763 lines
24 KiB
Plaintext
763 lines
24 KiB
Plaintext
#!/usr/bin/env nextflow
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/* This workflow is a adapted from two previous pipeline written in Snakemake:
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- https://github.com/nanoporetech/pipeline-nanopore-ref-isoforms
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*/
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import groovy.json.JsonBuilder;
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import nextflow.util.BlankSeparatedList;
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import java.util.ArrayList;
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nextflow.enable.dsl = 2
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include { fastq_ingress } from './lib/fastqingress'
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include { reference_assembly } from './subworkflows/reference_assembly'
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include { gene_fusions } from './subworkflows/JAFFAL/gene_fusions'
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include { differential_expression } from './subworkflows/differential_expression'
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OPTIONAL_FILE = file("$projectDir/data/OPTIONAL_FILE")
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process getVersions {
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label "isoforms"
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cpus 1
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output:
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path "versions.txt"
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script:
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"""
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python -c "import pysam; print(f'pysam,{pysam.__version__}')" >> versions.txt
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python -c "import aplanat; print(f'aplanat,{aplanat.__version__}')" >> versions.txt
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python -c "import pandas; print(f'pandas,{pandas.__version__}')" >> versions.txt
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python -c "import sklearn; print(f'scikit-learn,{sklearn.__version__}')" >> versions.txt
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fastcat --version | sed 's/^/fastcat,/' >> versions.txt
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minimap2 --version | sed 's/^/minimap2,/' >> versions.txt
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samtools --version | head -n 1 | sed 's/ /,/' >> versions.txt
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bedtools --version | head -n 1 | sed 's/ /,/' >> versions.txt
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python -c "import pychopper; print(f'pychopper,{pychopper.__version__}')" >> versions.txt
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gffread --version | sed 's/^/gffread,/' >> versions.txt
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seqkit version | head -n 1 | sed 's/ /,/' >> versions.txt
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stringtie --version | sed 's/^/stringtie,/' >> versions.txt
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gffcompare --version | head -n 1 | sed 's/ /,/' >> versions.txt
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"""
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}
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process getParams {
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label "isoforms"
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cpus 1
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output:
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path "params.json"
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script:
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def paramsJSON = new JsonBuilder(params).toPrettyString()
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"""
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# Output nextflow params object to JSON
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echo '$paramsJSON' > params.json
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"""
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}
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process decompress_ref {
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label "isoforms"
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cpus 1
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input:
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path compressed_ref
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output:
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path "${compressed_ref.baseName}", emit: decompressed_ref
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"""
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gzip -df ${compressed_ref}
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"""
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}
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process decompress_annotation {
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label "isoforms"
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cpus 1
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input:
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path compressed_annotation
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output:
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path "${compressed_annotation.baseName}"
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"""
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gzip -df ${compressed_annotation}
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"""
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}
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process decompress_transcriptome {
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label "isoforms"
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cpus 1
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input:
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path "compressed_ref.gz"
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output:
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path "compressed_ref", emit: decompressed_ref
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"""
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gzip -df "compressed_ref.gz"
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"""
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}
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// Remove empty transcript ID fields
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process preprocess_ref_annotation {
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label "isoforms"
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cpus 1
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input:
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path ref_annotation
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output:
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path "ammended.${ref_annotation}"
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"""
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sed -i -e 's/transcript_id "";//g' ${ref_annotation}
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mv ${ref_annotation} "ammended.${ref_annotation}"
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"""
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}
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// Just keep transcript ID for each transcriptome fasta
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process preprocess_ref_transcriptome {
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label "isoforms"
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cpus 1
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input:
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path "ref_transcriptome"
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output:
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path "ammended.${ref_transcriptome}"
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"""
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sed -i -e 's/|.*//' ${ref_transcriptome}
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mv ${ref_transcriptome} "ammended.${ref_transcriptome}"
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"""
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}
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process preprocess_reads {
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/*
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Concatenate reads from a sample directory.
