Loading report..

Highlight Samples

Regex mode off

    Rename Samples

    Click here for bulk input.

    Paste two columns of a tab-delimited table here (eg. from Excel).

    First column should be the old name, second column the new name.

    Regex mode off

      Show / Hide Samples

      Regex mode off

        Export Plots

        px
        px
        X

        Download the raw data used to create the plots in this report below:

        Note that additional data was saved in multiqc_data when this report was generated.


        Choose Plots

        If you use plots from MultiQC in a publication or presentation, please cite:

        MultiQC: Summarize analysis results for multiple tools and samples in a single report
        Philip Ewels, Måns Magnusson, Sverker Lundin and Max Käller
        Bioinformatics (2016)
        doi: 10.1093/bioinformatics/btw354
        PMID: 27312411

        Save Settings

        You can save the toolbox settings for this report to the browser.


        Load Settings

        Choose a saved report profile from the dropdown box below:

        Tool Citations

        Please remember to cite the tools that you use in your analysis.

        To help with this, you can download publication details of the tools mentioned in this report:

        About MultiQC

        This report was generated using MultiQC, version 1.12

        You can see a YouTube video describing how to use MultiQC reports here: https://youtu.be/qPbIlO_KWN0

        For more information about MultiQC, including other videos and extensive documentation, please visit http://multiqc.info

        You can report bugs, suggest improvements and find the source code for MultiQC on GitHub: https://github.com/ewels/MultiQC

        MultiQC is published in Bioinformatics:

        MultiQC: Summarize analysis results for multiple tools and samples in a single report
        Philip Ewels, Måns Magnusson, Sverker Lundin and Max Käller
        Bioinformatics (2016)
        doi: 10.1093/bioinformatics/btw354
        PMID: 27312411

        A modular tool to aggregate results from bioinformatics analyses across many samples into a single report.

        Report generated on 2024-09-30, 19:31 based on data in: /scratch/468103.1.linga/nxf.ve8cFgRzu8


