Project FOMC15387 services include NGS sequencing of the V1V3 region of the 16S rRNA gene amplicons from the samples. First and foremost, please
download this report, as well as the sequence raw data from the download links provided below.
These links will expire after 60 days. We cannot guarantee the availability of your data after 60 days.
Full Bioinformatics analysis service was requested. We provide many analyses, starting from the raw sequence quality and noise filtering, pair reads merging, as well as chimera filtering for the sequences, using the
DADA2 denosing algorithm and pipeline.
We also provide many downstream analyses such as taxonomy assignment, alpha and beta diversity analyses, and differential abundance analysis.
For taxonomy assignment, most informative would be the taxonomy barplots. We provide an interactive barplots to show the relative abundance of microbes at different taxonomy levels (from Phylum to species) that you can choose.
If you specify which groups of samples you want to compare for differential abundance, we provide both ANCOM and LEfSe differential abundance analysis.
The samples were processed and analyzed with the ZymoBIOMICS® Service: Targeted
Metagenomic Sequencing (Zymo Research, Irvine, CA).
DNA Extraction: If DNA extraction was performed, one of three different DNA
extraction kits was used depending on the sample type and sample volume and were
used according to the manufacturer’s instructions, unless otherwise stated. The kit used
in this project is marked below:
☐
ZymoBIOMICS® DNA Miniprep Kit (Zymo Research, Irvine, CA)
☐
ZymoBIOMICS® DNA Microprep Kit (Zymo Research, Irvine, CA)
☐
ZymoBIOMICS®-96 MagBead DNA Kit (Zymo Research, Irvine, CA)
☑
N/A (DNA Extraction Not Performed)
Elution Volume: 50µL
Additional Notes: NA
Targeted Library Preparation: The DNA samples were prepared for targeted
sequencing with the Quick-16S™ NGS Library Prep Kit (Zymo Research, Irvine, CA).
These primers were custom designed by Zymo Research to provide the best coverage
of the 16S gene while maintaining high sensitivity. The primer sets used in this project
are marked below:
☐
Quick-16S™ Primer Set V1-V2 (Zymo Research, Irvine, CA)
☑
Quick-16S™ Primer Set V1-V3 (Zymo Research, Irvine, CA)
☐
Quick-16S™ Primer Set V3-V4 (Zymo Research, Irvine, CA)
☐
Quick-16S™ Primer Set V4 (Zymo Research, Irvine, CA)
☐
Quick-16S™ Primer Set V6-V8 (Zymo Research, Irvine, CA)
☐
Other: NA
Additional Notes: NA
The sequencing library was prepared using an innovative library preparation process in
which PCR reactions were performed in real-time PCR machines to control cycles and
therefore limit PCR chimera formation. The final PCR products were quantified with
qPCR fluorescence readings and pooled together based on equal molarity. The final
pooled library was cleaned up with the Select-a-Size DNA Clean & Concentrator™
(Zymo Research, Irvine, CA), then quantified with TapeStation® (Agilent Technologies,
Santa Clara, CA) and Qubit® (Thermo Fisher Scientific, Waltham, WA).
Control Samples: The ZymoBIOMICS® Microbial Community Standard (Zymo
Research, Irvine, CA) was used as a positive control for each DNA extraction, if
performed. The ZymoBIOMICS® Microbial Community DNA Standard (Zymo Research,
Irvine, CA) was used as a positive control for each targeted library preparation.
Negative controls (i.e. blank extraction control, blank library preparation control) were
included to assess the level of bioburden carried by the wet-lab process.
Sequencing: The final library was sequenced on Illumina® MiSeq™ with a V3 reagent kit
(600 cycles). The sequencing was performed with 10% PhiX spike-in.
Absolute Abundance Quantification*: A quantitative real-time PCR was set up with a
standard curve. The standard curve was made with plasmid DNA containing one copy
of the 16S gene and one copy of the fungal ITS2 region prepared in 10-fold serial
dilutions. The primers used were the same as those used in Targeted Library
Preparation. The equation generated by the plasmid DNA standard curve was used to
calculate the number of gene copies in the reaction for each sample. The PCR input
volume (2 µl) was used to calculate the number of gene copies per microliter in each
DNA sample.
The number of genome copies per microliter DNA sample was calculated by dividing
the gene copy number by an assumed number of gene copies per genome. The value
used for 16S copies per genome is 4. The value used for ITS copies per genome is 200.
The amount of DNA per microliter DNA sample was calculated using an assumed
genome size of 4.64 x 106 bp, the genome size of Escherichia coli, for 16S samples, or
an assumed genome size of 1.20 x 107 bp, the genome size of Saccharomyces
cerevisiae, for ITS samples. This calculation is shown below:
Calculated Total DNA = Calculated Total Genome Copies × Assumed Genome Size (4.64 × 106 bp) ×
Average Molecular Weight of a DNA bp (660 g/mole/bp) ÷ Avogadro’s Number (6.022 x 1023/mole)
* Absolute Abundance Quantification is only available for 16S and ITS analyses.
The absolute abundance standard curve data can be viewed in Excel here:
The absolute abundance standard curve is shown below:
The complete report of your project, including all links in this report, can be downloaded by clicking the link provided below. The downloaded file is a compressed ZIP file and once unzipped, open the file “REPORT.html” (may only shown as "REPORT" in your computer) by double clicking it. Your default web browser will open it and you will see the exact content of this report.
Please download and save the file to your computer storage device. The download link will expire after 60 days upon your receiving of this report.
Complete report download link:
To view the report, please follow the following steps:
1.
Download the .zip file from the report link above.
2.
Extract all the contents of the downloaded .zip file to your desktop.
3.
Open the extracted folder and find the "REPORT.html" (may shown as only "REPORT").
4.
