This project aimed to uncover how components of human innate immunity, Zinc-finger antiviral protein (ZAP) and Regnase-1-like endonucleases protect us from viral infections. Viral infections, such as those caused by Human Immunodeficient Virus, Influenza and SARS-CoV-2, cause significant global health and economic challenges. Current antiviral therapeutic options are limited and often have a selective activity. This highlights the need for innovative approaches that act against a broad range of viruses by harnessing the natural antiviral responses of the human body. The objectives of this project were to characterize the antiviral potential of Regnase-1-like endonucleases and ZAP and identify their targets during virus infection. Furthermore, we investigated the therapeutic potential of pharmacological MALT1 inhibitors to enhance the natural ZAP and endonuclease activity. The pathway to impact involved a four-part work plan: ranking endonuclease antiviral activities, assessing their efficacy against different human viruses, mapping their RNA targets, and evaluating the effect of MALT1 inhibitors on viral infection. Through advanced techniques such as next-generation sequencing, CRISPR-Cas9 genome editing, and primary cell based infection models, the project aimed to uncover immune mechanisms that could inform novel antiviral treatment strategies. The expected impacts include providing a framework for developing broadly acting antiviral therapies and contributing to our understanding of immune regulation, with potential applications in managing autoimmune diseases and cancer. These outcomes address pressing global health challenges and aim to mitigate the substantial burden of respiratory viral diseases.