        General Statistics

        Showing 150/150 rows and 16/20 columns.
        Sample NameM Reads MappedFragment LengthNumber of Peaks% AlignedInsert SizeError rateM Non-PrimaryM Reads Mapped% Mapped% Proper PairsM Total seqs% Aligned% Dups% GCRead LengthM Seqs
        G225_M01
        76.2%
        G225_M01_1
        25.8%
        49%
        120 bp
        14.7
        G225_M01_2
        25.8%
        49%
        120 bp
        14.7
        G225_M01_narrow_MACS2
        180
        41969
        G225_M01_sorted_filtered
        16.8
        100%
        166 bp
        0.77%
        0.0
        16.8
        100.0%
        100.0%
        16.8
        G225_M02
        83.5%
        G225_M02_1
        23.6%
        49%
        123 bp
        14.5
        G225_M02_2
        23.7%
        49%
        123 bp
        14.5
        G225_M02_narrow_MACS2
        184
        38797
        G225_M02_sorted_filtered
        18.4
        100%
        168 bp
        0.71%
        0.0
        18.4
        100.0%
        100.0%
        18.4
        G225_M03
        79.7%
        G225_M03_1
        27.0%
        47%
        129 bp
        13.2
        G225_M03_2
        27.4%
        47%
        129 bp
        13.2
        G225_M03_narrow_MACS2
        189
        42307
        G225_M03_sorted_filtered
        14.5
        100%
        166 bp
        0.87%
        0.0
        14.5
        100.0%
        100.0%
        14.5
        G225_M04
        91.5%
        G225_M04_1
        27.6%
        50%
        143 bp
        7.0
        G225_M04_2
        27.2%
        51%
        143 bp
        7.0
        G225_M04_narrow_MACS2
        230
        28225
        G225_M04_sorted_filtered
        9.9
        100%
        199 bp
        0.74%
        0.0
        9.9
        100.0%
        100.0%
        9.9
        G226_M01
        94.0%
        G226_M01_1
        37.1%
        49%
        144 bp
        30.6
        G226_M01_2
        38.1%
        51%
        144 bp
        30.6
        G226_M01_narrow_MACS2
        270
        35320
        G226_M01_sorted_filtered
        42.4
        100%
        265 bp
        0.62%
        0.0
        42.4
        100.0%
        100.0%
        42.4
        G226_M02
        92.9%
        G226_M02_1
        31.3%
        49%
        135 bp
        30.7
        G226_M02_2
        32.6%
        50%
        135 bp
        30.7
        G226_M02_narrow_MACS2
        229
        39483
        G226_M02_sorted_filtered
        42.8
        100%
        201 bp
        0.60%
        0.0
        42.8
        100.0%
        100.0%
        42.8
        G226_M03
        93.0%
        G226_M03_1
        31.0%
        49%
        139 bp
        26.0
        G226_M03_2
        32.3%
        50%
        139 bp
        26.0
        G226_M03_narrow_MACS2
        242
        32305
        G226_M03_sorted_filtered
        35.6
        100%
        213 bp
        0.59%
        0.0
        35.6
        100.0%
        100.0%
        35.6
        G226_M04
        92.3%
        G226_M04_1
        32.3%
        49%
        138 bp
        29.4
        G226_M04_2
        33.7%
        51%
        138 bp
        29.4
        G226_M04_narrow_MACS2
        240
        36362
        G226_M04_sorted_filtered
        40.0
        100%
        214 bp
        0.59%
        0.0
        40.0
        100.0%
        100.0%
        40.0
        G226_M05
        94.2%
        G226_M05_1
        36.0%
        50%
        143 bp
        26.9
        G226_M05_2
        37.1%
        51%
        143 bp
        26.9
        G226_M05_narrow_MACS2
        251
        32232
        G226_M05_sorted_filtered
        37.5
        100%
        223 bp
        0.59%
        0.0
        37.5
        100.0%
        100.0%
        37.5
        G226_M06
        91.5%
        G226_M06_1
        32.8%
        48%
        145 bp
        27.8
        G226_M06_2
        33.6%
        49%
        145 bp
        27.8
        G226_M06_narrow_MACS2
        254
        32434
        G226_M06_sorted_filtered
        37.9
        100%
        225 bp
        0.60%
        0.0
        37.9
        100.0%
        100.0%
        37.9
        G226_M07
        92.8%
        G226_M07_1
        30.7%
        48%
        138 bp
        27.0
        G226_M07_2
        32.2%
        50%
        138 bp
        27.0
        G226_M07_narrow_MACS2
        240
        32872
        G226_M07_sorted_filtered
        36.5
        100%
        213 bp
        0.60%
        0.0
        36.5
        100.0%
        100.0%
        36.5
        G226_M08
        94.1%
        G226_M08_1
        35.3%
        50%
        139 bp
        28.9
        G226_M08_2
        36.2%
        51%
        139 bp
        28.9
        G226_M08_narrow_MACS2
        235
        32007
        G226_M08_sorted_filtered
        41.2
        100%
        203 bp
        0.57%
        0.0
        41.2
        100.0%
        100.0%
        41.2
        G226_M09
        91.4%
        G226_M09_1
        29.3%
        48%
        135 bp
        29.2
        G226_M09_2
        30.7%
        50%
        135 bp
        29.2
        G226_M09_narrow_MACS2
        224
        36267
        G226_M09_sorted_filtered
        39.5
        100%
        194 bp
        0.60%
        0.0
        39.5
        100.0%
        100.0%
        39.5
        G226_M10
        94.3%
        G226_M10_1
        28.2%
        49%
        134 bp
        25.2
        G226_M10_2
        29.0%
        50%
        134 bp
        25.2
        G226_M10_narrow_MACS2
        222
        35990
        G226_M10_sorted_filtered
        36.2
        100%
        194 bp
        0.56%
        0.0
        36.2
        100.0%
        100.0%
        36.2
        G226_M11
        92.3%
        G226_M11_1
        32.7%
        49%
        135 bp
        28.7
        G226_M11_2
        33.4%
        49%
        135 bp
        28.7
        G226_M11_narrow_MACS2
        213
        44145
        G226_M11_sorted_filtered
