高级检索

    梯度升温胁迫对大黄鱼鳃组织损伤与生理稳态的影响

    GRADUAL WARMING STRESS ON GILL TISSUE DAMAGE AND PHYSIOLOGICAL HOMEOSTASIS IN LARGE YELLOW CROAKER (LARIMICHTHYS CROCEA)

    • 摘要: 本研究旨在明确梯度升温下大黄鱼鳃组织的损伤温度阈值与生理响应机制。以10月龄大黄鱼为对象, 自26℃按1℃/24h升温至33℃, 同步监测水体溶解氧(DO)变化, 分析鳃组织损伤、氧化应激、氧转运及能量代谢的响应规律。结果显示, 28—29℃时, 鳃组织出现上皮增生、鳃丝充血等轻度损伤; 30℃及以上时, 出现板层融合、上皮空泡化及细胞脱落等不可逆损伤。超氧化物歧化酶(SOD)、过氧化氢酶(CAT)、谷胱甘肽过氧化物酶(GSH-Px)和总抗氧化能力(T-AOC)呈先升后降趋势, 丙二醛(MDA)含量持续升高。热休克蛋白基因hsp70hsp90表达量与水温升高呈显著正相关。氧转运相关基因hif-1αhbae4表达量先升后降, 分别于30℃和31℃达峰值, 33℃降至最低。idh3g表达量在28℃显著下降后恢复, ATP含量无显著变化。研究表明, 梯度升温及伴随溶氧下降协同诱导大黄鱼鳃组织结构损伤、氧化应激失衡及能量代谢紊乱, 29—30℃是其由适应性调节向严重结构性损伤转变的关键温度节点。本研究初步揭示了大黄鱼鳃组织对高温胁迫的生理响应机制, 为其健康养殖的水温调控提供了理论依据。

       

      Abstract: This study aimed to determine the temperature threshold for gill tissue damage and the physiological response mechanisms in large yellow croaker (Larimichthys crocea) under gradual warming, using 10-month-old fish exposed to a temperature increase from 26 °C to 33 °C at 1 °C/24 h, with simultaneous monitoring of dissolved oxygen (DO) and analysis of gill pathology, oxidative stress, oxygen transport, and energy metabolism. The results showed that at 28-29℃, mild gill damage such as epithelial hyperplasia and gill filament congestion occurred; at 30℃ and above, irreversible damage including lamellar fusion, epithelial vacuolization, and cell shedding appeared. The activities of superoxide dismutase (SOD), catalase (CAT), glutathione peroxidase (GSH-Px), and total antioxidant capacity (T-AOC) first increased and then decreased, while malondialdehyde (MDA) content continued to rise. The expression levels of heat shock protein genes hsp70 and hsp90 were significantly positively correlated with increasing water temperature. The expression of oxygen transport-related genes HIF-1α and Hbae4 first increased and then decreased, peaking at 30℃ and 31℃, respectively, and reaching the lowest levels at 33℃. The expression of idh3g decreased significantly at 28℃ and then recovered, while ATP content showed no significant change throughout the process. This study indicates that gradual warming and the accompanying decline in dissolved oxygen synergistically induce structural damage, oxidative stress imbalance, and energy metabolism disorders in the gill tissue of L. crocea, with 29—30℃ being the key temperature node for the transition from adaptive regulation to severe structural damage. This study preliminarily reveals the physiological response mechanisms of L. crocea gill tissue to high-temperature stress, providing a theoretical basis for water temperature regulation in healthy aquaculture.

       

    /

    返回文章
    返回