Key Laboratory of Luminescence Analysis and Molecular Sensing (Southwest University), Ministry of Education, School of Chemistry and Chemical Engineering, Southwest University, Chongqing 400715, P. R. China.
Chongqing Key Laboratory for Advanced Materials and Technologies of Clean Energies, School of Materials and Energy, Southwest University, Chongqing 400715, P. R. China.
Anal Chem. 2023 Oct 31;95(43):15965-15974. doi: 10.1021/acs.analchem.3c03035. Epub 2023 Oct 18.
Owing to the predominance of dopamine (DA) in controlling mental health, planning an innovative method for DA detection with simplicity and high efficacy is conducive to the assessment of neurological disorders. Herein, an efficient fluorogenic tactic has been elaborated for ultrasensitive detection of DA with remarkably enhanced turn-on response. Utilizing a twisted intramolecular charge-transfer (TICT)-suppressing strategy, a highly emissive azocine derivative 11-hydroxy-2,3,6,7,11,12,13,14-octahydro-1,5,10-11,14a-methanoazocino[5',4':4,5]furo[2,3-]pyrido[3,2,1-]quinolin-10-one () is generated via a one-step reaction between DA and 8-hydroxyjulolidine. It is marvelous that not only possesses ideal fluorescence quantum yield (Φ) as high as 0.956 but also exhibits bathochromic shifted fluorescence (green emissive) and stronger anti-photobleaching capacity superior to traditional azocine-derived 1,2,3,4-tetrahydro-5-4,11a-methanobenzofuro[2,3-]azocin-5-one () with moderate Φ, blue fluorescence, and poor photostability. By confining the TICT process, the detection limit to DA can be reduced to 80 pM, which is competitive in contrast to previously reported fluorescence methods. Encouraged by the instant response (within 90 s), wide linear range (0.1-500 nM), great selectivity, and excellent sensitivity, this fluorogenic method has been used for the real-time measurement of DA contents in practical urine samples with satisfactory results. Furthermore, the cerebral DA level in the reserpine-induced depression rat model has also been evaluated by our designed method, demonstrating its potent analytical applicability in the biosensing field.
由于多巴胺(DA)在控制心理健康方面占主导地位,因此设计一种简单高效的创新方法来检测 DA 有利于评估神经紊乱。在此,我们阐述了一种用于 DA 超灵敏检测的高效荧光策略,该策略具有显著增强的开环响应。利用扭曲的分子内电荷转移(TICT)抑制策略,通过 DA 与 8-羟基六氢吖啶之间的一步反应,生成高发光性吖嗪衍生物 11-羟基-2,3,6,7,11,12,13,14-八氢-1,5,10-11,14a-甲撑吖嗪并[5',4':4,5]呋喃并[2,3-]吡啶并[3,2,1-]喹啉-10-酮()。令人惊讶的是,不仅具有理想的荧光量子产率(Φ)高达 0.956,而且还表现出红移荧光(绿色发射)和更强的抗光漂白能力,优于传统的吖嗪衍生的 1,2,3,4-四氢-5-4,11a-甲撑苯并[furo[2,3-]吖嗪-5-酮(),后者具有适中的Φ、蓝色荧光和较差的光稳定性。通过限制 TICT 过程,可以将 DA 的检测限降低至 80 pM,与先前报道的荧光方法相比具有竞争力。受即时响应(90 s 内)、宽线性范围(0.1-500 nM)、高选择性和出色灵敏度的鼓舞,该荧光方法已成功用于实际尿液样品中 DA 含量的实时测量,结果令人满意。此外,还通过我们设计的方法评估了利血平诱导的抑郁大鼠模型中的脑 DA 水平,证明了其在生物传感领域的潜在分析适用性。