Improving photosynthetic efficiency in fluctuating light to enhance yield of C3 and C4 crops

被引:2
|
作者
Wang, Yu [1 ,2 ]
机构
[1] Univ Illinois, Carl R Woese Inst Genom Biol, Urbana, IL 61801 USA
[2] Nanjing Univ, Sch Life Sci, Nanjing 210008, Peoples R China
来源
CROP AND ENVIRONMENT | 2024年 / 3卷 / 04期
关键词
C; 3; photosynthesis; 4; Photosynthetic induction; PPDK regulatory protein; Rubisco activase; Stomatal conductance; LEAF HYDRAULIC CONDUCTANCE; BUNDLE-SHEATH CONDUCTANCE; WATER-USE EFFICIENCY; GLOBAL FOOD DEMAND; MESOPHYLL CONDUCTANCE; RUBISCO ACTIVASE; RIBULOSE 1,5-BISPHOSPHATE; STOMATAL CONDUCTANCE; TEMPERATURE RESPONSE; ACCELERATING RECOVERY;
D O I
10.1016/j.crope.2024.06.003
中图分类号
S3 [农学(农艺学)];
学科分类号
0901 ;
摘要
Photosynthetic adaptations to light fluctuations do not occur instantaneously, leading to reduced carbon gain and lower productivity in agricultural crops. Enhancing the rapidity of photosynthetic responses to these fluctuations could potentially increase carbon assimilation by 13-32%, indicating a substantial opportunity for yield improvement of major crops. Most crops can be categorized into C-3 or C-4 crops by their photosynthetic pathways. This review provides a comparative overview of the photosynthetic responses of both C-3 and C-4 crops to light fluctuations, highlighting the unique and shared challenges for these two photosynthetic pathways. In C-3 crops, fast adjustments in non-photochemical quenching, stomatal and mesophyll conductance, and Rubisco activation are essential for optimizing photosynthesis under variable light conditions. In contrast, C-4 crops, including maize, sorghum, and sugarcane, benefit from their carbon concentration mechanism under high light conditions but face challenges in coordinating the C-4 and Calvin-Benson-Bassham cycles. Strategies to enhance the activation of pyruvate phosphate dikinase and Rubisco, as well as to improve electron transport capacity and flexibility, could markedly boost the photosynthetic efficiency and productivity. Through a detailed understanding of the distinct mechanisms involved in C-3 and C-4 photosynthesis, this review underscores the need for tailored strategies to optimize the photosynthetic efficiency specific to each crop type. Exploring and leveraging these differences is crucial for propelling agricultural productivity forward.
引用
收藏
页码:184 / 193
页数:10
相关论文
共 50 条
  • [21] Influence of light and nitrogen on the photosynthetic efficiency in the C4 plant Miscanthus × giganteus
    Jian-Ying Ma
    Wei Sun
    Nuria K. Koteyeva
    Elena Voznesenskaya
    Samantha S. Stutz
    Anthony Gandin
    Andreia M. Smith-Moritz
    Joshua L. Heazlewood
    Asaph B. Cousins
    Photosynthesis Research, 2017, 131 : 1 - 13
  • [22] Ecophysiological traits in C3 and C4 grasses: a phylogenetically controlled screening experiment
    Taylor, Samuel H.
    Hulme, Stephen P.
    Rees, Mark
    Ripley, Brad S.
    Woodward, F. Ian
    Osborne, Colin P.
    NEW PHYTOLOGIST, 2010, 185 (03) : 780 - 791
  • [23] A comparison of stomatal conductance responses to blue and red light between C3 and C4 photosynthetic species in three phylogenetically-controlled experiments
    Bernardo, Emmanuel L.
    Sales, Cristina Rodrigues Gabriel
    Cubas, Lucia Arce
    Vath, Richard L.
    Kromdijk, Johannes
    FRONTIERS IN PLANT SCIENCE, 2023, 14
  • [24] Relationship between allocation of absorbed light energy in PSII and photosynthetic rates of C3 and C4 plants
    Jen-Hsien Weng
    Acta Physiologiae Plantarum, 2009, 31 : 639 - 647
  • [25] Cell wall thickness spectrum of photosynthetic cells in herbaceous C3, C4, and crassulacean acid metabolism plants
    Ueno, Osamu
    JOURNAL OF PLANT RESEARCH, 2024, : 197 - 213
  • [26] The temperature response of C3 and C4 photosynthesis
    Sage, Rowan F.
    Kubien, David S.
    PLANT CELL AND ENVIRONMENT, 2007, 30 (09) : 1086 - 1106
  • [27] Metabolomics of related C3 and C4 Flaveria species indicate differences in the operation of photorespiration under fluctuating light
    Fu, Xinyu
    Schlueter, Urte
    Smith, Kaila
    Weber, Andreas P. M.
    Walker, Berkley J.
    PLANT DIRECT, 2024, 8 (10)
  • [28] Evolutionary transition from C3 to C4 photosynthesis and the route to C4 rice
    Zheng Liu
    Ning Sun
    Shangjun Yang
    Yanhong Zhao
    Xiaoqin Wang
    Xingyu Hao
    Zhijun Qiao
    Biologia, 2013, 68 : 577 - 586
  • [29] Photosynthesis and yield response to elevated CO2, C4 plant foxtail millet behaves similarly to C3 species
    Li, Ping
    Li, Bingyan
    Seneweera, Saman
    Zong, Yuzheng
    Li, Frank Yonghong
    Han, Yuanhuai
    Hao, Xingyu
    PLANT SCIENCE, 2019, 285 : 239 - 247
  • [30] A scheme for C4 evolution derived from a comparative analysis of the closely related C3, C3–C4 intermediate, C4-like, and C4 species in the genus Flaveria
    Yuri N. Munekage
    Yukimi Y. Taniguchi
    Plant Molecular Biology, 2022, 110 : 445 - 454