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相关概念视频

Photoreceptors and Plant Responses to Light02:00

Photoreceptors and Plant Responses to Light

Light plays a significant role in regulating the growth and development of plants. In addition to providing energy for photosynthesis, light provides other important cues to regulate a range of developmental and physiological responses in plants.
The Photochemical Reaction Center01:29

The Photochemical Reaction Center

Reaction centers are pigment-protein complexes that initiate energy conversion from photons to chemical entities. Therefore, photochemical reaction center is a more appropriate term that describes these complexes. The Nobel laureates Robert Emerson and William Arnold provided the first experimental evidence of photochemical reaction centers by demonstrating the participation of nearly 2,500 chlorophyll molecules for the release of just one molecule of oxygen. Despite thousands of photosynthetic...
The Antenna Complex01:15

The Antenna Complex

Plants and other photosynthetic organisms comprise pigments capable of absorption of direct sunlight. These pigments are present in the reaction center - the main site of photochemical reactions as well as in the antenna complex. Under average light conditions, the rate at which reaction center pigments absorb light is far below the electron transport chain's capacity. As a result, the reaction center alone cannot provide enough energy to drive photosynthesis. The photosynthetic efficiency can...
Channel Rhodopsins01:11

Channel Rhodopsins

Most organisms use photoreceptors to sense and respond to light. Examples of photoreceptors include bacteriorhodopsins and bacteriophytochromes in some bacteria, phytochromes in plants, and rhodopsins in the photoreceptor cells of the vertebral retina. The light-sensitive property of these receptors is because of the bound chromophores, such as bilin in the phytochromes and retinal in the rhodopsins.
Rhodopsins belong to the family of cell surface proteins called G-protein coupled receptors,...
Bioreactor Controls-I01:28

Bioreactor Controls-I

Maintaining optimal conditions within fermenters is essential for maximizing microbial productivity and ensuring process efficiency. This lesson focuses on key parameters—temperature, foam, pH, carbon dioxide, oxygen, and pressure—and their precise measurement and control strategies in fermentation systems.Temperature ControlTemperature regulation is critical due to the exothermic nature of many fermentation processes. In small laboratory fermenters, temperature is commonly monitored using...
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...

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Redox properties of the Rhodobacter sphaeroides transcriptional regulatory proteins PpsR and AppA.

Photosynthesis research·2006
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The RegB/RegA two-component regulatory system controls synthesis of photosynthesis and respiratory electron transfer components in Rhodobacter capsulatus.

Journal of molecular biology·2001
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Component of the Rhodospirillum centenum photosensory apparatus with structural and functional similarity to methyl-accepting chemotaxis protein chemoreceptors.

Journal of bacteriology·2000
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Suppression of c-fos induction in the nucleus accumbens prevents acquisition but not expression of morphine-conditioned place preference.

The European journal of neuroscience·2000
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Molecular evidence for the early evolution of photosynthesis.

Science (New York, N.Y.)·2000
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Multiple regulators and their interactions in vivo and in vitro with the cbb regulons of Rhodobacter capsulatus.

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相关实验视频

Updated: Jun 25, 2026

Light-Controlled Fermentations for Microbial Chemical and Protein Production
08:37

Light-Controlled Fermentations for Microbial Chemical and Protein Production

Published on: March 22, 2022

控制光合作用反应中心和Rhodobacter capsulatus光采集基因表达的调控因素.

M W Sganga1, C E Bauer

  • 1Department of Biology, Indiana University, Bloomington 47405.

Cell
|March 6, 1992
PubMed
概括

一个新发现的基因,regA,在低氧条件下控制细菌中的光合作用基因的表达. 令人惊的是,缺乏regA的细菌仍然可以通过光合作用生长,这是由于基因集群组织的原因.

科学领域:

  • 细菌学 细菌学是一门学科.
  • 光合作用研究研究光合作用.
  • 基因调节 基因调节

背景情况:

  • 光合作用细菌通常只在低氧环境中产生它们的光合作用机械.
  • 这个过程严重依赖于光合作用基因表达的无氧诱导.

研究的目的:

  • 识别和描述参与光合作用装置合成无氧诱导的调节基因.
  • 为了研究已识别的基因,regA在光合作用装置内的差异性基因表达中的作用.

主要方法:

  • 在光合作用细菌中regA的基因破坏.
  • 对光采集,反应中心和光色素生物合成的基因表达的分析.
  • 在不同的光强度下评估光合作用生长能力.

主要成果:

  • 调节基因regA被确定为光合作用装置无氧表达的交换激活剂.
  • 与光色素生物合成操作子相比,RegA证明了光采集和反应中心基因的差异诱导.
  • 缺乏regA的菌株即使在强光条件下也保持了正常的光合作用生长.

结论:

  • 在对氧水平的反应中,RegA在调节光合作用基因表达方面发挥着至关重要的作用.

更多相关视频

Spatiotemporal Control of Protein Activity through Optogenetic Allosteric Regulation
08:00

Spatiotemporal Control of Protein Activity through Optogenetic Allosteric Regulation

Published on: October 4, 2024

Rapid Optimization of a Light-Inducible System to Control Mammalian Gene Expression
09:08

Rapid Optimization of a Light-Inducible System to Control Mammalian Gene Expression

Published on: November 4, 2025

相关实验视频

Last Updated: Jun 25, 2026

Light-Controlled Fermentations for Microbial Chemical and Protein Production
08:37

Light-Controlled Fermentations for Microbial Chemical and Protein Production

Published on: March 22, 2022

Spatiotemporal Control of Protein Activity through Optogenetic Allosteric Regulation
08:00

Spatiotemporal Control of Protein Activity through Optogenetic Allosteric Regulation

Published on: October 4, 2024

Rapid Optimization of a Light-Inducible System to Control Mammalian Gene Expression
09:08

Rapid Optimization of a Light-Inducible System to Control Mammalian Gene Expression

Published on: November 4, 2025

  • 光合作用基因集群的超操作性组织允许光合作用生长,而不需要对结构性基因表达进行交换激活.
  • 这一发现为控制细菌光合作用过程的复杂调节机制提供了新的见解.