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代谢微区室的最佳区室化策略

Optimal Compartmentalization Strategies for Metabolic Microcompartments.

作者信息

Hinzpeter Florian, Gerland Ulrich, Tostevin Filipe

机构信息

Department of Physics, Technische Universität München, Garching, Germany.

Department of Physics, Technische Universität München, Garching, Germany.

出版信息

Biophys J. 2017 Feb 28;112(4):767-779. doi: 10.1016/j.bpj.2016.11.3194.

DOI:10.1016/j.bpj.2016.11.3194
PMID:28256236
原文链接:https://pmc.ncbi.nlm.nih.gov/articles/PMC5340097/
Abstract

Intracellular compartmentalization of cooperating enzymes is a strategy that is frequently used by cells. Segregation of enzymes that catalyze sequential reactions can alleviate challenges such as toxic pathway intermediates, competing metabolic reactions, and slow reaction rates. Inspired by nature, synthetic biologists also seek to encapsulate engineered metabolic pathways within vesicles or proteinaceous shells to enhance the yield of industrially and pharmaceutically useful products. Although enzymatic compartments have been extensively studied experimentally, a quantitative understanding of the underlying design principles is still lacking. Here, we study theoretically how the size and enzymatic composition of compartments should be chosen so as to maximize the productivity of a model metabolic pathway. We find that maximizing productivity requires compartments larger than a certain critical size. The enzyme density within each compartment should be tuned according to a power-law scaling in the compartment size. We explain these observations using an analytically solvable, well-mixed approximation. We also investigate the qualitatively different compartmentalization strategies that emerge in parameter regimes where this approximation breaks down. Our results suggest that the different sizes and enzyme packings of α- and β-carboxysomes each constitute an optimal compartmentalization strategy given the properties of their respective protein shells.

摘要

细胞内协同作用的酶的区室化是细胞经常采用的一种策略。催化连续反应的酶的分离可以缓解诸如有毒途径中间体、竞争性代谢反应和缓慢反应速率等挑战。受自然启发,合成生物学家也试图将工程化的代谢途径封装在囊泡或蛋白质外壳中,以提高工业和医药有用产品的产量。尽管酶区室已在实验中得到广泛研究,但对其潜在设计原则仍缺乏定量理解。在这里,我们从理论上研究应如何选择区室的大小和酶组成,以最大限度地提高模型代谢途径的生产力。我们发现,要使生产力最大化,区室需要大于某个临界大小。每个区室内的酶密度应根据区室大小的幂律缩放进行调整。我们使用一个可解析求解的充分混合近似来解释这些观察结果。我们还研究了在该近似失效的参数区域中出现的定性不同的区室化策略。我们的结果表明,鉴于其各自蛋白质外壳的特性,α-和β-羧基体的不同大小和酶包装各自构成了一种最优的区室化策略。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/78f5/5340097/843b80354e16/gr6.jpg
https://cdn.ncbi.nlm.nih.gov/pmc/blobs/78f5/5340097/edcc731968af/gr1.jpg
https://cdn.ncbi.nlm.nih.gov/pmc/blobs/78f5/5340097/69810d076931/gr2.jpg
https://cdn.ncbi.nlm.nih.gov/pmc/blobs/78f5/5340097/9d648ab81dda/gr3.jpg
https://cdn.ncbi.nlm.nih.gov/pmc/blobs/78f5/5340097/a3b87aa258ab/gr4.jpg
https://cdn.ncbi.nlm.nih.gov/pmc/blobs/78f5/5340097/ae6f8bc9ca8b/gr5.jpg
https://cdn.ncbi.nlm.nih.gov/pmc/blobs/78f5/5340097/843b80354e16/gr6.jpg
https://cdn.ncbi.nlm.nih.gov/pmc/blobs/78f5/5340097/edcc731968af/gr1.jpg
https://cdn.ncbi.nlm.nih.gov/pmc/blobs/78f5/5340097/69810d076931/gr2.jpg
https://cdn.ncbi.nlm.nih.gov/pmc/blobs/78f5/5340097/9d648ab81dda/gr3.jpg
https://cdn.ncbi.nlm.nih.gov/pmc/blobs/78f5/5340097/a3b87aa258ab/gr4.jpg
https://cdn.ncbi.nlm.nih.gov/pmc/blobs/78f5/5340097/ae6f8bc9ca8b/gr5.jpg
https://cdn.ncbi.nlm.nih.gov/pmc/blobs/78f5/5340097/843b80354e16/gr6.jpg

