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萘乙酸缓解长茎葡萄蕨藻短期高温胁迫的生理效应

Physiological Effects of Naphthaleneacetic Acid on Alleviating Short-Term High Temperature Stress in Caulerpa lentillifera

  • 摘要: 全球气候变暖及极端热浪事件频发,使高温胁迫逐渐成为制约海藻生长与养殖生产的关键环境因子。长茎葡萄蕨藻(Caulerpa lentillifera)对水温升高较为敏感,进而导致产量与品质波动。为提升其耐热性并提高养殖效益,本研究探讨外源生长素类激素萘乙酸(NAA)在高温胁迫下对长茎葡萄蕨藻的调节作用。实验设定不同浓度(0、50、100、200、400和800 μg·L−1)NAA处理,藻体在常温下培养14天后,进行48小时的急性高温处理。结果表明,NAA对高温胁迫响应具有显著剂量依赖性,总体呈现先促进后回落的变化趋势。高温胁迫后,对照组藻体生长明显受抑并伴随氧化损伤增强。50 μg·L−1处理的缓解效应较弱,与对照组相比无显著差异;100 μg·L−1处理可一定程度改善生长停滞并降低丙二醛(MDA)含量;200 μg·L−1处理对叶绿素水平及超氧化物歧化酶和过氧化物酶活性提升更为显著,且MDA含量最低;400 μg·L−1处理在增重率与特定生长率维持、水溶性糖积累及过氧化氢酶活性提高方面表现最佳,同时组织边界完整性最优;800 μg·L−1处理仍具有一定保护作用,但促进效应减弱。PCA综合评价进一步确定400 μg·L−1为最适处理浓度。综上,适量NAA可通过增强抗氧化防御能力、维持光合功能与碳同化产物积累并稳定组织结构,从而提高长茎葡萄蕨藻对短期高温胁迫的耐受性,为海藻养殖的绿色、低成本调控提供依据。

     

    Abstract: Global warming and more frequent heatwaves have made high-temperature stress a major constraint on seaweed aquaculture. Caulerpa lentillifera is sensitive to elevated water temperature, resulting in unstable yield and quality. Here, we evaluated whether exogenous naphthaleneacetic acid (NAA) mitigates short-term heat stress. Thalli were pretreated with NAA (0, 50, 100, 200, 400, and 800 μg·L−1) for 14 d under normal conditions and then exposed to acute heat stress for 48 h. NAA effects were dose dependent, showing an overall pattern of stimulation followed by attenuation at higher doses. Heat stress markedly inhibited growth and intensified oxidative damage in the control. The 50 μg·L−1 treatment produced negligible alleviation, whereas 100–200 μg·L−1 improved growth and reduced malondialdehyde while enhancing chlorophyll and antioxidant enzyme activities. The 400 μg·L−1 treatment performed best in maintaining growth, promoting soluble sugar accumulation, increasing catalase activity, and preserving tissue integrity, while 800 μg·L−1 conferred weaker benefits. Principal component analysis identified 400 μg·L−1 as the optimal concentration. Collectively, appropriate NAA application enhances antioxidant capacity, sustains photosynthetic performance and carbon assimilation, and stabilizes tissue structure, thereby improving short-term heat tolerance in Caulerpa lentillifera.

     

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