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Optionally classify, trim, and orient cDNA reads using pychopper
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*/
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label "isoforms"
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cpus 4
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input:
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tuple val(meta), path(input_reads)
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output:
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tuple val("${meta.alias}"), path("${meta.alias}_full_length_reads.fastq"), emit: full_len_reads
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path '*.tsv', emit: report
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script:
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"""
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pychopper -t ${params.threads} ${params.pychopper_opts} ${input_reads} ${meta.alias}_full_length_reads.fastq
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mv pychopper.tsv ${meta.alias}_pychopper.tsv
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workflow-glue generate_pychopper_stats --data ${meta.alias}_pychopper.tsv --output .
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# Add sample id column
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sed "1s/\$/\tsample_id/; 1 ! s/\$/\t${meta.alias}/" ${meta.alias}_pychopper.tsv > tmp
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mv tmp ${meta.alias}_pychopper.tsv
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"""
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}
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process build_minimap_index{
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/*
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Build minimap index from reference genome
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*/
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label "isoforms"
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cpus params.threads
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input:
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path reference
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output:
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path "genome_index.mmi", emit: index
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script:
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"""
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minimap2 -t ${params.threads} ${params.minimap2_index_opts} -I 1000G -d "genome_index.mmi" ${reference}
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"""
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}
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process split_bam{
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/*
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Partition BAM file into loci or bundles with `params.bundle_min_reads` minimum size
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If no splitting required, just create single symbolic link to a single bundle.
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Output tuples containing `sample_id` so bundles can be combined later in th pipeline.
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*/
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label 'isoforms'
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cpus params.threads
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input:
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tuple val(sample_id), path(bam)
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output:
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tuple val(sample_id), path('*.bam'), emit: bundles
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script:
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"""
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n=`samtools view -c $bam`
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if [[ n -lt 1 ]]
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then
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echo 'There are no reads mapping for $sample_id. Exiting!'
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exit 1
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fi
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re='^[0-9]+\$'
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if [[ $params.bundle_min_reads =~ \$re ]]
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then
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echo "Bundling up the bams"
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seqkit bam -j ${params.threads} -N ${params.bundle_min_reads} ${bam} -o bam_bundles/
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let i=1
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for b in bam_bundles/*.bam; do
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echo \$b
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newname="${sample_id}_batch_\${i}.bam"
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mv \$b \$newname
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((i++))
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done
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else
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echo 'no bundling'
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ln -s ${bam} ${sample_id}_batch_1.bam
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fi
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"""
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}
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process assemble_transcripts{
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/*
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Assemble transcripts using stringtie.
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Take aligned reads in bam format that may be a chunk of a larger alignment file.
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Optionally use reference annotation to guide assembly.
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Output gff annotation files in a tuple with `sample_id` for combining into samples later in the pipeline.
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*/
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label 'isoforms'
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cpus params.threads
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input:
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tuple val(sample_id), path(bam), path(ref_annotation)
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val use_ref_ann
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output:
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tuple val(sample_id), path('*.gff'), emit: gff_bundles
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script:
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def G_FLAG = use_ref_ann == false ? '' : "-G ${ref_annotation}"
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def prefix = bam.name.split(/\./)[0]
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"""
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stringtie --rf ${G_FLAG} -L -v -p ${task.cpus} ${params.stringtie_opts} \
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-o ${prefix}.gff -l ${prefix} ${bam} 2>/dev/null
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"""
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}
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process merge_gff_bundles{
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/*
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Merge gff bundles into a single gff file per sample.
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*/
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label 'isoforms'
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input:
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tuple val(sample_id), path (gff_bundle)
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output:
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tuple val(sample_id), path('*.gff'), emit: gff
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script:
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def merged_gff = "transcripts_${sample_id}.gff"
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"""
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echo '##gff-version 2' >> $merged_gff;
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echo '#pipeline-nanopore-isoforms: stringtie' >> $merged_gff;
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for fn in ${gff_bundle};
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do
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grep -v '#' \$fn >> $merged_gff
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done
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"""
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}
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process run_gffcompare{
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/*
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Compare query and reference annotations.
