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机器学习优化的 Cas12a 条形码技术可实现单细胞谱系和转录谱的恢复。

Machine-learning-optimized Cas12a barcoding enables the recovery of single-cell lineages and transcriptional profiles.

机构信息

Department of Pathology, Stanford University School of Medicine, Stanford, CA 94305, USA; Department of Genetics, Stanford University School of Medicine, Stanford, CA 94305, USA; Wu Tsai Neuroscience Institute, Stanford Cancer Institute, Stanford University School of Medicine, Stanford, CA 94305, USA.

Department of Pathology, Stanford University School of Medicine, Stanford, CA 94305, USA; Department of Genetics, Stanford University School of Medicine, Stanford, CA 94305, USA.

出版信息

Mol Cell. 2022 Aug 18;82(16):3103-3118.e8. doi: 10.1016/j.molcel.2022.06.001. Epub 2022 Jun 24.

Abstract

The development of CRISPR-based barcoding methods creates an exciting opportunity to understand cellular phylogenies. We present a compact, tunable, high-capacity Cas12a barcoding system called dual acting inverted site array (DAISY). We combined high-throughput screening and machine learning to predict and optimize the 60-bp DAISY barcode sequences. After optimization, top-performing barcodes had ∼10-fold increased capacity relative to the best random-screened designs and performed reliably across diverse cell types. DAISY barcode arrays generated ∼12 bits of entropy and ∼66,000 unique barcodes. Thus, DAISY barcodes-at a fraction of the size of Cas9 barcodes-achieved high-capacity barcoding. We coupled DAISY barcoding with single-cell RNA-seq to recover lineages and gene expression profiles from ∼47,000 human melanoma cells. A single DAISY barcode recovered up to ∼700 lineages from one parental cell. This analysis revealed heritable single-cell gene expression and potential epigenetic modulation of memory gene transcription. Overall, Cas12a DAISY barcoding is an efficient tool for investigating cell-state dynamics.

摘要

基于 CRISPR 的条形码方法的发展为理解细胞系统发育创造了一个令人兴奋的机会。我们提出了一种紧凑、可调谐、大容量的 Cas12a 条形码系统,称为双作用反向位点阵列 (DAISY)。我们结合了高通量筛选和机器学习来预测和优化 60bp 的 DAISY 条形码序列。经过优化,表现最好的条形码相对于最佳随机筛选设计的容量增加了约 10 倍,并且在多种细胞类型中可靠地发挥作用。DAISY 条形码阵列产生了约 12 位的熵和约 66000 个独特的条形码。因此,DAISY 条形码——其大小仅为 Cas9 条形码的一小部分——实现了大容量的条形码。我们将 DAISY 条形码与单细胞 RNA-seq 相结合,从约 47000 个人类黑色素瘤细胞中恢复谱系和基因表达谱。一个 DAISY 条形码可以从一个亲代细胞中恢复多达约 700 个谱系。该分析揭示了遗传的单细胞基因表达和记忆基因转录的潜在表观遗传调控。总的来说,Cas12a DAISY 条形码是研究细胞状态动力学的有效工具。

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