Silica nanoparticles conferring resistance to bacterial wilt in peanut (Arachis hypogaea L.)

青枯菌 水杨酸 超氧化物歧化酶 过氧化氢酶 青枯病 化学 植物抗病性 丙二醛 植物激素 花生 生物化学 园艺 微生物学 食品科学 生物 氧化应激 病菌 基因
作者
Quanqing Deng,Suihua Huang,Hao Liu,Qing Lu,Puxuan Du,Haifen Li,Shaoxiong Li,Haiyan Liu,Runfeng Wang,Lu Huang,Dayuan Sun,Yahui Wu,Xiaoping Chen,Yanbin Hong
出处
期刊:Science of The Total Environment [Elsevier BV]
卷期号:915: 170112-170112 被引量:9
标识
DOI:10.1016/j.scitotenv.2024.170112
摘要

Peanut bacterial wilt (PBW) caused by the pathogen Ralstonia solanacearum severely affects the growth and yield potential of peanut crop. In this study, we synthesized silica nanoparticles (SiO2 NPs), a prospective efficient management approach to control PBW, and conducted a hydroponic experiment to investigate the effects of different SiO2 NPs treatments (i.e., 0, 100, and 500 mg L−1 as NP0, NP100, and NP500, respectively) on promoting plant growth and resistance to R. solanacearum. Results indicated that the disease indices of NP100 and NP500 decreased by 51.5 % and 55.4 % as compared with NP0 under R. solanacearum inoculation, respectively, while the fresh and dry weights and shoot length of NP100 and NP500 increased by 7.62–42.05 %, 9.45–32.06 %, and 2.37–17.83 %, respectively. Furthermore, SiO2 NPs induced an improvement in physio-biochemical enzymes (superoxide dismutase, peroxidase, catalase, ascorbate peroxidase, and lipoxygenase) which eliminated the excess production of hydrogen peroxide, superoxide anions, and malondialdehyde to alleviate PBW stress. Notably, the targeted metabolomic analysis indicated that SiO2 NPs enhanced salicylic acid (SA) contents, which involved the induction of systemic acquired resistance (SAR). Moreover, the transcriptomic analysis revealed that SiO2 NPs modulated the expression of multiple transcription factors (TFs) involved in the hormone pathway, such as AHLs, and the identification of hormone pathways related to plant defense responses, such as the SA pathway, which activated SA-dependent defense mechanisms. Meanwhile, the up-regulated expression of the SA-metabolism gene, salicylate carboxymethyltransferase (SAMT), initiated SAR to promote PBW resistance. Overall, our findings revealed that SiO2 NPs, functioning as a plant elicitor, could effectively modulate physiological enzyme activities and enhance SA contents through the regulation of SA-metabolism genes to confer the PBW resistance in peanuts, which highlighted the potential of SiO2 NPs for sustainable agricultural practices.
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