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Name Authors DOI Group Summary Associated Publications RRIDs used Affiliations External URL Version Publication Date Proper Citation Record Last Update
Adipose depot innervation: whole mount staining, imaging, quantification
 
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Jake Willows, Kristy Townsend, Magdalena Blaszkiewicz DOI:10.17504/protocols.io.brs2m6ge Townsend Lab Neurobiology & Energy Balance AbstractLittle is known about the diversity and function of adipose tissue nerves due, in part, to the inability to effectively visualize the various nerve subtypes residing within these tissues. The tools currently available for researchers to image and quantify adipose tissue innervation are limited and dependent on optical clearing techniques and light sheet microscopy. Here we present a method of tissue processing that uses a method of mechanically compressing tissue to decrease tissue thickness in the z-axis by expanding it in the x and y-axes whilst leaving cells intact. This has been combined with autofluorescence quenching techniques to permit imaging of intact whole tissues on both widefield and confocal microscopes and a complementary means to perform whole tissue neurite density quantification. We have included examples of how this technique can be used to further our current knowledge of adipose-nerve communication by characterizing the nerves, nerve-subtypes, and neurovascular interactions within the inguinal subcutaneous white adipose tissue in mice. Ohio State University, Columbus, Ohio State University, Ohio State University, Columbus 2 2021 Jake Willows, Kristy Townsend, Magdalena Blaszkiewicz 2021. Adipose depot innervation: whole mount staining, imaging, quantification. protocols.io https://dx.doi.org/10.17504/protocols.io.brs2m6ge 2021-04-15 09:15:56
Oxford Nanopore sequencing and library construction
 
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Rui Zhang DOI:10.17504/protocols.io.btcwnixe BGI, GIGA, GigaScience Press The humpback puffer,Tetraodon palembangensis, is a species of poisonous freshwater pufferfish mainly distributed in Southeast Asia (Thailand, Laos, Malaysia and Indonesia). The humpback puffer has many interesting biological features, such as inactivity, tetrodotoxin production and body expansion. Here, we reported the first chromosome-level genome assembly of the humpback puffer. The genome size is 362 Mb with ~1.78 Mb contig N50 and ~15.8 Mb scaffold N50. Based on the genome, ~61.5Mb (18.11%) repeat sequences were identified, 19,925 genes were annotated, and 90.01% of these genes could be predicted with function. Finally, a phylogenetic tree of ten teleost fish species was constructed, which suggests that humpback puffer and T. nigroviridis shared a common ancestor at 18.1 MYA and diverged from T. rubripes at 45.8 MYA. The humpback puffer genome will be a valuable genomic resource to illustrate possible mechanisms of tetrodotoxin synthesis and tolerance. BGI-Qingdao, BGI-Shenzhen, Qingdao 266555, China 1 2021 Rui Zhang 2021. Oxford Nanopore sequencing and library construction. protocols.io https://dx.doi.org/10.17504/protocols.io.btcwnixe 2021-04-15 09:15:47
TE Buffer
 
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Ms Alex Aitken DOI:10.17504/protocols.io.c5uy6v VERVE Net, Sullivan Lab TE is a commonly used buffer solution in molecular biology, especially in procedures involving DNA or RNA. "TE" is derived from its components: Tris, a common pH buffer, and EDTA, a molecule that chelates cations like Mg2+. The purpose of TE buffer is to solubilize DNA or RNA, while protecting it from degradation: 10 mM Tris, bring to pH 8.0 with HCl, 1 mM EDTA http://www.nhm.ac.uk/resources-rx/files/te-buffer_aug12-118648.pdf 1 2016 Ms Alex Aitken 2016. TE Buffer. protocols.io https://dx.doi.org/10.17504/protocols.io.c5uy6v 2021-04-15 09:15:46
Marchantia high throughput imaging in multiwell plates
 
