Mikkelsen Signe H, Wied Boris, Dashkovskyi Vitalii, Lindhardt Thomas Beck, Hirschler Lydiane, Warnking Jan M, Barbier Emmanuel L, Postnov Dmitry, Hansen Brian, Gutiérrez-Jiménez Eugenio
Center of Functionally Integrative Neuroscience, Aarhus University, Aarhus, Denmark.
Leiden University Medical Center, Leiden, Netherlands.
Front Neurosci. 2022 Aug 16;16:926828. doi: 10.3389/fnins.2022.926828. eCollection 2022.
Medical imaging techniques are widely used in preclinical research as diagnostic tools to detect physiological abnormalities and assess the progression of neurovascular disease in animal models. Despite the wealth of imaging options in magnetic resonance imaging (MRI), interpretation of imaging-derived parameters regarding underlying tissue properties is difficult due to technical limitations or lack of parameter specificity. To address the challenge of interpretation, we present an animal preparation protocol to achieve quantitative measures from both MRI and advanced optical techniques, including laser speckle contrast imaging and two-photon microscopy, in murine models. In this manner, non-translatable methods support and improve interpretation of less specific, translatable methods, i.e., MRI. Combining modalities for improved clinical interpretation involves satisfying the requirements of various methods. Furthermore, physiology unperturbed by anesthetics is a prerequisite for the strategy to succeed. Awake animal imaging with restraint provides an alternative to anesthesia and facilitates translatability of cerebral measurements. The method outlines design requirements for the setup and a corresponding reproducible surgical procedure for implanting a 3D printed head holder and cranial window to enable repeated multimodal imaging. We document the development, application, and validation of the method and provide examples confirming the usefulness of the design in acquiring high quality data from multiple modalities for quantification of a wide range of metrics of cerebral physiology in the same animal. The method contributes to preclinical small animal imaging, enabling sequential imaging of previously mutually exclusive techniques.
医学成像技术在临床前研究中被广泛用作诊断工具,以检测动物模型中的生理异常并评估神经血管疾病的进展。尽管磁共振成像(MRI)有丰富的成像选项,但由于技术限制或参数特异性不足,对成像衍生参数所反映的潜在组织特性进行解释仍很困难。为应对解释方面的挑战,我们提出了一种动物制备方案,以在小鼠模型中实现从MRI和先进光学技术(包括激光散斑对比成像和双光子显微镜)获得定量测量。通过这种方式,不可转化的方法支持并改进了对特异性较低的可转化方法(即MRI)的解释。结合多种模态以改善临床解释需要满足各种方法的要求。此外,生理状态不受麻醉剂干扰是该策略成功的先决条件。清醒动物约束成像为麻醉提供了一种替代方法,并促进了脑部测量的可转化性。该方法概述了设置的设计要求以及用于植入3D打印头架和颅骨窗以实现重复多模态成像的相应可重复手术程序。我们记录了该方法的开发、应用和验证,并提供了实例,证实了该设计在从多种模态获取高质量数据以量化同一动物中广泛的脑生理指标方面的有用性。该方法有助于临床前小动物成像,实现以前相互排斥的技术的顺序成像。