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首页> 外文期刊>Angewandte Chemie >Next-Generation Polymer Shells for Inorganic Nanoparticles are Highly Compact, Ultra-Dense, and Long-Lasting Cyclic Brushes
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Next-Generation Polymer Shells for Inorganic Nanoparticles are Highly Compact, Ultra-Dense, and Long-Lasting Cyclic Brushes

机译:用于无机纳米颗粒的下一代聚合物壳是高度紧凑的,超致密的和持久的循环刷

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摘要

Cyclic poly-2-ethyl-2-oxazoline (PEOXA) ligands for superparamagnetic Fe3O4 nanoparticles (NPs) generate ultra-dense and highly compact shells, providing enhanced colloidal stability and bio-inertness in physiological media. When linear brush shells fail in providing colloidal stabilization to NPs, the cyclic ones assure long lasting dispersions. While the thermally induced dehydration of linear PEOXA shells cause irreversible aggregation of the NPs, the collapse and subsequent rehydration of similarly grafted cyclic brushes allow the full recovery of individually dispersed NPs. Although linear ligands are densely grafted onto Fe3O4 cores, a small plasma protein such as bovine serum albumin (BSA) still physisorbs within their shells. In contrast, the impenetrable entropic shield provided by cyclic brushes efficiently prevents nonspecific interaction with proteins.
机译:用于超顺磁Fe3O4纳米颗粒(NPS)的环状聚-2-乙基-2-恶唑啉(PEOXA)配体产生超致密且高度紧凑的壳,在生理介质中提供增强的胶体稳定性和生物惰性。 当线性刷壳在向NPS提供胶体稳定性时,循环值确保长时间的分散体确保。 虽然线性Peoxa壳的热诱导的脱水导致NPS的不可逆聚集,但同样接枝的环状刷的塌陷和随后的再水化允许全部分散的NPS完全恢复。 尽管线性配体浓密地接枝到Fe3O4核心上,但是一种小的血浆蛋白,如牛血清白蛋白(BSA)仍然在其壳内的物理吸收。 相反,循环刷提供的难以置力的熵护罩有效地防止与蛋白质的非特异性相互作用。

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