        41.3
        100%
        185 bp
        0.64%
        0.0
        41.3
        100.0%
        100.0%
        41.3
        G226_M12
        94.3%
        G226_M12_1
        33.6%
        51%
        136 bp
        30.5
        G226_M12_2
        33.8%
        51%
        136 bp
        30.5
        G226_M12_narrow_MACS2
        206
        39885
        G226_M12_sorted_filtered
        46.3
        100%
        179 bp
        0.57%
        0.0
        46.3
        100.0%
        100.0%
        46.3
        G226_M13
        92.0%
        G226_M13_1
        35.6%
        50%
        137 bp
        31.4
        G226_M13_2
        35.9%
        51%
        136 bp
        31.4
        G226_M13_narrow_MACS2
        217
        42165
        G226_M13_sorted_filtered
        45.2
        100%
        185 bp
        0.61%
        0.0
        45.2
        100.0%
        100.0%
        45.2
        G226_M14
        91.9%
        G226_M14_1
        33.7%
        49%
        135 bp
        32.5
        G226_M14_2
        34.4%
        50%
        135 bp
        32.5
        G226_M14_narrow_MACS2
        211
        45699
        G226_M14_sorted_filtered
        46.6
        100%
        182 bp
        0.62%
        0.0
        46.6
        100.0%
        100.0%
        46.6
        G226_M15
        94.2%
        G226_M15_1
        33.2%
        50%
        137 bp
        29.0
        G226_M15_2
        33.6%
        51%
        137 bp
        29.0
        G226_M15_narrow_MACS2
        212
        38952
        G226_M15_sorted_filtered
        43.2
        100%
        182 bp
        0.56%
        0.0
        43.2
        100.0%
        100.0%
        43.2
        G226_M16
        91.3%
        G226_M16_1
        35.7%
        50%
        136 bp
        30.9
        G226_M16_2
        36.1%
        51%
        136 bp
        30.9
        G226_M16_narrow_MACS2
        209
        39763
        G226_M16_sorted_filtered
        44.5
        100%
        181 bp
        0.58%
        0.0
        44.5
        100.0%
        100.0%
        44.5
        G226_M17
        92.3%
        G226_M17_1
        34.7%
        48%
        139 bp
        28.0
        G226_M17_2
        35.7%
        49%
        139 bp
        28.0
        G226_M17_narrow_MACS2
        230
        42280
        G226_M17_sorted_filtered
        39.5
        100%
        200 bp
        0.64%
        0.0
        39.5
        100.0%
        100.0%
        39.5
        G226_M18
        92.3%
        G226_M18_1
        37.6%
        50%
        137 bp
        33.8
        G226_M18_2
        38.0%
        50%
        137 bp
        33.8
        G226_M18_narrow_MACS2
        217
        41756
        G226_M18_sorted_filtered
        49.1
        100%
        187 bp
        0.61%
        0.0
        49.1
        100.0%
        100.0%
        49.1
        G226_M19
        92.7%
        G226_M19_1
        37.1%
        50%
        137 bp
        31.7
        G226_M19_2
        37.5%
        51%
        137 bp
        31.7
        G226_M19_narrow_MACS2
        218
        41737
        G226_M19_sorted_filtered
        46.0
        100%
        186 bp
        0.58%
        0.0
        46.0
        100.0%
        100.0%
        46.0
        G226_M20
        93.5%
        G226_M20_1
        36.1%
        50%
        137 bp
        33.1
        G226_M20_2
        36.6%
        51%
        137 bp
        33.1
        G226_M20_narrow_MACS2
        212
        44509
        G226_M20_sorted_filtered
        48.6
        100%
        182 bp
        0.59%
        0.0
        48.6
        100.0%
        100.0%
        48.6
        G231_M01
        92.1%
        G231_M01_1
        39.6%
        51%
        138 bp
        41.1
        G231_M01_2
        39.4%
        52%
        138 bp
        41.1
        G231_M01_narrow_MACS2
        223
        25697
        G231_M01_sorted_filtered
        58.5
        100%
        193 bp
        0.66%
        0.0
        58.5
        100.0%
        100.0%
        58.5
        G231_M02
        89.8%
        G231_M02_1
        37.0%
        49%
        139 bp
        48.1
        G231_M02_2
        36.8%
        50%
        139 bp
        48.1
        G231_M02_narrow_MACS2
        229
        27477
        G231_M02_sorted_filtered
        65.0
        100%
        200 bp
        0.65%
        0.0
        65.0
        100.0%
        100.0%
        65.0
        G231_M03
        91.2%
        G231_M03_1
        40.8%
        48%
        142 bp
        39.2
        G231_M03_2
        40.7%
        48%
        142 bp
        39.2
        G231_M03_narrow_MACS2
        239
        26926
        G231_M03_sorted_filtered
        52.4
        100%
        208 bp
        0.66%
        0.0
        52.4
        100.0%
        100.0%
        52.4
        G231_M04
        93.9%
        G231_M04_1
        38.7%
        50%
        145 bp
        33.3
        G231_M04_2
        39.0%
        51%
        145 bp
        33.3
        G231_M04_narrow_MACS2
        255
        24542
        G231_M04_sorted_filtered
        48.5
        100%
        229 bp
        0.67%
        0.0
        48.5
        100.0%
        100.0%
        48.5
        G231_M05
        88.2%
        G231_M05_1
        32.3%
        50%
        144 bp
        27.3
        G231_M05_2
        32.8%
        50%
        144 bp
        27.3
        G231_M05_narrow_MACS2
        255
        22823
        G231_M05_sorted_filtered
        36.1
        100%
        229 bp
        0.66%
        0.0
        36.1
        100.0%
        100.0%
        36.1
        G231_M06
        95.5%
        G231_M06_1
        40.0%
        53%
        144 bp
        34.1
        G231_M06_2
        39.5%
        54%
        144 bp
        34.1
        G231_M06_narrow_MACS2
        236
        27418
        G231_M06_sorted_filtered
        53.1
        100%
        207 bp
        0.65%
        0.0
        53.1
        100.0%
        100.0%
        53.1

