Suppr超能文献

分子定义的细胞类型中单神经元的形态多样性。

Morphological diversity of single neurons in molecularly defined cell types.

机构信息

Allen Institute for Brain Science, Seattle, WA, USA.

SEU-ALLEN Joint Center, Institute for Brain and Intelligence, Southeast University, Nanjing, China.

出版信息

Nature. 2021 Oct;598(7879):174-181. doi: 10.1038/s41586-021-03941-1. Epub 2021 Oct 6.

Abstract

Dendritic and axonal morphology reflects the input and output of neurons and is a defining feature of neuronal types, yet our knowledge of its diversity remains limited. Here, to systematically examine complete single-neuron morphologies on a brain-wide scale, we established a pipeline encompassing sparse labelling, whole-brain imaging, reconstruction, registration and analysis. We fully reconstructed 1,741 neurons from cortex, claustrum, thalamus, striatum and other brain regions in mice. We identified 11 major projection neuron types with distinct morphological features and corresponding transcriptomic identities. Extensive projectional diversity was found within each of these major types, on the basis of which some types were clustered into more refined subtypes. This diversity follows a set of generalizable principles that govern long-range axonal projections at different levels, including molecular correspondence, divergent or convergent projection, axon termination pattern, regional specificity, topography, and individual cell variability. Although clear concordance with transcriptomic profiles is evident at the level of major projection type, fine-grained morphological diversity often does not readily correlate with transcriptomic subtypes derived from unsupervised clustering, highlighting the need for single-cell cross-modality studies. Overall, our study demonstrates the crucial need for quantitative description of complete single-cell anatomy in cell-type classification, as single-cell morphological diversity reveals a plethora of ways in which different cell types and their individual members may contribute to the configuration and function of their respective circuits.

摘要

树突和轴突形态反映了神经元的输入和输出,是神经元类型的一个决定性特征,但我们对其多样性的认识仍然有限。在这里,为了系统地在全脑范围内检查完整的单个神经元形态,我们建立了一个包含稀疏标记、全脑成像、重建、配准和分析的管道。我们从老鼠的皮层、屏状核、丘脑、纹状体和其他脑区完全重建了 1741 个神经元。我们确定了 11 种具有不同形态特征和相应转录组特征的主要投射神经元类型。在这些主要类型中的每一种中,都发现了广泛的投射多样性,在此基础上,一些类型被聚类为更精细的亚型。这种多样性遵循一系列普遍的原则,这些原则控制着不同水平的长程轴突投射,包括分子对应、发散或会聚投射、轴突末端模式、区域特异性、拓扑结构和单个细胞变异性。尽管在主要投射类型水平上与转录组图谱明显一致,但精细的形态多样性通常与无监督聚类得出的转录组亚型不易相关,这突出表明需要进行单细胞跨模态研究。总的来说,我们的研究表明,在细胞类型分类中,对完整单细胞解剖结构进行定量描述是至关重要的,因为单细胞形态多样性揭示了不同细胞类型及其个体成员在构建和功能方面可能有多种方式。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/5d0b/8494643/8c4f653ddce3/41586_2021_3941_Fig1_HTML.jpg

文献AI研究员

20分钟写一篇综述,助力文献阅读效率提升50倍。

立即体验

用中文搜PubMed

大模型驱动的PubMed中文搜索引擎

马上搜索

文档翻译

学术文献翻译模型,支持多种主流文档格式。

立即体验