硅通过抑制铝在水稻根系中的吸收和运输来减少铝诱导的Suberization,从而促进根系生长。

Zhuoxi Xiao, Mujun Ye, Zixiang Gao, Yishun Jiang, Xinyuan Zhang, Nina Nikolic, Yongchao Liang
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引用次数: 5

摘要

硅(Si)可以减轻水稻(Oryza sativa L.)的铝(Al)毒性,但这种有益作用的机制尚未阐明,特别是在长期铝胁迫下。本文研究了铝和硅对水稻根系分化和发育的影响。结果表明,随着Al暴露时间的增加,根系积累了更多的Al,并且Al增强了根中亚色胺的沉积,最终抑制了根系的生长和养分吸收。然而,Si通过抑制Al的吸收和运输,限制了Al在根中的胞外和共塑途径,从而减少了Al在根中的积累。同时,si诱导的Al浓度下降通过下调木质素合成相关基因的表达,减少了Al引起的根的枯枝化,从而促进了根的发育(如不定根和侧根更长、更多)。此外,硅还增加了铝胁迫下根系对养分的吸收,从而促进了水稻的生长。综上所述,这些结果表明,硅通过抑制根系对铝的吸收和运输来减少铝诱导的根系超微化,从而改善根系生长,最终缓解水稻的铝胁迫。本研究进一步阐明了铝对水稻的毒性机制,以及硅在铝胁迫下降低铝含量和恢复根系发育中的作用。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Silicon Reduces Aluminum-Induced Suberization by Inhibiting the Uptake and Transport of Aluminum in Rice Roots and Consequently Promotes Root Growth.

Silicon (Si) can alleviate aluminum (Al) toxicity in rice (Oryza sativa L.), but the mechanisms underlying this beneficial effect have not been elucidated, especially under long-term Al stress. Here, the effects of Al and Si on the suberization and development of rice roots were investigated. The results show that, as the Al exposure time increased, the roots accumulated more Al, and Al enhanced the deposition of suberin in roots, both of which ultimately inhibited root growth and nutrient absorption. However, Si restricted the apoplastic and symplastic pathways of Al in roots by inhibiting the uptake and transport of Al, thereby reducing the accumulation of Al in roots. Meanwhile, the Si-induced drop in Al concentration reduced the suberization of roots caused by Al through down-regulating the expression of genes related to suberin synthesis and then promoted the development of roots (such as longer and more adventitious roots and lateral roots). Moreover, Si also increased nutrient uptake by Al-stressed roots and thence promoted the growth of rice. Overall, these results indicate that Si reduced Al-induced suberization of roots by inhibiting the uptake and transport of Al in roots, thereby amending root growth and ultimately alleviating Al stress in rice. Our study further clarified the toxicity mechanism of Al in rice and the role of Si in reducing Al content and restoring root development under Al stress.

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