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The challenge and potential of photosynthesis: unique considerations for metabolic flux measurements in photosynthetic microorganisms

机译:光合作用的挑战和潜力:光合作用微生物代谢通量测量的独特考虑

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摘要

Photosynthetic microorganisms have the potential for sustainable production of chemical feedstocks and products but have had limited success due to a lack of tools and deeper understanding of metabolic pathway regulation. The application of instationary metabolic flux analysis (INST-MFA) to photosynthetic microorganisms has allowed researchers to quantify fluxes and identify bottlenecks and metabolic inefficiencies to improve strain performance or gain insight into cellular physiology. Additionally, flux measurements can also highlight deviations between measured and predicted fluxes, revealing weaknesses in metabolic models and highlighting areas where a lack of understanding still exists. In this review, we outline the experimental steps necessary to successfully perform photosynthetic flux experiments and analysis. We also discuss the challenges unique to photosynthetic microorganisms and how to account for them, including: light supply, quenching, concentration, extraction, analysis, and flux calculation. We hope that this will enable a larger number of researchers to successfully apply isotope assisted metabolic flux analysis (13C-MFA) to their favorite photosynthetic organism.
机译:光合微生物具有可持续生产化学原料和产品的潜力,但由于缺乏工具和对代谢途径调控的深入了解而取得的成功有限。平稳代谢通量分析(INST-MFA)在光合微生物上的应用使研究人员能够量化通量并确定瓶颈和代谢效率低下,从而改善菌株性能或深入了解细胞生理学。另外,通量测量还可以突出显示测量通量和预测通量之间的偏差,揭示代谢模型中的弱点,并突出显示仍缺乏理解的区域。在这篇综述中,我们概述了成功进行光合通量实验和分析所必需的实验步骤。我们还将讨论光合微生物所面临的独特挑战以及如何应对这些挑战,包括:光供应,猝灭,浓缩,提取,分析和通量计算。我们希望这将使更多的研究人员成功地将同位素辅助代谢通量分析( 13 C-MFA)应用到他们最喜欢的光合生物上。

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