Nano-palladium is a cellular catalyst for in vivo chemistry
Нанопалладий как клеточный катализатор для химии in vivo
2017-07-12
SCID: 54.1/vr2b6wgb
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in vivo prodrug activationnanoencapsulationpalladium nanoparticles (Pd-NPs)poly(lactic-co-glycolic acid)-b-polyethyleneglycol (PLGA-PEG)tumor-targeted catalysis
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Abstract (AI)
Palladium catalysts have been widely adopted for organic synthesis and diverse industrial applications given their efficacy and safety, yet their biological in vivo use has been limited to date. Here we show that nanoencapsulated palladium is an effective means to target and treat disease through in vivo catalysis. Palladium nanoparticles (Pd-NPs) were created by screening different Pd compounds and then encapsulating bis[tri(2-furyl)phosphine]palladium(II) dichloride in a biocompatible poly(lactic-co-glycolic acid)-b-polyethyleneglycol platform. Using mouse models of cancer, the NPs efficiently accumulated in tumours, where the Pd-NP activated different model prodrugs. Longitudinal studies confirmed that prodrug activation by Pd-NP inhibits tumour growth, extends survival in tumour-bearing mice and mitigates toxicity compared to standard doxorubicin formulations. Thus, here we demonstrate safe and efficacious in vivo catalytic activity of a Pd compound in mammals.
Key Findings
1
In mouse cancer models, Pd-NPs efficiently accumulated in tumors and activated different model prodrugs in situ.
2
Nanoencapsulated palladium (Pd-NPs) can function as an effective in vivo catalyst in mammals.
3
Pd-NPs were prepared by encapsulating bis[tri(2-furyl)phosphine]palladium(II) dichloride in a biocompatible PLGA-b-PEG platform.
4
Pd-NP–mediated prodrug activation reduced toxicity compared to standard doxorubicin formulations.
5
Prodrug activation by Pd-NPs inhibited tumor growth and extended survival in tumor-bearing mice.
Research Object
Nanoencapsulated palladium nanoparticles (bis[tri(2-furyl)phosphine]palladium(II) dichloride encapsulated in PLGA-b-PEG) used for in vivo catalysis in mouse tumor models
Research Subject
In vivo catalytic activation of prodrugs by the nanoencapsulated palladium nanoparticles leading to tumor accumulation, inhibition of tumor growth, extended survival, and reduced systemic toxicity compared to standard doxorubicin
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2017-07-12
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