School of Life and Health Sciences, Hainan University, Haikou, 570228, China.
School of Life and Health Sciences, Hainan University, Haikou, 570228, China; One Health Institute, Hainan University, Haikou, Hainan, 570228, China; State Key Laboratory of South China Sea Marine Resource Utilization, Hainan University, Haikou, 570228, China.
Fish Shellfish Immunol. 2024 Nov;154:109962. doi: 10.1016/j.fsi.2024.109962. Epub 2024 Oct 11.
Hypoxia poses a significant challenge to aquatic organisms, especially Litopenaeus vannamei (L. vannamei), which play a vital role in the global aquaculture industry. Hypoxia-inducible factor 1α (HIF-1α) is a pivotal regulator of the organism's adaptation to hypoxic conditions. To understand of how HIF-1α affects the immunity of L. vannamei under hypoxic conditions, we conducted a thorough study involving various approaches. These included observing tissue morphology, analyzing the expression of immune-related genes, assessing the activities of immune-related enzymes, and exploring immune-related pathways. Our study revealed that RNA interference (RNAi)-mediated knockdown of HIF-1α markedly reduced HIF-1α expression in the gill (75-95 %), whereas the reduction ranged from 2 to 43 % in the hepatopancreas. Knockdown of HIF-1α resulted in increased damage to both gill and hepatopancreatic tissues in hypoxic conditions. Additionally, immune-related genes, including Astakine (AST), Hemocyanin (HC), and Ferritin (FT), as well as immune-related enzymes such as Acid Phosphatase (ACP), Alkaline Phosphatase (AKP), and Phenoloxidase (PO), exhibited intricate regulatory patterns in response to hypoxia stress following the knockdown of HIF-1α. Transcriptome analysis revealed that HIF-1α knockdown significantly impacts multiple signaling pathways, including the JAK-STAT signaling pathway, Th17 cell differentiation pathways, PI3K-Akt signaling pathway, ErbB signaling pathway, MAPK signaling pathway, chemokine signaling pathway, ribosomal pathways, apoptosis, lysosomes and arachidonic acid metabolism. These alterations disrupt the organism's immune balance and interfere with normal metabolic processes, potentially leading to various immune-related diseases. We speculate that the weakened immune response resulting from HIF-1 inhibition is due to the reduced metabolic capacity, and the existence of a direct regulatory relationship between them requires further exploration. This study greatly advances our understanding of the vital role that HIF-1α plays in regulating immune responses in shrimp under hypoxic conditions, thereby deepening our comprehension of this critical biological mechanism.
缺氧对水生生物构成重大挑战,尤其是凡纳滨对虾(L. vannamei),它在全球水产养殖业中起着至关重要的作用。缺氧诱导因子 1α(HIF-1α)是生物适应缺氧条件的关键调节剂。为了了解 HIF-1α 如何影响凡纳滨对虾在缺氧条件下的免疫,我们进行了一项全面的研究,涉及多种方法。这些方法包括观察组织形态、分析免疫相关基因的表达、评估免疫相关酶的活性以及探索免疫相关途径。我们的研究表明,RNA 干扰(RNAi)介导的 HIF-1α 敲低显著降低了虾鳃(75-95%)中的 HIF-1α 表达,而在虾肝胰腺中则降低了 2-43%。HIF-1α 的敲低导致缺氧条件下虾鳃和肝胰腺组织的损伤增加。此外,免疫相关基因,包括 Astakine(AST)、血蓝蛋白(HC)和 Ferritin(FT),以及免疫相关酶,如酸性磷酸酶(ACP)、碱性磷酸酶(AKP)和酚氧化酶(PO),在 HIF-1α 敲低后对缺氧应激表现出复杂的调控模式。转录组分析表明,HIF-1α 敲低显著影响多个信号通路,包括 JAK-STAT 信号通路、Th17 细胞分化途径、PI3K-Akt 信号通路、ErbB 信号通路、MAPK 信号通路、趋化因子信号通路、核糖体途径、细胞凋亡、溶酶体和花生四烯酸代谢。这些改变破坏了生物体的免疫平衡,干扰了正常的代谢过程,可能导致各种与免疫相关的疾病。我们推测,由于代谢能力下降,HIF-1 抑制导致的免疫反应减弱,它们之间存在直接的调节关系,需要进一步探索。这项研究极大地提高了我们对 HIF-1α 在调节虾缺氧条件下免疫反应中的重要作用的认识,从而加深了我们对这一关键生物学机制的理解。