Deep learning facilitates fully automated brain image registration of optoacoustic tomography and magnetic resonance imaging

Author:

Hu Yexing,Lafci Berkan12ORCID,Luzgin Artur12,Wang Hao12,Klohs Jan2,Dean-Ben Xose Luis12,Ni Ruiqing21ORCID,Razansky Daniel12,Ren WuweiORCID

Affiliation:

1. University of Zurich

2. Department of Information Technology and Electrical Engineering

Abstract

Multispectral optoacoustic tomography (MSOT) is an emerging optical imaging method providing multiplex molecular and functional information from the rodent brain. It can be greatly augmented by magnetic resonance imaging (MRI) which offers excellent soft-tissue contrast and high-resolution brain anatomy. Nevertheless, registration of MSOT-MRI images remains challenging, chiefly due to the entirely different image contrast rendered by these two modalities. Previously reported registration algorithms mostly relied on manual user-dependent brain segmentation, which compromised data interpretation and quantification. Here we propose a fully automated registration method for MSOT-MRI multimodal imaging empowered by deep learning. The automated workflow includes neural network-based image segmentation to generate suitable masks, which are subsequently registered using an additional neural network. The performance of the algorithm is showcased with datasets acquired by cross-sectional MSOT and high-field MRI preclinical scanners. The automated registration method is further validated with manual and half-automated registration, demonstrating its robustness and accuracy.

Funder

Universität Zürich

Helmut Horten Stiftung

Vontobel-Stiftung

Stiftung Synapsis - Alzheimer Forschung Schweiz AFS

Swiss Data Science Center

ShanghaiTech University

Publisher

Optica Publishing Group

Subject

Atomic and Molecular Physics, and Optics,Biotechnology

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