Open (double-clicking) the REPORT.html file. Your default browser will open the top age of the complete report. Within the
report, there are links to view all the analyses performed for the project.
The raw NGS sequence data is available for download with the link provided below. The data is a compressed ZIP file and can be unzipped to individual sequence files.
Since this is a pair-end sequencing, each of your samples is represented by two sequence files, one for READ 1,
with the file extension “*_R1.fastq.gz”, another READ 2, with the file extension “*_R1.fastq.gz”.
The files are in FASTQ format and are compressed. FASTQ format is a text-based data format for storing both a biological sequence
and its corresponding quality scores. Most sequence analysis software will be able to open them.
The Sample IDs associated with the R1 and R2 fastq files are listed in the table below:
Sample ID
Original Sample ID
Read 1 File Name
Read 2 File Name
F15387.S10
original sample ID here
zr15387_10V1V3_R1.fastq.gz
zr15387_10V1V3_R2.fastq.gz
F15387.S11
original sample ID here
zr15387_11V1V3_R1.fastq.gz
zr15387_11V1V3_R2.fastq.gz
F15387.S12
original sample ID here
zr15387_12V1V3_R1.fastq.gz
zr15387_12V1V3_R2.fastq.gz
F15387.S13
original sample ID here
zr15387_13V1V3_R1.fastq.gz
zr15387_13V1V3_R2.fastq.gz
F15387.S14
original sample ID here
zr15387_14V1V3_R1.fastq.gz
zr15387_14V1V3_R2.fastq.gz
F15387.S15
original sample ID here
zr15387_15V1V3_R1.fastq.gz
zr15387_15V1V3_R2.fastq.gz
F15387.S16
original sample ID here
zr15387_16V1V3_R1.fastq.gz
zr15387_16V1V3_R2.fastq.gz
F15387.S17
original sample ID here
zr15387_17V1V3_R1.fastq.gz
zr15387_17V1V3_R2.fastq.gz
F15387.S18
original sample ID here
zr15387_18V1V3_R1.fastq.gz
zr15387_18V1V3_R2.fastq.gz
F15387.S19
original sample ID here
zr15387_19V1V3_R1.fastq.gz
zr15387_19V1V3_R2.fastq.gz
F15387.S01
original sample ID here
zr15387_1V1V3_R1.fastq.gz
zr15387_1V1V3_R2.fastq.gz
F15387.S20
original sample ID here
zr15387_20V1V3_R1.fastq.gz
zr15387_20V1V3_R2.fastq.gz
F15387.S21
original sample ID here
zr15387_21V1V3_R1.fastq.gz
zr15387_21V1V3_R2.fastq.gz
F15387.S22
original sample ID here
zr15387_22V1V3_R1.fastq.gz
zr15387_22V1V3_R2.fastq.gz
F15387.S23
original sample ID here
zr15387_23V1V3_R1.fastq.gz
zr15387_23V1V3_R2.fastq.gz
F15387.S24
original sample ID here
zr15387_24V1V3_R1.fastq.gz
zr15387_24V1V3_R2.fastq.gz
F15387.S25
original sample ID here
zr15387_25V1V3_R1.fastq.gz
zr15387_25V1V3_R2.fastq.gz
F15387.S26
original sample ID here
zr15387_26V1V3_R1.fastq.gz
zr15387_26V1V3_R2.fastq.gz
F15387.S27
original sample ID here
zr15387_27V1V3_R1.fastq.gz
zr15387_27V1V3_R2.fastq.gz
F15387.S28
original sample ID here
zr15387_28V1V3_R1.fastq.gz
zr15387_28V1V3_R2.fastq.gz
F15387.S29
original sample ID here
zr15387_29V1V3_R1.fastq.gz
zr15387_29V1V3_R2.fastq.gz
F15387.S02
original sample ID here
zr15387_2V1V3_R1.fastq.gz
zr15387_2V1V3_R2.fastq.gz
F15387.S30
original sample ID here
zr15387_30V1V3_R1.fastq.gz
zr15387_30V1V3_R2.fastq.gz
F15387.S31
original sample ID here
zr15387_31V1V3_R1.fastq.gz
zr15387_31V1V3_R2.fastq.gz
F15387.S32
original sample ID here
zr15387_32V1V3_R1.fastq.gz
zr15387_32V1V3_R2.fastq.gz
F15387.S33
original sample ID here
zr15387_33V1V3_R1.fastq.gz
zr15387_33V1V3_R2.fastq.gz
F15387.S34
original sample ID here
zr15387_34V1V3_R1.fastq.gz
zr15387_34V1V3_R2.fastq.gz
F15387.S35
original sample ID here
zr15387_35V1V3_R1.fastq.gz
zr15387_35V1V3_R2.fastq.gz
F15387.S36
original sample ID here
zr15387_36V1V3_R1.fastq.gz
zr15387_36V1V3_R2.fastq.gz
F15387.S37
original sample ID here
zr15387_37V1V3_R1.fastq.gz
zr15387_37V1V3_R2.fastq.gz
F15387.S38
original sample ID here
zr15387_38V1V3_R1.fastq.gz
zr15387_38V1V3_R2.fastq.gz
F15387.S39
original sample ID here
zr15387_39V1V3_R1.fastq.gz
zr15387_39V1V3_R2.fastq.gz
F15387.S03
original sample ID here
zr15387_3V1V3_R1.fastq.gz
zr15387_3V1V3_R2.fastq.gz
F15387.S40
original sample ID here
zr15387_40V1V3_R1.fastq.gz
zr15387_40V1V3_R2.fastq.gz
F15387.S41
original sample ID here
zr15387_41V1V3_R1.fastq.gz
zr15387_41V1V3_R2.fastq.gz
F15387.S42
original sample ID here
zr15387_42V1V3_R1.fastq.gz
zr15387_42V1V3_R2.fastq.gz
F15387.S43
original sample ID here
zr15387_43V1V3_R1.fastq.gz
zr15387_43V1V3_R2.fastq.gz
F15387.S44
original sample ID here
zr15387_44V1V3_R1.fastq.gz
zr15387_44V1V3_R2.fastq.gz
F15387.S45
original sample ID here
zr15387_45V1V3_R1.fastq.gz
zr15387_45V1V3_R2.fastq.gz
F15387.S46
original sample ID here
zr15387_46V1V3_R1.fastq.gz
zr15387_46V1V3_R2.fastq.gz
F15387.S47
original sample ID here
zr15387_47V1V3_R1.fastq.gz
zr15387_47V1V3_R2.fastq.gz