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If ref_annotation is an optional file, just make an empty directory to satisfy
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the requirements of the downstream processes.
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*/
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label 'isoforms'
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input:
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tuple val(sample_id), path(query_annotation)
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path ref_annotation
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output:
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tuple val(sample_id), path("${sample_id}_gffcompare"), emit: gffcmp_dir
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path ("${sample_id}_annotated.gtf"), emit: gtf, optional: true
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script:
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def out_dir = "${sample_id}_gffcompare"
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"""
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mkdir $out_dir
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echo "Doing comparison of reference annotation: ${ref_annotation} and the query annotation"
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gffcompare -o ${out_dir}/str_merged -r ${ref_annotation} \
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${params.gffcompare_opts} ${query_annotation}
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workflow-glue generate_tracking_summary --tracking $out_dir/str_merged.tracking \
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--output_dir ${out_dir} --annotation ${ref_annotation}
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mv *.tmap $out_dir
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mv *.refmap $out_dir
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cp ${out_dir}/str_merged.annotated.gtf ${sample_id}_annotated.gtf
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"""
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}
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process get_transcriptome{
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/*
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Write out a transcriptome file based on the query gff annotations.
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*/
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label 'isoforms'
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input:
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tuple val(sample_id), path(transcripts_gff), path(gffcmp_dir), path(reference_seq)
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output:
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tuple val(sample_id), path("*.fas"), emit: transcriptome
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script:
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def transcriptome = "${sample_id}_transcriptome.fas"
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def merged_transcriptome = "${sample_id}_merged_transcriptome.fas"
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"""
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gffread -g ${reference_seq} -w ${transcriptome} ${transcripts_gff}
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if [ "\$(ls -A $gffcmp_dir)" ];
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then
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gffread -F -g ${reference_seq} -w ${merged_transcriptome} $gffcmp_dir/str_merged.annotated.gtf
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fi
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"""
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}
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process merge_transcriptomes {
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// Merge the transcriptomes from all samples
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label 'isoforms'
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input:
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path "query_annotations/*"
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path ref_annotation
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path ref_genome
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output:
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path "final_non_redundant_transcriptome.fasta", emit: fasta
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path "stringtie.gtf", emit: gtf
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"""
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stringtie --merge -G $ref_annotation -p ${task.cpus} -o stringtie.gtf query_annotations/*
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seqkit subseq --feature "transcript" --gtf-tag "transcript_id" --gtf stringtie.gtf $ref_genome > temp_transcriptome.fasta
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seqkit rmdup -s < temp_transcriptome.fasta > temp_del_repeats.fasta
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cat temp_del_repeats.fasta | sed 's/>.* />/' | sed -e 's/_[0-9]* \\[/ \\[/' > temp_rm_empty_seq.fasta
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awk 'BEGIN {RS = ">" ; FS = "\\n" ; ORS = ""} \$2 {print ">"\$0}' temp_rm_empty_seq.fasta > "final_non_redundant_transcriptome.fasta"
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rm temp_transcriptome.fasta
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rm temp_del_repeats.fasta
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rm temp_rm_empty_seq.fasta
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"""
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}
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process makeReport {
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label "isoforms"
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input:
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path versions
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path "params.json"
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path "pychopper_report/*"
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path"jaffal_csv/*"
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val sample_ids
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path per_read_stats
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path "aln_stats/*"
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path gffcmp_dir
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path "gff_annotation/*"
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path "de_report/*"
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path "seqkit/*"
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output:
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path("wf-transcriptomes-*.html"), emit: report
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// for DE analysis, a `gene_name` column will be added to
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// `de_report/results_dge.tsv`
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path "results_dge.tsv", emit: de_analysis, optional: true
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script:
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// Convert the sample_id arrayList.
