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1.
J Microencapsul ; 38(5): 276-284, 2021 Aug.
Artigo em Inglês | MEDLINE | ID: mdl-33722172

RESUMO

The design of an encapsulation system consisting of a synthetic peptide which is fully biodegradable into non-toxic constituents. This system should be capable of encapsulating perfluorinated hydrocarbons and should be a promising basis for oxygen carriers to be used as artificial blood replacement. A diblock-peptide is synthesised following a phosgene-free method and characterised by 1H-NMR. Subsequently, this diblock-peptide is self-assembled with perfluorodecalin (PFD) to form PFD-filled capsules as potential artificial oxygen carriers allowing for rapid oxygen uptake and release. The diblock-peptide Bu-PAsp10-PPhe10 is successfully synthesised and used to encapsulate PFD. The capsules have a spherical shape with an average diameter of 360 nm in stable aqueous dispersion. NMR measurements prove their physical capability for reversible uptake and release of oxygen. The resulting capsules are expected to be fully biodegradable and possibly could act as oxygen carriers for artificial blood replacement.


Assuntos
Substitutos Sanguíneos/química , Oxigênio/administração & dosagem , Peptídeos/química , Cápsulas , Portadores de Fármacos , Fluorocarbonos , Espectroscopia de Ressonância Magnética , Oxigênio/uso terapêutico , Tamanho da Partícula
2.
ChemistryOpen ; 13(4): e202300282, 2024 Apr.
Artigo em Inglês | MEDLINE | ID: mdl-38471961

RESUMO

Perfluorodecalin (PFD)-filled capsules have been studied for over 15 years as artificial oxygen carriers. However, none of these capsules combines good biocompatibility, good mechanical stability and dispersion stability. Here we propose to use synthetic triblock peptides containing a central block of cysteine units as a cross-linking shell material for capsules with both good biocompatibility and stability. Together with outer aspartate units and inner phenylalanine units, the resulting amphiphilic triblock peptides can encapsulate PFD efficiently to prepare capsules with a suitable diameter, a certain mechanical strength, a large diffusion constant, fast gas exchange rates, and little cytotoxicity. Given the above advantages, these PFD-filled peptide capsules are very promising as potential artificial oxygen carriers.


Assuntos
Fluorocarbonos , Oxigênio , Peptídeos , Cápsulas
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