        Picard

        Picard is a set of Java command line tools for manipulating high-throughput sequencing data.

        Alignment Summary

        Please note that Picard's read counts are divided by two for paired-end data. Total bases (including unaligned) is not provided.

           
        loading..

        Mean read length

        The mean read length of the set of reads examined.

        loading..

        Base Distribution

        Plot shows the distribution of bases by cycle.

        loading..

        Insert Size

        Plot shows the number of reads at a given insert size. Reads with different orientations are summed.

        loading..

        Mean Base Quality by Cycle

        Plot shows the mean base quality by cycle.

        This metric gives an overall snapshot of sequencing machine performance. For most types of sequencing data, the output is expected to show a slight reduction in overall base quality scores towards the end of each read.

        Spikes in quality within reads are not expected and may indicate that technical problems occurred during sequencing.

        loading..

        Base Quality Distribution

        Plot shows the count of each base quality score.

        loading..

        Samtools

        Samtools is a suite of programs for interacting with high-throughput sequencing data.DOI: 10.1093/bioinformatics/btp352.

        Percent Mapped

        Alignment metrics from samtools stats; mapped vs. unmapped reads.

        For a set of samples that have come from the same multiplexed library, similar numbers of reads for each sample are expected. Large differences in numbers might indicate issues during the library preparation process. Whilst large differences in read numbers may be controlled for in downstream processings (e.g. read count normalisation), you may wish to consider whether the read depths achieved have fallen below recommended levels depending on the applications.

        Low alignment rates could indicate contamination of samples (e.g. adapter sequences), low sequencing quality or other artefacts. These can be further investigated in the sequence level QC (e.g. from FastQC).

        loading..

        Alignment metrics

        This module parses the output from samtools stats. All numbers in millions.

        loading..

        Samtools Flagstat

        This module parses the output from samtools flagstat. All numbers in millions.

        loading..

        Bowtie 2 / HiSAT2

        Bowtie 2 and HISAT2 are fast and memory-efficient tools for aligning sequencing reads against a reference genome. Unfortunately both tools have identical log output by default, so it is impossible to distiguish which tool was used. .DOI: 10.1038/nmeth.1923; 10.1038/nmeth.3317; 10.1038/s41587-019-0201-4.

        Paired-end alignments

        This plot shows the number of reads aligning to the reference in different ways.

        Please note that single mate alignment counts are halved to tally with pair counts properly.