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sids = new BlankSeparatedList(sample_ids)
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def report_name = "wf-transcriptomes-report.html"
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"""
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if [ -f "de_report/OPTIONAL_FILE" ]; then
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dereport=""
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else
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dereport="--de_report true --de_stats "seqkit/*""
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mv de_report/*.g*f* de_report/stringtie_merged.gtf
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fi
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if [ -f "gff_annotation/OPTIONAL_FILE" ]; then
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OPT_GFF=""
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else
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OPT_GFF="--gffcompare_dir ${gffcmp_dir} --gff_annotation gff_annotation/*"
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fi
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if [ -f "jaffal_csv/OPTIONAL_FILE" ]; then
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OPT_JAFFAL_CSV=""
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else
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OPT_JAFFAL_CSV="--jaffal_csv jaffal_csv/*"
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fi
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if [ -f "aln_stats/OPTIONAL_FILE" ]; then
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OPT_ALN=""
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else
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OPT_ALN="--alignment_stats aln_stats/*"
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fi
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if [ -f "pychopper_report/OPTIONAL_FILE" ]; then
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OPT_PC_REPORT=""
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else
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OPT_PC_REPORT="--pychop_report pychopper_report/*"
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fi
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workflow-glue report --report $report_name \
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--versions $versions \
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--params params.json \
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\$OPT_ALN \
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\$OPT_PC_REPORT \
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--sample_ids $sids \
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--stats $per_read_stats \
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\$OPT_GFF \
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--isoform_table_nrows $params.isoform_table_nrows \
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\$OPT_JAFFAL_CSV \
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\$dereport
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"""
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}
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// Creates a new directory named after the sample alias and moves the fastcat results
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// into it.
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process collectFastqIngressResultsInDir {
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label "isoforms"
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input:
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// both the fastcat seqs as well as stats might be `OPTIONAL_FILE` --> stage in
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// different sub-directories to avoid name collisions
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tuple val(meta), path(concat_seqs, stageAs: "seqs/*"), path(fastcat_stats,
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stageAs: "stats/*")
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output:
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// use sub-dir to avoid name clashes (in the unlikely event of a sample alias
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// being `seq` or `stats`)
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path "out/*"
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script:
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String outdir = "out/${meta["alias"]}"
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String metaJson = new JsonBuilder(meta).toPrettyString()
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String concat_seqs = \
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(concat_seqs.fileName.name == OPTIONAL_FILE.name) ? "" : concat_seqs
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String fastcat_stats = \
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(fastcat_stats.fileName.name == OPTIONAL_FILE.name) ? "" : fastcat_stats
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"""
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mkdir -p $outdir
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echo '$metaJson' > metamap.json
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mv metamap.json $concat_seqs $fastcat_stats $outdir
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"""
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}
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// See https://github.com/nextflow-io/nextflow/issues/1636. This is the only way to
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// publish files from a workflow whilst decoupling the publish from the process steps.
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// The process takes a tuple containing the filename and the name of a sub-directory to
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// put the file into. If the latter is `null`, puts it into the top-level directory.
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process output {
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// publish inputs to output directory
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label "isoforms"
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publishDir (
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params.out_dir,
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mode: "copy",
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saveAs: { dirname ? "$dirname/$fname" : fname }
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)
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input:
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tuple path(fname), val(dirname)
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output:
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path fname
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"""
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"""
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}
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// workflow module
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workflow pipeline {
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take:
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reads
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ref_genome
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ref_annotation
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jaffal_refBase
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jaffal_genome
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jaffal_annotation
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ref_transcriptome
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use_ref_ann
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main:
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if (params.ref_genome && file(params.ref_genome).extension == "gz") {
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// gzipped ref not supported by some downstream tools
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// easier to just decompress and pass it around.
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ref_genome = decompress_ref(ref_genome)
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}else {
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ref_genome = Channel.fromPath(ref_genome)
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}
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if (params.ref_annotation && file(params.ref_annotation).extension == "gz") {
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// gzipped ref not supported by some downstream tools
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// easier to just decompress and pass it around.
