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Name Authors DOI Group Summary Associated Publications RRIDs used Affiliations External URL Version Publication Date Proper Citation Record Last Update
Trajectories of Glucocorticoid-Therapy After Initiation in Early (or Methotrexate-Naive) Rheumatoid Arthritis: Protocol for a Systematic Review, Meta-Analysis and Meta-Regression of Observational Cohort Studies
 
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Andriko Palmowski, Frank Buttgereit DOI:10.17504/protocols.io.bpyfmptn Department of Rheumatology and Clinical Immunology, Charité - University Medicine Berlin, Germany, Department of Rheumatology and Clinical Immunology, Charité - University Medicine Berlin, Germany 1 2020 Andriko Palmowski, Frank Buttgereit 2020. Trajectories of Glucocorticoid-Therapy After Initiation in Early (or Methotrexate-Naive) Rheumatoid Arthritis: Protocol for a Systematic Review, Meta-Analysis and Meta-Regression of Observational Cohort Studies. protocols.io https://dx.doi.org/10.17504/protocols.io.bpyfmptn 2021-04-15 09:15:48
Cell Hashing
 
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Marlon Stoeckius, Peter Smibert DOI:10.17504/protocols.io.nfzdbp6 Human Cell Atlas Method Development Community This protocol is for performing Cell Hashing only. Sample multiplexing and super-loading on single cell RNA-sequencing platforms.Cell Hashing uses a series of oligo-tagged antibodies against ubiquitously expressed surface proteins with different barcodes to uniquely label cells from distinct samples, which can be subsequently pooled in one scRNA-seq run. By sequencing these tags alongside the cellular transcriptome, we can assign each cell to its sample of origin, and robustly identify doublets originating from multiple samples. New York Genome Center Technology Innovation Lab, New York Genome Center Technology Innovation Lab https://cite-seq.com/cell-hashing/ 1 2018 Marlon Stoeckius, Peter Smibert 2018. Cell Hashing. protocols.io https://dx.doi.org/10.17504/protocols.io.nfzdbp6 2021-04-15 09:15:25
bioBakery Protocols
 
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Curtis Huttenhower DOI:10.17504/protocols.io.d9899v VERVE Net, Huttenhower Lab This tutorial focuses on performing a comprehensive metagenomic analysis from whole-genome shotgun sequencing data for microbiome studies. It is divided in to different steps that use the following metagenomic, computational tools: MetaPhlAn, GraPhlAn, LEfSe, and HUMAnN. Our last addition to the PhlAn tools is PhyloPhlAn that can be used in metagenomics for phylgenetically and taxonomically place contigs assembled from whole metagenomic sequencing samples.This tutorial is also a step-by-step description of the metagenomic pipeline we used in our review paper about computational meta'omics (specifically Figure 4). 1 2016 Curtis Huttenhower 2016. bioBakery Protocols. protocols.io https://dx.doi.org/10.17504/protocols.io.d9899v 2021-04-15 09:15:48
Embedding and freezing fresh human tissue in OCT using isopentane
 
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Kenny Roberts, Liz Tuck DOI:10.17504/protocols.io.66uhhew For many cutting-edge spatial transcriptomic analysis methods, it is essential to prepare and store tissue in a manner that preserves RNA integrity, tissue morphology, and spatial orientation.This protocol describes the process of freezing fresh or fixed and cryoprotected tissues in optimal cutting temperature compound (OCT) using an isopentane-dry ice slurry. Rapid controlled freezing preserves RNA and mimises ice damage, while embedding in OCT prepares tissues for future cryosectioning. Wellcome Sanger Institute, Wellcome Sanger Institute 1 2019 Kenny Roberts, Liz Tuck 2019. Embedding and freezing fresh human tissue in OCT using isopentane. protocols.io https://dx.doi.org/10.17504/protocols.io.66uhhew 2021-04-15 09:15:25
Stellaris® RNA FISH Protocol for Brain
 
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LGC Biosearch Technologies DOI:10.17504/protocols.io.ektbcwn Stellaris® RNA FISH protocol for fresh frozen mouse brain Biosearch Technologies https://biosearchassets.blob.core.windows.net/assets/bti_stellaris_protocol_fresh_frozen_mouse_brain_tissue.pdf 1 2016 LGC Biosearch Technologies 2016. Stellaris® RNA FISH Protocol for Brain. protocols.io https://dx.doi.org/10.17504/protocols.io.ektbcwn 2021-04-15 09:15:27
Creatinine Clearance by HPLC
 
