BMC Research Notes | |
Morphological and genetic changes induced by excess Zn in roots of Medicago truncatula A17 and a Zn accumulating mutant | |
David H McNear1  Guiliang Tang2  Ricky W Lewis3  | |
[1] Ag Science Bldg, North1100 Nicholasville Road, Lexington, KY 40546-0091, USA;Department of Biological Sciences, Michigan Technological University, Houghton, MI 49931, USA;Rhizosphere Science Laboratory, Department of Plant and Soil Science, University of Kentucky, Lexington, KY 40546, USA | |
关键词: Root architecture; Legume; QRT-PCR; Translocation factor; Zn stress; MicroRNA (miRNA); Abiotic stress; Medicago truncatula; | |
Others : 1165110 DOI : 10.1186/1756-0500-5-657 |
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received in 2012-07-06, accepted in 2012-11-15, 发布年份 2012 | |
【 摘 要 】
Background
Nutrient fluxes associated with legume-rhizobia symbioses are poorly understood and little is known regarding the influence of abiotic stresses on development and maintenance of N-fixing nodules and root system architecture (RSA). We examined effects of Zn on nodule development and structure, root architecture, and expression of nodulation-related miRNAs in Medicago truncatula and the mutant, raz (requires additional Zn).
Findings
Excess Zn increased root and shoot associated Zn in both genotypes, however, raz plants had lower root associated Zn than WT plants. Roots of raz plants exposed to excess Zn had less volume, surface area, and total length compared to WT plants. Raz plants had lower lateral root number than WT plants. Excess Zn was found to increase root diameter in both genotypes. The Mn Translocation Factor (TfMn) increased in response to Zn in both genotypes; this was more pronounced in raz plants. TfZn was higher in raz plants and reduced in both genotypes in response to Zn. Nodulation was not influenced by Zn treatment or plant genotype. MicroRNA166 was upregulated under excess Zn in WT plants.
Conclusions
Neither the raz mutation nor Zn treatment affected nodulation, however, raz plants had altered RSA compared with WT and responded differently to Zn, implying the mutation potentially modulates RSA responses to Zn but doesn’t play a direct role in nodulation. MicroRNA166 was significantly induced in WT plants by excess Zn, warranting further investigation into the potential role it plays in controlling RSA.
【 授权许可】
2012 Lewis et al; licensee BioMed Central Ltd.
【 预 览 】
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