Login / Signup

Spatial multi-omics at subcellular resolution via high-throughput in situ pairwise sequencing.

Xiaofeng WuWeize XuLulu DengYue LiZhongchao WangLeqiang SunAnran GaoHaoqi WangXiaodan YangChengchao WuYanyan ZouKeji YanZhixiang LiuLingkai ZhangGuohua DuLiyao YangDa LinJunqiu YuePing WangYunyun HanZhenfang FuJinxia DaiGang Cao
Published in: Nature biomedical engineering (2024)
Technology for spatial multi-omics aids the discovery of new insights into cellular functions and disease mechanisms. Here we report the development and applicability of multi-omics in situ pairwise sequencing (MiP-seq), a method for the simultaneous detection of DNAs, RNAs, proteins and biomolecules at subcellular resolution. Compared with other in situ sequencing methods, MiP-seq enhances decoding capacity and reduces sequencing and imaging costs while maintaining the efficacy of detection of gene mutations, allele-specific expression and RNA modifications. MiP-seq can be integrated with in vivo calcium imaging and Raman imaging, which enabled us to generate a spatial multi-omics atlas of mouse brain tissues and to correlate gene expression with neuronal activity and cellular biochemical fingerprints. We also report a sequential dilution strategy for resolving optically crowded signals during in situ sequencing. High-throughput in situ pairwise sequencing may facilitate the multidimensional analysis of molecular and functional maps of tissues.
Keyphrases