4.7 Article

Poly(2-ethyl-2-oxazoline) bottlebrushes: How nanomaterial dimensions can influence biological interactions

期刊

EUROPEAN POLYMER JOURNAL
卷 151, 期 -, 页码 -

出版社

PERGAMON-ELSEVIER SCIENCE LTD
DOI: 10.1016/j.eurpolymj.2021.110447

关键词

Poly(2-oxazoline)s; (Bottle)brush; Comb polymer; Cellular uptake; Biodistribution

资金

  1. Australian Government Research Training Program
  2. Australian Research Council (ARC) [FT190100572]
  3. National Health and Medical Research Council [APP1054569]
  4. Australian Research Council [LP180100486, LP150100703]
  5. ARC Centre of Excellence in Convergent Bio-Nano Science and Technology [CE140100036]
  6. ARC Training Centre for Innovation in Biomedical Imaging Technologies [IC170100035]
  7. Australian Research Council [LP180100486, LP150100703, FT190100572] Funding Source: Australian Research Council

向作者/读者索取更多资源

PEtOx bottlebrushes, a type of biocompatible polymer, show great potential as therapeutic carriers due to their low fouling nature and good biocompatibility. Increasing the backbone or side-chain length of PEtOx bottlebrushes leads to decreased cellular association in vitro and longer blood circulation times in vivo. This insight may be beneficial for designing next-generation PEtOx bottlebrushes with customized profiles for specific applications.
Biocompatible polymers are crucial components of successful nano-sized carriers, which enable the delivery of otherwise largely ineffective therapeutics. Poly(2-ethyl-2-oxazoline) (PEtOx) is one polymer that has shown potential for this application due to its demonstrated low fouling nature and biocompatibility comparable to the current gold standard carrier, poly(ethylene glycol). PEtOx based bottlebrushes, in particular, are promising therapeutic carriers due to their anisotropic nature, which can be easily fine-tuned. Despite this potential, little is known about the interaction of PEtOx bottlebrushes with biological systems. The present study provides a detailed insight into the cellular interactions and biodistribution of PEtOx bottlebrushes in a mouse model. Three PEtOx bottlebrushes of varied side-chain and backbone lengths were designed to highlight the effect that the degree of polymerisation (DP) of each aspect may have on both cellular interaction and biodistribution. Herein we show that PEtOx bottlebrushes display no adverse effects to either cells or mice over 48 h at doses that would be relevant to drug delivery applications. Furthermore, increasing either the backbone or side-chain length of PEtOx bottlebrushes leads to a reduction in cellular association in vitro and an increase in blood circulation times in vivo. The fact that small changes to the dimensions of the PEtOx bottlebrushes have a marked effect on biodistribution and blood circulation times may prove to be a highly beneficial insight for the design of next-generation PEtOx bottlebrushes nanocarriers with tailor-made profiles dependent on the application required.

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