| Literature DB >> 24744764 |
Amanda L Socha1, Mary Lou Guerinot1.
Abstract
Manganese (Mn), an essential trace element, is important for plant health. In plants, Mn serves as a cofactor in essential processes such as photosynthesis, lipid biosynthesis and oxidative stress. Mn deficient plants exhibit decreased growth and yield and are more susceptible to pathogens and damage at freezing temperatures. Mn deficiency is most prominent on alkaline soils with approximately one third of the world's soils being too alkaline for optimal crop production. Despite the importance of Mn in plant development, relatively little is known about how it traffics between plant tissues and into and out of organelles. Several gene transporter families have been implicated in Mn transport in plants. These transporter families include NRAMP (natural resistance associated macrophage protein), YSL (yellow stripe-like), ZIP (zinc regulated transporter/iron-regulated transporter [ZRT/IRT1]-related protein), CAX (cation exchanger), CCX (calcium cation exchangers), CDF/MTP (cation diffusion facilitator/metal tolerance protein), P-type ATPases and VIT (vacuolar iron transporter). A combination of techniques including mutant analysis and Synchrotron X-ray Fluorescence Spectroscopy can assist in identifying essential transporters of Mn. Such knowledge would vastly improve our understanding of plant Mn homeostasis.Entities:
Keywords: Arabidopsis; manganese; metal transport; rice; synchrotron x-ray fluorescence
Year: 2014 PMID: 24744764 PMCID: PMC3978347 DOI: 10.3389/fpls.2014.00106
Source DB: PubMed Journal: Front Plant Sci ISSN: 1664-462X Impact factor: 5.753
Putative Mn transporters referenced in the text.
| AtNRAMP1 | Root (all tissues) > shoot | PM | Up in root | - - | Fe, Cd | Curie et al., |
| AtNRAMP3 | Shoot and root vasculature, developing seed | VM | None | - - | Fe, Cd | Thomine et al., |
| AtNRAMP4 | Shoot vasculature > root vasculature, developing seed | VM | None | - - | Fe, Zn, Cd | Thomine et al., |
| OsNRAMP3 | Nodes > root and leaf vasculature, panicle, husk, flower | PM | None | None (PTM) | Yamaji et al., | |
| OsNRAMP5 | Root exodermis and endodermis | PM | None | – | Cd | Ishimaru et al., |
| DMTI | Root, leaf, stems | PM/peri-bacteroid membrane | - - | - - | Fe, Zn, Cu | Kaiser et al., |
| LeNRAMP1 | Root | VM | - - | - - | Bereczky et al., | |
| LeNRAMP3 | Root > shoot | VM | - - | - - | Bereczky et al., | |
| AtYSL4 | Shoot, silique, root, flower, developing seed | VM/EM/CM | None | - - | Ni, Fe | Conte et al., |
| AtYSL6 | Shoot, flower, silique, developing seed | VM/EM/CM | None | - - | Ni, Fe | Conte et al., |
| OsYSL2 | Leaf and leaf sheath phloem, root phloem, developing seed | PM | None | - - | Fe | Koike et al., |
| OsYSL6 | Root, shoot | Un-determined | None | - - | - - | Sasaki et al., |
| ZmYS1 | Root epidermis, leaf mesophyll | PM | - - | - - | Fe, Zn, Cu, Ni, Cd | Roberts et al., |
| AtIRT1 | Root epidermis, flower | PM | None | - - | Fe, Zn, Cu, Cd, Co | Eide et al., |
| HvIRT1 | Root | PM, ER | None | - - | Fe, Zn | Pedas et al., |
| PsIRT1 | Root | PM | - - | - - | Fe, Zn, Cd | Cohen et al., |
| LeIRT1 | Root, flowers | - - | - - | - - | Fe, Zn, Cd | Eckhardt et al., |
| LeIRT2 | Root | - - | - - | - - | Fe, Zn, Cd | Eckhardt et al., |
| AtZIP1 | Root vasculature > shoot vasculature | VM | Up in shoot | - - | Zn | Milner et al., |
| AtZIP2 | Root vasculature > shoot vasculature | PM | Down in shoot | - - | Zn | Milner et al., |
| AtZIP5 | Root > shoot | - - | - - | - - | Milner et al., | |
