4.8 Article

Incorporation of nanogels within calcite single crystals for the storage, protection and controlled release of active compounds

期刊

CHEMICAL SCIENCE
卷 12, 期 28, 页码 9839-9850

出版社

ROYAL SOC CHEMISTRY
DOI: 10.1039/d1sc02991f

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资金

  1. Engineering and Physical Sciences (EPSRC) through the Centre for Doctoral Training in Complex Particulate Products and Processes [EP/L015285/1, EP/P005233/1, EP/N002423/1, EP/R018820/1]
  2. EPSRC [EP/R018820/1, EP/N002423/1, EP/P005233/1] Funding Source: UKRI

向作者/读者索取更多资源

A strategy of encapsulating protein nanogels within single crystals of calcite is presented to overcome the leakage and instability issues of current nanocarriers. The nanogels loaded with active compounds demonstrate stable storage and controlled release capabilities within the calcite host, making them resistant to harsh conditions like high temperature and pH. Comparisons with other systems show the superior encapsulation performance of the nanogel/calcite system for efficient storage, transport, and controlled release of active compounds.
Nanocarriers have tremendous potential for the encapsulation, storage and delivery of active compounds. However, current formulations often employ open structures that achieve efficient loading of active agents, but that suffer undesired leakage and instability of the payloads over time. Here, a straightforward strategy that overcomes these issues is presented, in which protein nanogels are encapsulated within single crystals of calcite (CaCO3). Demonstrating our approach with bovine serum albumin (BSA) nanogels loaded with (bio)active compounds, including doxorubicin (a chemotherapeutic drug) and lysozyme (an antibacterial enzyme), we show that these nanogels can be occluded within calcite host crystals at levels of up to 45 vol%. Encapsulated within the dense mineral, the active compounds are stable against harsh conditions such as high temperature and pH, and controlled release can be triggered by a simple reduction of the pH. Comparisons with analogous systems - amorphous calcium carbonate, mesoporous vaterite (CaCO3) polycrystals, and calcite crystals containing polymer vesicles - demonstrate the superior encapsulation performance of the nanogel/calcite system. This opens the door to encapsulating a broad range of existing nanocarrier systems within single crystal hosts for the efficient storage, transport and controlled release of various active guest species.

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