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Marta Tomaselli, Marius Rebmann DOI:10.17504/protocols.io.4v4gw8w OpenPlant Project This protocol allows high throughput imaging of Marchantia gemmae, using a cheap setup made with broadly available lab equipment. We used a transparent 384 wells plate filled with 1/2 strength Gamborg B5 media with 1.2% agar and placed a single gemma at the centre of the well. Gene frames and coverslips treated with anti-fog spray were used to cover (seal) the wells. This setup can be paired with automated imaging of samples. University of Cambridge, Open Plant, Plant Sciences, University of Cambridge, OpenPlant 1 2019 Marta Tomaselli, Marius Rebmann 2019. Marchantia high throughput imaging in multiwell plates. protocols.io https://dx.doi.org/10.17504/protocols.io.4v4gw8w 2021-04-15 09:15:56
Nucleic Acid Extraction, Amplification and Library Construction for Viral Metagenomic Sequencing.
 
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Jing-Zhe (Ginger) Jiang, Hong-Ying Wei DOI:10.17504/protocols.io.m5vc866 Suttle Laboratory of Marine Molecular Microbiology and Virology  This protocol is a continuation of the previous protocol (dx.doi.org/10.17504/protocols.io.m4yc8xw) for viral metagenomic researches with the tissues of Molluscs, such as abalone, oyster, clam,  scallop and so on. This maybe also applicable for other animals, such as shrimp and fish, based on the principle of the protocol. But we havn't verified this idea yet. Key Laboratory of Aquatic Product Processing, Ministry of Agriculture, South China Sea Fisheries Research Institute, Chinese Academy of Fishery Sciences, Key Laboratory of Aquatic Product Processing, Ministry of Agriculture, South China Sea Fisheries Research Institute, Chinese Academy of Fishery Sciences 1 2018 Jing-Zhe (Ginger) Jiang, Hong-Ying Wei 2018. Nucleic Acid Extraction, Amplification and Library Construction for Viral Metagenomic Sequencing.. protocols.io https://dx.doi.org/10.17504/protocols.io.m5vc866 2021-04-15 09:15:47
Cytochrome C Assay_small_volume
 
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Elizabeth Fozo In-house protocol 1 2021 Elizabeth Fozo 2021. Cytochrome C Assay_small_volume. protocols.io https:// 2021-04-15 09:15:47
METABOLIC PATHWAY ANALYSIS BY LIQUID CHROMATOGRAPHY (UHPLC) COUPLED TO HIGH RESOLUTION MASS SPECTROMETRY (LC/MS)
 
