{
"METABOLOMICS WORKBENCH":{"STUDY_ID":"ST001964","ANALYSIS_ID":"AN003202","VERSION":"1","CREATED_ON":"November 4, 2021, 9:33 am"},

"PROJECT":{"PROJECT_TITLE":"Quantitative genome-scale analysis of human liver reveals dysregulation of glycosphingolipid pathways in progressive nonalcoholic fatty liver disease","PROJECT_SUMMARY":"Nonalcoholic fatty liver disease (NAFLD) is a well-defined chronic liver diseases closely related with metabolic disorders. The prevalence of NAFLD is rapidly increasing worldwide, while the pathology and the underlying mechanisms driving NAFLD are not fully understood. In NAFLD, a series of metabolic changes takes place in the liver. However, the alteration of the metabolic pathways in the human liver along the progression of NAFLD, i.e., the transition from nonalcoholic steatosis (NAFL) to steatohepatitis (NASH) through cirrhosis remains to be discovered. Here, we sought to examine the metabolic pathways of the human liver across the full histological spectrum of NAFLD. We analyzed the whole liver tissue transcriptomic (RNA-Seq) and serum metabolomics data obtained from a large, prospectively enrolled cohort of histologically characterized patients derived from the European NAFLD Registry (n=206), and developed genome-scale metabolic models (GEMs) of human hepatocytes at different stages of NAFLD. The integrative approach employed in this study has enabled us to understand the regulation of the metabolic pathways of human liver in NAFL, and with progressive NASH-associated fibrosis (F0–F4). Our study identified several metabolic signatures in the liver and blood of these patients, specifically highlighting the alteration of vitamins (A, E) and glycosphingolipids (GSLs), and their link with complex glycosaminoglycans (GAGs) in advanced fibrosis. The study provides insights into the underlying pathways of the progressive fibrosing steatohepatitis. Furthermore, by applying genome-scale metabolic modeling (GSMM), we were able to identify the metabolic differences among carriers of widely validated genetic variants associated with NAFLD / NASH disease severity in three genes (PNPLA3, TM6SF2 and HSD17B13).","INSTITUTE":"University of Turku","LAST_NAME":"Sen","FIRST_NAME":"Partho","ADDRESS":"Systems Medicine group, Turku Bioscience, University of Turku (UTU), Tykistökatu 6B, P.O. Box 123 FIN-20521 Turku, Finland","EMAIL":"partho.sen@utu.fi","PHONE":"Phone: +358 469608145"},

"STUDY":{"STUDY_TITLE":"Quantitative genome-scale analysis of human liver reveals dysregulation of glycosphingolipid pathways in progressive nonalcoholic fatty liver disease","STUDY_SUMMARY":"Nonalcoholic fatty liver disease (NAFLD) is a well-defined chronic liver diseases closely related with metabolic disorders. The prevalence of NAFLD is rapidly increasing worldwide, while the pathology and the underlying mechanisms driving NAFLD are not fully understood. In NAFLD, a series of metabolic changes takes place in the liver. However, the alteration of the metabolic pathways in the human liver along the progression of NAFLD, i.e., the transition from nonalcoholic steatosis (NAFL) to steatohepatitis (NASH) through cirrhosis remains to be discovered. Here, we sought to examine the metabolic pathways of the human liver across the full histological spectrum of NAFLD. We analyzed the whole liver tissue transcriptomic (RNA-Seq) and serum