Manganese Treatment Alleviates Zinc Deficiency Symptoms in Arabidopsis Seedlings

Author:

Nakayama Sayuri1,Sugano Shigeo S23,Hirokawa Haruna1,Mori Izumi C4,Daimon Hiroyuki5,Kimura Sachie3ORCID,Fukao Yoichiro1

Affiliation:

1. Graduate School of Life Science, Ritsumeikan University, Kusatsu, Shiga, 525-8577 Japan

2. Bioproduction Research Institute, National Institute of Advanced Industrial Science and Technology (AIST), Tsukuba, Ibaraki, 305-8566 Japan

3. Ritsumeikan Global Innovation Research Organization, Ritsumeikan University, Kusatsu, Shiga, 525-8577 Japan

4. Institute of Plant Science and Resources, Okayama University, Kurashiki, Okayama, 710-0046 Japan

5. Faculty of Agriculture, Ryukoku University, Yokotani, Ohe, Seta, Ohtsu, Shiga, 520-2194 Japan

Abstract

Abstract Plant phenotypes caused by mineral deficiencies differ depending on growth conditions. We recently reported that the growth of Arabidopsis thaliana was severely inhibited on MGRL-based zinc (Zn)-deficient medium but not on Murashige–Skoog-based Zn-deficient medium. Here, we explored the underlying reason for the phenotypic differences in Arabidopsis grown on the different media. The root growth and chlorophyll contents reduced by Zn deficiency were rescued by the addition of extra manganese (Mn) during short-term growth (10 or 14 d). However, this treatment did not affect the growth recovery after long-term growth (38 d). To investigate the reason for plant recovery from Zn deficiency, we performed the RNA-seq analysis of the roots grown on the Zn-basal medium and the Zn-depleted medium with/without additional Mn. Principal component analysis of the RNA-seq data showed that the gene expression patterns of plants on the Zn-basal medium were similar to those on the Zn-depleted medium with Mn, whereas those on the Zn-depleted medium without Mn were different from the others. The expression of several transcription factors and reactive oxygen species (ROS)-related genes was upregulated in only plants on the Zn-depleted medium without Mn. Consistent with the gene expression data, ROS accumulation in the roots grown on this medium was higher than those grown in other conditions. These results suggest that plants accumulate ROS and reduce their biomass under undesirable growth conditions, such as Zn depletion. Taken together, this study shows that the addition of extra Mn to the Zn-depleted medium induces transcriptional changes in ROS-related genes, thereby alleviating short-term growth inhibition due to Zn deficiency.

Funder

Grant-in-Aid for Scientific Research on Innovative Areas

Ministry of Education, Culture, Sports, Science, and Technology of Japan

Ritsumeikan Global Innovation Research Organization

R-GIRO

Ministry of Education, Culture, Sports, Science and Technology

Institute of Plant Science and Resources

Publisher

Oxford University Press (OUP)

Subject

Cell Biology,Plant Science,Physiology,General Medicine

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