Ebrahimi Seyed-Mohsen, Tuunanen Johanna, Saarela Ville, Honkamo Marja, Huotari Niko, Raitamaa Lauri, Korhonen Vesa, Helakari Heta, Järvelä Matti, Kaakinen Mika, Eklund Lauri, Kiviniemi Vesa
Oulu Functional NeuroImaging (OFNI), Diagnostic Imaging, Medical Research Center (MRC), Finland Oulu University Hospital, 90029, Oulu, Finland.
Research Unit of Health Sciences and Technology (HST), Faculty of Medicine, University of Oulu, 90220, Oulu, Finland.
Sci Rep. 2024 Jan 26;14(1):2250. doi: 10.1038/s41598-023-51069-1.
The eye possesses a paravascular solute transport pathway that is driven by physiological pulsations, resembling the brain glymphatic pathway. We developed synchronous multimodal imaging tools aimed at measuring the driving pulsations of the human eye, using an eye-tracking functional eye camera (FEC) compatible with magnetic resonance imaging (MRI) for measuring eye surface pulsations. Special optics enabled integration of the FEC with MRI-compatible video ophthalmoscopy (MRcVO) for simultaneous retinal imaging along with functional eye MRI imaging (fMREye) of the BOLD (blood oxygen level dependent) contrast. Upon optimizing the fMREye parameters, we measured the power of the physiological (vasomotor, respiratory, and cardiac) eye and brain pulsations by fast Fourier transform (FFT) power analysis. The human eye pulsated in all three physiological pulse bands, most prominently in the respiratory band. The FFT power means of physiological pulsation for two adjacent slices was significantly higher than in one-slice scans (RESP1 vs. RESP2; df = 5, p = 0.045). FEC and MRcVO confirmed the respiratory pulsations at the eye surface and retina. We conclude that in addition to the known cardiovascular pulsation, the human eye also has respiratory and vasomotor pulsation mechanisms, which are now amenable to study using non-invasive multimodal imaging of eye fluidics.
眼睛拥有一种由生理搏动驱动的血管周围溶质转运途径,类似于大脑的类淋巴途径。我们开发了同步多模态成像工具,旨在测量人眼的驱动搏动,使用与磁共振成像(MRI)兼容的眼动功能眼相机(FEC)来测量眼表搏动。特殊光学器件使FEC能够与MRI兼容的视频检眼镜(MRcVO)集成,以便同时进行视网膜成像以及基于血氧水平依赖(BOLD)对比的功能性眼MRI成像(fMREye)。在优化fMREye参数后,我们通过快速傅里叶变换(FFT)功率分析测量了生理(血管舒缩、呼吸和心脏)眼和脑搏动的功率。人眼在所有三个生理脉搏波段都有搏动,在呼吸波段最为明显。相邻两个切片的生理搏动的FFT功率平均值显著高于单切片扫描(RESP1与RESP2;自由度 = 5,p = 0.045)。FEC和MRcVO证实了眼表和视网膜的呼吸搏动。我们得出结论,除了已知的心血管搏动外,人眼还具有呼吸和血管舒缩搏动机制,现在可以使用眼流体的非侵入性多模态成像来进行研究。