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decompress_annot= decompress_annotation(ref_annotation)
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ref_annotation = preprocess_ref_annotation(decompress_annot)
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}else {
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ref_annotation = preprocess_ref_annotation(ref_annotation)
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}
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fastq_ingress_results = reads
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// replace `null` with path to optional file
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| map { [ it[0], it[1] ?: OPTIONAL_FILE, it[2] ?: OPTIONAL_FILE ] }
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| collectFastqIngressResultsInDir
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map_sample_ids_cls = {it ->
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/* Harmonize tuples
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output:
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tuple val(sample_id), path('*.gff')
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When there are multiple paths, will emit:
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[sample_id, [path, path ..]]
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when there's a single path, this:
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[sample_id, path]
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This closure makes both cases:
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[[sample_id, path][sample_id, path]].
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*/
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if (it[1].getClass() != java.util.ArrayList){
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// If only one path, `it` will be [sample_id, path]
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return [it]
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}
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l = [];
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for (x in it[1]){
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l.add(tuple(it[0], x))
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}
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return l
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}
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software_versions = getVersions()
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workflow_params = getParams()
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input_reads = reads.map{ meta, samples, stats -> [meta, samples]}
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sample_ids = input_reads.flatMap({meta,samples -> meta.alias})
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stats = reads.map {
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it[2] ? it[2].resolve('per-read-stats.tsv') : null
|
|
}
|
|
| collectFile ( keepHeader: true )
|
|
| ifEmpty ( OPTIONAL_FILE )
|
|
|
|
if (!params.direct_rna){
|
|
preprocess_reads(input_reads)
|
|
full_len_reads = preprocess_reads.out.full_len_reads
|
|
pychopper_report = preprocess_reads.out.report.collectFile(keepHeader: true)
|
|
}
|
|
else{
|
|
full_len_reads = input_reads.map{ meta, reads -> [meta.alias, reads]}
|
|
pychopper_report = file("$projectDir/data/OPTIONAL_FILE")
|
|
}
|
|
if (params.transcriptome_source != "precomputed"){
|
|
build_minimap_index(ref_genome)
|
|
log.info("Doing reference based transcript analysis")
|
|
assembly = reference_assembly(build_minimap_index.out.index, ref_genome, full_len_reads)
|
|
|
|
assembly_stats = assembly.stats.map{ it -> it[1]}.collect()
|
|
|
|
split_bam(assembly.bam)
|
|
|
|
assemble_transcripts(split_bam.out.bundles.flatMap(map_sample_ids_cls).combine(ref_annotation),use_ref_ann)
|
|
|
|
merge_gff_bundles(assemble_transcripts.out.gff_bundles.groupTuple())
