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压缩扰动序列:使用随机复合扰动对调控回路进行高效筛选。

Compressed Perturb-seq: highly efficient screens for regulatory circuits using random composite perturbations.

作者信息

Yao Douglas, Binan Loic, Bezney Jon, Simonton Brooke, Freedman Jahanara, Frangieh Chris J, Dey Kushal, Geiger-Schuller Kathryn, Eraslan Basak, Gusev Alexander, Regev Aviv, Cleary Brian

机构信息

Program in Systems, Synthetic, and Quantitative Biology, Harvard University, Cambridge, MA.

Klarman Cell Observatory, Broad Institute of Harvard and MIT, Cambridge, MA.

出版信息

bioRxiv. 2023 Jan 23:2023.01.23.525200. doi: 10.1101/2023.01.23.525200.

Abstract

Pooled CRISPR screens with single-cell RNA-seq readout (Perturb-seq) have emerged as a key technique in functional genomics, but are limited in scale by cost and combinatorial complexity. Here, we reimagine Perturb-seq's design through the lens of algorithms applied to random, low-dimensional observations. We present compressed Perturb-seq, which measures multiple random perturbations per cell or multiple cells per droplet and computationally decompresses these measurements by leveraging the sparse structure of regulatory circuits. Applied to 598 genes in the immune response to bacterial lipopolysaccharide, compressed Perturb-seq achieves the same accuracy as conventional Perturb-seq at 4 to 20-fold reduced cost, with greater power to learn genetic interactions. We identify known and novel regulators of immune responses and uncover evolutionarily constrained genes with downstream targets enriched for immune disease heritability, including many missed by existing GWAS or trans-eQTL studies. Our framework enables new scales of interrogation for a foundational method in functional genomics.

摘要

结合单细胞RNA测序读数的CRISPR筛选技术(Perturb-seq)已成为功能基因组学中的一项关键技术,但受成本和组合复杂性的限制,其规模受到制约。在此,我们从应用于随机低维观测的算法角度重新构想了Perturb-seq的设计。我们提出了压缩Perturb-seq,它可对每个细胞测量多个随机扰动,或对每个液滴测量多个细胞,并通过利用调控回路的稀疏结构对这些测量值进行计算解压缩。将压缩Perturb-seq应用于细菌脂多糖免疫反应中的598个基因,其成本降低了4至20倍,同时达到了与传统Perturb-seq相同的准确性,且在学习基因相互作用方面具有更强的能力。我们鉴定出免疫反应的已知和新型调节因子,并发现具有丰富免疫疾病遗传力下游靶点的进化受限基因,其中包括许多现有全基因组关联研究(GWAS)或反式表达定量性状位点(trans-eQTL)研究遗漏的基因。我们的框架为功能基因组学中的一种基础方法开启了新的研究规模。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/aa7a/9900787/096adf8cbf45/nihpp-2023.01.23.525200v1-f0001.jpg

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