Arabidopsis MEB3 functions as a vacuolar transporter to regulate iron accumulation in roots
Endo, K.; Basak, A. K.; Wilkens, A.; Mirzaei, M.; Kopriva, S.; Yamada, K.
Show abstract
Iron is an essential nutrient for plant photosynthesis and development, but excess iron leads to stress. After absorption from the soil, plants store iron in roots and distribute it to shoots via long-distance transport. Vacuole serves as the iron storage organ in root cells, maintaining cellular iron homeostasis, and vacuolar iron transporter (VIT) family proteins have been identified as plant vacuolar iron transporters. However, the contribution of vacuolar iron transporters to the overall iron homeostasis of plants is not fully understood. Here, we show that MEMBRANE PROTEIN OF ER BODY 3 (MEB3), a VIT family member, is a vacuolar iron transporter involved in root-shoot iron distribution in Arabidopsis thaliana. Heterologous expression of Arabidopsis MEB3 in yeast restored the iron resistance phenotype of the vacuolar iron transporter deficient mutant ccc1, indicating that MEB3 regulates iron transport. In Arabidopsis, MEB3 was expressed in almost all tissues, albeit to higher levels in roots and seedlings, and the MEB3 protein localized to the tonoplast. At low iron concentration, meb3 knockout mutants accumulated less iron in shoots, suggesting that MEB3 promotes iron accumulation in shoots. Consistently, meb3 mutants exhibited reduced growth compared with the wild type upon transfer to iron-deficient medium. However, at high iron concentration, meb3 mutants accumulated more iron in shoots and less iron in roots than the wild type, indicating the impairment of proper iron distribution in meb3 mutants. These findings demonstrate that MEB3 is a vacuolar iron transporter involved in root-to-shoot iron distribution.
Matching journals
The top 5 journals account for 50% of the predicted probability mass.
Similar papers in this journal
- Complete loss of RelA and SpoT homologs in Arabidopsis reveals the importance of the plastidial stringent response in the interplay between chloroplast metabolism and plant defense response 95%
- Metabolism of L-threonate, an ascorbate degradation product, requires a protein with L-threonate metabolizing domains in Arabidopsis 95%
- Multifaceted roles of rice ABA/stress-induced intrinsically disordered proteins in augmenting drought resistance 95%
Similar papers in this journal
Similar papers in this journal
- IRONMAN interacts with OsHRZ1 and OsHRZ2 to maintain Fe homeostasis 96%
- PHB3 Regulates Lateral Root Primordia Formation via NO-mediated Degradation of AUX/IAAs 95%
- IBA endogenous auxin regulates Arabidopsis root system development in a glutathione-dependent way and is important for adaptation to phosphate deprivation. 95%
Similar papers in this journal
- Ferroportin 3 is a dual-targeted mitochondrial/chloroplast iron exporter necessary for iron homeostasis in Arabidopsis 97%
- OsIRO3 negatively regulates Fe homeostasis by repressing the expression of OsIRO2 96%
- Altered metal distribution in the sr45-1 Arabidopsis mutant causes developmental defects 96%
Similar papers in this journal
- GmVTL1 is an iron transporter on the symbiosome membrane of soybean with an important role in nitrogen fixation. 96%
- The Medicago truncatula Vacuolar Iron Transporter-Like proteins VTL4 and VTL8 deliver iron to endosymbiotic bacteria at different stages of the infection process 95%
- Glucosinolate and phenylpropanoid biosynthesis are linked by proteasome-dependent degradation of PAL 95%
"Similar papers" are the closest papers from that journal in the model's embedding space. They show what the match is built on, but the ranking comes mostly from a classifier over the whole training set, not from these examples alone.