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Angelica S. Gouveia, Lucas L. Lima, Flaviane S. Coutinho, Juliano M. Rodrigues, Valquiria J. M. Pinheiro, Maria Eduarda S. Ramos, Camilo E. Vital, Claudia S.L. Pontes, Daniella P. Pinheiro, Pedro M. Vidigal, Edvaldo Barros, Humberto J O Ramos DOI:10.17504/protocols.io.8vjhw4n Metabolomics Protocols & Workflows Plants produce a variety of compounds with diverse structure and abundance that play an important role in the development, growth and response to the environment. Metabolomics involves studies of a great number of metabolites, which are small molecules present in biological systems.Metabolite profiles can be obtained from several samples by LC/MS (liquid chromatography coupled to mass spectrometry). However, the large number of ions detected for each run from different treatments and replicates require automatic processing for both spectra (metabolite identification and quantification) and global analysis of the metabolome. Thus, this protocol describes in detail, step-by-step, the comparison of the metabolite profiles from LC/MS data for determination of dysregulated pathways, as well as for Exploratory Statistical and Functional Enrichment Analyzes. . .justify:after { content: ""; display:inline-block; width: 100%; } Department of Biochemistry and Molecular Biology - Universidade Federal de Viçosa - UFV, BIOAGRO/INCT-IPP - Viçosa-MG Brazil, Department of Biochemistry and Molecular Biology - Universidade Federal de Viçosa - UFV, BIOAGRO/INCT-IPP - Viçosa-MG Brazil, Department of Biochemistry and Molecular Biology - Universidade Federal de Viçosa - UFV, BIOAGRO/INCT-IPP - Viçosa-MG Brazil, Department of Biochemistry and Molecular Biology - Universidade Federal de Viçosa - UFV, BIOAGRO/INCT-IPP - Viçosa-MG Brazil, Department of Biochemistry and Molecular Biology - Universidade Federal de Viçosa - UFV, BIOAGRO/INCT-IPP - Viçosa-MG Brazil, Department of Biochemistry and Molecular Biology - Universidade Federal de Viçosa - UFV, BIOAGRO/INCT-IPP - Viçosa-MG Brazil, Department of Biochemistry and Molecular Biology - Universidade Federal de Viçosa - UFV, BIOAGRO/INCT-IPP - Viçosa-MG Brazil, Center for Biomolecules Analysis (NuBioMol) Universidade Federal de Viçosa - UFV Viçosa-MG Brazil, Center for Biomolecules Analysis (NuBioMol) Universidade Federal de Viçosa - UFV Viçosa-MG Brazil, Center for Biomolecules Analysis (NuBioMol) Universidade Federal de Viçosa - UFV Viçosa-MG Brazil, Center for Biomolecules Analysis (NuBioMol) Universidade Federal de Viçosa - UFV Viçosa-MG Brazil, Department of Biochemistry and Molecular Biology - Universidade Federal de Viçosa - UFV, BIOAGRO/INCT-IPP - Viçosa-MG Brazil 2 2019 Angelica S. Gouveia, Lucas L. Lima, Flaviane S. Coutinho, Juliano M. Rodrigues, Valquiria J. M. Pinheiro, Maria Eduarda S. Ramos, Camilo E. Vital, Claudia S.L. Pontes, Daniella P. Pinheiro, Pedro M. Vidigal, Edvaldo Barros, Humberto J O Ramos 2019. METABOLIC PATHWAY ANALYSIS BY LIQUID CHROMATOGRAPHY (UHPLC) COUPLED TO HIGH RESOLUTION MASS SPECTROMETRY (LC/MS). protocols.io https://dx.doi.org/10.17504/protocols.io.8vjhw4n 2021-04-15 09:15:57
High-molecular weight DNA extraction, clean-up and size selection for long-read sequencing
 
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Ashley Jones, Cynthia Torkel, David Stanley, Jamila Nasim, Justin Borevitz, Benjamin Schwessinger DOI:10.17504/protocols.io.bss7nehn High molecular weight DNA extraction from all kingdoms Rapid advancements in long-read sequencing technologies have transformed sequencing read lengths from bps to Mbps, which has enabled chromosome-scale genome assemblies. However, read lengths are now becoming limited by the extraction of pure high-molecular weight DNA suitable for long-read sequencing, which is particularly challenging in plants and fungi. To overcome this, we present a protocol collection; high-molecular weight DNA extraction, clean-up and size selection for long-read sequencing. We optimised a gentle magnetic bead based high-molecular weight DNA extraction, which is presented here in detail. The protocol circumvents spin columns and high-centrifugation, to limit DNA fragmentation. The protocol is scalable based on tissue input, which can be used on many species of plants, fungi, reptiles, insects and bacteria. It is also cost effective compared to kit-based protocols and hence applicable at scale at low resource settings. An optional sorbitol wash is listed and is highly recommended for plant and fungal tissues. To further remove any remaining contaminants such as phenols and polysaccharides, optional DNA clean-up and size selection strategies are given. This protocol collection is suitable for all common long-read sequencing platforms, such as technologies offered by PacBio and Nanopore. Using these protocols, sequencing on the Oxford Nanopore MinION can achieve read length N50 values of 30-50 kb, with reads exceeding 200 kb and outputs ranging from 15-30 Gbp. This has been routinely achieved with eucalypts, acacias, rice, themeda, wheat, wheat rusts, various other fungi, geckos, skinks, ticks, ladybird beetles, caterpillars and E. coli. Research School of Biology, Australian National University, Canberra, ACT, Australia, Research School of Biology, Australian National University, Canberra, ACT, Australia, Research School of Biology, Australian National University, Canberra, ACT, Australia, Research School of Biology, Australian National University, Canberra, ACT, Australia, Research School of Biology, Australian National University, Canberra, ACT, Australia, Research School of Biology, Australian National University, Canberra, ACT, Australia 1 2021 Ashley Jones, Cynthia Torkel, David Stanley, Jamila Nasim, Justin Borevitz, Benjamin Schwessinger 2021. High-molecular weight DNA extraction, clean-up and size selection for long-read sequencing. protocols.io https://dx.doi.org/10.17504/protocols.io.bss7nehn 2021-04-15 09:15:50
Agarose Gel Electrophoresis
 
