A receptor-Fc based SFV replicon Trim-Away platform for targeted viral protein degradation.

Publication date: Jul 04, 2026

Developing effective antiviral strategies is urgently needed during global viral pandemics. Traditional approaches, including small-molecule inhibitors, neutralizing antibodies, and RNA interference (RNAi), often face challenges such as drug resistance, limited specificity, and inefficient delivery. These limitations highlight the pressing need for innovative strategies focused on the targeted degradation of viral proteins. We developed an optimized Trim-Away system employing a receptor-Fc fusion protein strategy. This system integrates the E3 ubiquitin ligase TRIM21 with engineered receptor-Fc proteins to ensure highly specific recognition and intracellular degradation. A key innovation is the use of the Semliki Forest virus (SFV) self-amplifying replicon (pSFV). This platform enables sustained and robust expression of the Trim-Away components. Furthermore, this plasmid-based delivery eliminates the need for protein purification, thereby streamlining the process and improving delivery efficiency. The system effectively degrades diverse viral targets. Specifically, it successfully degraded the spike proteins of both wild-type SARS-CoV-2 and its Omicron variant. It also targeted adeno-associated virus (AAV) capsid proteins. In vivo assays further confirmed that the self-amplifying replicon markedly reduces AAV-encoded luciferase expression. These data demonstrate that the system maintains high potency even at low dosages. Our findings demonstrate that the pSFV-driven Trim-Away system is a powerful tool for viral protein degradation. The receptor-Fc strategy provides a significant advantage against rapidly mutating viruses. This study establishes a versatile and adaptable platform for future antiviral intervention.

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Concepts Keywords
Efficiency Antiviral strategy
Forest Receptor-Fc fusion protein
Global Self-amplifying replicon
Luciferase Targeted protein degradation
Viruses Trim-Away

Semantics

Type Source Name
drug DRUGBANK Trimebutine
disease MESH face
drug DRUGBANK Guanosine
pathway REACTOME Reproduction
disease MESH included
drug DRUGBANK Coenzyme M
disease MESH COVID 19
disease MESH viral infections
pathway KEGG Proteasome
pathway REACTOME Autophagy
pathway KEGG Lysosome
disease MESH influenza
disease MESH strains
disease MESH Body weights
disease MESH necrosis
disease MESH PBS
drug DRUGBANK Isoxaflutole
disease MESH infection
pathway KEGG Homologous recombination
drug DRUGBANK Streptomycin
drug DRUGBANK Phosphate ion
drug DRUGBANK Aspartame
drug DRUGBANK Sodium lauryl sulfate
disease MESH SDS
drug DRUGBANK Tromethamine
drug DRUGBANK Immune Globulin Human
drug DRUGBANK L-Leucine
drug DRUGBANK Albendazole
drug DRUGBANK Isoflurane
drug DRUGBANK Potassium
disease MESH Image
drug DRUGBANK Angiotensin II
disease MESH ECD
disease MESH Severe acute respiratory syndrome
disease MESH APC
disease MESH autoimmune diseases
pathway REACTOME Proteasome assembly
drug DRUGBANK Modafinil
disease MESH TAM
disease MESH tumor
disease MESH cervical cancer
pathway REACTOME Release
disease MESH infectious diseases
disease MESH traps
pathway KEGG Ribosome
drug DRUGBANK L-Cysteine
disease MESH cas
disease MESH idiopathic pulmonary fibrosis

Original Article

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