利用嗜热酶进行半从头ATP生产的酶级联反应的发展。

IF 2.3 4区 生物学 Q3 BIOTECHNOLOGY & APPLIED MICROBIOLOGY
Takuma Suzuki , Suryatin Alim Gladwin , Kentaro Miyazaki , Hiroya Tomita , Kohsuke Honda
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引用次数: 0

摘要

工业生产ATP主要依赖于从活细胞中提取。虽然微生物和酶促ATP生产也得到了发展,但前者在产品分离方面存在复杂性,而后者需要昂贵的底物,使其难以实际应用。为了解决这些问题,我们通过组装重组大肠杆菌粗提取物热纯化制备的16种嗜热酶,开发了一种不使用昂贵底物的ATP酶级联生产方法。该级联由两个模块组成:基于非氧化糖酵解的ATP再生模块和ADP供应模块。ATP再生模块可以提供AMP和ADP磷酸化为ATP所需的能量,同时从廉价的淀粉和无机磷酸盐中提供磷酸腺苷的组成部分核糖-5-磷酸。然后,在ADP供应模块中,核糖-5-磷酸被外源提供的腺嘌呤腺苷化,并进一步磷酸化为ATP。这种ATP生产级联不伴随二氧化碳排放,有望成为一种对环境影响较小的新型ATP制造平台。在本研究中,以1mm腺嘌呤为原料,实现了100%摩尔转化率的ATP生产。然而,增加初始腺嘌呤浓度导致产量降低。酶表征和对接模拟表明,这种下降是由于ATP对某些酶的非竞争性抑制,这种抑制可能通过蛋白质工程来缓解。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Development of an enzymatic cascade for semi de novo ATP production using thermophilic enzymes
Industrial production of ATP has mostly relied on extraction from living cells. Although microbial and enzymatic ATP production have also been developed, the former suffers from complexity in product separation, while the latter requires expensive substrates, making their practical use difficult. To tackle these problems, we newly developed an enzymatic cascade for ATP production, which does not use expensive substrates, by assembling 16 thermophilic enzymes prepared through a heat-purification from the crude extract of recombinant Escherichia coli. This cascade consists of two modules: an ATP regeneration module based on a non-oxidative glycolysis and an ADP supply module. The ATP regeneration module can provide the energy required for phosphorylation of AMP and ADP to ATP while simultaneously supplying ribose-5-phosphate, a building block of adenosine phosphates, from inexpensive starch and inorganic phosphate. Ribose-5-phosphate is then adenylated with exogenously supplied adenine in the ADP supply module and further phosphorylated to ATP. This ATP production cascade is not accompanied by CO2 emission and is expected to be a novel ATP manufacturing platform with less environmental impact. In the present study, ATP production with 100 % molar conversion yield was achieved from 1 mM adenine. However, increasing the initial adenine concentration resulted in lower yields. Enzyme characterization and docking simulations revealed that this decline was due to non-competitive inhibition of certain enzymes by ATP, which could potentially be mitigated through protein engineering.
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来源期刊
Journal of bioscience and bioengineering
Journal of bioscience and bioengineering 生物-生物工程与应用微生物
CiteScore
5.90
自引率
3.60%
发文量
144
审稿时长
51 days
期刊介绍: The Journal of Bioscience and Bioengineering is a research journal publishing original full-length research papers, reviews, and Letters to the Editor. The Journal is devoted to the advancement and dissemination of knowledge concerning fermentation technology, biochemical engineering, food technology and microbiology.
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