Qian Nianchao, Weinstein Joshua A
Department of Medicine, Section of Genetic Medicine, University of Chicago, Chicago, IL, USA.
Pritzker School of Molecular Engineering, University of Chicago, Chicago, IL, USA.
Nat Biotechnol. 2025 Mar 27. doi: 10.1038/s41587-025-02613-z.
Lymphatic, nervous and tumor tissues exhibit complex physiology arising from three-dimensional interactions within genetically unique microenvironments. Here we develop a technology capable of volumetrically imaging transcriptomes, genotypes and morphologies in a single measurement, without relying on prior knowledge of spatial organization or genetic sequences. Our method extends DNA microscopy into three dimensions at scales involving 10 molecules by forming a distributed intermolecular network of proximal unique DNA barcodes tagging complementary DNA molecules inside the specimen. After sequencing the DNA-encoded network, an image of molecular positions is inferred using geodesic spectral embeddings, a dimensionality reduction approach that we show to be especially suitable for this data-inverse problem. Applying whole-transcriptome volumetric DNA microscopy to intact zebrafish embryos, we demonstrate that three-dimensional image inference recapitulates zebrafish morphology and known gene expression patterns, capturing the spatial organization of gene sequences. Our extension of spatial genetic measurements to three dimensions, independent of prior templates, opens the door to detailed joint resolution of genomics and morphology in biological tissues.
淋巴组织、神经组织和肿瘤组织展现出因基因独特的微环境内的三维相互作用而产生的复杂生理学特性。在此,我们开发了一种技术,能够在单次测量中对转录组、基因型和形态进行体积成像,而无需依赖空间组织或基因序列的先验知识。我们的方法通过在标本内部形成由近端独特DNA条形码组成的分布式分子间网络来标记互补DNA分子,从而将DNA显微镜技术扩展到涉及10个分子的三维尺度。对DNA编码网络进行测序后,使用测地线谱嵌入法推断分子位置图像,这是一种降维方法,我们证明它特别适用于这个数据反问题。将全转录组体积DNA显微镜技术应用于完整的斑马鱼胚胎,我们证明三维图像推断概括了斑马鱼的形态和已知的基因表达模式,捕捉到了基因序列的空间组织。我们将空间基因测量扩展到三维,且不依赖于先前的模板,这为生物组织中基因组学和形态学的详细联合解析打开了大门。