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剖析使用重组元件的蛋白质合成(PURE)系统的限制因素。

Dissecting limiting factors of the Protein synthesis Using Recombinant Elements (PURE) system.

作者信息

Li Jun, Zhang Chi, Huang Poyi, Kuru Erkin, Forster-Benson Eliot T C, Li Taibo, Church George M

机构信息

Department of Genetics, Harvard Medical School, Boston, MA, USA.

Wyss Harvard Institute of Biologically Inspired Engineering, Boston, MA, USA.

出版信息

Translation (Austin). 2017 May 9;5(1):e1327006. doi: 10.1080/21690731.2017.1327006. eCollection 2017.

Abstract

Reconstituted cell-free protein synthesis systems such as the Protein synthesis Using Recombinant Elements (PURE) system give high-throughput and controlled access to protein synthesis. Here we show that compared with the commercial S30 crude extract based RTS 100 HY system, the PURE system has less mRNA degradation and produces up to ∼6-fold full-length proteins. However the majority of polypeptides PURE produces are partially translated or inactive since the signal from firefly luciferase (Fluc) translated in PURE is only ∼2/3 of that measured using the RTS 100 HY S30 system. Both of the 2 batch systems suffer from low ribosome recycling efficiency when translating proteins from 82 k to 224 k. A systematic fed-batch analysis of PURE shows replenishment of 6 small molecule substrates individually or in combination before energy depletion increased Fluc protein yield by ∼1.5 to ∼2-fold, while creatine phosphate and magnesium have synergistic effects when added to the PURE system. Additionally, while adding EF-P to PURE reduced full-length protein translated, it increased the fraction of functional protein and reduced partially translated protein probably by slowing down the translation process. Finally, ArfA, rather than YaeJ or PrfH, helped reduce ribosome stalling when translating Fluc and improved system productivity in a template-dependent fashion.

摘要

重组无细胞蛋白质合成系统,如使用重组元件的蛋白质合成(PURE)系统,可实现高通量且可控的蛋白质合成。我们在此表明,与基于商业S30粗提物的RTS 100 HY系统相比,PURE系统的mRNA降解较少,产生的全长蛋白质多达约6倍。然而,PURE产生的大多数多肽是部分翻译的或无活性的,因为在PURE中翻译的萤火虫荧光素酶(Fluc)信号仅为使用RTS 100 HY S30系统测得信号的约2/3。当翻译82 k至224 k的蛋白质时,这两种批次系统都存在核糖体循环效率低的问题。对PURE进行的系统补料分批分析表明,在能量耗尽前单独或组合补充6种小分子底物,可使Fluc蛋白产量提高约1.5至2倍,而磷酸肌酸和镁添加到PURE系统时具有协同作用。此外,虽然向PURE中添加EF-P会减少全长蛋白质的翻译,但它可能通过减缓翻译过程提高了功能蛋白的比例并减少了部分翻译的蛋白质。最后,ArfA而非YaeJ或PrfH在翻译Fluc时有助于减少核糖体停滞,并以模板依赖的方式提高了系统生产力。

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