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Kumar Sharma DOI:10.17504/protocols.io.8e9hth6 Diabetic Complications Consortium, Metabolomics Protocols & Workflows This protocol describes the procedures for collecting, preparing and performing the DiaComp Creatinine Clearance assay via high performance liquid chromatography (HPLC).Diabetic Complication: University of California San Diego https://www.diacomp.org/shared/document.aspx?id=21&docType=Protocol 2 2019 Kumar Sharma 2019. Creatinine Clearance by HPLC. protocols.io https://dx.doi.org/10.17504/protocols.io.8e9hth6 2021-04-15 09:15:27
Cell dissociation from airway biopsies with cold-active protease for single-cell RNA-seq
 
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Laure-Emmanuelle Zaragosi, Pascal Barbry DOI:10.17504/protocols.io.x3efqje Human Cell Atlas Method Development Community This protocol provides details on the cell dissociation that should be performed to obtain single-cell suspensions from airway biopsies.Biopsies may come from tracheal, bronchial or nasal epithelium.Cell dissociation is performed at 4°C to avoid gene expression alterations and maximize viability. The typical cell number recovery is 40 000 cells for one biopsy.Cell suspensions are suitable for single-cell RNA-sequencing protocols. Université Côte d'Azur, CNRS, IPMC, 06560 Valbonne, France, Université Côte d'Azur, CNRS, IPMC, 06560 Valbonne, France 1 2019 Laure-Emmanuelle Zaragosi, Pascal Barbry 2019. Cell dissociation from airway biopsies with cold-active protease for single-cell RNA-seq. protocols.io https://dx.doi.org/10.17504/protocols.io.x3efqje 2021-04-15 09:15:49
Cultivo in vitro de hongos tipo terraza
 
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Isaac Núñez, Daniela Torres, Jens Castor, Aníbal Ignacio Fuentes Palacios, Tamara Matute, Sebastian Rodriguez, Daniel Núñez DOI:10.17504/protocols.io.ng6dbze RedFungi Este protocolo describe los pasos para propagar in vitro hongos tipo terraza (Ver este protocolo para hongos tipo sombrero). Este protocolo ha sido desarrollado bajo la guia de Phil Ross (Mycoworks; https://www.mycoworks.com). Redfungi, Fundacion Fungi, Redfungi, Redfungi, Redfungi, Redfungi, Pontificia Universidad Catolica de Chile 1 2018 Isaac Núñez, Daniela Torres, Jens Castor, Aníbal Ignacio Fuentes Palacios, Tamara Matute, Sebastian Rodriguez, Daniel Núñez 2018. Cultivo in vitro de hongos tipo terraza. protocols.io https://dx.doi.org/10.17504/protocols.io.ng6dbze 2021-04-15 09:15:27
Extraction method F (CR)
 
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Faezah Mohd Salleh, Jazmin Ramos-Madrigal, Fernando Penaloza, Shanlin Liu, Mikkel-Holger S Sinding, Riddhi P Patel, Renata Martins, Dorina Lenz, Jorns Fickel, Christian Roos, Mohd Shahir Shamsir, Mohammad Shahfiz Azman, Burton K Lim, Stephen J Rossiter, Andreas Wilting, M Thomas P Gilbert DOI:10.17504/protocols.io.infcdbn GigaScience Press Gen-IALFirst All-tissue DNA extraction kit -This protocol provides an efficient DNA extraction and purification of historic sample (tissue material) Salleh FM, Ramos-Madrigal J, Peñaloza F, Liu S, Mikkel-Holger SS, Riddhi PP, Martins R, Lenz D, Fickel J, Roos C, Shamsir MS, Azman MS, Burton KL, Stephen JR, Wilting A, Gilbert MTP, An expanded mammal mitogenome dataset from Southeast Asia. GigaScience 6(8). doi: 10.1093/gigascience/gix053 Natural History Museum of Denmark, Copenhagen, Denmark , Natural History Museum of Denmark, Copenhagen, Denmark , Natural History Museum of Denmark, Copenhagen, Denmark , Natural History Museum of Denmark, Copenhagen, Denmark , Natural History Museum of Denmark, Copenhagen, Denmark , Natural History Museum of Denmark, Copenhagen, Denmark , Natural History Museum of Denmark, Copenhagen, Denmark , Natural History Museum of Denmark, Copenhagen, Denmark , Natural History Museum of Denmark, Copenhagen, Denmark , Natural History Museum of Denmark, Copenhagen, Denmark , Natural History Museum of Denmark, Copenhagen, Denmark , Natural History Museum of Denmark, Copenhagen, Denmark , Natural History Museum of Denmark, Copenhagen, Denmark , Natural History Museum of Denmark, Copenhagen, Denmark , Natural History Museum of Denmark, Copenhagen, Denmark , Natural History Museum of Denmark, Copenhagen, Denmark https://doi.org/10.1093/gigascience/gix053 1 2017 Faezah Mohd Salleh, Jazmin Ramos-Madrigal, Fernando Penaloza, Shanlin Liu, Mikkel-Holger S Sinding, Riddhi P Patel, Renata Martins, Dorina Lenz, Jorns Fickel, Christian Roos, Mohd Shahir Shamsir, Mohammad Shahfiz Azman, Burton K Lim, Stephen J Rossiter, Andreas Wilting, M Thomas P Gilbert 2017. Extraction method F (CR). protocols.io https://dx.doi.org/10.17504/protocols.io.infcdbn 2021-04-15 09:15:27
Agro Preparation for Mimulus in Planta Transformation
 