F15387.S48
original sample ID here
zr15387_48V1V3_R1.fastq.gz
zr15387_48V1V3_R2.fastq.gz
F15387.S49
original sample ID here
zr15387_49V1V3_R1.fastq.gz
zr15387_49V1V3_R2.fastq.gz
F15387.S04
original sample ID here
zr15387_4V1V3_R1.fastq.gz
zr15387_4V1V3_R2.fastq.gz
F15387.S50
original sample ID here
zr15387_50V1V3_R1.fastq.gz
zr15387_50V1V3_R2.fastq.gz
F15387.S51
original sample ID here
zr15387_51V1V3_R1.fastq.gz
zr15387_51V1V3_R2.fastq.gz
F15387.S52
original sample ID here
zr15387_52V1V3_R1.fastq.gz
zr15387_52V1V3_R2.fastq.gz
F15387.S53
original sample ID here
zr15387_53V1V3_R1.fastq.gz
zr15387_53V1V3_R2.fastq.gz
F15387.S54
original sample ID here
zr15387_54V1V3_R1.fastq.gz
zr15387_54V1V3_R2.fastq.gz
F15387.S55
original sample ID here
zr15387_55V1V3_R1.fastq.gz
zr15387_55V1V3_R2.fastq.gz
F15387.S56
original sample ID here
zr15387_56V1V3_R1.fastq.gz
zr15387_56V1V3_R2.fastq.gz
F15387.S57
original sample ID here
zr15387_57V1V3_R1.fastq.gz
zr15387_57V1V3_R2.fastq.gz
F15387.S58
original sample ID here
zr15387_58V1V3_R1.fastq.gz
zr15387_58V1V3_R2.fastq.gz
F15387.S59
original sample ID here
zr15387_59V1V3_R1.fastq.gz
zr15387_59V1V3_R2.fastq.gz
F15387.S05
original sample ID here
zr15387_5V1V3_R1.fastq.gz
zr15387_5V1V3_R2.fastq.gz
F15387.S60
original sample ID here
zr15387_60V1V3_R1.fastq.gz
zr15387_60V1V3_R2.fastq.gz
F15387.S06
original sample ID here
zr15387_6V1V3_R1.fastq.gz
zr15387_6V1V3_R2.fastq.gz
F15387.S07
original sample ID here
zr15387_7V1V3_R1.fastq.gz
zr15387_7V1V3_R2.fastq.gz
F15387.S08
original sample ID here
zr15387_8V1V3_R1.fastq.gz
zr15387_8V1V3_R2.fastq.gz
F15387.S09
original sample ID here
zr15387_9V1V3_R1.fastq.gz
zr15387_9V1V3_R2.fastq.gz
Please download and save the file to your computer storage device. The download link will expire after 60 days upon your receiving of this report.
DADA2 is a software package that models and corrects Illumina-sequenced amplicon errors.
DADA2 infers sample sequences exactly, without coarse-graining into OTUs,
and resolves differences of as little as one nucleotide. DADA2 identified more real variants
and output fewer spurious sequences than other methods.
DADA2’s advantage is that it uses more of the data. The DADA2 error model incorporates quality information,
which is ignored by all other methods after filtering. The DADA2 error model incorporates quantitative abundances,
whereas most other methods use abundance ranks if they use abundance at all.
The DADA2 error model identifies the differences between sequences, eg. A->C,
whereas other methods merely count the mismatches. DADA2 can parameterize its error model from the data itself,
rather than relying on previous datasets that may or may not reflect the PCR and sequencing protocols used in your study.
DADA2 pipeline includes several tools for read quality control, including quality filtering, trimming, denoising, pair merging and chimera filtering. Below are the major processing steps of DADA2:
Step 1. Read trimming based on sequence quality
The quality of NGS Illumina sequences often decreases toward the end of the reads.
DADA2 allows to trim off the poor quality read ends in order to improve the error
model building and pair mergicing performance.
Step 2. Learn the Error Rates
The DADA2 algorithm makes use of a parametric error model (err) and every
amplicon dataset has a different set of error rates. The learnErrors method
learns this error model from the data, by alternating estimation of the error
rates and inference of sample composition until they converge on a jointly
consistent solution. As in many machine-learning problems, the algorithm must
begin with an initial guess, for which the maximum possible error rates in
this data are used (the error rates if only the most abundant sequence is
correct and all the rest are errors).
Step 3. Infer amplicon sequence variants (ASVs) based on the error model built in previous step. This step is also called sequence "denoising".
The outcome of this step is a list of ASVs that are the equivalent of oligonucleotides.
Step 4. Merge paired reads. If the sequencing products are read pairs, DADA2 will merge the R1 and R2 ASVs into single sequences.
Merging is performed by aligning the denoised forward reads with the reverse-complement of the corresponding
denoised reverse reads, and then constructing the merged “contig” sequences.
By default, merged sequences are only output if the forward and reverse reads overlap by
at least 12 bases, and are identical to each other in the overlap region (but these conditions can be changed via function arguments).
Step 5. Remove chimera.
