College of Horticulture, Shanxi Agricultural University, Taigu 030801, China.
CAS Key Laboratory of Tropical Plant Resources and Sustainable Use, Xishuangbanna Tropical Botanical Garden, Chinese Academy of Sciences, Menglun, Mengla Yunnan 666303, China.
Environ Sci Technol. 2020 Apr 7;54(7):4409-4420. doi: 10.1021/acs.est.9b07133. Epub 2020 Mar 24.
Carbon-based nanomaterials have potential applications in nanoenabled agriculture. However, the physiological and molecular mechanisms underlying single-walled carbon nanohorn (SWCNH)-mediated plant growth remain unclear. Here, we investigated the effects of SWCNHs on grown in /-strength Murashige and Skoog medium via physiological, genetic, and molecular analyses. Treatment with 0.1 mg/L SWCNHs promoted primary root (PR) growth and lateral root (LR) formation; 50 and 100 mg/L SWCNHs inhibited PR growth. Treatment with 0.1 mg/L SWCNHs increased the lengths of the meristematic and elongation zones, and transcriptomic and genetic analyses confirmed the positive effects of SWCNHs on root tip stem cell niche activity and meristematic cell division potential. Increased expression of and and increased PIN2 abundance improved PR growth and LR development in 0.1 mg/L SWCNH-treated seedlings. Metabolomic analyses revealed that SWCNHs altered the levels of sugars, amino acids, and organic acids, suggesting that SWCNHs reprogrammed carbon/nitrogen metabolism in plants. SWCNHs also regulate plant growth and development by increasing the levels of several secondary metabolites; transcriptomic analyses further supported these results. The present results are valuable for continued use of SWCNHs in agri-nanotechnology, and these molecular approaches could serve as examples for studies on the effects of nanomaterials in plants.
碳基纳米材料在纳米农业中有潜在的应用。然而,单壁碳纳米角(SWCNH)介导植物生长的生理和分子机制尚不清楚。在这里,我们通过生理、遗传和分子分析研究了 SWCNH 对生长在/-强度 Murashige 和 Skoog 培养基中的的影响。用 0.1 mg/L SWCNH 处理可促进主根(PR)生长和侧根(LR)形成;50 和 100 mg/L SWCNH 抑制 PR 生长。用 0.1 mg/L SWCNH 处理增加了分生组织和伸长区的长度,转录组和遗传分析证实了 SWCNH 对根尖干细胞生态位活性和分生细胞分裂潜力的积极影响。在 0.1 mg/L SWCNH 处理的幼苗中,和的表达增加和 PIN2 丰度增加改善了 PR 生长和 LR 发育。代谢组学分析表明,SWCNH 改变了糖、氨基酸和有机酸的水平,表明 SWCNH 重新编程了植物的碳/氮代谢。SWCNH 还通过增加几种次生代谢物的水平来调节植物的生长和发育;转录组分析进一步支持了这些结果。本研究结果对于 SWCNH 在农业纳米技术中的持续应用具有重要价值,这些分子方法可以作为研究纳米材料对植物影响的范例。