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    盐风复合胁迫环境下黑松幼苗抗逆生理及生长响应机制

    Response mechanisms of stress resistance physiology and growth of Pinus thunbergii seedlings under combined salt and wind stress

    • 摘要:
      目的 探究盐风复合胁迫下黑松幼苗抗逆生理及生长的内在响应机制,以期为沿海防护林中黑松抗逆种质筛选提供理论支撑。
      方法 通过设置4个NaCl盐浓度(0 mmol/L(T0)、50 mmol/L(T1)、100 mmol/L(T2)、150 mmol/L(T3))和3个风力等级(0级0.0 ~ 0.2 m/s(W1)、3级3.4 ~ 5.4 m/s(W2)、5级8.0 ~ 10.7 m/s(W3))处理,对黑松幼苗进行为期8周的盐风复合胁迫处理,分别于第4周和第8周测定黑松幼苗水分代谢、光合特性与氧化防御3大系统相关的生理和生长指标,通过Pearson相关性分析揭示各指标间的关联模式,并利用SmartPLS 4.0构建结构方程模型来揭示盐风复合胁迫抑制黑松幼苗生长的通路机制。
      结果 (1)胁迫至第4周,与对照T0W1处理相比,复合胁迫使T3W3处理叶片相对含水量(RWC)下降30.41%,进而导致气孔导度(Gs)、胞间CO2浓度(Ci)降低,最终净光合速率(Pn)受到抑制;光合碳同化能力削弱,使最大光化学效率(Fv/Fm)和二磷酸核酮糖羧化酶(Rubisco)活性降低;超氧化物歧化酶(SOD)和过氧化物酶(POD)活性呈先升后降趋势,在T2W2处理达到峰值,丙二醛(MDA)和脯氨酸(Pro)大量积累,叶片损伤面积扩大至19.84%,茎干机械强度因盐胁迫削弱效应抵消风力强化作用,最终使株高和地径降低。(2)第8周时,长期伤害持续累积,T3W3处理RWC、Pn、GsCi较同处理第4周分别降低16.62%、42.77%、36.75%、17.39%,Fv/Fm和Rubisco活性分别降低6.34%和26.78%;SOD和POD活性分别降低10.06%和12.54%,抗氧化系统能力降低;MDA含量增加,膜脂过氧化程度大幅加剧;叶片损伤面积和茎干机械强度达22.83%和15.12 N,使株高和地径增幅降低,影响生长。(3)相关性分析发现,黑松幼苗生长及结构抗性与水分状态、气体交换参数和光合碳同化能力呈正相关,而与抗氧化酶活性、膜脂过氧化程度及渗透调节物质积累总体呈负相关。(4)结构方程模型进一步揭示复合胁迫通过水分失衡、光合碳同化抑制和氧化损伤协同影响幼苗生长。
      结论 盐风复合胁迫通过水分平衡破坏、光合碳同化抑制和氧化损伤累积多路径影响植株生长。后续建议在沿海防护林建设中选育具有较强水分调控能力和抗氧化能力的黑松种质。

       

      Abstract:
      Objective This study explored the physiological and growth response mechanisms of Pinus thunbergii seedlings under combined salt and wind stress, aiming to provide theoretical support for screening stress-tolerant germplasm for coastal shelterbelt construction.
      Method A systematic study was conducted by setting four NaCl concentrations: 0 mmol/L(T0), 50 mmol/L(T1), 100 mmol/L (T2), and 150 mmol/L (T3), along with three wind speed levels: level 0 (0.0−0.2 m/s, W1), level 3 (3.4−5.4 m/s, W2), level 5 (8.0−10.7 m/s, W3), which were applied to P. thunbergii seedlings for eight weeks. Physiological and growth indices associated with the three major systems: water metabolism, photosynthetic characteristics, and oxidative defense were measured at weeks 4 and 8. Pearson correlation analysis was used to reveal the pattern of association among the various indicators. SmartPLS 4.0 was employed to construct structural equation models to elucidate the pathways through which combined stress inhibited seedling growth.
      Result (1) At week 4, relative to the control (T0W1), the combined stress (T3W3) significantly reduced RWC by 30.41%, which decreased Gs and Ci, and ultimately inhibited Pn. Photosynthetic carbon assimilation was simultaneously weakened, with Fv/Fm and Rubisco activity declining. SOD and POD activities first increased and then decreased, peaking under T2W2, which led to substantial accumulation of MDA and Pro. Leaf damage area expanded to 19.84%, while stem mechanical strength was enhanced by wind but reduced by salt stress. Ultimately, height and ground diameter decreased. (2) At week 8, stress effects intensified further. In the T3W3 treatment, RWC, Pn, Gs, and Ci, decreased by 16.62%, 42.77%, 36.75%, and 17.39%, respectively, compared with week 4. Fv/Fm and Rubisco activity decreased by 6.34% and 26.78%, respectively, while SOD and POD activities decreased by 10.06% and 12.54%, respectively, indicating a reduction in antioxidant system capacity. MDA content increased, reflecting a substantial exacerbation of membrane lipid peroxidation. Leaf damage area and stem mechanical strength reached 22.83% and 15.12 N, respectively, which suppressed height and ground diameter growth. (3) Correlation analysis revealed that the growth and structural resistance of P. thunbergii seedlings were positively correlated with water status, gas exchange parameters, and photosynthetic carbon assimilation capacity, while generally negatively correlated with antioxidant enzyme activities, the level of membrane lipid peroxidation, and the accumulation of osmotic adjustment substances. (4) Structural equation modeling further revealed that combined stress synergistically affected seedling growth through water imbalance, photosynthetic carbon assimilation inhibition, and oxidative damage.
      Conclusion Combined salt and wind stress affects plant growth through multiple pathways, including disruption of water balance, inhibition of photosynthetic carbon assimilation, and accumulation of oxidative damage. It is suggested that P. thunbergii germplasms with strong water regulation and antioxidant capacity should be selected for coastal shelterbelt construction.

       

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