The core dada method corrects substitution and indel errors, but chimeras remain. Fortunately, the accuracy of sequence variants
after denoising makes identifying chimeric ASVs simpler than when dealing with fuzzy OTUs.
Chimeric sequences are identified if they can be exactly reconstructed by
combining a left-segment and a right-segment from two more abundant “parent” sequences. The frequency of chimeric sequences varies substantially
from dataset to dataset, and depends on on factors including experimental procedures and sample complexity.
Results
1. Read Quality Plots NGS sequence analaysis starts with visualizing the quality of the sequencing. Below are the quality plots of the first
sample for the R1 and R2 reads separately. In gray-scale is a heat map of the frequency of each quality score at each base position. The mean
quality score at each position is shown by the green line, and the quartiles of the quality score distribution by the orange lines.
The forward reads are usually of better quality. It is a common practice to trim the last few nucleotides to avoid less well-controlled errors
that can arise there. The trimming affects the downstream steps including error model building, merging and chimera calling. FOMC uses an empirical
approach to test many combinations of different trim length in order to achieve best final amplicon sequence variants (ASVs), see the next
section “Optimal trim length for ASVs”.
2. Optimal trim length for ASVs The final number of merged and chimera-filtered ASVs depends on the quality filtering (hence trimming) in the very beginning of the DADA2 pipeline.
In order to achieve highest number of ASVs, an empirical approach was used -
Create a random subset of each sample consisting of 5,000 R1 and 5,000 R2 (to reduce computation time)
Trim 10 bases at a time from the ends of both R1 and R2 up to 50 bases
For each combination of trimmed length (e.g., 300x300, 300x290, 290x290 etc), the trimmed reads are
subject to the entire DADA2 pipeline for chimera-filtered merged ASVs
The combination with highest percentage of the input reads becoming final ASVs is selected for the complete set of data
Below is the result of such operation, showing ASV percentages of total reads for all trimming combinations (1st Column = R1 lengths in bases; 1st Row = R2 lengths in bases):
R1/R2
281
271
261
251
241
231
321
74.93%
75.11%
75.29%
75.22%
74.19%
70.20%
311
75.30%
75.51%
75.53%
74.58%
70.95%
67.84%
301
75.17%
75.21%
74.31%
70.70%
67.96%
33.83%
291
73.60%
72.80%
69.28%
66.57%
32.90%
27.54%
281
71.95%
68.52%
65.88%
32.20%
27.40%
25.64%
271
68.55%
66.06%
32.39%
27.64%
25.93%
23.56%
Based on the above result, the trim length combination of R1 = 311 bases and R2 = 261 bases (highlighted red above), was chosen for generating final ASVs for all sequences.
This combination generated highest number of merged non-chimeric ASVs and was used for downstream analyses, if requested.
3. Error plots from learning the error rates
After DADA2 building the error model for the set of data, it is always worthwhile, as a sanity check if nothing else, to visualize the estimated error rates.
The error rates for each possible transition (A→C, A→G, …) are shown below. Points are the observed error rates for each consensus quality score.
The black line shows the estimated error rates after convergence of the machine-learning algorithm.
The red line shows the error rates expected under the nominal definition of the Q-score.
The ideal result would be the estimated error rates (black line) are a good fit to the observed rates (points), and the error rates drop
with increased quality as expected.
Forward Read R1 Error Plot
Reverse Read R2 Error Plot
The PDF version of these plots are available here:
4. DADA2 Result Summary The table below shows the summary of the DADA2 analysis,
tracking paired read counts of each samples for all the steps during DADA2 denoising process -
including end-trimming (filtered), denoising (denoisedF, denoisedF), pair merging (merged) and chimera removal (nonchim).
Sample ID
F15387.S01
F15387.S02
F15387.S03
F15387.S04
F15387.S05
F15387.S06
F15387.S07
F15387.S08
F15387.S09
F15387.S10
F15387.S11
F15387.S12
F15387.S13
F15387.S14
F15387.S15
F15387.S16
F15387.S17
F15387.S18
F15387.S19
F15387.S20
F15387.S21
F15387.S22
F15387.S23
F15387.S24
F15387.S25
F15387.S26
F15387.S27
F15387.S28
F15387.S29
F15387.S30
F15387.S31
F15387.S32
F15387.S33
F15387.S34
F15387.S35
F15387.S36
F15387.S37
F15387.S38
F15387.S39
F15387.S40
F15387.S41
F15387.S42
F15387.S43
F15387.S44
F15387.S45
F15387.S46
F15387.S47
F15387.S48
F15387.S49
F15387.S50
F15387.S51
F15387.S52
F15387.S53
F15387.S54
F15387.S55
F15387.S56
F15387.S57
F15387.S58
F15387.S59
F15387.S60
Row Sum
Percentage
input
361,493
280,395
319,447
415
272,414
347,346
288,985
324,348
432,635
240,997
384,707
307,230
343,843
516,393
300,408
268,897
296,285
379,552
245,423
340,262
338,227
282,502
390,302
305,857
379,384
354,687
266,524
307,589
324,830
350,541
230,694
271,925
332,230
291,717
292,344
453,684
323,370
232,528
265,915
279,670
377,094
313,157
261,059
334,846
313,498
245,710
400,411
299,002
382,474
294,373
377,975
361,751
284,823
315,312
274,886
265,621
284,812
237,271
555,881
208,056
18,914,007
100.00%
filtered
329,086
253,890
289,699
388
247,213
315,468
262,709
294,854
392,198
218,337
348,681
278,465
311,309
470,721
272,394
244,024
269,453
344,106
222,481
308,333
307,740
256,004
354,524
277,819
344,606
321,957
241,455
279,370
294,166
318,489
210,047
247,681
302,280
