首页> 外文期刊>Acta Physiologiae Plantarum >Effects of biochar on photosystem function and activities of protective enzymes in Pyrus ussuriensis Maxim. under drought stress
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Effects of biochar on photosystem function and activities of protective enzymes in Pyrus ussuriensis Maxim. under drought stress

机译:生物炭对Pyrus ussuriensis Maxim光系统功能和保护酶活性的影响。在干旱胁迫下

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The mechanisms how orchard mulching biochar influenced the photosynthetic apparatus and the role of protective enzyme activities were employed to evaluate the value of biochar application for the cultivation of fruit trees in arid areas. Potted 2-year-old seedlings of Pyrus ussuriensis Maxim. were studied to determine the effects of orchard mulching with biochar on photosystem function, Rubisco activity, net photosynthetic rate (P-n), and protective enzyme activities under drought stress. The experiment included three conditions: Drought (D), Drought + Biochar (9 t hm(-2), DB), and CK (normal management). The results showed that biochar could significantly retard the loss of soil efficient moisture and effectively change the chlorophyll fluorescence parameters, including reducing the initial fluorescence (F-o) and J points to the relative variable fluorescence (V-j), while increasing the maximal photochemistry efficiency of photosystem (PS) II (F-v/F-m), the efficiency that a trapped electron can move further ahead of Q(A) (psi(o)), and the photosynthetic performance index (PIABS), thus effectively protecting PS II from damage. Biochar application also increased P-n and Rubisco activity. Compared with CK, the activity levels of superoxide dismutase (SOD) and peroxidase (POD) during drought stress increased rapidly to a peak and then began to decrease. When H2O2 was accumulated, there was clearance of CAT activity which was enhanced, accompanied by increased levels of a membrane lipid peroxidation product (MDA). However, MDA levels were always lower for DB than for D. By slowing the regulation of the photosynthetic physiological functions and cytoplasmic membrane peroxidation, the plants could significantly avoid serious damage and were more adaptable to drought stress.
机译:利用果园覆盖生物炭影响光合作用机制的机制以及保护酶活性的作用,来评价生物炭在干旱地区果树栽培中的应用价值。 Pyrus ussuriensis Maxim的2岁盆栽幼苗。研究了用生物炭覆盖果园对干旱胁迫下光系统功能,Rubisco活性,净光合速率(P-n)和保护酶活性的影响。实验包括三个条件:干旱(D),干旱+生物碳(9 t hm(-2),DB)和CK(正常管理)。结果表明,生物炭可以显着抑制土壤有效水分的流失,并有效改变叶绿素荧光参数,包括降低初始荧光(Fo)和J点至相对可变荧光(Vj),同时提高光系统的最大光化学效率。 (PS)II(Fv / Fm),被困电子可以提前移至Q(A)(psi(o))的效率和光合性能指数(PIABS),从而有效保护PS II免受损坏。生物炭的应用还增加了P-n和Rubisco活性。与CK相比,干旱胁迫下超氧化物歧化酶(SOD)和过氧化物酶(POD)的活性水平迅速升高至峰值,然后开始下降。当H2O2积累时,CAT活性的清除率增加,同时膜脂质过氧化产物(MDA)含量增加。但是,DB的MDA含量总是比D的低。通过减慢光合生理功能和细胞质膜过氧化的调节,植物可以显着避免严重的破坏,并且更适应干旱胁迫。

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