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Yaowu Yuan DOI:10.17504/protocols.io.3rqgm5w Mimulus This protocol is part of a collection for Mimulus in planta transformation. University of Connecticut http://mimubase.org/FTP/Protocols/Stable_Transformation/Mimulus%20in%20planta%20transformation.pdf 1 2019 Yaowu Yuan 2019. Agro Preparation for Mimulus in Planta Transformation. protocols.io https://dx.doi.org/10.17504/protocols.io.3rqgm5w 2021-04-15 09:15:27
Week 1: Getting Started
 
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Bonnie Hurwitz, Ken Youens-Clark DOI:10.17504/protocols.io.jhhcj36 Hurwitz Lab, Metafunc Course 2017 This collection of protocols will help you to get started with computational resources needed for the class. We will also get accounts for each of these resources. University of Arizona, University of Arizona http://hurwitzlab.org 1 2017 Bonnie Hurwitz, Ken Youens-Clark 2017. Week 1: Getting Started. protocols.io https://dx.doi.org/10.17504/protocols.io.jhhcj36 2021-04-15 09:15:49
EMP 18S Illumina Amplicon Protocol
 
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Linda A. Amaral-Zettler, Markus Bauer, Donna Berg-Lyons, Jason Betley, J. Greg Caporaso, Hugh W. Ducklow, Noah Fierer, Louise Fraser, Jack A. Gilbert, Niall Gormley, James Huntley, Susan M. Huse, Janet K. Jansson, Simon N. Jarman, Rob Knight, Chris L. Lauber, Elizabeth A. McCliment, Sarah M. Owens, Geoff Smith, Luke Thompson, Hege Vestheim, William A. Walters DOI:10.17504/protocols.io.nuvdew6 Earth Microbiome Project The 18S protocol detailed here is designed to amplify eukaryotes broadly with a focus on microbial eukaryotic lineages. The primers target the 18S SSU rRNA and are based on those of Amaral-Zettler et al. (2009). The constructs are designed to be used with the Illumina platform.For running these libraries on the MiSeq and HiSeq, please make sure you read the supplementary methods of Caporaso et al. (2012). You will need to make your sample more complex by adding 5-10% PhiX to your run.The outlines of the protocol are the same as the 16S protocol, but different primers, PCR conditions, and sequencing primers are used. In addition, we have designed a blocking primer that reduces the amplification of vertebrate host DNA to be used on host-associated samples, especially those that have a low eukaryotic biomass. Blocking primer strategy is based on Vestheim et al. (2008). Ul-Hasan S, Bowers RM, Figueroa-Montiel A, Licea-Navarro AF, Beman JM, Woyke T, Nobile CJ (2019) Community ecology across bacteria, archaea and microbial eukaryotes in the sediment and seawater of coastal Puerto Nuevo, Baja California. PLoS ONE 14(2): e0212355. doi: 10.1371/journal.pone.0212355 EMP Consortium, EMP Consortium, EMP Consortium, EMP Consortium, EMP Consortium, EMP Consortium, EMP Consortium, EMP Consortium, EMP Consortium, EMP Consortium, EMP Consortium, EMP Consortium, EMP Consortium, EMP Consortium, EMP Consortium, EMP Consortium, EMP Consortium, EMP Consortium, EMP Consortium, EMP Consortium, EMP Consortium, EMP Consortium http://press.igsb.anl.gov/earthmicrobiome/protocols-and-standards/18s/ 1 2018 Linda A. Amaral-Zettler, Markus Bauer, Donna Berg-Lyons, Jason Betley, J. Greg Caporaso, Hugh W. Ducklow, Noah Fierer, Louise Fraser, Jack A. Gilbert, Niall Gormley, James Huntley, Susan M. Huse, Janet K. Jansson, Simon N. Jarman, Rob Knight, Chris L. Lauber, Elizabeth A. McCliment, Sarah M. Owens, Geoff Smith, Luke Thompson, Hege Vestheim, William A. Walters 2018. EMP 18S Illumina Amplicon Protocol. protocols.io https://dx.doi.org/10.17504/protocols.io.nuvdew6 2021-04-15 09:15:48
Equivalent doses study of nalbuphine and sufentanil for colonoscopy under bispectral index monitoring
 