265,614
271,265
412,622
294,770
212,104
242,486
254,659
343,572
284,433
237,792
304,804
285,644
224,268
364,356
272,437
348,657
268,345
344,034
330,712
259,703
287,465
249,778
242,119
259,331
216,384
508,172
189,754
17,205,227
90.97%
denoisedF
326,625
250,314
284,622
348
243,900
310,578
254,389
288,949
386,513
211,249
342,545
272,234
305,611
455,990
265,978
238,551
265,682
333,807
218,659
302,502
301,934
250,146
348,833
273,618
339,623
317,280
237,389
275,620
288,478
313,267
209,231
246,721
301,218
264,669
270,384
409,457
292,126
210,859
241,142
253,009
342,506
283,624
237,117
303,973
284,764
221,271
361,275
269,449
346,233
265,797
342,958
329,975
259,038
286,511
249,143
240,734
257,405
214,734
504,280
188,498
16,993,335
89.85%
denoisedR
325,221
249,238
284,698
371
243,023
310,528
255,798
288,764
386,352
212,712
343,263
271,468
306,491
464,728
267,769
239,800
264,991
338,184
218,392
303,317
302,744
252,084
349,227
273,306
339,777
317,175
237,143
275,373
289,279
313,552
207,750
245,138
298,991
262,455
268,334
406,783
289,855
209,129
238,854
251,073
339,693
281,415
234,886
301,553
282,513
220,164
358,680
267,930
343,533
263,895
340,050
327,481
256,818
284,122
247,038
238,794
255,425
212,827
500,968
186,814
16,947,729
89.60%
merged
319,442
241,311
274,929
0
235,369
299,940
240,930
276,526
374,364
199,362
330,299
257,172
295,276
443,799
257,007
230,047
256,767
321,935
210,130
290,835
291,032
242,050
336,686
264,950
328,452
306,972
228,906
267,384
277,776
302,205
204,219
241,014
294,064
259,216
264,331
388,201
274,449
202,708
230,046
243,428
335,729
278,315
232,083
298,062
279,268
206,469
343,385
255,405
331,126
252,703
336,158
323,935
253,844
281,074
244,180
229,461
246,583
204,960
484,586
179,730
16,400,585
86.71%
nonchim
314,041
207,450
224,874
0
198,439
264,034
216,322
205,741
281,293
169,758
237,193
218,356
212,520
435,838
194,062
173,064
215,359
226,718
187,095
217,102
260,708
216,591
256,943
224,151
277,187
239,124
207,472
225,126
225,697
252,730
191,337
195,651
275,893
211,939
248,473
370,447
249,655
179,570
191,766
233,529
275,524
230,897
190,329
246,951
231,508
185,177
310,584
220,892
287,659
220,284
282,372
271,632
208,111
235,258
201,258
198,733
230,766
181,075
436,671
163,045
13,941,974
73.71%
This table can be downloaded as an Excel table below:
5. DADA2 Amplicon Sequence Variants (ASVs). A total of 9700 unique merged and chimera-free ASV sequences were identified, and their corresponding
read counts for each sample are available in the "ASV Read Count Table" with rows for the ASV sequences and columns for sample. This read count table can be used for
microbial profile comparison among different samples and the sequences provided in the table can be used to taxonomy assignment.
The species-level, open-reference 16S rRNA NGS reads taxonomy assignment pipeline
Version 20210310
1. Raw sequences reads in FASTA format were BLASTN-searched against a combined set of 16S rRNA reference sequences.
It consists of MOMD (version 0.1), the HOMD (version 15.2 http://www.homd.org/index.php?name=seqDownload&file&type=R ),
HOMD 16S rRNA RefSeq Extended Version 1.1 (EXT), GreenGene Gold (GG)
(http://greengenes.lbl.gov/Download/Sequence_Data/Fasta_data_files/gold_strains_gg16S_aligned.fasta.gz) ,
and the NCBI 16S rRNA reference sequence set (https://ftp.ncbi.nlm.nih.gov/blast/db/16S_ribosomal_RNA.tar.gz).
These sequences were screened and combined to remove short sequences (<1000nt), chimera, duplicated and sub-sequences,
as well as sequences with poor taxonomy annotation (e.g., without species information).
This process resulted in 1,015 from HOMD V15.22, 495 from EXT, 3,940 from GG and 18,044 from NCBI, a total of 25,120 sequences.
Altogether these sequence represent a total of 15,601 oral and non-oral microbial species.
The NCBI BLASTN version 2.7.1+ (Zhang et al, 2000) was used with the default parameters.
Reads with ≥ 98% sequence identity to the matched reference and ≥ 90% alignment length
(i.e., ≥ 90% of the read length that was aligned to the reference and was used to calculate
the sequence percent identity) were classified based on the taxonomy of the reference sequence
with highest sequence identity. If a read matched with reference sequences representing
more than one species with equal percent identity and alignment length, it was subject
to chimera checking with USEARCH program version v8.1.1861 (Edgar 2010). Non-chimeric reads with multi-species
best hits were considered valid and were assigned with a unique species
notation (e.g., spp) denoting unresolvable multiple species.
2. Unassigned reads (i.e., reads with < 98% identity or < 90% alignment length) were pooled together and reads < 200 bases were
removed. The remaining reads were subject to the de novo
operational taxonomy unit (OTU) calling and chimera checking using the USEARCH program version v8.1.1861 (Edgar 2010).
The de novo OTU calling and chimera checking was done using 98% as the sequence identity cutoff, i.e., the species-level OTU.
The output of this step produced species-level de novo clustered OTUs with 98% identity.
Representative reads from each of the OTUs/species were then BLASTN-searched
against the same reference sequence set again to determine the closest species for
these potential novel species. These potential novel species were pooled together with the reads that were signed to specie-level in
the previous step, for down-stream analyses.
Reference:
Edgar RC. Search and clustering orders of magnitude faster than BLAST.
