Cell Walls Are Remodeled to Alleviate nY2O3 Cytotoxicity by Elaborate Regulation of de Novo Synthesis and Vesicular Transport

细胞壁 液泡 烟草 木聚糖 细胞生物学 果胶 生物 胼胝质 植物细胞 细胞培养 转录组 细胞内 细胞 程序性细胞死亡 生物物理学 细胞质 生物化学 细胞凋亡 基因表达 基因 遗传学
作者
Feiran Chen,Chuanxi Wang,Le Yue,Liqi Zhu,Junfeng Tang,Xiaoyu Yu,Xuesong Cao,Peter Schröder,Zhenyu Wang
出处
期刊:ACS Nano [American Chemical Society]
卷期号:15 (8): 13166-13177 被引量:17
标识
DOI:10.1021/acsnano.1c02715
摘要

Yttrium oxide nanoparticles (nY2O3), one of the broadly used rare earth nanoparticles, can interact with plants and possibly cause plant health and environmental impacts, but the plant defense response particularly at the nanoparticle–cell interface is largely unknown. To elucidate this, Bright Yellow 2 (BY-2) tobacco (Nicotiana tabacum L.) suspension-cultured cells were exposed to 50 mg L–1 nY2O3 (30 nm) for 12 h. Although 42.2% of the nY2O3 remained outside of protoplasts, nY2O3 could still traverse the cell wall and was partially deposited inside the vacuole. In addition to growth inhibition, morphological and compositional changes in cell walls occurred. Together with a locally thickened (7–13-fold) cell wall, increased content (up to 58%) of pectin and reduction in (up to 29%) hemicellulose were observed. Transcriptome analysis revealed that genes involved in cell wall metabolism and remodeling were highly regulated in response to nY2O3 stress. Expression of genes for pectin synthesis and degradation was up- and down-regulated by 31–78% and 13–42%, respectively, and genes for xyloglucan and pectin modifications were up- and down-regulated by 82% and 81–92%, respectively. Interestingly, vesicle trafficking seemed to be activated, enabling the repair and defense against nY2O3 disturbance. Our findings indicate that, although nY2O3 generated toxicity on BY-2 cells, it is very likely that during the recovery process cell wall remodeling was initiated to gain resistance to nY2O3 stress, demonstrating the plant's cellular regulatory machinery regarding repair and adaptation to nanoparticles like nY2O3.
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