The current Zika virus (ZIKV) outbreak became a global health threat of complex epidemiology and devastating neurological impacts, therefore requiring urgent efforts towards the development of novel efficacious and safe antiviral drugs. Due to its central role in RNA viral replication, the non-structural protein 5 (NS5) RNA-dependent RNA-polymerase (RdRp) is a prime target for drug discovery. Here we describe the crystal structure of the recombinant ZIKV NS5 RdRp domain at 1.9 Å resolution as a platform for structure-based drug design strategy. The overall structure is similar to other flaviviral homologues. However, the priming loop target site, which is suitable for non-nucleoside polymerase inhibitor design, shows significant differences in comparison with the dengue virus structures, including a tighter pocket and a modified local charge distribution.
Estratégias modernas de planejamento de fármacos se fundamentam no conhecimento da fisiopatologia das doenças, no estudo de vias bioquímicas e na seleção de alvos moleculares. As ferramentas biotecnológicas modernas têm fornecido informações valiosas para a descoberta e o desenvolvimento de novos fármacos. A química medicinal possui papel central em vários processos que visam à identificação de substâncias bioativas e ao desenvolvimento de compostos-líderes com propriedades farmacodinâmicas e farmacocinéticas otimizadas. O presente artigo apresenta uma abordagem de alguns aspectos fundamentais da biotecnologia e da química medicinal como ferramentas úteis para o planejamento de candidatos a novos fármacos para a terapia de doenças infecciosas. Current drug design strategies are based on the understanding of the physiopathology of diseases, biochemical pathways and selection of molecular targets. Modern biotechnological tools have provided valuable information to facilitate the discovery of new drug candidates. Medicinal chemistry has a vital role in a variety of processes aimed at the identification of bioactive substances and the development of lead-compounds with optimized pharmacodynamic and pharmacokinetic properties. The present paper presents some fundamental aspects of biotechnology and medicinal chemistry as useful tools in the design of new chemical entities for the therapy of infectious diseases
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