用于药物代谢物合成的人肝脏亚细胞 S9 馏分电化学探针

IF 3.4 3区 生物学 Q2 BIOCHEMISTRY & MOLECULAR BIOLOGY Metabolites Pub Date : 2024-08-03 DOI:10.3390/metabo14080429
Daphne Medina, Bhavana Omanakuttan, Ricky Nguyen, Eman Alwarsh, Charuksha Walgama
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引用次数: 0

摘要

人类肝脏亚细胞分馏物,包括肝微粒体(HLM)、肝细胞浆分馏物和 S9 分馏物,被广泛用于预测肝脏代谢的体外试验。S9 组份是人肝匀浆的上清液,含有微粒体和细胞质,其中包括大多数细胞色素 P450(CYP)酶和可溶性 II 期酶,如葡萄糖醛酸转移酶和磺基转移酶。本研究首次报道了 S9 馏分中氧化还原活性酶的直接电化学特性和生物催化特性。我们将 S9 薄膜固定在高纯度石墨(HPG)电极上,并在厌氧(氩气饱和)和有氧(氧气饱和)条件下进行循环伏安测定,从而研究了 S9 薄膜的电化学特性。结果发现,S9 薄膜与 HPG 电极之间的异质电子转移率为 14 ± 3 s-1,相对于 Ag/AgCl 参比电极的形式电位为 -0.451 V,这证实了含有 CYP450 还原酶(CPR)的 FAD/FMN 辅助因子作为电极的电子接收器被电化学激活。在有氧条件下,S9 薄膜还表现出催化氧还原作用,这与附着在类似电极上的 HLM 薄膜相同。此外,我们还使用双氯芬酸羟化反应作为探针反应,研究了 S9 生物膜中 CYP 的 I 期代谢活性,并使用液相色谱-质谱法(LC-MS)鉴定了代谢产物。研究在此类电化学测定中利用肝脏 S9 分馏物的可行性为开发中新药的药理学和毒理学评估提供了显著优势,同时也为开发高效生物传感器和生物反应器平台提供了宝贵的见解。
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Electrochemical Probing of Human Liver Subcellular S9 Fractions for Drug Metabolite Synthesis
Human liver subcellular fractions, including liver microsomes (HLM), liver cytosol fractions, and S9 fractions, are extensively utilized in in vitro assays to predict liver metabolism. The S9 fractions are supernatants of human liver homogenates that contain both microsomes and cytosol, which include most cytochrome P450 (CYP) enzymes and soluble phase II enzymes such as glucuronosyltransferases and sulfotransferases. This study reports on the direct electrochemistry and biocatalytic features of redox-active enzymes in S9 fractions for the first time. We investigated the electrochemical properties of S9 films by immobilizing them onto a high-purity graphite (HPG) electrode and performing cyclic voltammetry under anaerobic (Ar-saturated) and aerobic (O2-saturated) conditions. The heterogeneous electron transfer rate between the S9 film and the HPG electrode was found to be 14 ± 3 s−1, with a formal potential of −0.451 V vs. Ag/AgCl reference electrode, which confirmed the electrochemical activation of the FAD/FMN cofactor containing CYP450-reductase (CPR) as the electron receiver from the electrode. The S9 films have also demonstrated catalytic oxygen reduction under aerobic conditions, identical to HLM films attached to similar electrodes. Additionally, we investigated CYP activity in the S9 biofilm for phase I metabolism using diclofenac hydroxylation as a probe reaction and identified metabolic products using liquid chromatography–mass spectrometry (LC-MS). Investigating the feasibility of utilizing liver S9 fractions in such electrochemical assays offers significant advantages for pharmacological and toxicological evaluations of new drugs in development while providing valuable insights for the development of efficient biosensor and bioreactor platforms.
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来源期刊
Metabolites
Metabolites Biochemistry, Genetics and Molecular Biology-Molecular Biology
CiteScore
5.70
自引率
7.30%
发文量
1070
审稿时长
17.17 days
期刊介绍: Metabolites (ISSN 2218-1989) is an international, peer-reviewed open access journal of metabolism and metabolomics. Metabolites publishes original research articles and review articles in all molecular aspects of metabolism relevant to the fields of metabolomics, metabolic biochemistry, computational and systems biology, biotechnology and medicine, with a particular focus on the biological roles of metabolites and small molecule biomarkers. Metabolites encourages scientists to publish their experimental and theoretical results in as much detail as possible. Therefore, there is no restriction on article length. Sufficient experimental details must be provided to enable the results to be accurately reproduced. Electronic material representing additional figures, materials and methods explanation, or supporting results and evidence can be submitted with the main manuscript as supplementary material.
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