Bioinformatics. 2010 Oct 1;26(19):2460-1. doi: 10.1093/bioinformatics/btq461. Epub 2010 Aug 12. PubMed PMID: 20709691.
3. Designations used in the taxonomy:
1) Taxonomy levels are indicated by these prefixes:
k__: domain/kingdom
p__: phylum
c__: class
o__: order
f__: family
g__: genus
s__: species
Example:
k__Bacteria;p__Firmicutes;c__Clostridia;o__Clostridiales;f__Lachnospiraceae;g__Blautia;s__faecis
2) Unique level identified – known species:
k__Bacteria;p__Firmicutes;c__Clostridia;o__Clostridiales;f__Lachnospiraceae;g__Roseburia;s__hominis
The above example shows some reads match to a single species (all levels are unique)
3) Non-unique level identified – known species:
k__Bacteria;p__Firmicutes;c__Clostridia;o__Clostridiales;f__Lachnospiraceae;g__Roseburia;s__multispecies_spp123_3
The above example “s__multispecies_spp123_3” indicates certain reads equally match to 3 species of the
genus Roseburia; the “spp123” is a temporally assigned species ID.
k__Bacteria;p__Firmicutes;c__Clostridia;o__Clostridiales;f__Lachnospiraceae;g__multigenus;s__multispecies_spp234_5
The above example indicates certain reads match equally to 5 different species, which belong to multiple genera.;
the “spp234” is a temporally assigned species ID.
4) Unique level identified – unknown species, potential novel species:
k__Bacteria;p__Firmicutes;c__Clostridia;o__Clostridiales;f__Lachnospiraceae;g__Roseburia;s__ hominis_nov_97%
The above example indicates that some reads have no match to any of the reference sequences with
sequence identity ≥ 98% and percent coverage (alignment length) ≥ 98% as well. However this groups
of reads (actually the representative read from a de novo OTU) has 96% percent identity to
Roseburia hominis, thus this is a potential novel species, closest to Roseburia hominis.
(But they are not the same species).
5) Multiple level identified – unknown species, potential novel species:
k__Bacteria;p__Firmicutes;c__Clostridia;o__Clostridiales;f__Lachnospiraceae;g__Roseburia;s__ multispecies_sppn123_3_nov_96%
The above example indicates that some reads have no match to any of the reference sequences
with sequence identity ≥ 98% and percent coverage (alignment length) ≥ 98% as well.
However this groups of reads (actually the representative read from a de novo OTU)
has 96% percent identity equally to 3 species in Roseburia. Thus this is no single
closest species, instead this group of reads match equally to multiple species at 96%.
Since they have passed chimera check so they represent a novel species. “sppn123” is a
temporary ID for this potential novel species.
4. The taxonomy assignment algorithm is illustrated in this flow char below:
Read Taxonomy Assignment - Result Summary *
Code
Category
MPC=0% (>=1 read)
MPC=0.01%(>=952 reads)
A
Total reads
13,941,974
13,941,974
B
Total assigned reads
9,524,964
9,524,964
C
Assigned reads in species with read count < MPC
0
99,343
D
Assigned reads in samples with read count < 500
0
0
E
Total samples
59
59
F
Samples with reads >= 500
59
59
G
Samples with reads < 500
0
0
H
Total assigned reads used for analysis (B-C-D)
9,524,964
9,425,621
I
Reads assigned to single species
6,490,163
6,460,058
J
Reads assigned to multiple species
125,458
124,248
K
Reads assigned to novel species
2,909,343
2,841,315
L
Total number of species
743
330
M
Number of single species
233
153
N
Number of multi-species
20
14
O
Number of novel species
490
163
P
Total unassigned reads
4,417,010
4,417,010
Q
Chimeric reads
151,123
151,123
R
Reads without BLASTN hits
3,219,135
3,219,135
S
Others: short, low quality, singletons, etc.
1,046,752
1,046,752
A=B+P=C+D+H+Q+R+S
E=F+G
B=C+D+H
H=I+J+K
L=M+N+O
P=Q+R+S
* MPC = Minimal percent (of all assigned reads) read count per species, species with read count < MPC were removed.
* Samples with reads < 500 were removed from downstream analyses.
* The assignment result from MPC=0.1% was used in the downstream analyses.
Read Taxonomy Assignment - ASV Species-Level Read Counts Table
This table shows the read counts for each sample (columns) and each species identified based on the ASV sequences.
The downstream analyses were based on this table.
The species listed in the table has full taxonomy and a dynamically assigned species ID specific to this report.
When some reads match with the reference sequences of more than one species equally (i.e., same percent identiy and alignmnet coverage),
they can't be assigned to a particular species. Instead, they are assigned to multiple species with the species notaton
"s__multispecies_spp2_2". In this notation, spp2 is the dynamic ID assigned to these reads that hit multiple sequences and the "_2"
at the end of the notation means there are two species in the spp2.
You can look up which species are included in the multi-species assignment, in this table below:
Another type of notation is "s__multispecies_sppn2_2", in which the "n" in the sppn2 means it's a potential novel species because all the reads in this species
have < 98% idenity to any of the reference sequences. They were grouped together based on de novo OTU clustering at 98% identity cutoff. And then
a representative sequence was chosed to BLASTN search against the reference database to find the closest match (but will still be < 98%). This representative
sequence also matched equally to more than one species, hence the "spp" was given in the label.
In ecology, alpha diversity (α-diversity) is the mean species diversity in sites or habitats at a local scale.
The term was introduced by R. H. Whittaker[1][2] together with the terms beta diversity (β-diversity)
and gamma diversity (γ-diversity). Whittaker's idea was that the total species diversity in a landscape
(gamma diversity) is determined by two different things, the mean species diversity in sites or habitats
at a more local scale (alpha diversity) and the differentiation among those habitats (beta diversity).
