Department of Chemistry, Punjab Agricultural University, Ludhiana, Punjab, India.
Department of Soil Science, Punjab Agricultural University, Ludhiana, Punjab, India.
Plant Physiol Biochem. 2024 May;210:108605. doi: 10.1016/j.plaphy.2024.108605. Epub 2024 Apr 4.
Under a changing climate, nanotechnological interventions for climate resilience in crops are critical to maintaining food security. Prior research has documented the affirmative response of nano zinc sulfide (nZnS) on physiological traits of fungal-infested rice seeds. Here, we propose an application of trigolic formulated zinc sulfide nanoparticles (ZnS-T NPs) on rice seeds as nanobiostimulant to improve physiological parameters by triggering antioxidative defense system, whose mechanism was investigated at transcriptional level by differential expression of genes in germinated seedlings. Nanopriming of healthy rice seeds with ZnS-T NPs (50 μg/ml), considerably intensified the seed vitality factors, including germination percentage, seedling length, dry weight and overall vigor index. Differential activation of antioxidant enzymes, viz. SOD (35.47%), APX (33.80%) and CAT (45.94%), in ZnS-T NPs treated seedlings reduced the probability of redox imbalance and promoted the vitality of rice seedlings. In gene expression profiling by reverse transcription quantitative real time PCR (qRT-PCR), the notable up-regulation of target antioxidant genes (CuZn SOD, APX and CAT) and plant growth specific genes (CKX and GRF) in ZnS-T NPs treated rice seedlings substantiates their molecular role in stimulating both antioxidant defenses and plant growth mechanisms. The improved physiological quality parameters of ZnS-T NPs treated rice seeds under pot house conditions corresponded well with in vitro findings, which validated the beneficial boosted impact of ZnS-T NPs on rice seed development. Inclusively, the study on ZnS-T NPs offers fresh perspectives into biochemical and molecular reactions of rice, potentially positioning them as nanobiostimulant capable of eliciting broad-spectrum immune and growth-enhancing responses.
在气候变化下,用于作物气候恢复的纳米技术干预措施对于维护粮食安全至关重要。先前的研究已经记录了纳米硫化锌(nZnS)对真菌侵染水稻种子的生理特性的积极响应。在这里,我们提出将三油酸锌硫化纳米颗粒(ZnS-T NPs)应用于水稻种子作为纳米生物刺激剂,通过触发抗氧化防御系统来改善生理参数,其机制通过萌发幼苗中基因的差异表达在转录水平上进行了研究。用 ZnS-T NPs(50μg/ml)对健康水稻种子进行纳米引发处理,显著增强了种子活力因素,包括发芽率、幼苗长度、干重和整体活力指数。在 ZnS-T NPs 处理的幼苗中,抗氧化酶(SOD35.47%、APX33.80%和 CAT45.94%)的差异激活降低了氧化还原失衡的可能性,并促进了水稻幼苗的活力。在反转录定量实时 PCR(qRT-PCR)的基因表达谱分析中,ZnS-T NPs 处理的水稻幼苗中目标抗氧化基因(CuZn SOD、APX 和 CAT)和植物生长特异性基因(CKX 和 GRF)的显著上调证实了它们在刺激抗氧化防御和植物生长机制方面的分子作用。温室条件下 ZnS-T NPs 处理的水稻种子的生理质量参数的改善与体外研究结果非常吻合,这验证了 ZnS-T NPs 对水稻种子发育的有益促进作用。总之,对 ZnS-T NPs 的研究为水稻的生化和分子反应提供了新的视角,可能使它们成为能够引发广谱免疫和增强生长反应的纳米生物刺激剂。