Palacios-Can Francisco José, Silva-Sánchez Jesús, León-Rivera Ismael, Tlahuext Hugo, Pastor Nina, Razo-Hernández Rodrigo Said
Centro de Investigación en Dinámica Celular (CIDC), Universidad Autónoma del Estado de Morelos, Av. Universidad 1001, Col. Chamilpa, Cuernavaca 62209, Morelos, Mexico.
Centro de Investigaciones Químicas (CIQ), Universidad Autónoma del Estado de Morelos, Av. Universidad 1001, Col. Chamilpa, Cuernavaca 62209, Morelos, Mexico.
Pharmaceuticals (Basel). 2023 Feb 7;16(2):250. doi: 10.3390/ph16020250.
As the rate of discovery of new antibacterial compounds for multidrug-resistant bacteria is declining, there is an urge for the search for molecules that could revert this tendency. has emerged as a highly virulent Gram-negative bacterium that has acquired multiple resistance mechanisms against antibiotics and is considered of critical priority. In this work, we developed a quantitative structure-property relationship (QSPR) model with 592 compounds for the identification of structural parameters related to their property as antibacterial agents against . QSPR mathematical validation (R2 = 70.27, RN = -0.008, a(R2) = 0.014, and δK = 0.021) and its prediction ability (Q2= 67.89, Q2 = 67.75, a(Q2) = -0.068, δQ = 0.0, rm2¯ = 0.229, and Δrm2 = 0.522) were obtained with different statistical parameters; additional validation was done using three sets of external molecules (R2 = 72.89, 71.64 and 71.56). We used the QSPR model to perform a virtual screening on the BIOFACQUIM natural product database. From this screening, our model showed that molecules to and to , isolated from different extracts of plants of the sp., are potential antibacterials against . Furthermore, biological assays showed that molecules and to have a wide antibacterial activity against clinically isolated strains of , as well as other multidrug-resistant bacteria, including , , , and . Finally, we propose as a potential lead compound due to its broad-spectrum activity and its structural simplicity. Therefore, our QSPR model can be used as a tool for the investigation and search for new antibacterial compounds against .
由于针对多重耐药细菌的新型抗菌化合物的发现率正在下降,因此迫切需要寻找能够扭转这一趋势的分子。已成为一种高毒力革兰氏阴性菌,它获得了多种抗生素耐药机制,被视为极其重要的优先研究对象。在这项工作中,我们开发了一个包含592种化合物的定量构效关系(QSPR)模型,用于识别与其作为针对的抗菌剂的性质相关的结构参数。通过不同的统计参数获得了QSPR数学验证(R2 = 70.27,RN = -0.008,a(R2) = 0.014,以及δK = 0.021)及其预测能力(Q2 = 67.89,Q2 = 67.75,a(Q2) = -0.068,δQ = 0.0,rm2¯ = 0.229,以及Δrm2 = 0.522);使用三组外部分子进行了额外验证(R2 = 72.89、71.64和71.56)。我们使用QSPR模型对BIOFACQUIM天然产物数据库进行了虚拟筛选。通过这次筛选,我们的模型表明,从sp.植物的不同提取物中分离出的分子到以及到是针对的潜在抗菌剂。此外,生物学试验表明,分子和到对临床分离的菌株以及其他多重耐药细菌,包括、、和具有广泛的抗菌活性。最后,我们提出作为一种潜在的先导化合物,因为它具有广谱活性且结构简单。因此,我们的QSPR模型可作为一种工具,用于研究和寻找针对 的新型抗菌化合物。