Diversity measures are affected by the sampling depth. Rarefaction is a technique to assess species richness from the results of sampling. Rarefaction allows
the calculation of species richness for a given number of individual samples, based on the construction
of so-called rarefaction curves. This curve is a plot of the number of species as a function of the
number of samples. Rarefaction curves generally grow rapidly at first, as the most common species are found,
but the curves plateau as only the rarest species remain to be sampled.
The two main factors taken into account when measuring diversity are richness and evenness.
Richness is a measure of the number of different kinds of organisms present in a particular area.
Evenness compares the similarity of the population size of each of the species present. There are
many different ways to measure the richness and evenness. These measurements are called "estimators" or "indices".
Below is a diversity of 3 commonly used indices showing the values for all the samples (dots) and in groups (boxes).
 
Alpha Diversity Box Plots for All Groups
 
 
 
Alpha Diversity Box Plots for Individual Comparisons
To test whether the alpha diversity among different comparison groups are different statistically, we use the Kruskal Wallis H test
provided the "alpha-group-significance" fucntion in the QIIME 2 "diversity" package. Kruskal Wallis H test is the non-parametric alternative
to the One Way ANOVA. Non-parametric means that the test doesn’t assume your data comes from a particular distribution. The H test is used
when the assumptions for ANOVA aren’t met (like the assumption of normality). It is sometimes called the one-way ANOVA on ranks,
as the ranks of the data values are used in the test rather than the actual data points. The H test determines whether the medians of two
or more groups are different.
Below are the Kruskal Wallis H test results for each comparison based on three different alpha diversity measures: 1) Observed species (features),
2) Shannon index, and 3) Simpson index.
Beta diversity compares the similarity (or dissimilarity) of microbial profiles between different
groups of samples. There are many different similarity/dissimilarity metrics.
In general, they can be quantitative (using sequence abundance, e.g., Bray-Curtis or weighted UniFrac)
or binary (considering only presence-absence of sequences, e.g., binary Jaccard or unweighted UniFrac).
They can be even based on phylogeny (e.g., UniFrac metrics) or not (non-UniFrac metrics, such as Bray-Curtis, etc.).
For microbiome studies, species profiles of samples can be compared with the Bray-Curtis dissimilarity,
which is based on the count data type. The pair-wise Bray-Curtis dissimilarity matrix of all samples can then be
subject to either multi-dimensional scaling (MDS, also known as PCoA) or non-metric MDS (NMDS).
MDS/PCoA is a
scaling or ordination method that starts with a matrix of similarities or dissimilarities
between a set of samples and aims to produce a low-dimensional graphical plot of the data
in such a way that distances between points in the plot are close to original dissimilarities.
NMDS is similar to MDS, however it does not use the dissimilarities data, instead it converts them into
the ranks and use these ranks in the calculation.
In our beta diversity analysis, Bray-Curtis dissimilarity matrix was first calculated and then plotted by the PCoA and
NMDS separately. Below are beta diveristy results for all groups together:
 
 
NMDS and PCoA Plots for All Groups
 
 
 
 
 
The above PCoA and NMDS plots are based on count data. The count data can also be transformed into centered log ratio (CLR)
for each species. The CLR data is no longer count data and cannot be used in Bray-Curtis dissimilarity calculation. Instead
CLR can be compared with Euclidean distances. When CLR data are compared by Euclidean distance, the distance is also called
Aitchison distance.
Below are the NMDS and PCoA plots of the Aitchison distances of the samples:
Interactive 3D PCoA Plots - Bray-Curtis Dissimilarity
 
 
 
Interactive 3D PCoA Plots - Euclidean Distance
 
 
 
Interactive 3D PCoA Plots - Correlation Coefficients
 
 
 
Group Significance of Beta-diversity Indices
To test whether the between-group dissimilarities are significantly greater than the within-group dissimilarities,
the "beta-group-significance" function provided in the QIIME 2 "diversity" package was used with PERMANOVA
(permutational multivariate analysis of variance) as the group significant testing method.
Three beta diversity matrics were used: 1) Bray–Curtis dissimilarity 2) Correlation coefficient matrix , and 3) Aitchison distance
(Euclidean distance between clr-transformed compositions).
16S rRNA next generation sequencing (NGS) generates a fixed number of reads that reflect the proportion of different
species in a sample, i.e., the relative abundance of species, instead of the absolute abundance.
In Mathematics, measurements involving probabilities, proportions, percentages, and ppm can all
be thought of as compositional data. This makes the microbiome read count data “compositional”
(Gloor et al, 2017). In general, compositional data represent parts of a whole which only
carry relative information (http://www.compositionaldata.com/).
The problem of microbiome data being compositional arises when comparing two groups of samples for
identifying “differentially abundant” species. A species with the same absolute abundance between two
conditions, its relative abundances in the two conditions (e.g., percent abundance) can become different
if the relative abundance of other species change greatly. This problem can lead to incorrect conclusion
in terms of differential abundance for microbial species in the samples.
When studying differential abundance (DA), the current better approach is to transform the read count
data into log ratio data. The ratios are calculated between read counts of all species in a sample to
a “reference” count (e.g., mean read count of the sample). The log ratio data allow the detection of DA
species without being affected by percentage bias mentioned above
In this report, a compositional DA analysis tool “ANCOM” (analysis of composition of microbiomes)
was used. ANCOM transforms the count data into log-ratios and thus is more suitable for comparing
the composition of microbiomes in two or more populations. "ANCOM" generates a table of features with
W-statistics and whether the null hypothesis is rejected. The “W” is the W-statistic, or number of
features that a single feature is tested to be significantly different against. Hence the higher the "W"
the more statistical sifgnificant that a feature/species is differentially abundant.
References:
Gloor GB, Macklaim JM, Pawlowsky-Glahn V, Egozcue JJ. Microbiome Datasets Are Compositional: And This Is Not Optional. Front Microbiol.
