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Chemiluminescent Detection of Enzymatically-Produced Hydrogen Sulfide: Substrate Hydrogen Bonding Influences Selectivity for H2S over Biological Thiols

机译:酶促硫化氢的化学发光检测:底物氢键影响生物硫醇对H2S的选择性

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摘要

Hydrogen sulfide (H2S) is now recognized as an important biological regulator and signaling agent that is active in many physiological processes and diseases. Understanding the important roles of this emerging signaling molecule has remained challenging, in part due to the limited methods available for detecting endogenous H2S. Here we report two reaction-based ChemiLuminescent Sulfide Sensors, CLSS-1 and CLSS-2, with strong luminescence responses toward H2S (128-, 48-fold, respectively) and H2S detection limits (0.7 ± 0.3, 4.6 ± 2.0 μM, respectively) compatible with biological H2S levels. CLSS-2 is highly selective for H2S over other reactive sulfur, nitrogen, and oxygen species (RSONs) including GSH, Cys, Hcy, S2O32−, NO2−, HNO, ONOO, and NO. Despite its similar chemical structure, CLSS-1 displays lower selectivity toward amino acid-derived thiols than CLSS-2. The origin of this differential selectivity was investigated using both computational DFT studies and NMR experiments. Our results suggest a model in which amino acid binding to the hydrazide moiety of the luminol-derived probes provides differential access to the reactive azide in CLSS-1 and CLSS-2, thus eroding the selectivity of CLSS-1 for H2S over Cys and GSH. Based on its high selectivity for H2S, we used CLSS-2 to detect enzymatically-produced H2S from isolated cystathionine γ-lyase (CSE) enzymes (p < 0.001) and also from C6 cells expressing CSE (p < 0.001). CLSS-2 can readily differentiate between H2S production in active CSE and CSE inhibited with β-cyano alanine (BCA) in both isolated CSE enzymes (p < 0.005) and in C6 cells (p < 0.005). In addition to providing a highly sensitive and selective reaction-based tool for chemiluminescent H2S detection and quantification, the insights into substrate-probe interactions controlling the selectivity for H2S over biologically-relevant thiols may guide the design of other selective H2S detection scaffolds.
机译:硫化氢(H2S)现在被认为是重要的生物调节剂和信号传导剂,在许多生理过程和疾病中均具有活性。了解这种新兴信号分子的重要作用仍然具有挑战性,部分原因是可用于检测内源性H2S的方法有限。在这里,我们报告了两种基于反应的化学发光硫化物传感器CLSS-1和CLSS-2,它们对H2S(分别为128倍,48倍)和H2S检出限(分别为0.7±0.3、4.6±2.0μM)具有较强的发光响应)与生物硫化氢水平兼容。 CLSS-2对H2S的选择性高于其他活性硫,氮和氧(RSON),包括GSH,Cys,Hcy,S2O3 2-,NO 2-, HNO,ONOO -和NO。尽管其化学结构相似,但CLSS-1对氨基酸衍生的硫醇的选择性却比CLSS-2低。使用计算DFT研究和NMR实验研究了这种差异选择性的起源。我们的结果提出了一个模型,其中氨基酸与鲁米诺衍生的探针的酰肼部分结合,提供了对CLSS-1和CLSS-2中反应性叠氮化物的差异进入,从而侵蚀了CLSS-1对H2S的半胱氨酸和GSH选择性。 。基于其对H2S的高选择性,我们使用CLSS-2从分离的胱硫醚γ-裂合酶(CSE)酶(p <0.001)和表达CSE的C6细胞(p <0.001)中检测酶促生成的H2S。 CLSS-2可以轻松区分活性CSE中的H2S产生与分离的CSE酶(p <0.005)和C6细胞(p <0.005)中被β-氰基丙氨酸(BCA)抑制的CSE。除了提供用于化学发光H2S检测和定量的高灵敏度,基于选择性反应的工具外,对底物-探针相互作用的了解也可控制对H2S的生物学相关硫醇的选择性,可指导其他选择性H2S检测支架的设计。

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  • 年(卷),期 -1(135),44
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  • 页码 1021/ja408909h
  • 总页数 23
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