Direct Monitoring of Whole‐Brain Electrodynamics via High‐Spatiotemporal‐Resolution Photoacoustics with Voltage‐Sensitive Dye

Author:

Pang Weiran12,Zhu Bowen3,Li Honghui1,Zhou Yingying2,Woo Chi Man2,Huang Xiazi2,Zhong Tianting2,Lo Hsuan1,Wang Laiyou1,Lai Puxiang245,Nie Liming16ORCID

Affiliation:

1. Medical Research Institute Guangdong Provincial People's Hospital (Guangdong Academy of Medical Sciences) Southern Medical University Guangzhou 510080 China

2. Department of Biomedical Engineering The Hong Kong Polytechnic University Hong Kong SAR China

3. Department of Anaesthesia and Perioperative Medicine Henan University People's Hospital People's Hospital of Zhengzhou University Henan Provincial People's Hospital Zhengzhou 450003 China

4. Photonics Research Institute The Hong Kong Polytechnic University Hong Kong SAR China

5. Joint Research Centre for Biosensing and Precision Theranostics The Hong Kong Polytechnic University Hong Kong SAR China

6. Department of Biomedical Engineering Southern Medical University Guangzhou 510515 China

Abstract

AbstractBrain voltage plays a crucial role in indicating internal functions or diseases, and optical voltage imaging has gained intensive attention in recent years. Despite encouraging progress, current implementations encounter limitations pertaining to penetration depth, field of view (FOV), and photostability of indicators. To mitigate these challenges, a robust voltage‐sensitive dye (VSD)‐based whole‐field photoacoustic brain detection (WF‐PABD) platform is proposed, enabling direct evaluation of voltage dynamics across the whole brain, forming as PA‐VSD. WF‐PABD is equipped with a 512‐element ring‐array ultrasound detector capable of 360‐degree scanning, providing a large FOV (≈5 cm), high spatial resolution (≈110 µm), and rapid imaging acquisition. The proposed VSD remained ≈75% photostability after 30 min laser exposure, much greater than most calcium sensors. The optical voltage‐response mechanisms are validated and the capability of PA‐VSD to directly screen seizures is established. It is demonstrated that investigating connectivity among different brain regions allows to identify the precise location of active epileptic foci as well as the electrical conduction pathways and their directionality through fast temporal visualization. In summary, this study not only addresses the need for non‐invasive, high‐resolution, long‐term, and direct monitoring of brain voltage but also empowers exciting venues for PA applications in neuroscience.

Funder

Hong Kong Polytechnic University

Innovation and Technology Commission - Hong Kong

Guangdong Provincial Department of Science and Technology

National Natural Science Foundation of China

National Key Research and Development Program of China

Publisher

Wiley

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