Singh G M, Goldberg S, Schaefer D, Zhang F, Sharma S, Mishra V K, Xu J
MARA-CABI Joint Laboratory for Biosafety, Institute of Plant Protection, Chinese Academy of Agricultural Sciences, 100193 Beijing, China.
Centre for Mountain Futures (CMF), Kunming Institute of Botany, 650201 Kunming, Yunnan, China.
Photosynthetica. 2022 Jun 3;60(3):376-388. doi: 10.32615/ps.2022.024. eCollection 2022.
Many studies have been conducted on maize to study the effect of drought on yield at the flowering stage, but understanding biochemical and photosynthetic response against drought at the seedling stage needs to be well established. Thus, to understand differential changes and interaction of biochemical and photosynthetic parameters at the seedling stage under drought, a greenhouse experiment with twelve maize genotypes under severe drought (30% field capacity) and irrigated (90-100% field capacity) conditions were performed. Drought differentially altered biochemical and photosynthetic parameters in all genotypes. A sharp increase in hydrogen peroxide, malondialdehyde (MDA), and total antioxidant capacity (TAOC) were seen and a positive association between HO and TAOC, and MDA and transpiration rate () was observed under drought. Nonphotochemical quenching increased under drought to avoid the photosystem damage. PCA biplot analysis showed that reducing and increasing photosynthetic efficiency would be a better drought adaptation mechanism in maize at the seedling stage.
已经开展了许多关于玉米的研究,以探究干旱对开花期产量的影响,但在苗期针对干旱的生化和光合响应的了解仍有待完善。因此,为了了解干旱条件下苗期生化和光合参数的差异变化及相互作用,开展了一项温室试验,选用12个玉米基因型,设置重度干旱(田间持水量30%)和灌溉(田间持水量90 - 100%)两种条件。干旱对所有基因型的生化和光合参数产生了不同程度的影响。干旱条件下,过氧化氢、丙二醛(MDA)和总抗氧化能力(TAOC)急剧增加,且观察到过氧化氢与TAOC、MDA与蒸腾速率()之间呈正相关。干旱条件下非光化学猝灭增加以避免光合系统受损。主成分分析双标图分析表明,降低蒸腾速率并提高光合效率将是玉米苗期更好的干旱适应机制。