4.8 Article

Structure-activity relationship of carbon nitride dots in inhibiting Tau aggregation

期刊

CARBON
卷 193, 期 -, 页码 1-16

出版社

PERGAMON-ELSEVIER SCIENCE LTD
DOI: 10.1016/j.carbon.2022.03.021

关键词

Carbon nitride dots; Tau aggregation; Alzheimer's disease; Reactive oxygen species; Blood-brain barrier

资金

  1. National Science Foundation [1809060, 2041413]
  2. National Institute on Aging [1RF1AG069039]
  3. National Science Foundation [CHE-2102563]
  4. University of Miami, USA

向作者/读者索取更多资源

Carbon nitride dots (CNDs) show structure-dependent inhibition of MAPT aggregation and hold great promise as a potential treatment for Alzheimer's disease. The polarity of CNDs is found to be related to their inhibition capacity.
Due to the numerous failed clinical trials of anti-amyloid drugs, microtubule associated protein tau (MAPT) now stands out as one of the most promising targets for AD therapy. In this study, we report for the first time the structure-dependent MAPT aggregation inhibition of carbon nitride dots (CNDs). CNDs have exhibited great promise as a potential treatment of Alzheimer's disease (AD) by inhibiting the aggregation of MAPT. In order to elucidate its structure-activity relationship, CNDs were separated via column chromatography and five fractions with different structures were obtained that were characterized by multiple spectroscopy methods. The increase of surface hydrophilic functional groups is consistent with the increase of polarity from fraction 1 to 5. Particle sizes (1-2 nm) and zeta potentials (~-20 mV) are similar among five fractions. With the increase of polarity from fraction 1 to 5, their MAPT aggregation inhibition capacity was weakened. This suggests hydrophobic interactions between CNDs and MAPT, validated via molecular dynamics simulations. With a zebrafish blood-brain barrier (BBB) model, CNDs were observed to cross the BBB through passive diffusion. CNDs were also found to inhibit the generation of multiple reactive oxygen species, which is an important contributor to AD pathogenesis.(c) 2022 Elsevier Ltd. All rights reserved.

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