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Sweet potato NAC transcription factor negatively regulates plant growth by causing leaf curling and reducing photosynthetic efficiency. | LitMetric

Sweet potato NAC transcription factor negatively regulates plant growth by causing leaf curling and reducing photosynthetic efficiency.

Front Plant Sci

Key Laboratory of Sweet Potato Biology and Biotechnology, Ministry of Agriculture and Rural Affairs/Beijing Key Laboratory of Crop Genetic Improvement/Laboratory of Crop Heterosis and Utilization, Ministry of Education, College of Agronomy and Biotechnology, China Agricultural University, Beijing, China.

Published: February 2023

AI Article Synopsis

  • Leaves are crucial for plant growth, but the regulatory mechanisms of leaf development, especially leaf polarity, are not well understood.
  • Researchers isolated a NAC transcription factor from a wild ancestor of sweet potato, which was highly expressed in leaves and its overexpression caused issues like leaf curling and reduced growth in transgenic sweet potato plants.
  • The study found that this NAC factor influences leaf polarity by regulating certain gene expressions, while also leading to changes in cell structure and increased lignin and cellulose content compared to wild-type plants.

Article Abstract

Leaves comprise one of the most important organs for plant growth and development. Although there have been some reports on leaf development and the establishment of leaf polarity, their regulatory mechanisms are not very clear. In this study, we isolated a NAC (NAM, ATAF, and CUC) transcription factor (TF), i.e., , from , which is a wild ancestor of sweet potato. This TF was highly expressed in the leaves and encoded a nuclear localization protein. The overexpression of caused leaf curling and inhibited the growth and development of transgenic sweet potato plants. The chlorophyll content and photosynthetic rate in transgenic sweet potato plants were significantly lower than those in wild-type (WT) plants. Scanning electron microscopy (SEM) and paraffin sections showed that the ratio of cells in the upper and lower epidermis of the transgenic plant leaves was unbalanced; moreover, the abaxial epidermal cells were irregular and uneven in transgenic plants. In addition, the xylem of transgenic plants was more developed than that of WT plants, while their lignin and cellulose contents were significantly higher than those of WT. Quantitative real-time PCR (qRT-PCR) analysis showed that the overexpression of upregulated the genes involved in leaf polarity development and lignin biosynthesis in transgenic plants. Moreover, it was found that IbNAC43 could directly activate the expression of the leaf adaxial polarity-related genes and by binding to their promoters. These results indicate that might play a critical role in plant growth by affecting the establishment of leaf adaxial polarity. This study provides new insights regarding leaf development.

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Source
http://www.ncbi.nlm.nih.gov/pmc/articles/PMC9988925PMC
http://dx.doi.org/10.3389/fpls.2023.1095977DOI Listing

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