首页> 外文期刊>Analytical and Bioanalytical Chemistry >Synthesis of the 3-sulfates of N-acetylcysteine conjugated bile acids (BA-NACs) and their transient formation from BA-NACs and subsequent hydrolysis by a rat liver cytosolic fraction as shown by liquid chromatography/electrospray ionization-mass spectrometry
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Synthesis of the 3-sulfates of N-acetylcysteine conjugated bile acids (BA-NACs) and their transient formation from BA-NACs and subsequent hydrolysis by a rat liver cytosolic fraction as shown by liquid chromatography/electrospray ionization-mass spectrometry

机译:N-乙酰半胱氨酸缀合胆汁酸(BA-NAC)的3-硫酸盐的合成及其从BA-NAC的瞬时形成以及随后被大鼠肝细胞质部分水解,如液相色谱/电喷雾电离质谱法所示

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Previous work from this laboratory has reported the chemical synthesis of N-acetylcysteine (NAC) conjugates of natural bile acids (BAs) and shown that such novel conjugates can be formed in vivo in rats to which NAC has been administered. The subsequent fate of such novel conjugates is not known. One possible biotransformation is sulfation, a major pathway for BAs N-acylamidates in patients with cholestatic liver disease. Here, we report the chemical synthesis of the 3-sulfates of the S-acyl NAC conjugates of five natural BAs (cholic, chenodeoxycholic, deoxycholic, ursodeoxycholic, and lithocholic). We also measured the sulfation of N-acetylcysteine–natural bile acid (BA-NAC) conjugates when they were incubated with a rat liver cytosolic fraction. The chemical structures of the BA-NAC 3-sulfates were confirmed by proton nuclear magnetic resonance, as well as by means of electrospray ionization-linear ion trap mass spectrometry with negative-ion detection. Upon collision-induced dissociation of singly and doubly charged deprotonated molecules, structurally informative product ions were observed. Using a triple-stage quadrupole instrument, selected reaction monitoring analyses by monitoring characteristic transition ions allowed the achievement of a highly sensitive and specific assay. When BA-NACs were incubated with a rat liver cytosolic fraction to which 3’-phosphoadenosine 5’-phosphosulfate was added, sulfation occurred, but the dominant reaction was hydrolysis of the S-acyl linkage to form the unconjugated BAs. Subsequent sulfation occurred at C-3 on the unconjugated BAs that had been formed from the BA-NACs. Such sulfation was proportional to the hydrophobicity of the unconjugated bile acid. Thus, NAC conjugates of BAs as well as their C-3 sulfates if formed in vivo are rapidly hydrolyzed by cytosolic enzymes.
机译:该实验室的先前工作已报道了天然胆汁酸(BAs)的N-乙酰半胱氨酸(NAC)缀合物的化学合成,并表明可以在已施用NAC的大鼠体内形成这种新型缀合物。这种新型结合物的后续命运是未知的。一种可能的生物转化是硫酸化,这是胆汁淤积性肝病患者中BAs N-酰化的主要途径。在这里,我们报告了五个天然BAs(胆酸,鹅去氧胆酸,脱氧胆酸,熊去氧胆酸和石胆酸)的S-酰基NAC共轭物的3-硫酸盐的化学合成。我们还测量了N-乙酰半胱氨酸-天然胆汁酸(BA-NAC)共轭物与大鼠肝细胞溶质一起孵育时的硫酸化程度。 BA-NAC 3-硫酸盐的化学结构通过质子核磁共振以及带有负离子检测的电喷雾电离-线性离子阱质谱法确定。在碰撞诱导的单电荷和双电荷去质子化分子解离后,观察到结构上有益的产物离子。使用三级四极杆仪器,通过监测特征性过渡离子进行的选定反应监测分析可实现高度灵敏且特异的分析。当将BA-NAC与添加3'-磷酸腺苷5'-磷酸硫酸的大鼠肝胞质级分一起温育时,会发生硫酸化反应,但主要反应是S-酰基键水解形成未结合的BA。随后的硫酸化发生在由BA-NAC形成的未结合BA的C-3处。这种硫酸化与未结合胆汁酸的疏水性成比例。因此,BAs的NAC缀合物及其C-3硫酸盐(如果在体内形成)会被胞质酶迅速水解。

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