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相关概念视频

Bioreactor Design and Operational System01:29

Bioreactor Design and Operational System

140
Bioreactors are engineered vessels designed to cultivate microorganisms under controlled conditions for industrial bioprocessing. They maintain sterility and allow precise regulation of pH, temperature, oxygen, and nutrient levels to optimize microbial growth and metabolite production. Bioreactors range from small laboratory units of 1 liter to industrial systems holding up to 500,000 liters, though only about 75% of their volume is actively used for fermentation. The remaining headspace...
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Bioreactor Controls-II01:18

Bioreactor Controls-II

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In aerobic fermentations, oxygen is vital for microbial growth and metabolite production. Since air comprises only about 20% oxygen and the gas is poorly soluble in water—just 9 ppm at 20°C—supplying sufficient oxygen becomes a critical challenge, especially in high-demand processes like yeast growth or citric acid production. Even a fully saturated broth may offer only a few seconds of oxygen availability.To address this, sterile or scrubbed air is introduced into the...
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Bioreactor Controls-III01:22

Bioreactor Controls-III

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Strain improvement is a foundational strategy in industrial microbiology aimed at maximizing microbial productivity, particularly because natural isolates typically yield commercially valuable products in very low concentrations. Although optimizing the culture medium and environmental conditions can improve yields, these adjustments are inherently limited by the organism’s genetic potential. As a result, the focus shifts toward genetic modifications to enhance biosynthetic capacity. The...
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Scale-Up Processes01:14

Scale-Up Processes

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The scale-up of microbial fermentation processes is essential in industrial biotechnology, allowing the transition from laboratory-scale experiments to commercial-scale production while aiming to maintain product yield and quality. This process requires meticulous adjustment of equipment design, process parameters, and contamination control strategies to accommodate increasing culture volumes.At the laboratory scale, cultures are typically maintained in 1 to 10-liter glass or autoclavable...
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Upstream Processing01:27

Upstream Processing

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Upstream processing represents a critical phase in biomanufacturing, wherein biological systems such as microorganisms, mammalian cells, or insect cells are cultivated to produce therapeutic proteins, vaccines, enzymes, or other biologically derived products. This phase encompasses all steps from the selection and genetic manipulation of the production organism to the cultivation of cells in bioreactors under tightly controlled environmental conditions.Host Selection and Genetic OptimizationThe...
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Production of Antibiotics01:27

Production of Antibiotics

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Penicillin, one of the earliest and most widely used antibiotics, is produced industrially by the filamentous fungus Penicillium chrysogenum. Large stirred-tank bioreactors ranging from tens to hundreds of thousands of liters maintain tightly controlled temperature, pH, and dissolved oxygen conditions to support fungal metabolism and maximize antibiotic yield. Penicillin is a secondary metabolite, synthesized primarily during the stationary growth phase, which requires a carefully managed...
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Generic Protocol for Optimization of Heterologous Protein Production Using Automated Microbioreactor Technology
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从乙醇生产单细胞蛋白质:以模型为基础的工业规模生物反应器运行.

Eduardo Almeida Benalcázar1, Wouter A van Winden2, Lars Puiman1

  • 1Department of Biotechnology, Delft University of Technology, Delft, the Netherlands.

Biotechnology and bioengineering
|March 22, 2025
PubMed
概括

使用纯氧的乙醇的工业发酵可以每年生产58千的单细胞蛋白 (SCP). 高氧转移率是可行的,但未消耗的氧气和热量生产是扩大SCP生产的关键挑战.

关键词:
转移 O2 的时间.生物反应器建模模型特性乘以特征的时间.传热传热传热传热传热传热传热传热传热传热传热传热传热单细胞蛋白质是一种单细胞蛋白质.技术可行性 技术可行性

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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
  • 工业微生物学 工业微生物学

背景情况:

  • 乙醇是一种发酵原料,可以通过电催化从二氧化碳合成,共同生产氧气.
  • 单细胞蛋白 (SCP) 生产提供了一个可持续的蛋白质来源.

研究的目的:

  • 评估用于使用纯氧生产SCP的乙醇发酵的工业规模可行性.
  • 为了建模微生物动力学,气液转移和操作约束.

主要方法:

  • 采用模拟方法来模拟一个600 m3的泡列发酵器在连续模式下运行.
  • 分析的关键因素包括微生物动力学,氧气转移速率和溶解CO2度.
  • 评估了潜在的运营约束和热量生产.

主要成果:

  • 证明了生产高达58 kt/y的SCP的技术可行性,主要是由于高氧转移速率 (1.1 mol/kg h)).
  • 估计微生物生物质度为114g/kg,乙醇产量为0.61gx/甲醇 (>95%).
  • 显著量的未消耗氧气,高溶解CO2和大量的热量产生被确定为潜在的限制.

结论:

  • 对SCP生产的高氧气传输能力似乎在技术上是可行的,但需要实验验证.
  • 开发的模型可以分析替代基板,并优化用于SCP生产的碳原料选择.