Multi-engineered Graphene Extended-Gate Field-Effect Transistor for Peroxynitrite Sensing in Alzheimer's Disease.

Peng, Qiwen; Zeng, Qiankun; Wang, Fangbing; Wu, Xiaoyuan; Zhang, Runxi; Shi, Guoyue; Zhang, Min · ACS Nano · 2023

basic_science · Level V

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Abstract

The expression of β-amyloid peptides (Aβ), a pathological indicator of Alzheimer's disease (AD), was reported to be inapparent in the early stage of AD. While peroxynitrite (ONOO<sup>-</sup>) is produced excessively and emerges earlier than Aβ plaques in the progression of AD, it is thus significant to sensitively detect ONOO<sup>-</sup> for early diagnosis of AD and its pathological research. Herein, we unveiled an integrated sensor for monitoring ONOO<sup>-</sup>, which consisted of a commercially available field-effect transistor (FET) and a high-performance multi-engineered graphene extended-gate (EG) electrode. In the configuration of the presented EG electrode, laser-induced graphene (LIG) intercalated with MnO<sub>2</sub> nanoparticles (MnO<sub>2</sub>/LIG) can improve the electrical properties of LIG and the sensitivity of the sensor, and graphene oxide (GO)-MnO<sub>2</sub>/Hemin nanozyme with ONOO<sup>-</sup> isomerase activity can selectively trigger the isomerization of ONOO<sup>-</sup> to NO<sub>3</sub><sup>-</sup>. With this synergistic effect, our EG-FET sensor can respond to the ONOO<sup>-</sup> with high sensitivity and selectivity. Moreover, taking advantage of our EG-FET sensor, we modularly assembled a portable sensing platform for wireless tracking ONOO<sup>-</sup> levels in the brain tissue of AD transgenic mice at earlier stages before massive Aβ plaques appeared, and we systematically explored the complex role of ONOO<sup>-</sup> in the occurrence and development of AD.

Medical subject headings