metabolomics data obtained from a large, prospectively enrolled cohort of histologically characterized patients derived from the European NAFLD Registry (n=206), and developed genome-scale metabolic models (GEMs) of human hepatocytes at different stages of NAFLD. The integrative approach employed in this study has enabled us to understand the regulation of the metabolic pathways of human liver in NAFL, and with progressive NASH-associated fibrosis (F0–F4). Our study identified several metabolic signatures in the liver and blood of these patients, specifically highlighting the alteration of vitamins (A, E) and glycosphingolipids (GSLs), and their link with complex glycosaminoglycans (GAGs) in advanced fibrosis. The study provides insights into the underlying pathways of the progressive fibrosing steatohepatitis. Furthermore, by applying genome-scale metabolic modeling (GSMM), we were able to identify the metabolic differences among carriers of widely validated genetic variants associated with NAFLD / NASH disease severity in three genes (PNPLA3, TM6SF2 and HSD17B13).","INSTITUTE":"University of Turku","LAST_NAME":"Sen","FIRST_NAME":"Partho","ADDRESS":"Systems Medicine group, Turku Bioscience, University of Turku (UTU), Tykistökatu 6B, P.O. Box 123 FIN-20521 Turku, Finland","EMAIL":"partho.sen@utu.fi","PHONE":"Phone: +358 469608145"},

"SUBJECT":{"SUBJECT_TYPE":"Human","SUBJECT_SPECIES":"Homo sapiens","TAXONOMY_ID":"9606","GENDER":"Male and female"},
"SUBJECT_SAMPLE_FACTORS":[
{
"Subject ID":"-",
"Sample ID":"1022384032",
"Factors":{"NAFLD.Status":"NASH_F2"},
"Additional sample data":{"RAW_FILE_NAME":"0001_GC_20180723_0321.mzML"}
},
{
"Subject ID":"-",
"Sample ID":"1022385756",
"Factors":{"NAFLD.Status":"NASH_F3"},
"Additional sample data":{"RAW_FILE_NAME":"0001_GC_20180730_0423.mzML"}
},
{
"Subject ID":"-",
"Sample ID":"1022385774",
"Factors":{"NAFLD.Status":"NASH_F3"},
"Additional sample data":{"RAW_FILE_NAME":"0001_GC_20180703_0083.mzML"}
},
{
"Subject ID":"-",
"Sample ID":"1022385788",
"Factors":{"NAFLD.Status":"NAFL"},
"Additional sample data":{"RAW_FILE_NAME":"0001_GC_20180720_0300.mzML"}
},
{
"Subject ID":"-",
"Sample ID":"1022385839",
"Factors":{"NAFLD.Status":"NAFL"},
"Additional sample data":{"RAW_FILE_NAME":"0001_GC_20180719_0289.mzML"}
},
{
"Subject ID":"-",
"Sample ID":"1022385844",
"Factors":{"NAFLD.Status":"NASH_F2"},
"Additional sample data":{"RAW_FILE_NAME":"0001_GC_20180801_0474.mzML"}
},
{
"Subject ID":"-",
"Sample ID":"1022385855",
"Factors":{"NAFLD.Status":"NASH_F4 / cirrhosis"},
"Additional sample data":{"RAW_FILE_NAME":"0001_GC_20180719_0290.mzML"}
},
{
"Subject ID":"-",
"Sample ID":"1022385860",
"Factors":{"NAFLD.Status":"NAFL"},
"Additional sample data":{"RAW_FILE_NAME":"0001_GC_20180720_0319.mzML"}
},
{
"Subject ID":"-",
"Sample ID":"1022385877",
"Factors":{"NAFLD.Status":"NAFL"},
"Additional sample data":{"RAW_FILE_NAME":"0030_GC_20190205_0053.mzML"}
},
{
"Subject ID":"-",
"Sample ID":"1022385893",
"Factors":{"NAFLD.Status":"NASH_F2"},
"Additional sample data":{"RAW_FILE_NAME":"0001_GC_20180726_0393.mzML"}
},
{
"Subject ID":"-",
"Sample ID":"1022385911",
"Factors":{"NAFLD.Status":"NASH_F3"},
"Additional sample data":{"RAW_FILE_NAME":"0001_GC_20180711_0192.mzML"}
},
{
"Subject ID":"-",
"Sample ID":"1022385916",
"Factors":{"NAFLD.Status":"NASH_F3"},
"Additional sample data":{"RAW_FILE_NAME":"0001_GC_20180803_0515.mzML"}