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宏亮 董 DOI:10.17504/protocols.io.7h3hj8n 2019 iGEM NEFU_China The concentration of the agarose gel is 1%. Northeast Forest University 1 2019 宏亮 董 2019. Agarose Gel Electrophoresis. protocols.io https://dx.doi.org/10.17504/protocols.io.7h3hj8n 2021-04-15 09:15:50
SOB Media
 
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New England Biolabs DOI:10.17504/protocols.io.crrv55 Grupo de Estudos de Leveduras Cervejeiras New England Biolabs https://www.neb.com/protocols/2012/06/21/making-your-own-electrocompetent-cells 1 2015 New England Biolabs 2015. SOB Media. protocols.io https://dx.doi.org/10.17504/protocols.io.crrv55 2021-04-15 09:15:46
Background and Rationale (Part 1 of Phase 3 study of Vaccine Candidate for COVID-19)
 
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Chris Ockenhouse, Chris Gast, Renee Holt, Jorge Flores DOI:10.17504/protocols.io.bj5tkq6n Coronavirus Method Development Community This is a collection of protocols for: "Phase 3 randomized, double-blinded, placebo-controlled trial to evaluate the safety, immunogenicity, and efficacy of Vaccine Candidate against COVID-19 in adults ≥ 18 years of age"This generic Phase 3 protocol was developed by the PATH team with support of the Bill and Melinda Gates Foundation. The aim of the collection is to share recommended best practices in designing and implementing a Phase 3 study of a COVID-19 vaccine candidate. As Phase 3 trials of different Vaccine Candidates proceed around the world, following the same protocols will ensure consistency and comparability of the Phase 3 trial results.Please note that this is an evolving document, to be versioned and updated, based on community feedback and new data. Center for Vaccine Innovation and Access, PATH (Washington D.C. and Seattle, Washington), Center for Vaccine Innovation and Access, PATH (Washington D.C. and Seattle, Washington), Center for Vaccine Innovation and Access, PATH (Washington D.C. and Seattle, Washington), Center for Vaccine Innovation and Access, PATH (Washington D.C. and Seattle, Washington) 1 2020 Chris Ockenhouse, Chris Gast, Renee Holt, Jorge Flores 2020. Background and Rationale (Part 1 of Phase 3 study of Vaccine Candidate for COVID-19). protocols.io https://dx.doi.org/10.17504/protocols.io.bj5tkq6n 2021-04-15 09:15:49
S.O.F protocol for nuclei isolation from fresh and frozen tissues using OptiPrep® discontinuous gradient
 
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Luciano Martelotto DOI:10.17504/protocols.io.brdcm22w This protocol is the result of the combination of various nuclei isolation protocols for single cell RNA-seq experiments using droplet-based methods, and is an extension of the Frankenstein (S.O.F means Son Of Frankenstein). Developed to prepare nuclei isolates from fresh and frozen material of small-to-large sizes. The good thing is that it does not uses FACS but OptiPrep® discontinuous gradient to remove debris. It is the alternative protocol when FACS is not available. Harvard Medical School https://research.unimelb.edu.au/centre-for-cancer-research/our-research/single-cell-innovation-lab 1 2021 Luciano Martelotto 2021. S.O.F protocol for nuclei isolation from fresh and frozen tissues using OptiPrep® discontinuous gradient . protocols.io https://dx.doi.org/10.17504/protocols.io.brdcm22w 2021-04-15 09:15:56
Determination of flavonoid content
 
