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N-acetyl-S-geranylgeranyl-L-Cysteine Sale

(Synonyms: N-乙酰基-S-香叶基香叶基-L-半胱氨酸) 目录号 : GC44306

A synthetic substrate for the SAM-dependent methyltransferase

N-acetyl-S-geranylgeranyl-L-Cysteine Chemical Structure

Cas No.:139332-94-8

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1mg
¥428.00
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5mg
¥1,181.00
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10mg
¥2,141.00
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25mg
¥4,814.00
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产品描述

N-acetyl-S-geranylgeranyl-L-Cysteine is a synthetic substrate for the isoprenylated protein methyltransferase (also known as S-adenosylmethionine-dependent methyltransferase). Because it is able to serve as a substrate for the methyltransferase, it effectively functions as an inhibitor of methylation of endogenous isoprenylated proteins.

Chemical Properties

Cas No. 139332-94-8 SDF
别名 N-乙酰基-S-香叶基香叶基-L-半胱氨酸
Canonical SMILES CC(N([C@H](C(O)=O)CSC/C=C(C)/CC/C=C(CC/C=C(C)/CC/C=C(C)/C)\C)[H])=O
分子式 C25H41NO3S 分子量 435.7
溶解度 0.1 M Na2CO3: 11 mg/ml,DMF: 50 mg/ml,DMSO: 33 mg/ml,Ethanol: 50 mg/ml 储存条件 Store at -20°C
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1 mg 5 mg 10 mg
1 mM 2.2952 mL 11.4758 mL 22.9516 mL
5 mM 0.459 mL 2.2952 mL 4.5903 mL
10 mM 0.2295 mL 1.1476 mL 2.2952 mL
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Research Update

Identification of prenylcysteine carboxymethyltransferase in bovine adrenal chromaffin cells

Int J Biochem Cell Biol 2000 Sep;32(9):1007-16.PMID:11084380DOI:10.1016/s1357-2725(00)00036-4.

Chromaffin cells from bovine adrenal medulla were examined for the presence of a specific prenylcysteine carboxymethyltransferase by using N-acetyl-S-farnesyl-L-cysteine and N-acetyl-S-geranylgeranyl-L-Cysteine as artificial substrates and a crude cell homogenate as the enzyme source. From Michaelis-Menten kinetics the following constants were calculated: K(m) 90 microM and V(max) 3 pmol/min per mg proteins for N-acetyl-S-farnesyl-L-cysteine; K(m) 52 microM and V(max) 3 pmol/min per mg proteins for N-acetyl-S-geranylgeranyl-L-Cysteine. Both substrates were methylated to an optimal extent at the pH range 7. 4-8.0. Methylation activity increased linearly up to 20 min incubation time and was dose dependent up to at least 160 microg of protein. Sinefungin and S-adenosylhomocysteine both caused pronounced inhibition, as also to a lesser extent did farnesylthioacetic acid, deoxymethylthioadenosine and 3-deaza-adenosine. Effector studies showed that the methyltransferase activity varied depending on the concentration and chemical nature of the cations present. Monovalent cations were slightly stimulatory, while divalent metallic ions displayed diverging inhibitory effects. The inhibition by cations was validated by the stimulatory effect of the chelators EDTA and EGTA. Sulphydryl reagents inhibited methylation but to different degrees: Hg(2+)-ions: 100%, N-ethylmaleimide: 30%, dithiothreitol: 0% and mono-iodoacetate: 20%. Due to the hydrophobicity of the substrates dimethyl sulfoxide had to be included in the incubation mixture (<4%; still moderate inhibition at more elevated concentrations). The detergents tested affected the methyltransferase activity to a varying degree. The membrane bound character of the methyltransferase was confirmed.

Pulmonary endothelial cell signaling and function

Trans Am Clin Climatol Assoc 2008;119:155-67; discussion 167-9.PMID:18596849doi

RhoA is an important modulator of endothelial monolayer permeability. Posttranslational carboxyl methylation of small GTPases, such as RhoA and Ras, regulates subcellular localization and GTPase activity, resulting in altered cellular function. In this study, we investigated the role of RhoA carboxyl methylation in modulating endothelial monolayer permeability. We found that inhibition of isoprenylcysteine-O-carboxyl methyltransferase (ICMT) with adenosine plus homocysteine (Ado/HC) or N-acetyl-S-geranylgeranyl-L-Cysteine (AGGC) decreased RhoA carboxyl methylation and activation, which correlated with decreased monolayer permeability of bovine pulmonary artery endothelial cells (BPAEC). Conversely, BPAEC stably overexpressing ICMT had enhanced endothelial monolayer permeability, associated with elevated RhoA carboxyl methylation and activation. These results suggest that ICMT modulates endothelial monolayer permeability by altering RhoA carboxyl methylation and activation. In addition, we demonstrated that adenosine deaminase inhibitor not only attenuated, but also rescued, lung edema induced by a non-inflammatory edemagenic agent. Our data suggest that increasing intracellular adenosine is a useful therapeutic strategy against diseases characterized by increased vascular permeability.