},
{
"Subject ID":"-",
"Sample ID":"1022385926",
"Factors":{"NAFLD.Status":"NASH_F0/1"},
"Additional sample data":{"RAW_FILE_NAME":"0001_GC_20180711_0195.mzML"}
},
{
"Subject ID":"-",
"Sample ID":"1022385928",
"Factors":{"NAFLD.Status":"NASH_F3"},
"Additional sample data":{"RAW_FILE_NAME":"0001_GC_20180814_0641.mzML"}
},
{
"Subject ID":"-",
"Sample ID":"1022385934",
"Factors":{"NAFLD.Status":"NASH_F2"},
"Additional sample data":{"RAW_FILE_NAME":"0001_GC_20180731_0443.mzML"}
},
{
"Subject ID":"-",
"Sample ID":"1022386136",
"Factors":{"NAFLD.Status":"NASH_F2"},
"Additional sample data":{"RAW_FILE_NAME":"0001_GC_20180720_0305.mzML"}
},
{
"Subject ID":"-",
"Sample ID":"1022386159",
"Factors":{"NAFLD.Status":"NASH_F3"},
"Additional sample data":{"RAW_FILE_NAME":"0001_GC_20180621_0051.mzML"}
},
{
"Subject ID":"-",
"Sample ID":"1022386190",
"Factors":{"NAFLD.Status":"NAFL"},
"Additional sample data":{"RAW_FILE_NAME":"0001_GC_20180813_0638.mzML"}
},
{
"Subject ID":"-",
"Sample ID":"1022386192",
"Factors":{"NAFLD.Status":"NASH_F2"},
"Additional sample data":{"RAW_FILE_NAME":"0001_GC_20180815_0675.mzML"}
},
{
"Subject ID":"-",
"Sample ID":"1022386202",
"Factors":{"NAFLD.Status":"NAFL"},
"Additional sample data":{"RAW_FILE_NAME":"0001_GC_20180816_0694.mzML"}
},
{
"Subject ID":"-",
"Sample ID":"1022386214",
"Factors":{"NAFLD.Status":"NASH_F2"},
"Additional sample data":{"RAW_FILE_NAME":"0001_GC_20180712_0216.mzML"}
},
{
"Subject ID":"-",
"Sample ID":"1022386364",
"Factors":{"NAFLD.Status":"NASH_F3"},
"Additional sample data":{"RAW_FILE_NAME":"0001_GC_20180730_0421.mzML"}
},
{
"Subject ID":"-",
"Sample ID":"1022386427",
"Factors":{"NAFLD.Status":"NAFL"},
"Additional sample data":{"RAW_FILE_NAME":"0001_GC_20180718_0261.mzML"}
},
{
"Subject ID":"-",
"Sample ID":"1022386429",
"Factors":{"NAFLD.Status":"NASH_F0/1"},
"Additional sample data":{"RAW_FILE_NAME":"0001_GC_20180814_0645.mzML"}
},
{
"Subject ID":"-",
"Sample ID":"1022386446",
"Factors":{"NAFLD.Status":"NASH_F2"},
"Additional sample data":{"RAW_FILE_NAME":"0001_GC_20180806_0525.mzML"}
},
{
"Subject ID":"-",
"Sample ID":"1022386453",
"Factors":{"NAFLD.Status":"NASH_F2"},
"Additional sample data":{"RAW_FILE_NAME":"0001_GC_20180816_0683.mzML"}
},
{
"Subject ID":"-",
"Sample ID":"1022386463",
"Factors":{"NAFLD.Status":"NAFL"},
"Additional sample data":{"RAW_FILE_NAME":"0001_GC_20180705_0120.mzML"}
},
{
"Subject ID":"-",
"Sample ID":"1022386485",
"Factors":{"NAFLD.Status":"NASH_F2"},
"Additional sample data":{"RAW_FILE_NAME":"0001_GC_20180816_0684.mzML"}
},
{
"Subject ID":"-",
"Sample ID":"1022386508",
"Factors":{"NAFLD.Status":"NASH_F3"},
"Additional sample data":{"RAW_FILE_NAME":"0001_GC_20180727_0417.mzML"}
},
{
"Subject ID":"-",
"Sample ID":"1022386899",
"Factors":{"NAFLD.Status":"NASH_F3"},
"Additional sample data":{"RAW_FILE_NAME":"0001_GC_20180712_0210.mzML"}
},
{
"Subject ID":"-",
"Sample ID":"1022386907",
"Factors":{"NAFLD.Status":"NASH_F2"},
"Additional sample data":{"RAW_FILE_NAME":"0001_GC_20180706_0124.mzML"}
},
{
"Subject ID":"-",
"Sample ID":"1022386912",
"Factors":{"NAFLD.Status":"NASH_F2"},
"Additional sample data":{"RAW_FILE_NAME":"0001_GC_20180807_0546.mzML"}
},
{
"Subject ID":"-",
"Sample ID":"1022386914",
"Factors":{"NAFLD.Status":"NASH_F0/1"},
"Additional sample data":{"RAW_FILE_NAME":"0001_GC_20180712_0201.mzML"}
},
{
"Subject ID":"-",
