用于更高效的生物技术过程的热力学工具:一个例子是从一氧化碳中生产聚3-基酸盐
Karel Olavarria1, Diana Z Sousa1
1Laboratory of Microbiology, Wageningen University and Research, Stippeneng 4, 6708WE, Wageningen, the Netherlands; Centre for Living Technologies, Alliance EWUU, Princetonlaan 6, 3584CB, Utrecht, the Netherlands.
Current opinion in biotechnology
|October 2, 2024
概括
热力学为优化生物技术过程提供了至关重要的工具,有助于代谢工程和产量计算. 这些热力学方法提高了生物制品的设计和可行性评估,如聚3-基酸盐 (PHB).
科学领域:
- 生物技术是生物技术.
- 生物化学工程 生物化学工程
- 热力学是一种热力学.
背景情况:
- 生物技术依赖于整合多个科学学科,其中热力学发挥着关键作用.
- 实验生物技术方法,包括代谢网络重新连接和微生物培养,可以使用热力学原理显著改进.
研究的目的:
- 提供适用于生物技术过程设计和优化的热力学工具的概述.
- 为了证明这些热力学工具在从一氧化碳 (CO) 中生产聚3-基酸盐 (PHB) 的应用.
主要方法:
- 对生物技术相关的各种热力学工具的概述.
- 将这些工具应用于一个特定的案例研究:从二氧化碳生产PHB.
- 讨论热力学分析如何帮助代谢工程和过程优化.
主要成果:
- 热力学工具可以指导代谢工程策略,以改善生物过程.
- 预期产量的计算和热力学可行性的评估得到了便利.
- 支持识别热力学瓶和选择基因工程目标.
结论:
- 热力学分析对于生物技术过程的合理设计和优化至关重要.
- 本文所介绍的工具广泛适用于除了从二氧化碳生产PHB外,还适用于其他基板和产品.
- 热力学的整合提高了代谢工程和生物生产的效率和可行性.
更多相关视频
相关概念视频
Turbulent Flow: Problem Solving
98
Carbonation is a process used to dissolve carbon dioxide gas in a liquid, commonly used in the production of carbonated beverages. Achieving efficient carbonation requires careful control of temperature, pressure, and flow conditions. By adjusting these parameters, carbonation efficiency can be maximized, producing a higher concentration of CO2 in the liquid.
Temperature is a key factor in CO2 solubility. In this case, the CO2 gas and the liquid are cooled to 20°C. Lower temperatures...
Temperature is a key factor in CO2 solubility. In this case, the CO2 gas and the liquid are cooled to 20°C. Lower temperatures...
98
Electrophilic Addition of HX to 1,3-Butadiene: Thermodynamic vs Kinetic Control
2.6K
The addition of a hydrogen halide to 1,3-butadiene gives a mixture of 1,2- and 1,4-adducts. Since more substituted alkenes are more stable, the 1,4-adduct is expected to be the major product. However, the product distribution is strongly influenced by temperature; low temperature favors the 1,2-adduct, whereas the 1,4-adduct is predominant at high temperature.
2.6K
Hydroboration-Oxidation of Alkenes
7.9K
In addition to the oxymercuration–demercuration method, which converts the alkenes to alcohols with Markovnikov orientation, a complementary hydroboration-oxidation method yields the anti-Markovnikov product. The hydroboration reaction, discovered in 1959 by H.C. Brown, involves the addition of a B–H bond of borane to an alkene giving an organoborane intermediate. The oxidation of this intermediate with basic hydrogen peroxide forms an alcohol.
7.9K


