通过全息方法揭示蔗糖分泌型 Synechocystis sp.

IF 4.3 2区 生物学 Q1 BIOTECHNOLOGY & APPLIED MICROBIOLOGY
Dorota Muth-Pawlak, Lauri Kakko, Pauli Kallio, Eva-Mari Aro
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引用次数: 0

摘要

背景:推进基于光合作用的原核细胞工厂的工程化对于可持续化学生产非常重要,需要深入了解生物能和代谢途径之间的相互作用。光合电子流的重新排列可提高光能固定碳的效率,但必须与强大的碳汇相平衡,以避免光抑制。在蓝藻 Synechocystis sp. PCC 6803 中,黄二铁蛋白 Flv3 发挥着光系统 I 替代电子受体的作用,是重组电子流以增强光合作用固定二氧化碳和提高产量的一个有趣的工程目标:结果:我们已经证明,在工程蔗糖分泌型Synechocystis(S02:Δflv3)中灭活Flv3会诱导其从光能自养型蔗糖生产过渡到混养型生长,并通过蔗糖再吸收和细胞内碳汇(如糖原和多羟基丁酸)的形成来维持。S02:Δflv3的生长超过了蔗糖生产菌株(S02)的生长,并在九天的培养过程中展示了未曾预见的蛋白质组和代谢组变化。在没有 Flv3 的情况下,与光合光反应和二氧化碳同化相关的蛋白质下调,与糖酵解途径相关的蛋白质上调,然后才观察到 S02 和 S02:Δflv3 菌株之间蔗糖产量的差异。随着时间的推移,S02:Δflv3 中蔗糖降解的增加导致了呼吸途径成分的上调,如质子醌还原酶复合物 NDH-11 和 NDH-2,以及末端呼吸氧化酶 Cyd 和 Cox,它们将电子传递到 O2。在 S02:Δflv3 中,糖酵解代谢显著上调,为细胞提供能量,而细胞内储存化合物的积累和呼吸作用的增加则成为光合电子的间接汇:我们的研究结果表明,在高光照、高二氧化碳和盐胁迫下运行的工程蔗糖生产型 Synechocystis S02 菌株中存在强大的碳汇,无法通过直接平衡光转换源和碳固定汇反应来补偿 Flv3 的缺乏。相反,细胞会立即感知到这种不平衡,从而对细胞生物能、代谢和离子传输途径进行广泛的重新编程,使其有利于混养生长,而不是提高光自养蔗糖产量。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Interplay between photosynthetic electron flux and organic carbon sinks in sucrose-excreting Synechocystis sp. PCC 6803 revealed by omics approaches.

Background: Advancing the engineering of photosynthesis-based prokaryotic cell factories is important for sustainable chemical production and requires a deep understanding of the interplay between bioenergetic and metabolic pathways. Rearrangements in photosynthetic electron flow to increase the efficient use of the light energy for carbon fixation must be balanced with a strong carbon sink to avoid photoinhibition. In the cyanobacterium Synechocystis sp. PCC 6803, the flavodiiron protein Flv3 functions as an alternative electron acceptor of photosystem I and represents an interesting engineering target for reorganizing electron flow in attempts to enhance photosynthetic CO2 fixation and increase production yield.

Results: We have shown that inactivation of Flv3 in engineered sucrose-excreting Synechocystis (S02:Δflv3) induces a transition from photoautotrophic sucrose production to mixotrophic growth sustained by sucrose re-uptake and the formation of intracellular carbon sinks such as glycogen and polyhydroxybutyrate. The growth of S02:Δflv3 exceeds that of the sucrose-producing strain (S02) and demonstrates unforeseen proteomic and metabolomic changes over the course of the nine-day cultivation. In the absence of Flv3, a down-regulation of proteins related to photosynthetic light reactions and CO2 assimilation occurred concomitantly with up-regulation of those related to glycolytic pathways, before any differences in sucrose production between S02 and S02:Δflv3 strains were observed. Over time, increased sucrose degradation in S02:Δflv3 led to the upregulation of respiratory pathway components, such as the plastoquinone reductase complexes NDH-11 and NDH-2 and the terminal respiratory oxidases Cyd and Cox, which transfer electrons to O2. While glycolytic metabolism is significantly up-regulated in S02:Δflv3 to provide energy for the cell, the accumulation of intracellular storage compounds and the increase in respiration serve as indirect sinks for photosynthetic electrons.

Conclusions: Our results show that the presence of strong carbon sink in the engineered sucrose-producing Synechocystis S02 strain, operating under high light, high CO2 and salt stress, cannot compensate for the lack of Flv3 by directly balancing the light transducing source and carbon fixing sink reactions. Instead, the cells immediately sense the imbalance, leading to extensive reprogramming of cellular bioenergetic, metabolic and ion transport pathways that favor mixotrophic growth rather than enhancing photoautotrophic sucrose production.

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来源期刊
Microbial Cell Factories
Microbial Cell Factories 工程技术-生物工程与应用微生物
CiteScore
9.30
自引率
4.70%
发文量
235
审稿时长
2.3 months
期刊介绍: Microbial Cell Factories is an open access peer-reviewed journal that covers any topic related to the development, use and investigation of microbial cells as producers of recombinant proteins and natural products, or as catalyzers of biological transformations of industrial interest. Microbial Cell Factories is the world leading, primary research journal fully focusing on Applied Microbiology. The journal is divided into the following editorial sections: -Metabolic engineering -Synthetic biology -Whole-cell biocatalysis -Microbial regulations -Recombinant protein production/bioprocessing -Production of natural compounds -Systems biology of cell factories -Microbial production processes -Cell-free systems
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