Puszko Anna K, Batista Fernando A, Ejjoummany Abdelaziz, Bouillon Anthony, Maurel Manon, Adler Pauline, Legru Alice, Martinez Mariano, Ortega Varga Laura, Hadjadj Margot, Alzari Pedro M, Blondel Arnaud, Haouz Ahmed, Barale Jean-Christophe, Hernandez Jean-François
Institut des Biomolécules Max Mousseron (IBMM), CNRS, Univ Montpellier, ENSCM, Montpellier, France.
Structural Microbiology, UMR3528, Institut Pasteur, CNRS, Université de Paris, Paris, France.
ChemMedChem. 2025 Apr 14;20(8):e202400924. doi: 10.1002/cmdc.202400924. Epub 2025 Feb 9.
After more than 15 years of decline, the Malaria epidemy has increased again since 2017, reinforcing the need to identify drug candidates active on new targets involved in at least two biological stages of the Plasmodium life cycle. The SUB1 protease, which is essential for parasite egress in both hepatic and blood stages, would meet these criteria. We previously reported the structure-activity relationship analysis of α-ketoamide-containing inhibitors encompassing positions P4-P2'. Despite compounds with high inhibitory potencies were identified, their antiparasitic activity remained limited, probably due to insufficient cell permeability. Here, we present our efforts to improve it through the N-terminal introduction of basic or hydrophobic moieties and/or cyclization. Compared to our previous reference compounds 1/2 (Ac-Ile/Cpg-Thr-Ala-AlaCO-Asp-Glu (Oall)-NH), we identified analogues with improved Pf-/PvSUB1 inhibition (IC values in the 10-20 nM range) and parasite growth inhibition (up to 98 % at 100 μM). The increase in potency was mainly observed when increasing the overall hydrophobicity of the compounds. Conjugation to the cell penetrating peptide octa-arginine was also favorable. Finally, the crystal structure of PvSUB1 in complex with compound 15 has been determined at 1.6 Å resolution. Compared to compound 1, this structure extended to the P5 residue and revealed two additional hydrogen bonds.
在经历了超过15年的下降之后,疟疾疫情自2017年以来再次上升,这凸显了识别对疟原虫生命周期中至少两个生物学阶段的新靶点有活性的候选药物的必要性。SUB1蛋白酶在肝脏和血液阶段对寄生虫逸出至关重要,符合这些标准。我们之前报道了包含P4 - P2'位的含α-酮酰胺抑制剂的构效关系分析。尽管鉴定出了具有高抑制效力的化合物,但其抗寄生虫活性仍然有限,可能是由于细胞通透性不足。在此,我们展示了通过在N端引入碱性或疏水性基团和/或环化来改善这一情况的努力。与我们之前的参考化合物1/2(Ac - Ile/Cpg - Thr - Ala - AlaCO - Asp - Glu (Oall) - NH)相比,我们鉴定出了对Pf - /PvSUB1抑制作用增强(IC值在10 - 20 nM范围内)且对寄生虫生长抑制作用增强(在100 μM时高达98%)的类似物。当增加化合物的整体疏水性时,主要观察到效力的增加。与细胞穿透肽八聚精氨酸的缀合也是有利的。最后,已确定PvSUB1与化合物15复合物的晶体结构,分辨率为1.6 Å。与化合物1相比,该结构延伸到了P5残基,并揭示了另外两个氢键。