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多模态血管成像用于精确配准大区域功能光学成像数据与食蟹猴神经解剖标本

Multimodal vessel mapping for precise large area alignment of functional optical imaging data to neuroanatomical preparations in marmosets.

机构信息

Max Planck Institute for Biological Cybernetics, Spemannstrasse 38, 72076 Tübingen, Germany.

出版信息

J Neurosci Methods. 2011 Sep 30;201(1):159-72. doi: 10.1016/j.jneumeth.2011.07.029. Epub 2011 Aug 6.

DOI:10.1016/j.jneumeth.2011.07.029
PMID:21843550
Abstract

Imaging technologies, such as intrinsic optical imaging (IOI), functional magnetic resonance imaging (fMRI) or multiphoton microscopy provide excellent opportunities to study the relationship between functional signals recorded from a cortical area and the underlying anatomical structure. This, in turn, requires accurate alignment of the recorded functional imaging data with histological datasets from the imaged tissue obtained after the functional experiment. This alignment is complicated by distortions of the tissue which naturally occur during histological treatment, and is particularly difficult to achieve over large cortical areas, such as primate visual areas. We present here a method that uses IOI vessel maps revealed in the time course of the intrinsic signal, in combination with vascular casts and vascular lumen labeling techniques together with a pseudo three dimensional (p3D) reconstruction of the tissue architecture in order to facilitate alignment of IOI data with posthoc histological datasets. We demonstrate that by such a multimodal vessel mapping approach, we are able to constitute a hook in anatomical-functional data alignment that enables the accurate assignment of functional signals over large cortical regions. As an example, we present precise alignments of IOI responses showing orientation selectivity of primate V1 with anatomical sections stained for cytochrome-oxidase-reactivity.

摘要

成像技术,如内源光学成像(IOI)、功能磁共振成像(fMRI)或多光子显微镜,为研究从皮质区域记录的功能信号与基础解剖结构之间的关系提供了极好的机会。反过来,这需要将记录的功能成像数据与功能实验后获得的成像组织的组织学数据集进行精确对准。组织的自然扭曲使得这种对准变得复杂,在诸如灵长类动物视觉区域等大皮质区域中尤其难以实现。我们在这里提出了一种方法,该方法使用在固有信号的时间过程中揭示的 IOI 血管图,结合血管铸型和血管腔标记技术以及组织结构的伪三维(p3D)重建,以便于将 IOI 数据与事后的组织学数据集进行对准。我们证明,通过这种多模态血管映射方法,我们能够构成解剖-功能数据对准中的钩子,从而能够在大皮质区域上准确分配功能信号。作为一个例子,我们展示了 IOI 响应的精确对准,该响应显示了灵长类动物 V1 的取向选择性与用于细胞色素氧化酶反应性染色的解剖切片。

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引用本文的文献

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A simpler primate brain: the visual system of the marmoset monkey.更简单的灵长类动物大脑:狨猴的视觉系统。
Front Neural Circuits. 2014 Aug 8;8:96. doi: 10.3389/fncir.2014.00096. eCollection 2014.
2
Statistics and geometry of orientation selectivity in primary visual cortex.初级视觉皮层中方向选择性的统计学与几何学
Biol Cybern. 2014 Oct;108(5):631-53. doi: 10.1007/s00422-013-0576-0. Epub 2013 Nov 19.
3
Color blobs in cortical areas V1 and V2 of the new world monkey Callithrix jacchus, revealed by non-differential optical imaging.
通过非差分光学成像揭示的新大陆猴绢毛猴初级视皮层(V1)和纹外皮层(V2)中的颜色斑块。
J Neurosci. 2012 Jun 6;32(23):7881-94. doi: 10.1523/JNEUROSCI.4832-11.2012.