        There are 6 possible types of alignment:

        • PE mapped uniquely: Pair has only one occurence in the reference genome.
        • PE mapped discordantly uniquely: Pair has only one occurence but not in proper pair.
        • PE one mate mapped uniquely: One read of a pair has one occurence.
        • PE multimapped: Pair has multiple occurence.
        • PE one mate multimapped: One read of a pair has multiple occurence.
        • PE neither mate aligned: Pair has no occurence.
        loading..

        FastQC

        FastQC is a quality control tool for high throughput sequence data, written by Simon Andrews at the Babraham Institute in Cambridge.

        Sequence Counts

        Sequence counts for each sample. Duplicate read counts are an estimate only.

        This plot show the total number of reads, broken down into unique and duplicate if possible (only more recent versions of FastQC give duplicate info).

        You can read more about duplicate calculation in the FastQC documentation. A small part has been copied here for convenience:

        Only sequences which first appear in the first 100,000 sequences in each file are analysed. This should be enough to get a good impression for the duplication levels in the whole file. Each sequence is tracked to the end of the file to give a representative count of the overall duplication level.

        The duplication detection requires an exact sequence match over the whole length of the sequence. Any reads over 75bp in length are truncated to 50bp for this analysis.

        loading..

        Sequence Quality Histograms

        The mean quality value across each base position in the read.

        To enable multiple samples to be plotted on the same graph, only the mean quality scores are plotted (unlike the box plots seen in FastQC reports).

        Taken from the FastQC help:

        The y-axis on the graph shows the quality scores. The higher the score, the better the base call. The background of the graph divides the y axis into very good quality calls (green), calls of reasonable quality (orange), and calls of poor quality (red). The quality of calls on most platforms will degrade as the run progresses, so it is common to see base calls falling into the orange area towards the end of a read.

        loading..

        Per Sequence Quality Scores

        The number of reads with average quality scores. Shows if a subset of reads has poor quality.

        From the FastQC help:

        The per sequence quality score report allows you to see if a subset of your sequences have universally low quality values. It is often the case that a subset of sequences will have universally poor quality, however these should represent only a small percentage of the total sequences.

        loading..

        Per Base Sequence Content

        The proportion of each base position for which each of the four normal DNA bases has been called.

        To enable multiple samples to be shown in a single plot, the base composition data is shown as a heatmap. The colours represent the balance between the four bases: an even distribution should give an even muddy brown colour. Hover over the plot to see the percentage of the four bases under the cursor.

        To see the data as a line plot, as in the original FastQC graph, click on a sample track.

        From the FastQC help:

        Per Base Sequence Content plots out the proportion of each base position in a file for which each of the four normal DNA bases has been called.

        In a random library you would expect that there would be little to no difference between the different bases of a sequence run, so the lines in this plot should run parallel with each other. The relative amount of each base should reflect the overall amount of these bases in your genome, but in any case they should not be hugely imbalanced from each other.

        It's worth noting that some types of library will always produce biased sequence composition, normally at the start of the read. Libraries produced by priming using random hexamers (including nearly all RNA-Seq libraries) and those which were fragmented using transposases inherit an intrinsic bias in the positions at which reads start. This bias does not concern an absolute sequence, but instead provides enrichement of a number of different K-mers at the 5' end of the reads. Whilst this is a true technical bias, it isn't something which can be corrected by trimming and in most cases doesn't seem to adversely affect the downstream analysis.

        Click a sample row to see a line plot for that dataset.
        Rollover for sample name
        Position: -
        %T: -
        %C: -
        %A: -
        %G: -

        Per Sequence GC Content

        The average GC content of reads. Normal random library typically have a roughly normal distribution of GC content.

        From the FastQC help:

        This module measures the GC content across the whole length of each sequence in a file and compares it to a modelled normal distribution of GC content.

        In a normal random library you would expect to see a roughly normal distribution of GC content where the central peak corresponds to the overall GC content of the underlying genome. Since we don't know the the GC content of the genome the modal GC content is calculated from the observed data and used to build a reference distribution.

        An unusually shaped distribution could indicate a contaminated library or some other kinds of biased subset. A normal distribution which is shifted indicates some systematic bias which is independent of base position. If there is a systematic bias which creates a shifted normal distribution then this won't be flagged as an error by the module since it doesn't know what your genome's GC content should be.

        loading..

