Enhanced photosynthetic efficiency by nitrogen-doped carbon dots via plastoquinone-involved electron transfer in apple

Author:

Jing Xiuli1,Liu Yankai1,Liu Xuzhe2,Zhang Yi3,Wang Guanzhu1,Yang Fei1,Zhang Yani1,Chang Dayong4,Zhang Zhen-Lu1,You Chun-Xiang1,Zhang Shuai2,Wang Xiao-Fei1

Affiliation:

1. Shandong Agricultural University Apple Technology Innovation Center of Shandong Province, Shandong Collaborative Innovation Center of Fruit & Vegetable Quality and Efficient Production, National Key Laboratory of Wheat Improvement, College of Horticulture Science and Engineering, , Taian 271018, Shandong, China

2. Shandong Agricultural University Key Laboratory of Agricultural Film Application of Ministry of Agriculture and Rural Affairs, College of Chemistry and Material Science, , Taian 271018, Shandong, China

3. Shandong Agricultural University College of Life Science, , Taian 271018, Shandong, China

4. Yantai Goodly Biotechnology Co., Ltd , Yantai 264000, Shandong, China

Abstract

Abstract Artificially enhancing photosynthesis is critical for improving crop yields and fruit qualities. Nanomaterials have demonstrated great potential to enhance photosynthetic efficiency; however, the mechanisms underlying their effects are poorly understood. This study revealed that the electron transfer pathway participated in nitrogen-doped carbon dots (N-CDs)-induced photosynthetic efficiency enhancement (24.29%), resulting in the improvements of apple fruit qualities (soluble sugar content: 11.43%) in the orchard. We also found that N-CDs alleviated mterf5 mutant-modulated photosystem II (PSII) defects, but not psa3 mutant-modulated photosystem I (PSI) defects, suggesting that the N-CDs-targeting sites were located between PSII and PSI. Measurements of chlorophyll fluorescence parameters suggested that plastoquinone (PQ), the mobile electron carrier in the photosynthesis electron transfer chain (PETC), was the photosynthesis component that N-CDs targeted. In vitro experiments demonstrated that plastoquinone-9 (PQ-9) could accept electrons from light-excited N-CDs to produce the reduced plastoquinone 9 (PQH2-9). These findings suggested that N-CDs, as electron donors, offer a PQ-9-involved complement of PETC to improve photosynthesis and thereby fruit quality. Our study uncovered a mechanism by which nanomaterials enhanced plant photosynthesis and provided some insights that will be useful in the design of efficient nanomaterials for agricultural/horticultural applications.

Funder

China Agriculture Research System of MOF and MARA

Natural Science Foundation of Shandong Province

National Natural Science Foundation of China

major basic research projects of Shandong Province

Publisher

Oxford University Press (OUP)

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