在化学反应信号通路的输出处进行适应
Junhua Yuan1, Richard W Branch, Basarab G Hosu
1Department of Molecular and Cellular Biology, Harvard University, Cambridge, Massachusetts 02138, USA.
Nature
|April 14, 2012
概括
细菌电机通过改变其组成,特别是FliM子单元的数量来适应不断变化的条件. 这种适应性重塑优化了受体输入和运动灵敏度之间的匹配,增强了细胞功能.
科学领域:
- 细菌化学反应和分子机械.
- 细胞信号和适应机制.
背景情况:
- 细菌化学反应依赖于受体集群处理输入和鞭毛电机产生输出,与CheY-P相结合.
- 电机对CheY-P度的超敏感性使得与受体输出与电机输入相匹配具有挑战性.
研究的目的:
- 研究细菌电机如何优化受体输出与电机输入之间的匹配.
- 探索电机改变其工作范围的机制.
主要方法:
- 细菌化学毒素网络组件的分析,包括受体和运动复合体.
- 研究FliM子单元在C环中的作用及其对CheY-P度变化的反应.
主要成果:
- 细菌电机可以通过改变其组成来改变其工作范围,特别是通过增加FliM子单元来应对降低的CheY-P.
- 这种组成变化增强了运动灵敏度,解释了特定突变的适应和信号依赖的FliM周转.
结论:
- 运动组合的适应性改造,例如FliM子单元号,是优化细胞反应的关键机制.
- 这种适应性策略可能是各种分子机器运行的共同特征.
相关概念视频
Cell Polarization by Rho Proteins
3.2K
Cell polarity is the asymmetric distribution of cellular and membrane components, making one side of the cell different from the other. This polarity is essential to many processes such as embryogenesis, axon migration, glucose transport across epithelial cells, and directional cell migration. A migrating cell responds to intracellular or extracellular signals via molecular cascades that reorganize the actin cytoskeleton to establish this polarity. In these cells, the Rho family proteins Cdc42,...
3.2K
Chemotaxis and Direction of Cell Migration
5.0K
Cells can detect chemical cues in their environment and reorganize the cytoskeleton to migrate toward them or away from them. This directional migration, called chemotaxis, is essential during embryogenesis and development, immune response, tissue repair and regeneration, and reproduction. These chemical cues can either attract or repel the cell's movement. For example, axon development is determined by a combination of chemoattractants and chemorepellents that direct the growing axon...
5.0K
Diversity in Cell Signaling Responses
7.1K
The physiological function of a cell and cellular communication are outcomes of a range of extrinsic signals, intracellular signaling pathways, and cellular responses. No two cell types express the same repertoire of signaling components. Receptors are highly selective for their cognate ligands, but once activated, they can alter multiple cellular processes such as DNA transcription, protein synthesis, and metabolic activity.
Graded and Abrupt Responses
Some signaling systems generate...
Graded and Abrupt Responses
Some signaling systems generate...
7.1K
Cell Signaling Feedback Loops
5.8K
Positive and negative feedback loops are crucial for regulating biological signaling systems. These feedback loops are processes that connect output signals to their inputs.
Negative feedback loops
Most signaling systems have negative feedback loops that can perform different functions such as output limiter, and adaptation.
Output limiter
Upon receiving an input signal, the cellular response rapidly increases until a threshold is reached. Beyond this threshold, a negative feedback loop...
Negative feedback loops
Most signaling systems have negative feedback loops that can perform different functions such as output limiter, and adaptation.
Output limiter
Upon receiving an input signal, the cellular response rapidly increases until a threshold is reached. Beyond this threshold, a negative feedback loop...
5.8K
Chemotaxis in E. coli
1.4K
Chemotaxis in Escherichia coli is a sensory-driven motility mechanism that enables bacteria to navigate chemical gradients, moving toward beneficial environments while avoiding harmful conditions. This process relies on a signal transduction system integrating external chemical cues with flagellar motor control.Chemoreceptors and Signal DetectionE. coli detects chemical gradients through methyl-accepting chemotaxis proteins (MCPs), which are membrane-bound chemoreceptors that sense attractants...
1.4K
Transduction
3.0K
Among the three main modes of HGT—transformation, conjugation, and transduction—transduction is unique in that it is mediated by bacteriophages, or bacterial viruses.Transduction occurs in two ways. Generalized transduction occurs during the lytic cycle of a bacteriophage infection. In this process, bacteriophages infect bacterial cells, replicate within them, and ultimately cause cell lysis, releasing newly assembled virions. Occasionally, random fragments of the bacterial genome...
3.0K