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Chaoyi Deng, Xiao Wang, Qianmei Zhu, Yanming Kang, Jinlin Yang, Heng Wang DOI:10.17504/protocols.io.iq4cdyw Backgroud:Since sedation and analgesia are widely accepted by patients and even considered by many gastroenterologists as an integral component of the endoscopic examination, opioids are indispensible in managing pain. Nalbuphine is as effective as morphine as a perioperative analgesic but has not been compared directly with sufentanil in clinical trials.Objectives:The aims of this study were to compare the efficacy and safety of nalbuphine with that of sufentanil in patients undergoing colonoscopy and to determine the optimal doses of nalbuphine in this indicationMethodsTwo hundred and forty consecutive patients aged 18–65 y with an American Society of Anesthesiologists classification of I–II and scheduled for colonoscopy were randomized to receive sufentanil 0.1 µg/kg (group S), nalbuphine 0.1 mg/kg (group N1), nalbuphine 0.15 mg/kg (group N2), or nalbuphine 0.2 mg/kg (group N3).  Baseline vital signs was recorded before the procedure. The four groups were monitored for propofol sedation using the bispectral index and pain relief was assessed using the Behavioral Pain Scale for non-intubated patients. The incidences of respiratory depression during endoscopy, nausea, vomiting, drowsiness, and abdominal distention were recorded in the post anesthesia care unit at 24 and 48 h after colonoscopy. Deng C, Wang X, Zhu Q, Kang Y, Yang J, Wang H (2017) Comparison of nalbuphine and sufentanil for colonoscopy: A randomized controlled trial. PLoS ONE 12(12): e0188901. doi: 10.1371/journal.pone.0188901 Department of Anesthesiology, Sichuan University West China Hospital, Chengdu, Sichuan, China., Department of Anesthesiology, Sichuan University West China Hospital, Chengdu, Sichuan, China., Department of Anesthesiology, Sichuan University West China Hospital, Chengdu, Sichuan, China., Department of Anesthesiology, Sichuan University West China Hospital, Chengdu, Sichuan, China., Department of Anesthesiology, Sichuan University West China Hospital, Chengdu, Sichuan, China., Department of Anesthesiology, Sichuan University West China Hospital, Chengdu, Sichuan, China. https://doi.org/10.1371/journal.pone.0188901 1 2017 Chaoyi Deng, Xiao Wang, Qianmei Zhu, Yanming Kang, Jinlin Yang, Heng Wang 2017. Equivalent doses study of nalbuphine and sufentanil for colonoscopy under bispectral index monitoring. protocols.io https://dx.doi.org/10.17504/protocols.io.iq4cdyw 2021-04-15 09:15:27
Sentinel Flask Preparation for Cold Shipping Protocol of Human Islets
 
