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Aug 2026

A dual-function interleukin-1 receptor couples bacterial recognition to MyD88-dependent NF-κB activation during antibacterial immunity in shrimp.

The interleukin-1 receptor (IL-1R) is a key member of the Toll/interleukin-1 receptor superfamily that plays essential roles in inflammatory signaling and immune regulation in vertebrates. Unlike vertebrate IL-1Rs, which are primarily specialized for the recognition of endogenous IL-1 family cytokines, the biological functions of IL-1R in crustaceans remain poorly understood. In this study, we systematically investigated the immune function of IL-1R in the Pacific white shrimp (Penaeus vannamei) during Vibrio parahaemolyticus infection. Tissue distribution analysis revealed that IL-1R was predominantly expressed in hemocytes and was significantly induced following immune stimulation. Co-immunoprecipitation and AlphaFold-based structural modeling demonstrated that IL-1R interacted with the adaptor protein MyD88 through its intracellular Toll/interleukin-1 receptor (TIR) domain. Functional analyses showed that silencing IL-1R markedly impaired pathogen-induced NF-κB (Dorsal) nuclear translocation, indicating that IL-1R functions upstream of the MyD88-Dorsal signaling pathway. Notably, recombinant IL-1R exhibited broad-spectrum binding activity toward both Gram-positive and Gram-negative bacteria, revealing a pathogen-recognition function that has not been reported for vertebrate IL-1Rs. Furthermore, administration of soluble recombinant IL-1R significantly increased bacterial burden and mortality in infected shrimp, whereas RNA interference-mediated knockdown of IL-1R produced similar susceptibility phenotypes. Collectively, our findings revealed a previously unrecognized dual-function mechanism of crustacean IL-1R, acting both as a pathogen-recognition receptor and as a signaling receptor that activated the MyD88-Dorsal pathway to orchestrate antibacterial immunity. This study expands current understanding of IL-1R evolution and innate immune regulation in crustaceans and provides a potential molecular target for disease-resistant breeding and immune intervention strategies in shrimp aquaculture.

Si-You Huang, Wan-Li Lu, Yuxin Shi et al. · 0 citations
Open access Aug 2026

The complete chloroplast genome and phylogenetic analysis of Urceola huaitingii (Chun & Tsiang) D. J. Middleton 1994 (Apocynaceae)

Abstract Urceola huaitingii (Chun & Tsiang) D. J. Middleton 1994, a member of the Apocynaceae family, is widely distributed across southern and southwestern China and has been traditionally used in folk medicine to treat hemiplegia and paralysis. In this study, we report the first complete chloroplast genome of U. huaitingii and perform phylogenetic analysis with 30 related species within the Apocynaceae. The chloroplast genome of U. huaitingii is 155,182 bp in length and has a GC content of 38.11%. It displays a typical quadripartite structure, consisting of a large single-copy (LSC) region of 85,254 bp, a small single-copy (SSC) region of 18,242 bp, and two inverted repeat (IR) regions of 25,843 bp each. A total of 111 unique genes were annotated, including 77 protein-coding genes, 30 transfer RNA (tRNA) genes, and 4 ribosomal RNA (rRNA) genes. Phylogenetic analysis revealed that U. huaitingii is closely related to the genera Aganosma, Trachelospermum, and Amalocalyx. This study provides the first chloroplast genomic resource for the genus Urceola, laying a foundation for future investigations into its evolutionary relationships. It also contributes to future molecular and phylogenetic studies within the Apocynaceae family.

Xianglan Liang, Guoan Shen, Li-Chai Yuan et al. · 0 citations

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