Pharmaceutical and Heterocyclic Compounds Research Laboratory, Department of Chemistry, Iran University of Science and Technology, Tehran, Iran.
J Biomol Struct Dyn. 2023;41(21):11551-11563. doi: 10.1080/07391102.2022.2164058. Epub 2023 Jan 4.
A series of molecular dynamics simulations were performed on 5-fluorouracil (5-Fu), Alendronate (Ald), and Temozolomide (TMZ) anticancer drugs in the presence and absence of β-cyclodextrin (βCD) as a carrier. Thermodynamic investigations showed that the van der Waals interaction energy was dominant in loading all drugs inside the βCD cavity. The sum of the interaction energies illustrated that the highest affinity was related to Ald (-136.5 kJ/mol), which in turn was due to the presence of bulky and charged atoms of phosphorus and oxygen, although TMZ (-115.92 kJ/mol) showed a very high affinity as well. At the same time, the hydrogen bond analysis also represented that Ald had the most hydrogen bond (1.97) with the highest half-life (3.13 ps) with βCD. Investigation of the root mean fluctuation (RMSF) indicated that all the drugs had a relatively rigid structure and maintain this rigidity during loading in the βCD cavity, and in the meantime, Ald was slightly more flexible than 5-Fu and TMZ. The area of the primary hydroxyl rim decreased in all drug-containing systems, which in turn was caused by the attractive interaction of drugs with oxygens in the primary hydroxyl rim. Especially for those drugs that were able to penetrate to the end of the primary hydroxyl rim of the βCD, that means TMZ and 5-Fu. Meanwhile, due to the lack of Ald penetration to the end of the primary hydroxyl rim, the area change in the Ald-containing system was less than in the two others.Communicated by Ramaswamy H. Sarma.
对氟尿嘧啶(5-Fu)、阿仑膦酸钠(Ald)和替莫唑胺(TMZ)三种抗癌药物在β-环糊精(βCD)作为载体存在和不存在的情况下进行了一系列分子动力学模拟。热力学研究表明,范德华相互作用能在将所有药物加载到βCD 腔中时起主导作用。相互作用能的总和表明,与 Ald(-136.5 kJ/mol)的亲和力最高,这归因于磷和氧的庞大和带电原子的存在,尽管 TMZ(-115.92 kJ/mol)也表现出非常高的亲和力。同时,氢键分析也表明,Ald 与 βCD 具有最多的氢键(1.97)和最长的半衰期(3.13 ps)。均方根波动(RMSF)的研究表明,所有药物都具有相对刚性的结构,并在加载到βCD 腔中时保持这种刚性,同时,Ald 比 5-Fu 和 TMZ 略具灵活性。所有含药物体系的主羟基边缘面积都减小了,这是由于药物与主羟基边缘的氧之间的吸引相互作用所致。特别是对于那些能够穿透到βCD 主羟基边缘末端的药物,即 TMZ 和 5-Fu。同时,由于 Ald 无法穿透到主羟基边缘的末端,因此 Ald 体系中的面积变化小于另外两个体系。