Date published: 2025-10-10

021-6093-6350

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Ste3激活剂

If we postulate based on the nomenclature, "Ste3" could refer to a gene or protein that is part of a signaling pathway, as "Ste" is an abbreviation commonly used for "sterile" in the nomenclature of yeast genetics, which is associated with mating pathways. Activators in this speculative context would be molecules that enhance the function of the Ste3 protein. Such activators could increase the protein's ability to interact with its natural ligands or partners in the signaling cascade, or they might stabilize the active form of the protein. These activators would likely have a structure that complements the binding domains of Ste3, enabling them to bind effectively and specifically to the protein, potentially at an allosteric site to prevent interference with the protein's normal ligand binding or signaling functions.

Continuing with this scenario, Ste3 activators would represent a class of compounds specifically designed to interact with and enhance the activity of the Ste3 protein. Their structures could range from small organic molecules to larger biomolecules, each possessing unique chemical features enabling them to bind to specific sites on Ste3. The process of discovering and characterizing these activators would involve a series of biochemical experiments, including binding affinity and kinetics studies, to establish how these molecules influence Ste3's activity. Advanced techniques, such as surface plasmon resonance (SPR) or isothermal titration calorimetry (ITC), could be employed to measure the interactions between Ste3 and potential activators in real-time and with high precision. Additionally, structural characterization using techniques like X-ray crystallography or cryo-electron microscopy might be performed to determine the three-dimensional arrangement of these activator molecules in complex with Ste3, shedding light on the molecular basis of activation. This would provide insights into the specific regions of the protein that are critical for its activation by these molecules. Without empirical evidence or recognition of a class of compounds known as "Ste3 Activators," any description of their chemical nature and mode of action remains speculative and purely theoretical within the scientific domain.

関連項目

产品名称CAS #产品编号数量价格应用排名

β-Estradiol

50-28-2sc-204431
sc-204431A
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¥699.00
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(1)

在酵母菌中,雌二醇可用于控制基因的表达,其启动子是经过改造的雌二醇响应型启动子,如果将其置于这样的启动子下,可能会影响 Ste3 的表达。

L-Methionine

63-68-3sc-394076
sc-394076A
sc-394076B
sc-394076C
sc-394076D
sc-394076E
25 g
100 g
250 g
1 kg
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¥6386.00
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(0)

蛋氨酸可作为硫源并影响甲基化;改变基因调控途径并可能影响 Ste3 的表达。

Copper(II) sulfate

7758-98-7sc-211133
sc-211133A
sc-211133B
100 g
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1 kg
¥508.00
¥1354.00
¥2087.00
3
(1)

铜可能是转录因子的辅助因子或可调节启动子系统的一部分,因此可能影响基因表达。

D-Galactose

59-23-4sc-202564
100 g
¥2527.00
4
(1)

在酵母菌中,半乳糖被用作受 GAL 启动子控制的基因的诱导剂。

Tetracycline

60-54-8sc-205858
sc-205858A
sc-205858B
sc-205858C
sc-205858D
10 g
25 g
100 g
500 g
1 kg
¥699.00
¥1038.00
¥2990.00
¥4614.00
¥7017.00
6
(1)

四环素控制的转录激活是酵母中一种诱导基因表达的方法,也可用于 Ste3。

Hydroxyurea

127-07-1sc-29061
sc-29061A
5 g
25 g
¥857.00
¥2877.00
18
(1)

羟基脲会导致 DNA 损伤并诱导 DNA 损伤反应,这可能会间接影响 Ste3 的表达。

Sodium Chloride

7647-14-5sc-203274
sc-203274A
sc-203274B
sc-203274C
500 g
2 kg
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¥203.00
¥259.00
¥395.00
¥733.00
15
(3)

高浓度氯化钠会诱导酵母的应激反应途径,从而影响各种基因的表达模式。

Lithium

7439-93-2sc-252954
50 g
¥2414.00
(0)

锂会影响肌醇信号转导,并能影响酵母中的基因表达,从而可能改变交配相关基因的表达。

Rapamycin

53123-88-9sc-3504
sc-3504A
sc-3504B
1 mg
5 mg
25 mg
¥699.00
¥1749.00
¥3610.00
233
(4)

雷帕霉素可抑制 TOR 通路,而 TOR 通路参与控制细胞对营养物质的生长反应,从而可能影响基因表达。

Caffeine

58-08-2sc-202514
sc-202514A
sc-202514B
sc-202514C
sc-202514D
5 g
100 g
250 g
1 kg
5 kg
¥361.00
¥745.00
¥1072.00
¥2121.00
¥8574.00
13
(1)

咖啡因可作为一种应激源,影响酵母中的多种信号通路,从而可能导致基因表达发生变化。