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Jorge Carlos Ruiz Ruiz DOI:10.17504/protocols.io.sfnebme Flavonoid content determination using the aluminum chloride method. Rodríguez-García CM, Ruiz-Ruiz JC, Peraza-Echeverría L, Peraza-Sánchez SR, Torres-Tapia LW, Pérez-Brito D, Tapia-Tussell R, Herrera-Chalé FG, Segura-Campos MR, Quijano-Ramayo A, Ramón-Sierra JM, Ortiz-Vázquez E (2019) Antioxidant, antihypertensive, anti-hyperglycemic, and antimicrobial activity of aqueous extracts from twelve native plants of the Yucatan coast. PLoS ONE 14(3): e0213493. doi: 10.1371/journal.pone.0213493 Universidad Anáhuac Mayab https://doi.org/10.1371/journal.pone.0213493 1 2018 Jorge Carlos Ruiz Ruiz 2018. Determination of flavonoid content. protocols.io https://dx.doi.org/10.17504/protocols.io.sfnebme 2021-04-15 09:15:56
Intestine cell dissociation
 
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Andrew Potter DOI:10.17504/protocols.io.nzjdf4n Human Cell Atlas Method Development Community Protocol for human intestine cell dissociation.  Cincinnati Children's Hospital Medical Center 3 2018 Andrew Potter 2018. Intestine cell dissociation. protocols.io https://dx.doi.org/10.17504/protocols.io.nzjdf4n 2021-04-15 09:15:47
iGEM Calibration Protocol - Flow Cytometry Fluorescence
 
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Jacob Beal, Cheryl Telmer, Richard Tennant, Paul Rutten DOI:10.17504/protocols.io.2pcgdiw iGEM Measurement This protocol can be applied to any strain of cell that can be safely run through a flow cytometer. For clarity, we have written it assuming E. coli DH5-alpha; to apply the protocol to another cell type, substitute the other cell type for any place where the protocol says [E. coli DH5-alpha].This protocol has been written for measurement of GFP, YFP, or other yellow/green fluorescent proteins into MEFL units. To apply it to fluorescent proteins of other colors:Replace BBa_J364001 with a construct for strong expression of the other protein. For blue proteins (e.g., mTagBFP), measure with 405nm excitation and 450nm/50nm emission filter. Units will be MEC30.For red/orange proteins (e.g., mCherry), measure with 561nm excitation and 610nm/20nm or 620nm/15nm emission filter.  Units will be MEPTR.For far-red / near-infrared proteins (e.g., IRFP), measure with 635nm excitation and 780nm/60nm or 750nm long-pass (LP) emission filter. Units will be MEAPCY7.For blue proteins (e.g., mTagBFP), measure with 405nm excitation and 450nm/50nm emission filter. Units will be MEC30.For red/orange proteins (e.g., mCherry), measure with 561nm excitation and 610nm/20nm or 620nm/15nm emission filter.  Units will be MEPTR.For far-red / near-infrared proteins (e.g., IRFP), measure with 635nm excitation and 780nm/60nm or 750nm long-pass (LP) emission filter. Units will be MEAPCY7.For red/orange proteins (e.g., mCherry), measure with 561nm excitation and 610nm/20nm or 620nm/15nm emission filter.  Units will be MEPTR.For far-red / near-infrared proteins (e.g., IRFP), measure with 635nm excitation and 780nm/60nm or 750nm long-pass (LP) emission filter. Units will be MEAPCY7.To apply the protocol to multiple colors, add a positive process control for each color and use one of the tools on the iGEM Measurement Resources page to compensate measurements for spectral overlap.This protocol can be combined with bead-based cell size calibration. iGEM Measurement Committee, iGEM Measurement Committee, iGEM Measurement Committee, iGEM Measurement Committee https://2019.igem.org/Measurement 1 2019 Jacob Beal, Cheryl Telmer, Richard Tennant, Paul Rutten 2019. iGEM Calibration Protocol - Flow Cytometry Fluorescence. protocols.io https://dx.doi.org/10.17504/protocols.io.2pcgdiw 2021-04-15 09:15:49
SARS-CoV-2 McGill Nanopore sequencing protocol SuperScript IV_42C_ArticV3
 