|
|
run_gffcompare(merge_gff_bundles.out.gff, ref_annotation)
|
|
// For reference based assembly, there is only one reference
|
|
// So map this reference to all sample_ids
|
|
seq_for_transcriptome_build = sample_ids.flatten().combine(ref_genome)
|
|
|
|
|
|
get_transcriptome(
|
|
merge_gff_bundles.out.gff
|
|
.join(run_gffcompare.out.gffcmp_dir)
|
|
.join(seq_for_transcriptome_build))
|
|
|
|
gff_compare = run_gffcompare.out.gffcmp_dir.map{ it -> it[1]}.collect()
|
|
merge_gff = merge_gff_bundles.out.gff.map{ it -> it[1]}.collect()
|
|
results = Channel.empty()
|
|
}else
|
|
{
|
|
gff_compare = file("$projectDir/data/OPTIONAL_FILE")
|
|
merge_gff = file("$projectDir/data/OPTIONAL_FILE")
|
|
assembly_stats = file("$projectDir/data/OPTIONAL_FILE")
|
|
use_ref_ann = false
|
|
results = Channel.empty()
|
|
}
|
|
if (jaffal_refBase){
|
|
gene_fusions(full_len_reads, jaffal_refBase, jaffal_genome, jaffal_annotation)
|
|
jaffal_out = gene_fusions.out.results_csv.collectFile(keepHeader: true, name: 'jaffal.csv')
|
|
}else{
|
|
jaffal_out = file("$projectDir/data/OPTIONAL_FILE")
|
|
}
|
|
|
|
|
|
if (params.de_analysis){
|
|
sample_sheet = file(params.sample_sheet, type:"file")
|
|
if (!params.ref_transcriptome){
|
|
merge_transcriptomes(run_gffcompare.output.gtf.collect(), ref_annotation, ref_genome)
|
|
transcriptome = merge_transcriptomes.out.fasta
|
|
gtf = merge_transcriptomes.out.gtf
|
|
}
|
|
else {
|
|
transcriptome = Channel.fromPath(ref_transcriptome)
|
|
if (file(params.ref_transcriptome).extension == "gz") {
|
|
transcriptome = decompress_transcriptome(ref_transcriptome)
|
|
}
|
|
transcriptome = preprocess_ref_transcriptome(transcriptome)
|
|
gtf = ref_annotation
|
|
}
|
|
de = differential_expression(transcriptome, input_reads, sample_sheet, gtf)
|
|
de_report = de.all_de
|
|
count_transcripts_file = de.count_transcripts
|
|
dtu_plots = de.dtu_plots
|
|
de_outputs = de.de_outputs
|
|
counts = de.counts
|
|
} else{
|
|
de_report = file("$projectDir/data/OPTIONAL_FILE")
|
|
count_transcripts_file = file("$projectDir/data/OPTIONAL_FILE")
|
|
}
|
|
|
|
makeReport(
|
|
software_versions,
|
|
workflow_params,
|
|
pychopper_report,
|
|
jaffal_out,
|
|
input_reads.map{ meta, fastq -> meta.alias}.collect(),
|
|
stats,
|
|
assembly_stats,
|
|
gff_compare,
|
|
merge_gff,
|
|
de_report,
|
|
count_transcripts_file)
|
|
|
|
report = makeReport.out.report
|
|
|
|
|
|
|
|
results = results.concat(makeReport.out.report)
|
|
|
|
if (use_ref_ann){
|
|
results = run_gffcompare.output.gffcmp_dir.concat(
|
|
assembly.stats,
|
|
get_transcriptome.out.transcriptome.flatMap(map_sample_ids_cls))
|
|
.map {it -> it[1]}
|
|
.concat(results)
|
|
|
|
}
|
|
|
|
if (!use_ref_ann && params.transcriptome_source == "reference-guided"){
|
|
results = assembly.stats.concat(
|
|
get_transcriptome.out.transcriptome.flatMap(map_sample_ids_cls))
|
|
.map {it -> it[1]}
|
|
.concat(results)
|
|
|
|
}
|
|
if (params.jaffal_refBase){
|
|
results = results
|
|
.concat(gene_fusions.out.results
|
|
.map {it -> it[1]})
|
|
}
|
|
|
|
results = results.map{ [it, null] }.concat(fastq_ingress_results.map { [it, "fastq_ingress_results"] })
|
|
|
|
if (params.de_analysis){
|
|
de_update = makeReport.out.de_analysis
|
|
de_results = report.concat(transcriptome, de_outputs.flatten(), counts.flatten(), de_update)
|
|
results = results.concat(de_results.map{ [it, "de_analysis"] })
|
|
}
|
|
|
|
results.concat(workflow_params.map{ [it, null]})
|
|
|
|
emit:
|
|
results
|
|
}
|
|
|
|
// entrypoint workflow
|
|
WorkflowMain.initialise(workflow, params, log)
|
|
workflow {
|
|
|
|
if (params.disable_ping == false) {
|
|
Pinguscript.ping_post(workflow, "start", "none", params.out_dir, params)
|
|
}
|
|
|
|
fastq = file(params.fastq, type: "file")
|
|
|
|
error = null
|
|
|
|
if (params.containsKey("minimap_index_opts")) {
|
|
error = "`--minimap_index_opts` parameter is deprecated. Use parameter `--minimap2_index_opts` instead."
