Transcriptomic insights into vibrio-induced mortality in the clam Meretrix petechialis under high temperature

Comp Biochem Physiol Part D Genomics Proteomics. 2024 Jun:50:101226. doi: 10.1016/j.cbd.2024.101226. Epub 2024 Mar 14.

Abstract

In this study, we investigate the mortality of the clam Meretrix petechialis facing a vibrio challenge under different temperatures and the underlying molecular mechanisms. Our experiment distinctly revealed that clam mortality was predominantly observed under high temperature, highlighting the critical impact of thermal stress on clam susceptibility to infection. Using RNA-seq, we further compared the global transcriptional response to vibrio in clam gills between high and low temperatures. Compared to other groups, the differentially expressed genes in vibrio-challenged group at high temperature associated with immunity, oxidative stress, and membrane transport. Key results show a weakened immune response in clams at high temperature, especially in the TNF signaling pathway, and a decrease in membrane transport efficiency, notably in SLC proteins. Additionally, high temperature enhanced pro-inflammatory related unsaturated fatty acid metabolism, leading to increased oxidative damage. This was further evidenced by our biochemical assays, which showed significantly higher levels of lipid peroxidation and protein carbonylation in clams at high temperature, indicating heightened oxidative damage. RT-PCR validation of selected DEGs corroborated the RNA-seq findings. Our findings contribute to the understanding of more frequent shellfish mortality in summer, emphasizing the role of temperature in pathogen response, elucidating the molecular mechanisms underlying the synergistic effect of pathogen and high temperature stresses. The key genes identified provide potential targets for resistance-assisted breeding. This research has significant implications for bivalve aquaculture and their physiology, particularly in light of global climate changes affecting marine ecosystems.

Keywords: Bivalve; Immunity; Membrane transport; Oxidative damage; Thermally-induced epidemic.

MeSH terms

  • Animals
  • Bivalvia* / genetics
  • Bivalvia* / microbiology
  • Hot Temperature
  • Oxidative Stress
  • Transcriptome*
  • Vibrio* / physiology