Ma Yuhan, Zhu Yuchang, Liu Chang, Xu Yiyang, Wu Zihao, Tu Yuhan, Guo Junwei, Li Siyue, Xi Yuting, Li Jialin, Yang Dazuo, Zuo Rantao, Huang Shu, Yi Qilin
College of Aquaculture and Life Science, Dalian Ocean University, Dalian, China.
College of Aquaculture and Life Science, Dalian Ocean University, Dalian, China; Key Laboratory of Marine Bio-Resources Restoration and Habitat Reparation in Liaoning Province, Dalian Ocean University, Dalian, China.
Fish Shellfish Immunol. 2025 Nov;166:110636. doi: 10.1016/j.fsi.2025.110636. Epub 2025 Aug 6.
Oxygen is essential for the survival of aquatic animals. Hypoxia constitutes a critical environmental stressor that fundamentally impacts immune homeostasis in aquatic crustaceans. However, the immune regulatory mechanisms of crustaceans under hypoxia stress require further exploration. Yorkie (Yki), a key downstream effector of the Hippo signaling pathway, has been implicated in innate immunity regulation, its precise functional mechanisms during hypoxic conditions in Eriocheir sinensis remain unclear. This study investigated the expression characteristics and immune regulation of Yki in response to hypoxia stress in E. sinensis. The mRNA expression of Yki and its downstream target gene, Cactus in haemocytes were significantly increased from 3 h to 6 h post hypoxia stress, and then decreased to slightly lower than that of the control. The Yki phosphorylation level under hypoxia stress was significantly decreased. Meanwhile, the positive green signal of Yki translocated from the cytoplasm to the nucleus under hypoxia stress. The Yki and Cactus transcripts were significantly increased after Aeromonas hydrophila injection under hypoxic conditions. A. hydrophila stimulation inhibited and promoted the phosphorylation level and nuclear translocation of Yki post hypoxia stress, respectively. Furthermore, after the reduction of Yki mRNA expression by RNAi, the mRNA expression levels of lipopolysaccharide factors (ALFs) in haemocytes were significantly up-regulated post A. hydrophila stimulation under hypoxia stress, whereas they significantly decreased after the inhibition of Yki phosphorylation by CA3 injection. Our findings collectively suggested that hypoxia could activate Yki, and Yki was involved in regulating ALFs expression in E. sinensis, which enrich the understanding of regulatory mechanisms underlying immune defense in crustaceans under hypoxia stress.
氧气对于水生动物的生存至关重要。缺氧是一种关键的环境应激源,从根本上影响水生甲壳类动物的免疫稳态。然而,甲壳类动物在缺氧应激下的免疫调节机制仍需进一步探索。Yorkie(Yki)是Hippo信号通路的关键下游效应因子,已被证明参与先天免疫调节,但其在中华绒螯蟹缺氧条件下的确切功能机制尚不清楚。本研究调查了中华绒螯蟹中Yki在缺氧应激下的表达特征及免疫调节作用。缺氧应激后3小时至6小时,血细胞中Yki及其下游靶基因Cactus的mRNA表达显著增加,然后下降至略低于对照组水平。缺氧应激下Yki的磷酸化水平显著降低。同时,缺氧应激下Yki的阳性绿色信号从细胞质转移到细胞核。在缺氧条件下注射嗜水气单胞菌后,Yki和Cactus转录本显著增加。嗜水气单胞菌刺激分别抑制和促进了缺氧应激后Yki的磷酸化水平和核转位。此外,通过RNAi降低Yki mRNA表达后,缺氧应激下嗜水气单胞菌刺激后血细胞中脂多糖因子(ALFs)的mRNA表达水平显著上调,而注射CA3抑制Yki磷酸化后其显著下降。我们的研究结果共同表明,缺氧可激活Yki,且Yki参与调节中华绒螯蟹中ALFs的表达,这丰富了对甲壳类动物在缺氧应激下免疫防御调节机制的理解。