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Updated: Jan 24, 2026

High-throughput, Microscale Protocol for the Analysis of Processing Parameters and Nutritional Qualities in Maize Zea mays L.
Published on: June 16, 2018
ZmPEPCK2 enhances nutritional quality and yield potential by synchronizing carbon and nitrogen metabolism in maize
Xiu Yang1, Qing Chao2, Zhifang Gao3
1State Key Laboratory of Forage Breeding-by-Design and Utilization, Key Laboratory of Photobiology, Institute of Botany, Chinese Academy of Sciences, Beijing 100093, China; University of Chinese Academy of Sciences, Beijing 100049, China; China National Botanical Garden, Beijing 100093, China.
Abstract:
Maize (Zea mays) is the world's third most important staple crop and a major source of dietary energy and protein. Carbon and nitrogen accumulation in developing kernels fundamentally determine grain quality, influencing both nutritional value and processing characteristics. However, increasing kernel nitrogen content without compromising yield remains a major challenge in maize breeding. Here, we show that phosphoenolpyruvate carboxykinase 2 (PEPCK2) functions as a key regulator of nitrogen sink strength, with its maternal expression level determining carbon and nitrogen accumulation in progeny kernels. Genetic analyses revealed that natural variation in both the promoter and coding regions of PEPCK2 is strongly associated with yield- and quality-related traits. Through genetic manipulation, we demonstrate that PEPCK2 overexpression increases ear length by 18.7%, kernel weight by 22.3%, and protein content by 31.5%, whereas knockdown reduces these parameters by 15.2%-21.4% without affecting vegetative growth. Biochemical analyses show that PEPCK2 catalyzes the conversion of oxaloacetate to phosphoenolpyruvate, enhances flux through the tricarboxylic acid cycle by 2.3-fold, and promotes the efficient conversion of amino acid carbon skeletons into starch while recycling nitrogen for protein synthesis. Together, these findings establish PEPCK2 as a master regulator that simultaneously enhances maize nutritional quality and yield potential. The apparent conservation of this carbon-nitrogen coordination mechanism highlights its promise for improving cereal crops through targeted metabolic engineering.
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