SiO2 nanopriming protects PS I and PSII complexes in wheat under drought stress

Prabha Rai Kalal , Rupal Singh Tomar , Anjana Jajoo
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引用次数: 1

Abstract

Drought is an important abiotic stress that hampers the growth of plants by inhibiting photosynthesis resulting in major crop losses. Silicon is known for its role to alleviate impact of various abiotic stresses in plants. In the present study, drought sensitive wheat variety HI-1544 was subjected to drought stress (DS) by withholding irrigation. The aim of this study was to evaluate the impact of SiO2 nanopriming in protecting photosynthesis, particularly photosystems (PSI and PSII), under drought condition. DS significantly reduced the quantum yield of PSII (YII) and PSI (YI) in unprimed drought stressed (UP+DS) plants but non-significant reduction was observed in NP+DS wheat plants. Likewise a severe impairment in the electron transport rate of PSII and PSI (ETRII and ETRI) in UP+DS was noticed as compared to NP+DS plants. Among energy dissipation parameters, regulated and non-regulated energy dissipation [Y(NPQ) and Y(NO) respectively] showed prominent increase in UP+DS plants when compared to NP+DS wheat plants. Decrease in YI was accompanied by significant increase in donor Y(ND) and acceptor side Y(NA) limitation of PSI in UP+DS plants. These parameters were less affected in NP+DS wheat plants. A remarkable inhibition in the oxidation reduction kinetics of P700 was observed in UP+DS plants while it were less affected in NP+DS wheat plants. The data suggests that the impact of drought stress (DS) was more prominent on PSII than PSI. SiO2 nanopriming conferred more protection to PSII complex, thereby improving photosynthetic efficiency under DS.

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SiO2纳米膜对干旱胁迫下小麦PSII和PSII复合物的保护作用
干旱是一种重要的非生物胁迫,它通过抑制光合作用来阻碍植物的生长,导致主要的作物损失。硅以其减轻植物中各种非生物胁迫影响的作用而闻名。以干旱敏感型小麦品种HI-1544为研究对象,采用截灌方式对其进行干旱胁迫。本研究的目的是评估二氧化硅纳米膜在干旱条件下对光合作用,特别是光系统(PSI和PSII)的保护作用。无干旱胁迫(UP+DS)小麦植株的PSII (YII)和PSI (YI)量子产率显著降低,而NP+DS小麦植株的PSII (YII)和PSI (YI)量子产率降低不显著。同样,与NP+DS相比,UP+DS中PSII和PSI (ETRII和ETRI)的电子传递速率严重受损。在能量耗散参数中,与NP+DS相比,UP+DS小麦植株的调节和非调节能量耗散[分别为Y(NPQ)和Y(NO)]显著增加。在UP+DS植物中,YI的降低伴随着PSI供体Y(ND)和受体侧Y(NA)限制的显著增加。这些参数对NP+DS小麦植株的影响较小。P700在UP+DS小麦植株的氧化还原动力学中受到显著抑制,而在NP+DS小麦植株中受影响较小。结果表明,干旱胁迫对PSII的影响大于PSI。SiO2纳米膜对PSII复合物的保护作用更强,从而提高了DS下的光合效率。
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