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Integrated Islet Distribution Program DOI:10.17504/protocols.io.bctziwp6 Integrated Islet Distribution Program To establish a standardized method for the National Institute of Diabetes and Digestive and Kidney Diseases (NIDDK) sponsored research in the Integrated Islet Distribution Program (IIDP) for preparing a sentinel flask of human islets in order to monitor sterility and islet integrity at the production center. This is a representative sample of the islet preparation that has been distributed to investigators and is held at the distributing center as a quality control sample. The islets are cultured in the same shipping media used for islet shipment, for 18 hours at 4-8°C, simulating the cold shipping conditions followed by 2 days at 37°C culture. The flask of islets are verification in the event of a dispute over sterility or islet quality. Integrated Islet Distribution Program, City of Hope https://dx.doi.org/10.17504/protocols.io.bac5iay6; https://iidp.coh.org/Investigators/Policies-Standard-Operating-Procedures 1 2020 Integrated Islet Distribution Program 2020. Sentinel Flask Preparation for Cold Shipping Protocol of Human Islets. protocols.io https://dx.doi.org/10.17504/protocols.io.bctziwp6 2021-04-15 09:15:27
Protocol for drug sensitivity assay with S. robusta
 
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Dan Needleman DOI:10.17504/protocols.io.g9ebz3e Protist Research to Optimize Tools in Genetics (PROT-G) 1 2017 Dan Needleman 2017. Protocol for drug sensitivity assay with S. robusta. protocols.io https://dx.doi.org/10.17504/protocols.io.g9ebz3e 2021-04-15 09:15:27
Preparation of Carbon Sources for Possible Heterotrophic Feedstock for O. tauri
 
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Lynn Doran, Steven Burgess Ag SynBio Lab UIUC Realizing Increased Photosynthetic Efficiency (RIPE), University of Illinois at Urbana-Champaign 1 2021 Lynn Doran, Steven Burgess 2021. Preparation of Carbon Sources for Possible Heterotrophic Feedstock for O. tauri. protocols.io https:// 2021-04-15 09:15:27
Total Chlorophyll a Measurements by Spectrophotometer
 
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Dr. Steven Wilhelm DOI:10.17504/protocols.io.ijpccmn The Aquatic Microbial Ecology Research Group - AMERG (The Buchan, Zinser and Wilhelm labs), CyanoHABs Please contact Dr. Steven Wilhelm ([email protected]) for additional information regarding this protocol.Adapted from Wetzel and Likens 2000. Limnological Analyses, Springer NY 1 2017 Dr. Steven Wilhelm 2017. Total Chlorophyll a Measurements by Spectrophotometer. protocols.io https://dx.doi.org/10.17504/protocols.io.ijpccmn 2021-04-15 09:15:27
Multicolor adeno-associate virus labeling and 3D digital tracing of enteric plexus in mouse proximal colon
 
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Lixin Wang, Collin Challis, Honghui Liang, Songlin Li, Charless Fowlkes, Aidan Sullivan, Kumar SR, Yvette Taché DOI:10.17504/protocols.io.bqavmse6 SPARC Using a multicolor adeno-associate virus system to label the colonic enteric nervous system for digital tracing of individual neurons and nerve fibers in microcircuits in three-dimensions (3D). The methods include viral vectors retro-orbital injection in mice, preparation of colon tissues, microscopy and 3D digital tracing. University of California, Los Angeles, California Institute of Technology, University of California, Los Angeles, University of California, Los Angeles, University of California, Irvine, MBF, California Institute of Technology, University of California, Los Angeles 1 2020 Lixin Wang, Collin Challis, Honghui Liang, Songlin Li, Charless Fowlkes, Aidan Sullivan, Kumar SR, Yvette Taché 2020. Multicolor adeno-associate virus labeling and 3D digital tracing of enteric plexus in mouse proximal colon. protocols.io https://dx.doi.org/10.17504/protocols.io.bqavmse6 2021-04-15 09:15:27
3: 30mer branch melting temperatures (SABER-FISH)
 
