Dual Behavior Regulation: Tether-Free Deep-Brain Stimulation by Photothermal and Upconversion Hybrid Nanoparticles

Feiyi Sun, Hanchen Shen, Qinghu Yang*, Zhaoyue Yuan, Yuyang Chen, Weihua Guo, Yu Wang, Liang Yang, Zhantao Bai, Qingqing Liu, Ming Jiang, Jacky W. Y. Lam, Jianwei Sun, Ruquan Ye, Ryan T. K. Kwok*, Ben Zhong Tang*

*Corresponding author for this work

Research output: Journal Publications and ReviewsRGC 21 - Publication in refereed journalpeer-review

31 Citations (Scopus)

Abstract

Optogenetics has been plagued by invasive brain implants and thermal effects during photo-modulation. Here, two upconversion hybrid nanoparticles modified with photothermal agents, named PT-UCNP-B/G, which can modulate neuronal activities via photostimulation and thermo-stimulation under near-infrared laser irradiation at 980 nm and 808 nm, respectively, are demonstrated. PT-UCNP-B/G emits visible light (410–500 nm or 500–570 nm) through the upconversion process at 980 nm, while they exhibit efficient photothermal effect at 808 nm with no visible emission and tissue damage. Intriguingly, PT-UCNP-B significantly activates extracellular sodium currents in neuro2a cells expressing light-gated channelrhodopsin-2 (ChR2) ion channels under 980-nm irradiation, and inhibits potassium currents in human embryonic kidney 293 cells expressing the voltage-gated potassium channels (KCNQ1) under 808-nm irradiation in vitro. Furthermore, deep-brain bidirectional modulation of feeding behavior is achieved under tether-free 980 or 808-nm illumination (0.8 W cm−2) in mice stereotactically injected with PT-UCNP-B in the ChR2-expressing lateral hypothalamus region. Thus, PT-UCNP-B/G creates new possibility of utilizing both light and heat to modulate neural activities and provides a viable strategy to overcome the limits of optogenetics. © 2023 Wiley-VCH GmbH.
Original languageEnglish
Article number2210018
JournalAdvanced Materials
Volume35
Issue number21
Online published6 Apr 2023
DOIs
Publication statusPublished - 25 May 2023

Funding

F.S., H.S., and Q.Y. contributed equally to this work. This work was partially supported by the National Natural Science Foundation of China Grants (21788102, 51773076, 21871060, 81271476, 82101507, 31870991, and 82260234), the Innovation and Technology Commission (ITC-CNERC14SC01 and ITCPD/17-9), the Research Grants Council of Hong Kong (16306620 and C6014-20 W), the Material Science Foundation of Guangdong Province (2019B121205002 and 2019B030301003), Shenzhen key laboratory of Functional Aggregate Materials (ZDSYS20211021111400001), and Shaanxi Youth Nova Program of Science and Technology (2022KJXX-87).

Research Keywords

  • aggregation-induced emission
  • feeding behaviors
  • optogenetics
  • photothermal agents
  • twisted intramolecular charge transfer
  • upconversion nanoparticles

RGC Funding Information

  • RGC-funded

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