The Effect of Stereocomplexation and Crystallinity on the Degradation of Polylactide Nanoparticles

GND
133061559X
Zugehörigkeit
Chair of Material Science (CMS), Otto Schott Institute for Materials Research (OSIM), Friedrich Schiller University Jena
Yin, Chuan;
GND
1330795601
Zugehörigkeit
Chair of Material Science (CMS), Otto Schott Institute for Materials Research (OSIM), Friedrich Schiller University Jena
Hemstedt, Jenny;
GND
1330795784
Zugehörigkeit
Chair of Material Science (CMS), Otto Schott Institute for Materials Research (OSIM), Friedrich Schiller University Jena
Scheuer, Karl;
GND
1304699080
Zugehörigkeit
Chair of Material Science (CMS), Otto Schott Institute for Materials Research (OSIM), Friedrich Schiller University Jena
Struczyńska, Maja;
GND
1027788505
ORCID
0000-0003-0712-5255
Zugehörigkeit
Institute of Organic Chemistry and Macromolecular Chemistry (IOMC), Friedrich Schiller University Jena
Weber, Christine;
GND
113792077
Zugehörigkeit
Institute of Organic Chemistry and Macromolecular Chemistry (IOMC), Friedrich Schiller University Jena, Humboldtstrasse 10, 07743 Jena, Germany;(C.W.);(U.S.S.)
Schubert, Ulrich S.;
GND
172610435
Zugehörigkeit
Chair of Material Science (CMS), Otto Schott Institute for Materials Research (OSIM), Friedrich Schiller University Jena
Bossert, Jörg;
GND
1026455200
Zugehörigkeit
Chair of Material Science (CMS), Otto Schott Institute for Materials Research (OSIM), Friedrich Schiller University Jena
Jandt, Klaus D.

Polymeric nanoparticles (PNPs) are frequently researched and used in drug delivery. The degradation of PNPs is highly dependent on various properties, such as polymer chemical structure, size, crystallinity, and melting temperature. Hence, a precise understanding of PNP degradation behavior is essential for optimizing the system. This study focused on enzymatic hydrolysis as a degradation mechanism by investigation of the degradation of PNP with various crystallinities. The aliphatic polyester polylactide ([C 3 H 4 O 2 ]n, PLA) was used as two chiral forms, poly l -lactide (P l LA) and poly d -lactide (P d LA), and formed a unique crystalline stereocomplex (SC). PNPs were prepared via a nanoprecipitation method. In order to further control the crystallinity and melting temperatures of the SC, the polymer poly(3-ethylglycolide) [C 6 H 8 O 4 ]n (PEtGly) was synthesized. Our investigation shows that the PNP degradation can be controlled by various chemical structures, crystallinity and stereocomplexation. The influence of proteinase K on PNP degradation was also discussed in this research. AFM did not reveal any changes within the first 24 h but indicated accelerated degradation after 7 days when higher EtGly content was present, implying that lower crystallinity renders the particles more susceptible to hydrolysis. QCM-D exhibited reduced enzyme adsorption and a slower degradation rate in SC-PNPs with lower EtGly contents and higher crystallinities. A more in-depth analysis of the degradation process unveiled that QCM-D detected rapid degradation from the outset, whereas AFM exhibited delayed changes of degradation. The knowledge gained in this work is useful for the design and creation of advanced PNPs with enhanced structures and properties.

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