2017 Nov 15;8:2224. doi: 10.3389/fmicb.2017.02224. PMID: 29187837; PMCID: PMC5695134.
Mandal S, Van Treuren W, White RA, Eggesbø M, Knight R, Peddada SD. Analysis of composition of
microbiomes: a novel method for studying microbial composition. Microb Ecol Health Dis.
2015 May 29;26:27663. doi: 10.3402/mehd.v26.27663. PMID: 26028277; PMCID: PMC4450248.
Lin H, Peddada SD. Analysis of compositions of microbiomes with bias correction.
Nat Commun. 2020 Jul 14;11(1):3514. doi: 10.1038/s41467-020-17041-7.
PMID: 32665548; PMCID: PMC7360769.
Starting with version V1.2, we include the results of ANCOM-BC (Analysis of Compositions of
Microbiomes with Bias Correction) (Lin and Peddada 2020). ANCOM-BC is an updated version of "ANCOM" that:
(a) provides statistically valid test with appropriate p-values,
(b) provides confidence intervals for differential abundance of each taxon,
(c) controls the False Discovery Rate (FDR),
(d) maintains adequate power, and
(e) is computationally simple to implement.
The bias correction (BC) addresses a challenging problem of the bias introduced by differences in
the sampling fractions across samples. This bias has been a major hurdle in performing DA analysis of microbiome data.
ANCOM-BC estimates the unknown sampling fractions and corrects the bias induced by their differences among samples.
The absolute abundance data are modeled using a linear regression framework.
Starting with version V1.43, ANCOM-BC2 is used instead of ANCOM-BC, So that multiple pairwise directional test can be performed (if there are more than two gorups in a comparison).
When performing pairwise directional test, the mixed directional false discover rate (mdFDR) is taken into account. The mdFDR
is the combination of false discovery rate due to multiple testing, multiple pairwise comparisons, and directional tests within
each pairwise comparison. The mdFDR is adopted from (Guo, Sarkar, and Peddada 2010; Grandhi, Guo, and Peddada 2016). For more detail
explanation and additional features of ANCOM-BC2 please see author's documentation.
References:
Lin H, Peddada SD. Analysis of compositions of microbiomes with bias correction.
Nat Commun. 2020 Jul 14;11(1):3514. doi: 10.1038/s41467-020-17041-7.
PMID: 32665548; PMCID: PMC7360769.
Guo W, Sarkar SK, Peddada SD. Controlling false discoveries in multidimensional directional decisions, with applications to gene expression data on ordered categories. Biometrics. 2010 Jun;66(2):485-92. doi: 10.1111/j.1541-0420.2009.01292.x. Epub 2009 Jul 23. PMID: 19645703; PMCID: PMC2895927.
Grandhi A, Guo W, Peddada SD. A multiple testing procedure for multi-dimensional pairwise comparisons with application to gene expression studies. BMC Bioinformatics. 2016 Feb 25;17:104. doi: 10.1186/s12859-016-0937-5. PMID: 26917217; PMCID: PMC4768411.
LEfSe (Linear Discriminant Analysis Effect Size) is an alternative method to find "organisms, genes, or
pathways that consistently explain the differences between two or more microbial communities" (Segata et al., 2011).
Specifically, LEfSe uses rank-based Kruskal-Wallis (KW) sum-rank test to detect features with significant
differential (relative) abundance with respect to the class of interest. Since it is rank-based, instead of proportional based,
the differential species identified among the comparison groups is less biased (than percent abundance based).
Reference:
Segata N, Izard J, Waldron L, Gevers D, Miropolsky L, Garrett WS, Huttenhower C. Metagenomic biomarker discovery and explanation. Genome Biol. 2011 Jun 24;12(6):R60. doi: 10.1186/gb-2011-12-6-r60. PMID: 21702898; PMCID: PMC3218848.
To analyze the co-occurrence or co-exclusion between microbial species among different samples, network correlation
analysis tools are usually used for this purpose. However, microbiome count data are compositional. If count data are normalized to the total number of counts in the
sample, the data become not independent and traditional statistical metrics (e.g., correlation) for the detection
of specie-species relationships can lead to spurious results. In addition, sequencing-based studies typically
measure hundreds of OTUs (species) on few samples; thus, inference of OTU-OTU association networks is severely
under-powered. Here we use SPIEC-EASI (SParse InversECovariance Estimation
for Ecological Association Inference), a statistical method for the inference of microbial
ecological networks from amplicon sequencing datasets that addresses both of these issues (Kurtz et al., 2015).
SPIEC-EASI combines data transformations developed for compositional data analysis with a graphical model
inference framework that assumes the underlying ecological association network is sparse. SPIEC-EASI provides
two algorithms for network inferencing – 1) Meinshausen-Bühlmann's neighborhood selection (MB method) and inverse covariance selection
(GLASSO method, i.e., graphical least absolute shrinkage and selection operator). This is fundamentally distinct from SparCC, which essentially estimate pairwise correlations. In addition
to these two methods, we provide the results of a third method - SparCC (Sparse Correlations for Compositional Data)(Friedman & Alm 2012), which
is also a method for inferring correlations from compositional data. SparCC estimates the linear Pearson correlations between
the log-transformed components.
References:
Kurtz ZD, Müller CL, Miraldi ER, Littman DR, Blaser MJ, Bonneau RA. Sparse and compositionally robust inference of microbial ecological networks. PLoS Comput Biol. 2015 May 7;11(5):e1004226. doi: 10.1371/journal.pcbi.1004226. PMID: 25950956; PMCID: PMC4423992.
The results of this analysis are for research purpose only. They are not intended to diagnose, treat, cure, or prevent any disease. Forsyth and FOMC
are not responsible for use of information provided in this report outside the research area.