Tapered chiral nanoparticles as broad-spectrum thermally stable antivirals for SARS-CoV-2 variants.
Rui GaoXinxin XuPrashant KumarYe LiuHongyu ZhangXiao GuoMaozhong SunFelippe Mariano ColombariAndré Farias de MouraChanglong HaoJessica MaEmine Sumeyra Turali EmreMinjeong ChaLiguang XuHua KuangNicholas A KotovChuanlai XuPublished in: Proceedings of the National Academy of Sciences of the United States of America (2024)
The incessant mutations of viruses, variable immune responses, and likely emergence of new viral threats necessitate multiple approaches to novel antiviral therapeutics. Furthermore, the new antiviral agents should have broad-spectrum activity and be environmentally stable. Here, we show that biocompatible tapered CuS nanoparticles (NPs) efficiently agglutinate coronaviruses with binding affinity dependent on the chirality of surface ligands and particle shape. L- penicillamine-stabilized NPs with left-handed curved apexes display half-maximal inhibitory concentrations (IC 50 ) as low as 0.66 pM (1.4 ng/mL) and 0.57 pM (1.2 ng/mL) for pseudo-type SARS-CoV-2 viruses and wild-type Wuhan-1 SARS-CoV-2 viruses, respectively, which are about 1,100 times lower than those for antibodies (0.73 nM). Benefiting from strong NPs-protein interactions, the same particles are also effective against other strains of coronaviruses, such as HCoV-HKU1, HCoV-OC43, HCoV-NL63, and SARS-CoV-2 Omicron variants with IC 50 values below 10 pM (21.8 ng/mL). Considering rapid response to outbreaks, exposure to elevated temperatures causes no change in the antiviral activity of NPs while antibodies are completely deactivated. Testing in mice indicates that the chirality-optimized NPs can serve as thermally stable analogs of antiviral biologics complementing the current spectrum of treatments.
Keyphrases
- sars cov
- wild type
- particulate matter
- air pollution
- respiratory syndrome coronavirus
- oxide nanoparticles
- immune response
- polycyclic aromatic hydrocarbons
- heavy metals
- copy number
- coronavirus disease
- escherichia coli
- water soluble
- type diabetes
- photodynamic therapy
- heart rate
- metabolic syndrome
- dna binding
- drug delivery
- body composition
- dna methylation
- protein protein
- high fat diet induced
- infectious diseases