Sugar status in preexisting leaves determines systemic stomatal development within newly developing leaves

Author:

Bao Qin-Xin1,Mu Xin-Rong1,Tong Chen1,Li Cong2,Tao Wen-Zhe1,Zhao Sheng-Ting1,Liu Yu-xin1,Wang Wan-Ni1,Wei Yu-ting1,Yu Fu-Huan1,Wang Jing-wen1,Sun Zhi-Lan1,Fan Bing-Ling1,Sun Jia1,Wang Chen3,Loake Gary J.45,Meng Lai-Sheng1ORCID

Affiliation:

1. School of Life Science, Jiangsu Normal University, Xuzhou, Jiangsu 221116, People’s Republic of China

2. Public Technical Service Center, Kunming Institute of Zoology, Chinese Academy of Sciences, Kunming, Yunnan 650223, People’s Republic of China

3. School of Horticulture, Nanjing Agricultural University, Nanjing, Jiangsu 210095, People’s Republic of China

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

5. Institute of Molecular Plant Sciences, School of Biological Sciences, Edinburgh University, Edinburgh EH9 3BF, United Kingdom

Abstract

Stomata are pores found in the epidermis of stems or leaves that modulate both plant gas exchange and water/nutrient uptake. The development and function of plant stomata are regulated by a diverse range of environmental cues. However, how carbohydrate status in preexisting leaves might determine systemic stomatal formation within newly developing leaves has remained obscure. The glucose (Glc) sensor HEXOKINASE1 (HXK1) has been reported to decrease the stability of an ethylene/Glc signaling transcriptional regulator, EIN3 (ETHYLENE INSENSITIVE3). EIN3 in turn directly represses the expression of SUC2 ( sucrose transporter 2 ), encoding a master transporter of sucrose (Suc). Further, KIN10, a nuclear regulator involved in energy homeostasis, has been reported to repress the transcription factor SPCH (SPEECHLESS), a master regulator of stomatal development. Here, we demonstrate that the Glc status of preexisting leaves determines systemic stomatal development within newly developing leaves by the HXK1—¦EIN3—¦SUC2 module. Further, increasing Glc levels in preexisting leaves results in a HXK1-dependent decrease of EIN3 and increase of SUC2, triggering the perception, amplification and relay of HXK1-dependent Glc signaling and thereby triggering Suc transport from mature to newly developing leaves. The HXK1—¦EIN3—¦SUC2 molecular module thereby drives systemic Suc transport from preexisting leaves to newly developing leaves. Subsequently, increasing Suc levels within newly developing leaves promotes stomatal formation through the established KIN10⟶ SPCH module. Our findings thus show how a carbohydrate signal in preexisting leaves is sensed, amplified and relayed to determine the extent of systemic stomatal development within newly developing leaves.

Publisher

Proceedings of the National Academy of Sciences

Subject

Multidisciplinary

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