Glucose status within dark-grown etiolated cotyledons determines seedling de-etiolation upon light irradiation

Author:

Mu Xin-Rong12ORCID,Wang Yi-Bo3ORCID,Bao Qin-Xin1ORCID,Wei Yu-Ting1ORCID,Zhao Sheng-Ting1,Tao Wen-Zhe1,Liu Yu-Xin1,Wang Wan-Ni1ORCID,Yu Fu-Huan1ORCID,Tong Chen1ORCID,Wang Jing-Wen1,Gu Cheng-Yue1,Wang Qi-Meng1,Liu Xin-Ran1,Sai Na1ORCID,Zhu Jin-Lei1,Zhang Jian1ORCID,Loake Gary J45ORCID,Meng Lai-Sheng1ORCID

Affiliation:

1. The Key Laboratory of Biotechnology for Medicinal Plants of Jiangsu Province, School of Life Science, Jiangsu Normal University , Xuzhou 221116 , People's Republic of China

2. State Key Laboratory of Pharmaceutical Biotechnology, Institute of Plant Molecular Biology, School of Life Sciences, Nanjing University , Nanjing 210023 , People's Republic of China

3. College of Bioengineering and Biotechnology, Tianshui Normal University , Tianshui 741600 , People’s Republic of China

4. Centre for Transformative Biotechnology of Medicinal and Food Plants, Jiangsu Normal University—Edinburgh University, Jiangsu Normal University , Xuzhou 221116 , People’s Republic of China

5. Institute of Molecular Plant Sciences, School of Biological Sciences, Edinburgh University , Edinburgh EH9 3JR , UK

Abstract

Abstract Exposure of dark-grown etiolated seedlings to light triggers the transition from skotomorphogenesis/etiolation to photomorphogenesis/de-etiolation. In the life cycle of plants, de-etiolation is essential for seedling development and plant survival. The mobilization of soluble sugars (glucose [Glc], sucrose, and fructose) derived from stored carbohydrates and lipids to target organs, including cotyledons, hypocotyls, and radicles, underpins de-etiolation. Therefore, dynamic carbohydrate biochemistry is a key feature of this phase transition. However, the molecular mechanisms coordinating carbohydrate status with the cellular machinery orchestrating de-etiolation remain largely opaque. Here, we show that the Glc sensor HEXOKINASE 1 (HXK1) interacts with GROWTH REGULATOR FACTOR5 (GRF5), a transcriptional activator and key plant growth regulator, in Arabidopsis (Arabidopsis thaliana). Subsequently, GRF5 directly binds to the promoter of phytochrome A (phyA), encoding a far-red light (FR) sensor/cotyledon greening inhibitor. We demonstrate that the status of Glc within dark-grown etiolated cotyledons determines the de-etiolation of seedlings when exposed to light irradiation by the HXK1–GRF5–phyA molecular module. Thus, following seed germination, accumulating Glc within dark-grown etiolated cotyledons stimulates a HXK1-dependent increase of GRF5 and an associated decrease of phyA, triggering the perception, amplification, and relay of HXK1-dependent Glc signaling, thereby facilitating the de-etiolation of seedlings following light irradiation. Our findings, therefore, establish how cotyledon carbohydrate signaling under subterranean darkness is sensed, amplified, and relayed, determining the phase transition from skotomorphogenesis to photomorphogenesis on exposure to light irradiation.

Funder

Priority Academic Program Development of Jiangsu Higher Education Institutions

National Natural Science Foundation of China

Key Research and Development Program of Gansu Province

Publisher

Oxford University Press (OUP)

Subject

Plant Science,Genetics,Physiology

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