Engineering carbon assimilation in plants.

IF 9.3 1区 生物学 Q1 BIOCHEMISTRY & MOLECULAR BIOLOGY Journal of Integrative Plant Biology Pub Date : 2025-01-09 DOI:10.1111/jipb.13825
Kezhen Qin, Xingyan Ye, Shanshan Luo, Alisdair R Fernie, Youjun Zhang
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Abstract

Carbon assimilation is a crucial part of the photosynthetic process, wherein inorganic carbon, typically in the form of CO2, is converted into organic compounds by living organisms, including plants, algae, and a subset of bacteria. Although several carbon fixation pathways have been elucidated, the Calvin-Benson-Bassham (CBB) cycle remains fundamental to carbon metabolism, playing a pivotal role in the biosynthesis of starch and sucrose in plants, algae, and cyanobacteria. However, Ribulose-1,5-bisphosphate carboxylase/oxygenase (RuBisCO), the key carboxylase enzyme of the CBB cycle, exhibits low kinetic efficiency, low substrate specificity, and high temperature sensitivity, all of which have the potential to limit flux through this pathway. Consequently, RuBisCO needs to be present at very high concentrations, which is one of the factors contributing to its status as the most prevalent protein on Earth. Numerous attempts have been made to optimize the catalytic efficiency of RuBisCO and thereby promote plant growth. Furthermore, the limitations of this process highlight the potential benefits of engineering or discovering more efficient carbon fixation mechanisms, either by improving RuBisCO itself or by introducing alternative pathways. Here, we review advances in artificial carbon assimilation engineering, including the integration of synthetic biology, genetic engineering, metabolic pathway optimization, and artificial intelligence in order to create plants capable of performing more efficient photosynthesis. We additionally provide a perspective of current challenges and potential solutions alongside a personal opinion of the most promising future directions of this emerging field.

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植物碳吸收工程。
碳同化是光合作用过程中至关重要的一部分,其中无机碳,通常以二氧化碳的形式,被包括植物,藻类和细菌在内的生物体转化为有机化合物。虽然已经阐明了几种碳固定途径,但Calvin-Benson-Bassham (CBB)循环仍然是碳代谢的基础,在植物、藻类和蓝藻中淀粉和蔗糖的生物合成中起着关键作用。然而,CBB循环的关键羧化酶核酮糖-1,5-二磷酸羧化酶/加氧酶(RuBisCO)表现出低动力学效率、低底物特异性和高温度敏感性,所有这些都有可能限制通过该途径的通量。因此,RuBisCO需要以非常高的浓度存在,这是其成为地球上最普遍的蛋白质的因素之一。为了优化RuBisCO的催化效率从而促进植物生长,人们进行了大量的尝试。此外,这一过程的局限性突出了工程或发现更有效的碳固定机制的潜在好处,无论是通过改进RuBisCO本身还是通过引入替代途径。在此,我们综述了人工碳同化工程的进展,包括合成生物学、基因工程、代谢途径优化和人工智能的整合,以创造能够进行更有效光合作用的植物。此外,我们还提供了当前挑战和潜在解决方案的观点,以及这一新兴领域最有希望的未来方向的个人观点。
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来源期刊
Journal of Integrative Plant Biology
Journal of Integrative Plant Biology 生物-生化与分子生物学
CiteScore
18.00
自引率
5.30%
发文量
220
审稿时长
3 months
期刊介绍: Journal of Integrative Plant Biology is a leading academic journal reporting on the latest discoveries in plant biology.Enjoy the latest news and developments in the field, understand new and improved methods and research tools, and explore basic biological questions through reproducible experimental design, using genetic, biochemical, cell and molecular biological methods, and statistical analyses.
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