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Sarah Reiling, Shu-Huang Chen, Anne-Marie Roy, Josh Quick, Ioannis Ragoussis DOI:10.17504/protocols.io.bjajkicn Coronavirus Method Development Community, McGill Genome Centre SARS-CoV-2 McGill Nanopore sequencing protocol SuperScript IV_42C_ArticV3 McGill University, McGill University, McGill University, University of Birmingham, McGill University 1 2020 Sarah Reiling, Shu-Huang Chen, Anne-Marie Roy, Josh Quick, Ioannis Ragoussis 2020. SARS-CoV-2 McGill Nanopore sequencing protocol SuperScript IV_42C_ArticV3. protocols.io https://dx.doi.org/10.17504/protocols.io.bjajkicn 2021-04-15 09:15:47
Script R15: CoNet Analysis - Formatting Relative Abundance Files
 
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HANNIGAN GD, GRICE EA, ET AL. DOI:10.17504/protocols.io.ejpbcmn VERVE Net, Club Grice This protocol outlines the analysis used to generate input files for CoNet for the phage-bacteria network. Based on methods from the following publication:Hannigan, Geoffrey D., et al. "The Human Skin Double-Stranded DNA Virome: Topographical and Temporal Diversity, Genetic Enrichment, and Dynamic Associations with the Host Microbiome." mBio 6.5 (2015): e01578-15. Kindler L, Stoliartchouk A, Teytelman L, Hurwitz BL, Method-centered digital communities on protocols.io for fast-paced scientific innovation. F1000Research doi: 10.12688/f1000research.9453.2 DEPARTMENT OF DERMATOLOGY UNIVERSITY OF PENNSYLVANIA, DEPARTMENT OF DERMATOLOGY UNIVERSITY OF PENNSYLVANIA, DEPARTMENT OF DERMATOLOGY UNIVERSITY OF PENNSYLVANIA http://mbio.asm.org/content/6/5/e01578-15.full 1 2016 HANNIGAN GD, GRICE EA, ET AL. 2016. Script R15: CoNet Analysis - Formatting Relative Abundance Files. protocols.io https://dx.doi.org/10.17504/protocols.io.ejpbcmn 2021-04-15 09:15:57
Protocol for Subculture of Differentiated Blood-Brain Barrier Endothelial Cells onto Plates and Filters
 
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Ethan Lippmann, Hannah Wilson, Emma Neal DOI:10.17504/protocols.io.8g5hty6 Neurodegeneration Method Development Community Department of Chemical Engineering, Vanderbilt University, Nashville, TN, USA, Department of Biomedical Engineering, Georgia Institute of Technology, Atlanta, GA, USA, Department of Chemical Engineering, Vanderbilt University, Nashville, TN, USA 1 2020 Ethan Lippmann, Hannah Wilson, Emma Neal 2020. Protocol for Subculture of Differentiated Blood-Brain Barrier Endothelial Cells onto Plates and Filters. protocols.io https://dx.doi.org/10.17504/protocols.io.8g5hty6 2021-04-15 09:15:50
Long staining procedure of nuclei in Euplotes crassus using DAPI
 
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Rachele Cesaroni DOI:10.17504/protocols.io.2akgacw Protist Research to Optimize Tools in Genetics (PROT-G) Universität Bern 1 2019 Rachele Cesaroni 2019. Long staining procedure of nuclei in Euplotes crassus using DAPI. protocols.io https://dx.doi.org/10.17504/protocols.io.2akgacw 2021-04-15 09:15:50
Annotate gene function with Uproc
 
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James Thornton Jr DOI:10.17504/protocols.io.kt8cwrw Metafunc Course 2017 This protocol details the steps to annotate Anvi'o gene calls for function using Uproc.  Hurwitz Lab 1 2017 James Thornton Jr 2017. Annotate gene function with Uproc. protocols.io https://dx.doi.org/10.17504/protocols.io.kt8cwrw 2021-04-15 09:15:57

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