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相关概念视频

Overview Of Cell Separation And Isolation01:20

Overview Of Cell Separation And Isolation

Cell separation was first achieved in 1964 by S. H. Seal, who separated large tumor cells from the smaller blood cells using filtration. Two years later, Pohl and Hawk performed experiments on how cells respond differently to a nonuniform electric field based on the cell type. Such observations were the inception of cell separation methods, which allow isolating a single cell type from a heterogeneous sample.
Bioreactor Controls-III01:22

Bioreactor Controls-III

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...
Scale-Up Processes01:14

Scale-Up Processes

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...
Upstream Processing01:27

Upstream Processing

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...
Production of Pharmaceuticals01:30

Production of Pharmaceuticals

Industrial insulin production uses genetically engineered E. coli expressing a proinsulin gene controlled by a tryptophan promoter and containing a methionine linker for later cleavage. The cells also carry ampicillin resistance for selective growth. Seed cultures are stored at −80 °C and production begins by thawing a small amount to inoculate starter cultures, which are progressively scaled to a 50,000-L bioreactor. In the bioreactor, E. coli grow in nutrient-rich media under sterile, tightly...

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相关实验视频

Updated: May 7, 2026

The MultiBac Protein Complex Production Platform at the EMBL
13:51

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Published on: July 11, 2013

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新兴技术用于加强功能单细胞成分生产.

Khalilan Lambangsari1, Oscar M Elizondo Sada2, Inge I A Braak2

  • 1Bioprocess Engineering, Wageningen University & Research, Wageningen, The Netherlands; School of Life Sciences and Technology, Bandung Institute of Technology, Bandung, Indonesia.

Trends in biotechnology
|March 15, 2026
PubMed
概括

使用外部场,冷等离子体和超临界流体的新下游加工方法可以改善微生物生物技术. 本综述探讨了这些先进的技术,以从微生物和微藻生物炼油厂更可持续和高效地生产功能成分.

关键词:
外部领域 外部领域轻度加工 轻度加工多种产品的生物炼油厂.过程强化,过程强化.这是一种单细胞成分.

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科学领域:

  • 微生物生物技术和生物加工.

背景情况:

  • 微生物生物技术为食品,料,营养药品,治疗和化品行业产生有价值的化合物.
  • 目前的提取和净化方法往往是苛刻的,昂贵的,对环境造成负担,阻碍了高效的生产.
  • 对于推进微生物和微藻生物炼油厂,下游加工的范式转变至关重要.

研究的目的:

  • 审查和分析新型下游加工技术的潜力和局限性.
  • 提出应对生物质加工当前挑战的策略.
  • 引导下一代多产品微生物和微藻生物炼油厂的发展.

主要方法:

  • 对外部场,冷等离子体和超临界流体技术进行生物质加工的文献综述.
  • 分析这些新兴技术的优缺点.
  • 确定简化和加强流程的机会.

主要成果:

  • 外界场,冷等离子体和超临界流体为简化和加强生物质加工提供了有希望的途径.
  • 这些技术有可能降低与化合物提取和净化相关的经济和环境成本.
  • 对它们的具体优点和缺点的全面了解仍在发展.

结论:

  • 新型下游加工技术对于释放微生物和微藻生物技术的全部潜力至关重要.
  • 需要进一步的研究和战略实施,以克服现有的局限性并优化这些方法.
  • 这些领域的进展将为更加可持续和高效的多产品生物炼油厂铺平道路.