Hassan Ashraf S, Morsy Nesrin M, Aboulthana Wael M, Ragab Ahmed
Organometallic and Organometalloid Chemistry Department, National Research Centre Dokki 12622 Cairo Egypt
Biochemistry Department, Biotechnology Research Institute, National Research Centre Dokki 12622 Cairo Egypt.
RSC Adv. 2023 Mar 20;13(14):9281-9303. doi: 10.1039/d3ra00297g.
Recently, scientists developed a powerful strategy called "one drug-multiple targets" to discover vital and unique therapies to fight the most challenging diseases. Novel derivatives of isatin-based Schiff bases 2-7 have been synthesized by the reaction of 3-hydrazino-isatin (1) with aryl aldehydes, hetero-aryl aldehydes, and dialdehydes. The structure of the synthesized derivatives was proved by physical and spectral analysis. Additionally, biological studies were performed, including antioxidant, anti-diabetic, anti-Alzheimer, and anti-arthritic activities. The four derivatives 3b, 5a, 5b, and 5c possess the highest activities. Among the four potent derivatives, compound 5a exhibited the highest antioxidant (TAC = 68.02 ± 0.15 mg gallic acid per g; IRP = 50.39 ± 0.11) and scavenging activities (ABTS = 53.98 ± 0.12% and DPPH = 8.65 ± 0.02 μg mL). Furthermore, compound 5a exhibited an α-amylase inhibitory percentage of 57.64 ± 0.13% near the acarbose (ACA = 69.11 ± 0.15%) and displayed inhibitor activity of the acetylcholinesterase (AChE) enzyme = 36.38 ± 0.08%. Moreover, our work extended to determining the anti-arthritic effect, and compound 5a revealed good inhibitor activities with very close values for proteinase denaturation (PDI) = 39.59 ± 0.09% and proteinase inhibition (PI) = 36.39 ± 0.08%, compared to diclofenac sodium PDI = 49.33 ± 0.11% and PI = 41.88 ± 0.09%. Additionally, the quantum chemical calculations, including HOMO, LUMO, and energy band gap were determined, and ADMET properties were predicted, and their probability was recorded. Finally, molecular docking simulations were performed inside α-amylase and acetylcholinesterase enzymes.
最近,科学家们开发了一种名为“一药多靶”的强大策略,以发现对抗最具挑战性疾病的关键且独特的疗法。通过3-肼基异吲哚酮(1)与芳基醛、杂芳基醛和二醛反应,合成了异吲哚酮基席夫碱2-7的新型衍生物。通过物理和光谱分析证实了合成衍生物的结构。此外,还进行了生物学研究,包括抗氧化、抗糖尿病、抗阿尔茨海默病和抗关节炎活性。四种衍生物3b、5a、5b和5c具有最高活性。在这四种强效衍生物中,化合物5a表现出最高的抗氧化(总抗氧化能力TAC = 68.02±0.15毫克没食子酸每克;铁还原能力IRP = 50.39±0.11)和清除活性(ABTS = 53.98±0.12%和DPPH = 8.65±0.02微克/毫升)。此外,化合物5a在阿卡波糖(ACA = 69.11±0.15%)附近表现出57.64±0.13%的α-淀粉酶抑制率,并显示出对乙酰胆碱酯酶(AChE)的抑制活性 = 36.38±0.08%。此外,我们的工作扩展到确定抗关节炎作用,与双氯芬酸钠的蛋白酶变性(PDI) = 49.33±0.11%和蛋白酶抑制(PI) = 41.88±0.09%相比,化合物5a显示出良好的抑制活性,蛋白酶变性(PDI) = 39.59±0.09%和蛋白酶抑制(PI) = 36.39±0.08%的值非常接近。此外,还确定了量子化学计算,包括最高占据分子轨道(HOMO)、最低未占据分子轨道(LUMO)和能带隙,并预测了药物代谢动力学(ADMET)性质,并记录了其可能性。最后,在α-淀粉酶和乙酰胆碱酯酶内部进行了分子对接模拟。