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本文引用的文献

1
Evolution and diversity of CO2 concentrating mechanisms in cyanobacteria.蓝藻中二氧化碳浓缩机制的进化与多样性
Funct Plant Biol. 2002 Apr;29(3):161-173. doi: 10.1071/PP01213.
2
Substrate channelling as an approach to cascade reactions.底物通道化作为级联反应的一种方法。
Nat Chem. 2016 Apr;8(4):299-309. doi: 10.1038/nchem.2459.
3
The Cost of Protein Production.蛋白质生产的成本。
Mieap形成参与心磷脂代谢的无膜细胞器。
iScience. 2024 Jan 17;27(2):108916. doi: 10.1016/j.isci.2024.108916. eCollection 2024 Feb 16.
4
Redox Biology and Liver Fibrosis.氧化还原生物学与肝纤维化。
Int J Mol Sci. 2023 Dec 28;25(1):410. doi: 10.3390/ijms25010410.
5
Peroxisomal compartmentalization of amino acid biosynthesis reactions imposes an upper limit on compartment size.过氧化物酶体将氨基酸生物合成反应分隔在不同的隔室内,这对隔室的大小施加了上限。
Nat Commun. 2023 Sep 8;14(1):5544. doi: 10.1038/s41467-023-41347-x.
6
From Protein Film Electrochemistry to Nanoconfined Enzyme Cascades and the Electrochemical Leaf.从蛋白质膜电化学到纳米受限酶级联反应和电化学叶。
Chem Rev. 2023 May 10;123(9):5421-5458. doi: 10.1021/acs.chemrev.2c00397. Epub 2022 Dec 27.
7
A generalized kinetic model for compartmentalization of organometallic catalysis.有机金属催化分区的广义动力学模型。
Chem Sci. 2022 Jan 5;13(4):1101-1110. doi: 10.1039/d1sc04983f. eCollection 2022 Jan 26.
8
Pore structure controls stability and molecular flux in engineered protein cages.孔结构控制工程化蛋白质笼的稳定性和分子通量。
Sci Adv. 2022 Feb 4;8(5):eabl7346. doi: 10.1126/sciadv.abl7346.
9
Metabolic channeling: predictions, deductions, and evidence.代谢通道化:预测、推断和证据。
Mol Cell. 2021 Sep 16;81(18):3775-3785. doi: 10.1016/j.molcel.2021.08.030.
10
Inside a Shell-Organometallic Catalysis Inside Encapsulin Nanoreactors.封装菌素纳米反应器内的壳-有机金属催化作用
Angew Chem Int Ed Engl. 2021 Oct 25;60(44):23835-23841. doi: 10.1002/anie.202110327. Epub 2021 Oct 1.
Cell Rep. 2016 Jan 5;14(1):22-31. doi: 10.1016/j.celrep.2015.12.015. Epub 2015 Dec 24.
4
Redesigning photosynthesis to sustainably meet global food and bioenergy demand.重新设计光合作用以可持续地满足全球粮食和生物能源需求。
Proc Natl Acad Sci U S A. 2015 Jul 14;112(28):8529-36. doi: 10.1073/pnas.1424031112. Epub 2015 Jun 29.
5
Advances in Understanding Carboxysome Assembly in Prochlorococcus and Synechococcus Implicate CsoS2 as a Critical Component.对原绿球藻和聚球藻中羧酶体组装认识的进展表明CsoS2是关键组分。
Life (Basel). 2015 Mar 27;5(2):1141-71. doi: 10.3390/life5021141.
6
Metabolic pathway compartmentalization: an underappreciated opportunity?代谢途径的区室化:一个未得到充分重视的机遇?
Curr Opin Biotechnol. 2015 Aug;34:73-81. doi: 10.1016/j.copbio.2014.11.022. Epub 2014 Dec 11.
7
Enzyme clustering accelerates processing of intermediates through metabolic channeling.酶的聚集通过代谢通道加速中间体的加工。
Nat Biotechnol. 2014 Oct;32(10):1011-8. doi: 10.1038/nbt.3018. Epub 2014 Sep 28.
8
A faster Rubisco with potential to increase photosynthesis in crops.具有增加作物光合作用潜力的更快 Rubisco。
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9
Clustering and optimal arrangement of enzymes in reaction-diffusion systems.反应扩散系统中酶的聚类与最优排布
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