"Sample ID":"1022386933",
"Factors":{"NAFLD.Status":"NASH_F2"},
"Additional sample data":{"RAW_FILE_NAME":"0001_GC_20180716_0230.mzML"}
},
{
"Subject ID":"-",
"Sample ID":"1022386957",
"Factors":{"NAFLD.Status":"NASH_F4 / cirrhosis"},
"Additional sample data":{"RAW_FILE_NAME":"0001_GC_20180711_0188.mzML"}
},
{
"Subject ID":"-",
"Sample ID":"1022386958",
"Factors":{"NAFLD.Status":"NAFL"},
"Additional sample data":{"RAW_FILE_NAME":"0001_GC_20180730_0428.mzML"}
},
{
"Subject ID":"-",
"Sample ID":"1022386960",
"Factors":{"NAFLD.Status":"NASH_F3"},
"Additional sample data":{"RAW_FILE_NAME":"0001_GC_20180801_0467.mzML"}
},
{
"Subject ID":"-",
"Sample ID":"1022386978",
"Factors":{"NAFLD.Status":"NASH_F2"},
"Additional sample data":{"RAW_FILE_NAME":"0001_GC_20180727_0409.mzML"}
},
{
"Subject ID":"-",
"Sample ID":"1022386981",
"Factors":{"NAFLD.Status":"NASH_F3"},
"Additional sample data":{"RAW_FILE_NAME":"0001_GC_20180703_0084.mzML"}
},
{
"Subject ID":"-",
"Sample ID":"1022387147",
"Factors":{"NAFLD.Status":"NASH_F4 / cirrhosis"},
"Additional sample data":{"RAW_FILE_NAME":"0001_GC_20180815_0671.mzML"}
},
{
"Subject ID":"-",
"Sample ID":"1022387276",
"Factors":{"NAFLD.Status":"NASH_F4 / cirrhosis"},
"Additional sample data":{"RAW_FILE_NAME":"0001_GC_20180731_0446.mzML"}
}
],
"COLLECTION":{"COLLECTION_SUMMARY":"Serum samples were randomized and sample preparation was carried out as described previously (Castilloet al. 2011). In summary, 400 µL of MeOH containing ISTDs (heptadecanoic acid, deuterium-labeled DL-valine, deuterium-labeled succinic acid, and deuterium-labeled glutamic acid, c = 1 µg/mL) was added to 30 µl of the serum samples which were vortex mixed and incubated on ice for 30 min after which they were centrifuged (9400 × g, 3 min) and 350 µL of the supernatant was collected after centrifugation. The solvent was evaporated to dryness and 25 µL of MOX reagent was added and the sample was incubated for 60 min at 45 °C. 25 µL of MSTFA was added and after 60 min incubation at 45 °C 25 µL of the retention index standard mixture (n-alkanes, c=10 µg/mL) was added. The analyses were carried out on an Agilent 7890B GC coupled to 7200 QTOF MS. Injection volume was 1 µL with 100:1 cold solvent split on PTV at 70 °C, heating to 300 °C at 120 °C/minute. Column: Zebron ZB-SemiVolatiles. Length: 20m, I.D. 0.18mm, film thickness: 0.18 µm. With initial Helium flow 1.2 mL/min, increasing to 2.4 mL/min after 16 mins. Oven temperature program: 50 °C (5 min), then to 270°C at 20 °C/min and then to 300 °C at 40 °C/min (5 min). EI source: 250 °C, 70 eV electron energy, 35µA emission, solvent delay 3 min. Mass range 55 to 650 amu, acquisition rate 5 spectra/s, acquisition time 200 ms/spectrum. Quad at 150 °C, 1.5 mL/min N2 collision flow, aux-2 temperature: 280 °C. Calibration curves were constructed using alanine, citric acid, fumaric acid, glutamic acid, glycine, lactic acid, malic acid, 2-hydroxybutyric acid, 3-hydroxybutyric acid, linoleic acid, oleic acid, palmitic acid, stearic acid, cholesterol, fructose, glutamine, indole-3-propionic acid, isoleucine, leucine, proline, succinic acid, valine, asparagine, aspartic acid, arachidonic acid, glycerol-3-phosphate, lysine, methionine, ornithine, phenylalanine, serine and threonine purchased from Sigma-Aldrich (St. Louis, MO, USA) at concentration range of 0.1 to 80 µg/mL. An aliquot of each sample was collected and pooled and used as quality control samples, together with a NIST SRM 1950 serum sample and an in-house pooled serum sample. Relative standard deviations (% RSDs) of the metabolite concentrations in control serum samples showed % RSDs within accepted analytical limits at averages of 27.2% and 29.2% for in-house QC abd pooled QC samples.","SAMPLE_TYPE":"Blood (serum)"},

