S-(5′-Adenosyl)-L-cysteine
- Product Code: 76593
CAS:
35899-53-7
Molecular Weight: | 370.38 g./mol | Molecular Formula: | C₁₃H₁₈N₆O₅S |
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EC Number: | MDL Number: | MFCD00056007 | |
Melting Point: | Boiling Point: | ||
Density: | Storage Condition: | -20 °C, sealed, dry |
Product Description:
S-(5′-Adenosyl)-L-cysteine plays a significant role in biochemical research, particularly in the study of enzyme mechanisms and metabolic pathways. It is often used as a substrate or intermediate in enzymatic reactions, especially those involving methyltransferases. This compound is valuable in understanding the process of methylation, a critical biochemical modification that affects gene expression, protein function, and cellular signaling. Researchers utilize it to investigate the role of S-adenosylmethionine (SAM) in biological systems, as it is closely related to SAM-dependent methylation processes. Additionally, it aids in the development of inhibitors or modulators for enzymes involved in methylation, which has implications in fields such as cancer research, epigenetics, and drug discovery. Its application extends to studying sulfur metabolism and the biosynthesis of important biomolecules.
Sizes / Availability / Pricing:
Size (g) | Availability | Price | Quantity |
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0.025 | 10-20 days | ฿24,372.00 |
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S-(5′-Adenosyl)-L-cysteine
S-(5′-Adenosyl)-L-cysteine plays a significant role in biochemical research, particularly in the study of enzyme mechanisms and metabolic pathways. It is often used as a substrate or intermediate in enzymatic reactions, especially those involving methyltransferases. This compound is valuable in understanding the process of methylation, a critical biochemical modification that affects gene expression, protein function, and cellular signaling. Researchers utilize it to investigate the role of S-adenosylmethionine (SAM) in biological systems, as it is closely related to SAM-dependent methylation processes. Additionally, it aids in the development of inhibitors or modulators for enzymes involved in methylation, which has implications in fields such as cancer research, epigenetics, and drug discovery. Its application extends to studying sulfur metabolism and the biosynthesis of important biomolecules.
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