiting AjRel, a key factor in inflammatory responses. This finding reveals a novel anti-inflammatory pathway in marine invertebrates.

Area of Science:

  • Marine biology
  • Immunology
  • Molecular biology

Background:

  • Pro-inflammatory responses are crucial for pathogen defense but can cause disease if excessive.
  • Sea cucumber IL-17 (Interleukin-17) mediates inflammation via the IL-17R-TRAF6 axis.
  • The anti-inflammatory role of other factors in sea cucumbers remained largely unknown.

Purpose of the Study:

  • To investigate the anti-inflammatory function of the conserved PPARα (Peroxisome proliferator-activated receptor alpha) gene in Apostichopus japonicus.
  • To elucidate the molecular mechanism underlying PPARα-mediated anti-inflammatory effects in sea cucumbers.

Main Methods:

  • Gene cloning using RNA-seq and RACE.
  • Gene expression analysis in sea cucumbers and coelomocytes challenged with Vibrio splendidus and LPS.
  • Functional studies using siRNA, chemical inhibitors (MK-886), and agonists (WY14643).
  • Investigation of transcription factor involvement (AjStat5, AjRel).

Main Results:

  • PPARα expression increased during late-stage infection and negatively correlated with pro-inflammatory factors IL-17 and NLRP3.
  • Silencing PPARα or using an inhibitor increased pro-inflammatory factors and caused tissue damage.
  • PPARα activation alleviated infection-induced tissue injury.
  • PPARα negatively regulated AjRel (a subunit of NF-κB), and AjRel silencing reduced IL-17 and NLRP3 expression.

Conclusions:

  • Apostichopus japonicus PPARα exerts anti-inflammatory effects.
  • This effect is mediated by the inhibition of AjRel, a key regulator of pro-inflammatory gene expression.
  • Identifies a novel anti-inflammatory mechanism in marine invertebrates involving PPARα and NF-κB signaling.

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