4.6 Article

Rational Design of Thermosensitive Hydrogel to Deliver Nanocrystals with Intranasal Administration for Brain Targeting in Parkinson's Disease

Journal

RESEARCH
Volume 2021, Issue -, Pages -

Publisher

AMER ASSOC ADVANCEMENT SCIENCE
DOI: 10.34133/2021/9812523

Keywords

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Funding

  1. National Natural Science Foundation of China [21773311, 21972169]
  2. Hunan Provincial Science and Technology Department Project [2019TP1001]
  3. Guangdong Basic and Applied Basic Research Foundation [2019B1515120043]
  4. Research Fund of University of Macau [MYRG2019-00121-ICMS, MYRG2018-00207-ICMS]
  5. Science and Tech-nology Development Fund, Macau SAR [0098/2020/A]
  6. Key Project of Basic Research of Shenzhen [JCYJ20200109113603854]

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The research developed a drug delivery platform hydrogel (MAG-NCs@Gel) to improve drug solubility, nasal cavity residence time, and brain targeting efficiency. Continuous intranasal delivery enabled the drug to cross the BBB and enter dopaminergic neurons, effectively alleviating Parkinson's disease symptoms.
Mitochondrial dysfunction is commonly detected in individuals suffering from Parkinson's disease (PD), presenting within the form of excessive reactive oxygen species (ROS) generation as well as energy metabolism. Overcoming this dysfunction within brain tissues is an effective approach to treat PD, while unluckily, the blood-brain barrier (BBB) substantially impedes intracerebral drug delivery. In an effort to improve the delivery of efficacious therapeutic drugs to the brain, a drug delivery platform hydrogel (MAG-NCs@Gel) was designed by complexing magnolol (MAG)-nanocrystals (MAG-NCs) into the noninvasive thermosensitive poly(N- isopropylacrylamide) (PNIPAM) with self-gelation. The as-prepared MAG-NCs@Gel exhibited obvious improvements in drug solubility, the duration of residence with the nasal cavity, and the efficiency of brain targeting, respectively. Above all, continuous intranasal MAG-NCs@Gel delivery enabled MAG to cross the BBB and enter dopaminergic neurons, thereby effectively alleviating the symptoms of MPTP-induced PD. Taking advantage of the lower critical solution temperature (LCST) behavior of this delivery platform increases its viscoelasticity in nasal cavity, thus improving the efficiency of MAG-NCs transit across the BBB. As such, MAG-NCs@Gel represented an effective delivery platform capable of normalizing ROS and adenosine triphosphate (ATP) in the mitochondria of dopaminergic neurons, consequently reversing the mitochondrial dysfunction and enhancing the behavioral skills of PD mice without adversely affecting normal tissues.

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