4.5 Article

19F magnetic resonance imaging enabled real-time, non-invasive and precise localization and quantification of the degradation rate of hydrogel scaffolds in vivo

Journal

BIOMATERIALS SCIENCE
Volume 8, Issue 12, Pages 3301-3309

Publisher

ROYAL SOC CHEMISTRY
DOI: 10.1039/d0bm00278j

Keywords

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Funding

  1. National Natural Science Foundation of China [51703246, 21708048, 31670977]
  2. CAMS Innovation Fund for Medical Sciences (CIFMS) [2016-I2M-3-022, 2017-I2M-4-001]
  3. Tianjin Natural Science Foundation [17JCQNJC13800]

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The degradation behavior of hydrogel scaffolds is closely related to the controlled release of bioactive agents and matching with the proliferative demands of newly generated tissues. However, the current methods cannot provide precise localization and track the degradation of individual hydrogel scaffolds in vivo, despite superficial or volumetric information. Here, for the first time, we presented the use of F-19 magnetic resonance imaging (F-19 MRI) to precisely monitor the localization and quantify the degradation rate of implantable or injectable hydrogels in a real-time and noninvasive manner, with no interference of endogenous background signals and limitation of penetration depth. The total voxel and content in the region of interest (ROI) were linearly correlated to the injection amount, providing exact three-dimensional (3D) stereoscopic and two-dimensional (2D) anatomical information in the meantime. Moreover, a computational algorithm was established to present the real-time degradation rate in vivo as a function of time, which was implemented directly from the F-19 MRI dataset. In addition, labelling with a zwitterionic F-19 contrast agent demonstrated a facile and general applicability for multiple types of materials with no influence on their original gelation properties as well as F-19 NMR properties in the hydrogel matrix. Therefore, this F-19 MRI method offers a new approach to non-invasively track the degradation rate of hydrogel scaffolds in vivo in a precise localization and accurate quantification way, which will suffice the need for the evaluation of implants at deep depths in large animals or human objects.

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