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Jocelyn Y. Kishi, Sylvain W. Lapan, Brian J Beliveau, Emma R. West, Allen Zhu, Hiroshi M. Sasaki, Sinem Saka, Yu Wang, Constance L Cepko, Peng Yin Human Cell Atlas Method Development Community Wyss Institute for Biologically Inspired Engineering, Harvard University, Boston, MA, USA; Department of Systems Biology, Harvard Medical School, Boston, MA, USA; These authors contributed equally, Department of Genetics, Blavatnik Institute, Harvard Medical School, Boston, MA, USA; These authors contributed equally, Wyss Institute for Biologically Inspired Engineering, Harvard University, Boston, MA, USA; Department of Systems Biology, Harvard Medical School, Boston, MA, USA; Present address: Department of Genome Sciences, University of Washington, Seattle, WA, USA; These authors contributed equally; Correspondence: [email protected] (P.Y.), [email protected] (C.L.C.), [email protected] (B. J. B.), Department of Genetics, Blavatnik Institute, Harvard Medical School, Boston, MA, USA; These authors contributed equally, Wyss Institute for Biologically Inspired Engineering, Harvard University, Boston, MA, USA; Department of Systems Biology, Harvard Medical School, Boston, MA, USA, Wyss Institute for Biologically Inspired Engineering, Harvard University, Boston, MA, USA; Department of Systems Biology, Harvard Medical School, Boston, MA, USA, Wyss Institute for Biologically Inspired Engineering, Harvard University, Boston, MA, USA; Department of Systems Biology, Harvard Medical School, Boston, MA, USA, Wyss Institute for Biologically Inspired Engineering, Harvard University, Boston, MA, USA; Department of Systems Biology, Harvard Medical School, Boston, MA, USA, Department of Genetics, Blavatnik Institute, Harvard Medical School, Boston, MA, USA; Howard Hughes Medical Institute, Chevy Chase, MD, USA; Correspondence: [email protected] (P.Y.), [email protected] (C.L.C.), [email protected] (B. J. B.), Wyss Institute for Biologically Inspired Engineering, Harvard University, Boston, MA, USA; Department of Systems Biology, Harvard Medical School, Boston, MA, USA; Correspondence: [email protected] (P.Y.), [email protected] (C.L.C.), [email protected] (B. J. B.) http://saber.fish/ 1 2020 Jocelyn Y. Kishi, Sylvain W. Lapan, Brian J Beliveau, Emma R. West, Allen Zhu, Hiroshi M. Sasaki, Sinem Saka, Yu Wang, Constance L Cepko, Peng Yin 2020. 3: 30mer branch melting temperatures (SABER-FISH). protocols.io https:// 2021-04-15 09:15:49
sci-ATAC-seq3
 
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Silvia Domcke, Andrew J. Hill, Riza M. Daza, Cole Trapnell, Darren A. Cusanovich, Jay Shendure DOI:10.17504/protocols.io.be8mjhu6 Human Cell Atlas Method Development Community We developed an improved assay for single cell profiling of chromatin accessibility that both uses three levels of combinatorial indexing and, in contrast with previous iterations of sci-ATAC-seq and related methods, does not rely on molecularly barcoded Tn5 complexes (sci-ATAC-seq3). Rather, the first two rounds of indexing are achieved by ligation to either end of the conventional, uniformly loaded Tn5 transposase complex (standard Nextera™), while the final round of indexing remains through PCR. Relative to two-level sci-ATAC-seq but similar to sci-RNA-seq3, sci-ATAC-seq3 reduces the per-cell cost of library preparation as well as the rate of collisions, opening the door to experiments on the scale of 10^6 cells. This protocol no longer requires cell sorting, and we also optimized ligase and polymerase choice, kinase concentration, and oligo designs and concentrations, to maximize the number of fragments recovered from each cell. Of note, while maintaining an enrichment in accessible regions, we made the explicit choice to maximize complexity at the expense of specificity for accessible sites. In particular, we found that the fixation conditions could be tuned to adjust the sensitivity (i.e. complexity) vs. specificity (i.e. enrichment in accessible sites) of the assay. Department of Genome Sciences, University of Washington School of Medicine, Seattle, WA, USA, Department of Genome Sciences, University of Washington School of Medicine, Seattle, WA, USA, Department of Genome Sciences, University of Washington School of Medicine, Seattle, WA, USA, Department of Genome Sciences, University of Washington School of Medicine, Seattle, WA, USA; Brotman Baty Institute for Precision Medicine, Seattle, WA, USA, Department of Genome Sciences, University of Washington School of Medicine, Seattle, WA, USA; Department of Cellular and Molecular Medicine, University of Arizona, Tucson, AZ, USA; Asthma and Airway Disease Research Center, University of Arizona, Tucson, AZ, USA, Department of Genome Sciences, University of Washington School of Medicine, Seattle, WA, USA; Brotman Baty Institute for Precision Medicine, Seattle, WA, USA; Allen Discovery Center for Cell Lineage Tracing, Seattle, WA, USA; Howard Hughes Medical Institute, Seattle, WA, USA 1 2020 Silvia Domcke, Andrew J. Hill, Riza M. Daza, Cole Trapnell, Darren A. Cusanovich, Jay Shendure 2020. sci-ATAC-seq3. protocols.io https://dx.doi.org/10.17504/protocols.io.be8mjhu6 2021-04-15 09:15:27

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