真空Ca2+激活通道TPC1调节了发芽和口腔的运动
Edgar Peiter1, Frans J M Maathuis, Lewis N Mills
1Biology Department, Area 9, University of York, PO Box 373, York YO10 5YW, UK.
Nature
|March 18, 2005
概括
植物细胞使用信号进行反应. 研究人员确定TPC1基因是关键通道,对植物生长和口腔功能至关重要.
科学领域:
- 植物分子生物学 植物分子生物学
- 细胞信号传递 细胞信号传递
- 离子通道功能 离子通道功能
背景情况:
- 细胞质自由 (Ca2+cyt) 是植物细胞中一个重要的信号分子.
- 刺激诱导的Ca2+流入细胞质激活下游反应.
- 介导这些Ca2+流的特定离子通道以前是未知的.
研究的目的:
- 为了确定植物透性离子通道的分子特征.
- 阐明这些通道在生理过程中的作用.
主要方法:
- 植物离子通道的电生理学表征.
- 使用Arabidopsis thaliana进行基因淘汰研究.
- 对植物对酸和细胞外的反应的分析.
主要成果:
- TPC1基因编码了一个Ca2+依赖的Ca2+释放通道,被确定为缓慢的真空通道.
- 缺少TPC1的淘汰突变体没有表现出缓慢的真空通道活性.
- 突变者在酸诱导的发芽抑制和对的口腔反应中表现出缺陷.
结论:
- TPC1被明确地确定为缓慢的真空通道,这是植物中关键的Ca2+释放通道.
- 细胞内Ca2+释放通道在植物生理学中发挥着基本作用,包括发芽和口腔调节.
相关概念视频
C4 Pathway and CAM
38.0K
Most plants use the C3 pathway for carbon fixation. However, some plants, such as sugar cane, corn, and cacti that grow in hot conditions, use alternative pathways to fix carbon and conserve energy loss due to photorespiration. Photorespiration is the process that occurs when the oxygen concentration is high. Under such conditions, the rubisco enzyme in the Calvin cycle binds O2 instead of CO2, which halts photosynthesis and consumes energy.
C4 Pathway
The C4 pathway is used by plants such as...
C4 Pathway
The C4 pathway is used by plants such as...
38.0K
Short-distance Transport of Resources
14.5K
Short-distance transport refers to transport that occurs over a distance of just 2-3 cells, crossing the plasma membrane in the process. Small uncharged molecules, such as oxygen, carbon dioxide, and water, can diffuse across the plasma membrane on their own. In contrast, ions and larger molecules require the assistance of transport proteins due to their charge or size. Transport across membranes also occurs within individual cells, playing a variety of essential roles for the plant as a whole.
14.5K
Regulation of Transpiration by Stomata
26.2K
During photosynthesis, plants acquire the necessary carbon dioxide and release the produced oxygen back into the atmosphere. Openings in the epidermis of plant leaves is the site of this exchange of gasses. A single opening is called a stoma—derived from the Greek word for “mouth.” Stomata open and close in response to a variety of environmental cues.
26.2K
Protein Transport to the Stroma
1.5K
Chloroplasts are triple membrane structures with an outer membrane, an inner membrane, and a thylakoid membrane, each containing distinct metabolite transporters, membrane translocons, and enzymes. Appropriate sorting and translocating these proteins to their correct membrane systems is essential for chloroplast function.
Protein complexes called the translocon of the outer chloroplast membrane or TOC complex, and the translocon of the inner chloroplast membrane or TIC complex mediate the...
Protein complexes called the translocon of the outer chloroplast membrane or TOC complex, and the translocon of the inner chloroplast membrane or TIC complex mediate the...
1.5K
Protein Transport to the Outer Chloroplast Membrane
1.6K
Chloroplast outer membrane proteins encoded by the nucleus are synthesized in the cytosol. Soon after synthesis, they bind cytosolic factors such as 14-3-3 protein and the Hsp70 chaperones that keep these precursors in an unfolded state until their translocation.
Two models describe the mechanism of precursor recognition and entry across the outer membrane through the TOC complex. Model 1 suggests the newly synthesized precursor binds to the TOC receptor 159 and forms a complex.
Two models describe the mechanism of precursor recognition and entry across the outer membrane through the TOC complex. Model 1 suggests the newly synthesized precursor binds to the TOC receptor 159 and forms a complex.
1.6K
Protein Transport to the Inner Chloroplast Membrane
1.7K
Proteins targeted to the inner chloroplast membrane, or plastid proteins, are transported by two general pathways: the stop-transfer and the re-insertion or post-import pathways. Most plastid proteins carry N-terminal transit sequences and internal import sequences targeting it to the specific chloroplast subcompartment. Proteins targeted by the stop-transfer pathway have internal hydrophobic sequences that inhibit their translocation into the stroma. As a result, these precursors are arrested...
1.7K


