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过表达抑制拟南芥根毛发育并增强其缺铁耐受性。

Overexpression of Suppresses Root Hair Development and Enhances Iron-Deficiency Tolerance in Arabidopsis.

作者信息

Yan Mingke, Zhang Xin, Gao Jinghui

机构信息

College of Grassland Agriculture, Northwest A&F University, Yangling 712100, China.

College of Plant Protection, Northwest A&F University, Yangling 712100, China.

出版信息

Genes (Basel). 2025 Apr 6;16(4):438. doi: 10.3390/genes16040438.

Abstract

: The Arabidopsis FCS-LIKE ZINC FINGER (FLZ) family proteins play crucial roles in responses to various biotic and abiotic stresses, but the functions of many family members remain uncharacterized. : In this study, we investigated the function of FLZ12, a member of the FLZ family, using a reverse genetic approach. : We found that overexpression of impaired root hair development, as evidenced by marked reductions in both root hair length and number under normal growth conditions. However, deprivation of phosphate could partially restore root hair formation, although it still impeded root hair elongation. Notably, -overexpressing lines exhibited greatly enhanced tolerance to iron deficiency, with seedlings exhibiting more vigorous and robust growth compared to wild-type plants. In contrast, knockout of resulted in slight impact on seedling development. Further analysis revealed that FLZ12 accumulation was increased in vascular tissues of plants subjected to iron starvation, and the protein was predominantly localized within the nucleus. : Integrating these findings with existing evidence, we propose that FLZ12 functions as a translational regulator through interacting with other proteins, playing dual roles in root hair development and iron-deficiency responses in . These findings provide new insights into the FLZ-domain-containing proteins and offer molecular strategies to enhance iron uptake efficiency in crops, highlighting as a promising candidate for future breeding efforts.

摘要

拟南芥类FCS锌指蛋白(FLZ)家族蛋白在应对各种生物和非生物胁迫中发挥关键作用,但许多家族成员的功能仍未明确。在本研究中,我们采用反向遗传学方法研究了FLZ家族成员FLZ12的功能。我们发现,FLZ12过表达会损害根毛发育,在正常生长条件下根毛长度和数量均显著减少。然而,缺磷可部分恢复根毛形成,尽管仍会阻碍根毛伸长。值得注意的是,FLZ12过表达株系对缺铁的耐受性大大增强,与野生型植株相比,幼苗生长更旺盛健壮。相反,FLZ12敲除对幼苗发育有轻微影响。进一步分析表明,在缺铁胁迫下植物的维管组织中FLZ12积累增加,且该蛋白主要定位于细胞核内。综合这些发现与现有证据,我们提出FLZ12通过与其他蛋白相互作用作为翻译调节因子,在拟南芥根毛发育和缺铁响应中发挥双重作用。这些发现为含FLZ结构域的蛋白提供了新见解,并为提高作物铁吸收效率提供了分子策略,凸显FLZ12作为未来育种工作的一个有前景的候选基因。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/5c38/12027241/3d27e84e8377/genes-16-00438-g001.jpg

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