Arora Aditi, Kumar Sumit, Maity Jyotirmoy, Singh Brajendra K
Bioorganic Laboratory, Department of Chemistry, University of Delhi Delhi-110007 India
Department of Chemistry, St. Stephen's College, University of Delhi Delhi-110 007 India.
RSC Adv. 2024 Dec 18;14(54):39833-39843. doi: 10.1039/d4ra07295b. eCollection 2024 Dec 17.
A synthesis of a small library of fluorescent 1,4-dihydropyridine nucleoside analogues has been successfully carried out under solvent-free conditions a one-pot three-component Hantzsch condensation reaction. The process involved a Ba(NO) catalyzed solvent-free reaction between 3',5'-di--acetyl-5-formyl-2'-deoxyuridine, differently substituted β-keto ester and ammonium acetate under microwave irradiation. This facile methodology yielded the desired products with very high yields (86-96%) under solvent-free reaction conditions in a short reaction time, which was followed by a simple workup. Yields obtained under microwave and conventional heating were compared, with the microwave irradiation condition displaying superior results. The synthesized compounds were characterized by IR, H-NMR, C-NMR, H-H COSY, H-C HETCOR, 2D NOESY NMR and HRMS analysis. These nucleoside analogues exhibited significant fluorescence, with a prominent emission band around 460 nm (excitation at 235 nm). Photophysical studies revealed strong fluorescence intensity, excellent Stokes shifts (70-162 nm), and high quantum yields (0.022-0.579), outperforming other pyrimidine-based fluorescent nucleosides. Notably, 5-(diethyl 2'',6''-propyl-1'',4''-dihydropyridine-3'',5''-dicarboxylate)-4''-yl-2'-deoxyuridine demonstrated a quantum yield as high as 0.579 in DMSO during solvatochromic studies, highlighting their potential for probing local nucleic acid structure and dynamics. Additionally, we demonstrated the scalability of the synthesis protocol by producing one of the compounds on a gram scale, confirming its practical viability for large-scale production. This study underscores the potential of these fluorescent nucleoside analogues for various biochemical applications.
在无溶剂条件下,通过一锅三组分的汉茨希缩合反应成功合成了一个小型荧光1,4 - 二氢吡啶核苷类似物库。该过程涉及在微波辐射下,3',5'-二 - 乙酰基 - 5 - 甲酰基 - 2'-脱氧尿苷、不同取代的β - 酮酯和乙酸铵之间的硝酸钡催化无溶剂反应。这种简便的方法在无溶剂反应条件下,短反应时间内以非常高的产率(86 - 96%)得到了所需产物,随后进行简单的后处理。比较了微波和传统加热条件下的产率,微波辐射条件显示出更好的结果。通过红外光谱(IR)、氢核磁共振(H - NMR)、碳核磁共振(C - NMR)、氢氢化学位移相关谱(H - H COSY)、氢 - 碳异核化学位移相关谱(H - C HETCOR)、二维核Overhauser效应谱(2D NOESY NMR)和高分辨质谱(HRMS)分析对合成的化合物进行了表征。这些核苷类似物表现出显著的荧光,在约460 nm处有一个突出的发射带(激发波长为235 nm)。光物理研究表明其具有强荧光强度、优异的斯托克斯位移(70 - 162 nm)和高量子产率(0.022 - 0.579),优于其他基于嘧啶的荧光核苷。值得注意的是,在溶剂化显色研究中,5 - (二乙基2'',6'' - 丙基 - 1'',4'' - 二氢吡啶 - 3'',5'' - 二羧酸酯) - 4'' - 基 - 2'-脱氧尿苷在二甲基亚砜(DMSO)中的量子产率高达0.579,突出了它们在探测局部核酸结构和动力学方面的潜力。此外,我们通过克级规模制备其中一种化合物证明了合成方案的可扩展性,证实了其大规模生产的实际可行性。这项研究强调了这些荧光核苷类似物在各种生化应用中的潜力。