Isoprenylcysteine carboxyl methyltransferase deficiency in mice

J Biol Chem 2001 Feb 23;276(8):5841-5.PMID:11121396DOI:10.1074/jbc.C000831200.

After isoprenylation, Ras and other CAAX proteins undergo endoproteolytic processing by Rce1 and methylation of the isoprenylcysteine by Icmt (isoprenylcysteine carboxyl methyltransferase). We reported previously that Rce1-deficient mice died during late gestation or soon after birth. We hypothesized that Icmt deficiency might cause a milder phenotype, in part because of reports suggesting the existence of more than one activity for methylating isoprenylated proteins. To address this hypothesis and also to address the issue of other methyltransferase activities, we generated Icmt-deficient mice. Contrary to our expectation, Icmt deficiency caused a more severe phenotype than Rce1 deficiency, with virtually all of the knockout embryos (Icmt-/-) dying by mid-gestation. An analysis of chimeric mice produced from Icmt-/- embryonic stem cells showed that the Icmt-/- cells retained the capacity to contribute to some tissues (e.g. skeletal muscle) but not to others (e.g. brain). Lysates from Icmt-/- embryos lacked the ability to methylate either recombinant K-Ras or small molecule substrates (e.g. N-acetyl-S-geranylgeranyl-L-Cysteine). In addition, Icmt-/- cells lacked the ability to methylate Rab proteins. Thus, Icmt appears to be the only enzyme participating in the carboxyl methylation of isoprenylated proteins.

Farnesyl analogues inhibit vasoconstriction in animal and human arteries

J Clin Invest 1996 May 15;97(10):2384-90.PMID:8636420DOI:10.1172/JCI118682.

Recent studies have suggested that nonsterol, mevalonate-derived metabolites are implicated in the control of vascular tone and blood pressure. Because of the metabolic importance of farnesyl pyrophosphate, a 15-carbon (C15) intermediate of the cholesterol pathway, the vasoactive properties of the farnesyl motif were investigated. Two farnesyl analogues were used: farnesol, the natural dephosphorylated form of farnesyl pyrophosphate, and N-acetyl-S-trans,trans-farnesyl-L-cysteine (AFC), a synthetic mimic of the carboxyl terminus of farnesylated proteins. Both compounds inhibited NE-induced vasoconstriction in rat aortic rings at micromolar concentration. Their action was rapid, dose dependent, and reversible. Shorter (C10) and longer (C20) isoprenols as well as N-acetyl-S-geranyl-L-cysteine (C10) did not inhibit the response to NE. In contrast, N-acetyl-S-geranylgeranyl-L-Cysteine (C20), exhibited vasoactive properties similar to AFC. It was further demonstrated that AFC and farnesol inhibited KCl and NaF-induced contractions, suggesting a complex action on Ca2+ channels and G protein-dependent pathways. Finally, the effect of farnesol and AFC on the NE response was reproduced in human resistance arteries. In conclusion, mevalonate-derived farnesyl analogues are potent inhibitors of vasoconstriction. The study suggests that farnesyl cellular availability is an important determinant of vascular tone in animals and humans, and provides a basis for exploring farnesyl metabolism in humans with compromised vascular function as well as for using farnesyl analogues as regulators of arterial tone in vivo.

Isoprenylcysteine carboxyl methyltransferase activity modulates endothelial cell apoptosis

Mol Biol Cell 2003 Mar;14(3):848-57.PMID:12631708DOI:10.1091/mbc.e02-07-0390.

Extracellular ATP, adenosine (Ado), and adenosine plus homocysteine (Ado/HC) cause apoptosis of cultured pulmonary artery endothelial cells through the enhanced formation of intracellular S-adenosylhomocysteine and disruption of focal adhesion complexes. Because an increased intracellular ratio of S-adenosylhomocysteine/S-adenosylmethionine favors inhibition of methylation, we hypothesized that Ado/HC might act by inhibition of isoprenylcysteine-O-carboxyl methyltransferase (ICMT). We found that N-acetyl-S-geranylgeranyl-L-Cysteine (AGGC) and N-acetyl-S-farnesyl-L-cysteine (AFC), which inhibit ICMT by competing with endogenous substrates for methylation, caused apoptosis. Transient overexpression of ICMT inhibited apoptosis caused by Ado/HC, UV light exposure, or tumor necrosis factor-alpha. Because the small GTPase, Ras, is a substrate for ICMT and may modulate apoptosis, we also hypothesized that inhibition of ICMT with Ado/HC or AGGC might cause endothelial apoptosis by altering Ras activation. We found that ICMT inhibition decreased Ras methylation and activity and the activation of the downstream signaling molecules Akt, ERK-1, and ERK-2. Furthermore, overexpression of wild-type or dominant active H-Ras blocked Ado/HC-induced apoptosis. These findings suggest that inhibition of ICMT causes endothelial cell apoptosis by attenuation of Ras GTPase methylation and activation and its downstream antiapoptotic signaling pathway.