| AtZIP6 | Root > shoot | - - | - - | - - | Milner et al., | |
| AtZIP7 | Shoot > root | - - | - - | - - | Zn, Fe | Milner et al., |
| AtZIP9 | Root, shoot | - - | - - | - - | Milner et al., | |
| MtZIP4 | Leaf, root | MM (predicted) | Down in leaf | - - | Lopez-Millan et al., | |
| MtZIP7 | Leaf | PM (predicted) | None | - - | Lopez-Millan et al., | |
| AtCAX2 | Root, shoot and flower vasculature, fruit, stem | VM | - - | None | Ca, Cd, Zn | Hirschi et al., |
| AtCAX4 | Root, leaf, stem, flower, silique | VM | - - | Up | Cd | Cheng et al., |
| AtCAX5 | Root, stem, fruit, flower, leaf | VM | - - | Up | Edmond et al., | |
| OsCAX1a | Root, shoot, flower | - - | - - | - - | Ca | Kamiya and Maeshima, |
| OsCAX3 | Root, shoot, flower | - - | - - | - - | Ca | Kamiya and Maeshima, |
| LeCAX2 | Leaf, fruit | - - | - - | - - | Ca | Edmond et al., |
| HvCAX2 | Root, shoot, seed | - - | - - | None | Ca | Edmond et al., |
| AtCCX3 | Flowers, stem, leaf, root | VM, EM | - - | Up in root and flowers | Na, K | Morris et al., |
| AtMTP11 | Leaf hydathodes, guard cells, root tip | Golgi/PVC | - - | None | Delhaize et al., | |
| OsMTP8.1 | Shoot | VM | None | Up in shoot | Chen et al., | |
| ShMTP8 | - - | Internal organelle | - - | - - | - - | Delhaize et al., |
| PtMTP11.1 | - - | GLC | - - | - - | Peiter et al., | |
| PtMTP11.2 | - - | GLC | - - | - - | Peiter et al., | |
| BmMTP10 | Root, shoot | Golgi | - - | Up in root and shoot | Erbasol et al., | |
| BmMTP11 | Root, shoot | Golgi | - - | None | Erbasol et al., | |
| AtECA1 | Root vasculature, flower, leaf vasculature, stem, silique | ER | - - | - - | Ca, Zn, Ni | Wu et al., |
| AtECA3 | Root vasculature and tip, Leaf vasculature, hydathodes, guard cells, flower, stem, silique | Golgi/EM | None | - - | Ca | Mills et al., |
| LeLCA1 | - - | - - | - - | - - | Ca | Johnson et al., |
| AtVIT1 | Developing seed, vasculature | VM | - - | - - | Fe | Kim et al., |
| OsVIT1 | Leaf > root, stem, panicle, embryo | VM | - - | - - | Fe, Zn | Zhang et al., |
| OsVIT2 | Leaf > root, stem, panicle, embryo | VM | - - | - - | Fe, Zn | Zhang et al., |
Only during Zn deficiency.
Not observed by Conte et al. (2013). At, Arabidopsis thaliana; Hv, Hordeum vulgare; Ps, Pisum sativum; Le, Lycopersicon esculentum (Solanum lycopersicum); Mt, truncatula; Os, Oryza sativa; Zm, Zea mays; Bm, Beta vulgaris; PM, Plasma Membrane; ER, Endoplasmic Reticulum; VM, Vacuolar Membrane; MM, Mitochondrial Membrane; EM, Endomembrane Compartment; PVC, Pre-Vacuolar Compartment; GLC, Golgi-Like Compartment; PTM, Post-Translational Modification; - -, not tested.
Figure 1Subcellular localization of putative Mn transporters. A diagram of a plant cell showing the Mn transport pathways in (A) A. thaliana and (B) O. Sativa. Squares, import into the cytosol; Circles, export out of the cytosol; Gray, unknown; Red, ZIP family; Magenta, Calcium-permeable channels; Orange, YSL family; Light blue, CAX family; Dark Blue, CCX family; Yellow, VIT family; Purple, NRAMP family; Brown, P2A-Type ATPase family; Green, CDF/MTP family.
Figure 2Tissue localization of Mn transporters. The probable role of transporter family members in translocating Mn from the soil into the aerial portion of the plant in A. thaliana. The transporters listed to the left of the cells are not yet localized to a specific tissue.
Figure 3Elemental distribution of Mn, Zn and Fe in Two dimensional map of a cross-section of an A. thaliana seed collected at 1 micron resolution at the Advanced Photon Source. Mn (blue), Zn (magenta), and Fe (green) are shown.