期刊文献+

AtbHLH29 of Arabidopsis thaliana is a functional ortholog of tomato FER involved in controlling iron acquisition in strategy I plants 被引量:25

AtbHLH29 of Arabidopsis thaliana is a functional ortholog of tomato FER involved in controlling iron acquisition in strategy I plants
在线阅读 下载PDF
导出
摘要 AtbHLH29 of Arabidopsis, encoding a bHLH protein, reveals a high similarity to the tomato FER which is proposed as a transcriptional regulator involved in controlling the iron deficiency responses and the iron uptake in tomato. For identification of its biological functions, AtbHLH29 was introduced into the genome of the tomato FER mutant T3238fer mediated by Agrobacterium tumefaciencs. Transgenic plants were regenerated and the stable integration of AtbHLH29 into their genomes was confirmed by Southern hybridization. Molecular analysis demonstrated that expression of the exogenous AtbHLH29 of Arabidopsis in roots of the FER mutant T3238fer enabled to complement the defect functions of FER. The transgenic plants regained the ability to activate the whole iron deficiency responses and showed normal growth as the wild type under iron-limiting stress. Our transformation data demonstrate that AtbHLH29 is a functional ortholog of the tomato FER and can completely replace FER in controlling the effective iron acquisition in tomato. Except of iron, FER protein was directly or indirectly involved in manganese homeostasis due to that loss functions of FER in T3238fer resulted in strong reduction of Mn content in leaves and the defect function on Mn accumulation in leaves was complemented by expression of AtbHLH29 in the transgenic plants. Identification of the similar biological functions of FER and AtbHLH29, which isolated from two systematically wide-diverged “strategy I” plants, suggests that FER might be a universal gene presented in all strategy I plants in controlling effective iron acquisition system in roots. AtbHLH29 of Arabidopsis, encoding a bHLH protein, reveals a high similarity to the tomato FER which is proposed as a transcriptional regulator involved in controlling the iron deficiency responses and the iron uptake in tomato. For identification of its biological functions, AtbHLH29 was introduced into the genome of the tomato FER mutant T3238fer mediated by Agrobacterium tumefaciencs. Transgenic plants were regenerated and the stable integration of AtbHLH29 into their genomes was confirmed by Southern hybridization. Molecular analysis demonstrated that expression of the exogenous AtbHLH29 of Arabidopsis in roots of the FER mutant T3238fer enabled to complement the defect functions of FER. The transgenic plants regained the ability to activate the whole iron deficiency responses and showed normal growth as the wild type under iron-limiting stress. Our transformation data demonstrate that AtbHLH29 is a functional ortholog of the tomato FER and can completely replace FER in controlling the effective iron acquisition in tomato. Except of iron, FER protein was directly or indirectly involved in manganese homeostasis due to that loss functions of FER in T3238fer resulted in strong reduction of Mn content in leaves and the defect function on Mn accumulation in leaves was complemented by expression of AtbHLH29 in the transgenic plants. Identification of the similar biological functions of FER and AtbHLH29, which isolated from two systematically wide-diverged “strategy I” plants, suggests that FER might be a universal gene presented in all strategy I plants in controlling effective iron acquisition system in roots.
出处 《Cell Research》 SCIE CAS CSCD 2005年第8期613-621,共9页 细胞研究(英文版)
基金 supported by grants from the Ministry of Science and Technology of China(Grant No.2004AA222110) the National Natural Science Foundation of China(Grant No.30225029).
关键词 TOMATO AtbHLH29 iron uptake ARABIDOPSIS FER plant nutrition. tomato, AtbHLH29, iron uptake, Arabidopsis, FER, plant nutrition.
分类号 Q [生物学]
  • 相关文献

参考文献35

  • 1Kampfenkel K, Van MM, Inze D. Effects of iron excess on Nicotiana plumbagnifolia plants. Plant Physiol 1995; 107:725-35.
  • 2Takagi S, Nomoto K, Takemoto T. Physiological aspect of mugineic acid, a possible phytosiderophore of graminaceous plants. J Plant Nutr 1984; 7:469-77.
  • 3Romheld V. Different strategies for iron acquisition in higher plants. Physiol Plant 1987; 70:231-34.
  • 4Robinson N J, Procter CM, Connolly EL, et al. A ferric-chelate reductase for iron uptake from soils. Nature 1999; 397:694-7.
  • 5Waters BM, Blevins DG, Eide DJ. Characterization of FRO1, a pea ferric-chelate reductase involved in root iron acquisition.Plant Physiol 2002; 129:85-94.
  • 6Li L, Cheng XD, Ling H-Q. Isolation and characterization of Fe (Ⅲ)-chelate reductase gene LeFR01 in tomato. Plant Mol Biol 2004; 54:125-36.
  • 7Eide D, Broderius M, Fett J, et al. A novel iron-regulated metal transporter from plants identified by functional expression in yeast. Proc Natl Acad Sci U S A 1996; 93:5624-28.
  • 8Vert G, Briat JE Curie C. Arabidopsis IRT2 gene encodes a rootperiphery iron transporter. Plant J 2001 ; 26:181-9.
  • 9Eckhardt U, Mas MA, Buckhout TJ. Two iron-regulated cation transporters from tomato complement metal uptake-deficient yeast mutants. Plant Mol Biol 2001; 45:437-48.
  • 10Cohen CK, Garvin DF, Kochian LV. Kinetic properties of a micronutrient transporter from Pisum sativum indicate a primary function in Fe uptake from the soil. Planta 2004; 218:784-92.

同被引文献62

引证文献25

二级引证文献222

相关作者

内容加载中请稍等...

相关机构

内容加载中请稍等...

相关主题

内容加载中请稍等...

浏览历史

内容加载中请稍等...
;
使用帮助 返回顶部