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在葡萄糖过量的条件下生长时,具有固有溶剂耐受性的恶臭假单胞菌 VLB120∆ C∆ ttgV 支持特别高的苯乙烯环氧化活性。

Constitutively solvent-tolerant Pseudomonas taiwanensis VLB120∆ C∆ ttgV supports particularly high-styrene epoxidation activities when grown under glucose excess conditions.

机构信息

Department of Biochemical and Chemical Engineering, TU Dortmund University, Dortmund, Germany.

Department of Solar Materials, Helmholtz Centre for Environmental Research GmbH-UFZ, Leipzig, Germany.

出版信息

Biotechnol Bioeng. 2019 May;116(5):1089-1101. doi: 10.1002/bit.26924. Epub 2019 Feb 6.

Abstract

Solvent-tolerant bacteria represent an interesting option to deal with the substrate and product toxicity in bioprocesses. Recently, constitutive solvent tolerance was achieved for Pseudomonas taiwanensis VLB120 via knockout of the regulator TtgV, making tedious adaptation unnecessary. Remarkably, ttgV knockout increased styrene epoxidation activities of P. taiwanensis VLB120Δ C. With the aim to characterize and exploit the biocatalytic potential of P. taiwanensis VLB120Δ C and VLB120Δ CΔ ttgV, we investigated and correlated growth physiology, native styrene monooxygenase (StyAB) gene expression, whole-cell bioconversion kinetics, and epoxidation performance. Substrate inhibition kinetics was identified but was attenuated in two-liquid phase bioreactor setups. StyA fusion to the enhanced green fluorescent protein enabled precise enzyme level monitoring without affecting epoxidation activity. Glucose limitation compromised styAB expression and specific activities (30-40 U/g for both strains), whereas unlimited batch cultivation enabled specific activities up to 180 U/g for VLB120Δ CΔ ttgV strains, which is unrivaled for bioreactor-based whole-cell oxygenase biocatalysis. These extraordinarily high specific activities of constitutively solvent-tolerant P. taiwanensis VLB120∆ C∆ ttgV could be attributed to its high metabolic capacity, which also enabled high expression levels. This, together with the high product yields on glucose and biomass obtained qualifies the VLB120∆ ttgV strain as a highly attractive tool for the development of ecoefficient oxyfunctionalization processes and redox biocatalysis in general.

摘要

耐溶剂细菌是一种很有前途的选择,可以解决生物过程中底物和产物的毒性问题。最近,通过敲除调控因子 TtgV,使恶臭假单胞菌 VLB120 获得了组成型耐溶剂性,从而无需进行繁琐的适应性进化。值得注意的是,ttgV 敲除提高了恶臭假单胞菌 VLB120 的苯乙烯环氧化活性。为了表征和利用恶臭假单胞菌 VLB120ΔC 和 VLB120ΔCΔttgV 的生物催化潜力,我们研究并关联了其生长生理学、天然苯乙烯单加氧酶(StyAB)基因表达、全细胞生物转化动力学和环氧化性能。鉴定了底物抑制动力学,但在两相生物反应器设置中得到了缓解。StyA 与增强型绿色荧光蛋白融合,可在不影响环氧化活性的情况下精确监测酶水平。葡萄糖限制会影响 styAB 的表达和比活性(两种菌株均为 30-40 U/g),而无限制批培养可使 VLB120ΔCΔttgV 菌株的比活性达到 180 U/g,这在基于生物反应器的全细胞加氧酶生物催化中是无与伦比的。这种组成型耐溶剂恶臭假单胞菌 VLB120∆C∆ttgV 的极高比活性可归因于其高代谢能力,这也使其能够实现高表达水平。这一点,再加上在葡萄糖和生物质上获得的高产物收率,使 VLB120∆ttgV 菌株成为开发节能氧功能化过程和一般氧化还原生物催化的极具吸引力的工具。

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