|
|
}
|
|
|
|
if (!fastq.exists()) {
|
|
error = "--fastq: File doesn't exist, check path."
|
|
}
|
|
|
|
if (params.transcriptome_source == "precomputed" && !params.ref_transcriptome){
|
|
error = "As transcriptome source parameter is precomputed you must include a ref_transcriptome parameter"
|
|
}
|
|
if (params.transcriptome_source == "reference-guided" && !params.ref_genome){
|
|
error = "As transcriptome source is reference guided you must include a ref_genome parameter"
|
|
}
|
|
if (params.ref_genome){
|
|
ref_genome = file(params.ref_genome, type: "file")
|
|
if (!ref_genome.exists()) {
|
|
error = "--ref_genome: File doesn't exist, check path."
|
|
}
|
|
}else {
|
|
ref_genome = file("$projectDir/data/OPTIONAL_FILE")
|
|
}
|
|
if (params.containsValue("denovo")) {
|
|
error = "Denovo transcriptome source is no longer supported. Please use the reference-guided or precomputed options."
|
|
}
|
|
|
|
if (params.ref_annotation){
|
|
ref_annotation = file(params.ref_annotation, type: "file")
|
|
|
|
if (!ref_annotation.exists()) {
|
|
error = "--ref_annotation: File doesn't exist, check path."
|
|
}
|
|
use_ref_ann = true
|
|
}else{
|
|
ref_annotation= file("$projectDir/data/OPTIONAL_FILE")
|
|
use_ref_ann = false
|
|
}
|
|
if (params.jaffal_refBase){
|
|
jaffal_refBase = file(params.jaffal_refBase, type: "dir")
|
|
if (!jaffal_refBase.exists()) {
|
|
error = "--jaffa_refBase: Directory doesn't exist, check path."
|
|
}
|
|
}else{
|
|
jaffal_refBase = null
|
|
}
|
|
ref_transcriptome = file("$projectDir/data/OPTIONAL_FILE")
|
|
if (params.ref_transcriptome){
|
|
log.info("Reference Transcriptome provided will be used for differential expression.")
|
|
ref_transcriptome = file(params.ref_transcriptome, type:"file")
|
|
}
|
|
if (params.de_analysis){
|
|
if (!params.ref_annotation){
|
|
error = "You must provide a reference annotation."
|
|
}
|
|
if (!params.sample_sheet){
|
|
error = "You must provide a sample_sheet with at least alias and condition columns."
|
|
}
|
|
if (params.containsKey("condition_sheet")) {
|
|
error = "Condition sheets have been deprecated. Please add a 'condition' column to your sample sheet instead. Check the quickstart for more information."
|
|
}
|
|
}
|
|
if (error){
|
|
throw new Exception(error)
|
|
}else{
|
|
reads = samples = fastq_ingress([
|
|
"input":params.fastq,
|
|
"sample":params.sample,
|
|
"sample_sheet":params.sample_sheet,
|
|
"analyse_unclassified":params.analyse_unclassified,
|
|
"fastcat_stats": true,
|
|
"fastcat_extra_args": ""])
|
|
|
|
pipeline(reads, ref_genome, ref_annotation,
|
|
jaffal_refBase, params.jaffal_genome, params.jaffal_annotation,
|
|
ref_transcriptome, use_ref_ann)
|
|
|
|
output(pipeline.out.results)
|
|
}
|
|
}
|
|
|
|
if (params.disable_ping == false) {
|
|
workflow.onComplete {
|
|
Pinguscript.ping_post(workflow, "end", "none", params.out_dir, params)
|
|
}
|
|
workflow.onError {
|
|
Pinguscript.ping_post(workflow, "error", "$workflow.errorMessage", params.out_dir, params)
|
|
}
|
|
}
|