Affiliation:
1. Department of Life Sciences National Chung Hsing University Taichung Taiwan
2. Department of Agronomy National Chung Hsing University Taichung Taiwan
3. Queensland Alliance for Agriculture and Food Innovation The University of Queensland St. Lucia QLD Australia
4. Institute of Plant Biology and Department of Life Science National Taiwan University Taipei Taiwan
5. Department of Horticulture and Biotechnology Chinese Culture University Taipei Taiwan
6. Advanced Plant and Food Crop Biotechnology Center National Chung Hsing University Taichung Taiwan
Abstract
AbstractMicroRNAs (miRNAs) are small regulatory RNAs that participate in various biological processes by silencing target genes. In Arabidopsis, microRNA163 (miR163) was found to be involved in seed germination, root development, and biotic resistance. However, the regulatory roles of miR163 remain unclear. In the current study, the mir163 mutant was investigated to comprehensively understand and characterize its functions in Arabidopsis. RNA‐sequencing and Gene Ontology enrichment analyses revealed that miR163 might be involved in “response to stimulus” and “metabolic process”. Interestingly, “response to stress”, including heat, cold, and oxidative stress, was enriched under the subcategory of “response to stimulus”. We observed that miR163 and PXMT were repressed and induced under heat stress, respectively. Furthermore, the study detected significant differences in seed germination rate, hypocotyl length, and survival rate, indicating a variation in the thermotolerance between WT and mir163 mutant. The results revealed that the mir163 mutant had a lesser degree of germination inhibition by heat treatment than WT. In addition, the mir163 mutant showed a better survival rate and longer hypocotyl length under heat treatment than the WT. The metabolomes of WT and mir163 mutant were further analyzed. The contents of benzene derivatives and flavonoids were affected by miR163, which could enhance plants' defense abilities. In conclusion, miR163/targets regulated the expression of stress‐responsive genes and the accumulation of defense‐related metabolites to alter stress tolerance.
Funder
National Science and Technology Council
Subject
Cell Biology,Plant Science,Genetics,General Medicine,Physiology
Cited by
1 articles.
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