Related Experiment Video
Updated: Jan 19, 2026

Isolation of Adult Spinal Cord Nuclei for Massively Parallel Single-nucleus RNA Sequencing
Published on: October 12, 2018
Massively parallel polymerase cloning and genome sequencing of single cells using nanoliter microwells
Jeff Gole1, Athurva Gore, Andrew Richards
1Department of Bioengineering, Institute for Genomic Medicine and Institute of Engineering in Medicine, University of California at San Diego, La Jolla, California, USA.
Abstract:
Genome sequencing of single cells has a variety of applications, including characterizing difficult-to-culture microorganisms and identifying somatic mutations in single cells from mammalian tissues. A major hurdle in this process is the bias in amplifying the genetic material from a single cell, a procedure known as polymerase cloning. Here we describe the microwell displacement amplification system (MIDAS), a massively parallel polymerase cloning method in which single cells are randomly distributed into hundreds to thousands of nanoliter wells and their genetic material is simultaneously amplified for shotgun sequencing. MIDAS reduces amplification bias because polymerase cloning occurs in physically separated, nanoliter-scale reactors, facilitating the de novo assembly of near-complete microbial genomes from single Escherichia coli cells. In addition, MIDAS allowed us to detect single-copy number changes in primary human adult neurons at 1- to 2-Mb resolution. MIDAS can potentially further the characterization of genomic diversity in many heterogeneous cell populations.
Related Concept Videos
06:38Isolation of Adult Spinal Cord Nuclei for Massively Parallel Single-nucleus RNA Sequencing
10:28Ultralow Input Genome Sequencing Library Preparation from a Single Tardigrade Specimen
10:00An Ultrahigh-throughput Microfluidic Platform for Single-cell Genome Sequencing
09:45Detection of Copy Number Alterations Using Single Cell Sequencing
11:03Massively Parallel Reporter Assays in Cultured Mammalian Cells
11:02Detecting Somatic Genetic Alterations in Tumor Specimens by Exon Capture and Massively Parallel Sequencing