        Per Base N Content

        The percentage of base calls at each position for which an N was called.

        From the FastQC help:

        If a sequencer is unable to make a base call with sufficient confidence then it will normally substitute an N rather than a conventional base call. This graph shows the percentage of base calls at each position for which an N was called.

        It's not unusual to see a very low proportion of Ns appearing in a sequence, especially nearer the end of a sequence. However, if this proportion rises above a few percent it suggests that the analysis pipeline was unable to interpret the data well enough to make valid base calls.

        loading..

        Sequence Length Distribution

        The distribution of fragment sizes (read lengths) found. See the FastQC help

        loading..

        Sequence Duplication Levels

        The relative level of duplication found for every sequence.

        From the FastQC Help:

        In a diverse library most sequences will occur only once in the final set. A low level of duplication may indicate a very high level of coverage of the target sequence, but a high level of duplication is more likely to indicate some kind of enrichment bias (eg PCR over amplification). This graph shows the degree of duplication for every sequence in a library: the relative number of sequences with different degrees of duplication.

        Only sequences which first appear in the first 100,000 sequences in each file are analysed. This should be enough to get a good impression for the duplication levels in the whole file. Each sequence is tracked to the end of the file to give a representative count of the overall duplication level.

        The duplication detection requires an exact sequence match over the whole length of the sequence. Any reads over 75bp in length are truncated to 50bp for this analysis.

        In a properly diverse library most sequences should fall into the far left of the plot in both the red and blue lines. A general level of enrichment, indicating broad oversequencing in the library will tend to flatten the lines, lowering the low end and generally raising other categories. More specific enrichments of subsets, or the presence of low complexity contaminants will tend to produce spikes towards the right of the plot.

        loading..

        Overrepresented sequences

        The total amount of overrepresented sequences found in each library.

        FastQC calculates and lists overrepresented sequences in FastQ files. It would not be possible to show this for all samples in a MultiQC report, so instead this plot shows the number of sequences categorized as over represented.

        Sometimes, a single sequence may account for a large number of reads in a dataset. To show this, the bars are split into two: the first shows the overrepresented reads that come from the single most common sequence. The second shows the total count from all remaining overrepresented sequences.

        From the FastQC Help:

        A normal high-throughput library will contain a diverse set of sequences, with no individual sequence making up a tiny fraction of the whole. Finding that a single sequence is very overrepresented in the set either means that it is highly biologically significant, or indicates that the library is contaminated, or not as diverse as you expected.

        FastQC lists all of the sequences which make up more than 0.1% of the total. To conserve memory only sequences which appear in the first 100,000 sequences are tracked to the end of the file. It is therefore possible that a sequence which is overrepresented but doesn't appear at the start of the file for some reason could be missed by this module.

        loading..

        Adapter Content

        The cumulative percentage count of the proportion of your library which has seen each of the adapter sequences at each position.

        Note that only samples with ≥ 0.1% adapter contamination are shown.

        There may be several lines per sample, as one is shown for each adapter detected in the file.

        From the FastQC Help:

        The plot shows a cumulative percentage count of the proportion of your library which has seen each of the adapter sequences at each position. Once a sequence has been seen in a read it is counted as being present right through to the end of the read so the percentages you see will only increase as the read length goes on.

        No samples found with any adapter contamination > 0.1%

        Status Checks

        Status for each FastQC section showing whether results seem entirely normal (green), slightly abnormal (orange) or very unusual (red).

        FastQC assigns a status for each section of the report. These give a quick evaluation of whether the results of the analysis seem entirely normal (green), slightly abnormal (orange) or very unusual (red).

        It is important to stress that although the analysis results appear to give a pass/fail result, these evaluations must be taken in the context of what you expect from your library. A 'normal' sample as far as FastQC is concerned is random and diverse. Some experiments may be expected to produce libraries which are biased in particular ways. You should treat the summary evaluations therefore as pointers to where you should concentrate your attention and understand why your library may not look random and diverse.

        Specific guidance on how to interpret the output of each module can be found in the relevant report section, or in the FastQC help.

        In this heatmap, we summarise all of these into a single heatmap for a quick overview. Note that not all FastQC sections have plots in MultiQC reports, but all status checks are shown in this heatmap.

        loading..