"TREATMENT":{"TREATMENT_SUMMARY":"No treatment applied."},

"SAMPLEPREP":{"SAMPLEPREP_SUMMARY":"Serum samples were randomized and sample preparation was carried out as described previously (Castilloet al. 2011). In summary, 400 µL of MeOH containing ISTDs (heptadecanoic acid, deuterium-labeled DL-valine, deuterium-labeled succinic acid, and deuterium-labeled glutamic acid, c = 1 µg/mL) was added to 30 µl of the serum samples which were vortex mixed and incubated on ice for 30 min after which they were centrifuged (9400 × g, 3 min) and 350 µL of the supernatant was collected after centrifugation. The solvent was evaporated to dryness and 25 µL of MOX reagent was added and the sample was incubated for 60 min at 45 °C. 25 µL of MSTFA was added and after 60 min incubation at 45 °C 25 µL of the retention index standard mixture (n-alkanes, c=10 µg/mL) was added. The analyses were carried out on an Agilent 7890B GC coupled to 7200 QTOF MS. Injection volume was 1 µL with 100:1 cold solvent split on PTV at 70 °C, heating to 300 °C at 120 °C/minute. Column: Zebron ZB-SemiVolatiles. Length: 20m, I.D. 0.18mm, film thickness: 0.18 µm. With initial Helium flow 1.2 mL/min, increasing to 2.4 mL/min after 16 mins. Oven temperature program: 50 °C (5 min), then to 270°C at 20 °C/min and then to 300 °C at 40 °C/min (5 min). EI source: 250 °C, 70 eV electron energy, 35µA emission, solvent delay 3 min. Mass range 55 to 650 amu, acquisition rate 5 spectra/s, acquisition time 200 ms/spectrum. Quad at 150 °C, 1.5 mL/min N2 collision flow, aux-2 temperature: 280 °C. Calibration curves were constructed using alanine, citric acid, fumaric acid, glutamic acid, glycine, lactic acid, malic acid, 2-hydroxybutyric acid, 3-hydroxybutyric acid, linoleic acid, oleic acid, palmitic acid, stearic acid, cholesterol, fructose, glutamine, indole-3-propionic acid, isoleucine, leucine, proline, succinic acid, valine, asparagine, aspartic acid, arachidonic acid, glycerol-3-phosphate, lysine, methionine, ornithine, phenylalanine, serine and threonine purchased from Sigma-Aldrich (St. Louis, MO, USA) at concentration range of 0.1 to 80 µg/mL. An aliquot of each sample was collected and pooled and used as quality control samples, together with a NIST SRM 1950 serum sample and an in-house pooled serum sample. Relative standard deviations (% RSDs) of the metabolite concentrations in control serum samples showed % RSDs within accepted analytical limits at averages of 27.2% and 29.2% for in-house QC abd pooled QC samples.","PROCESSING_STORAGE_CONDITIONS":"-20?","EXTRACT_STORAGE":"-80?"},

"CHROMATOGRAPHY":{"CHROMATOGRAPHY_TYPE":"GC","INSTRUMENT_NAME":"Agilent 7890B","COLUMN_NAME":"Zebron ZB-SemiVolatiles (20m x 0.18mm, 0.18µm)","CHROMATOGRAPHY_COMMENTS":"Zebron ZB-SemiVolatiles (20m, I.D. 0.18mm, film thickness 0.18µm)"},

"ANALYSIS":{"ANALYSIS_TYPE":"MS"},

"MS":{"INSTRUMENT_NAME":"Agilent 7200 QTOF","INSTRUMENT_TYPE":"GC x GC-TOF","MS_TYPE":"EI","ION_MODE":"UNSPECIFIED","MS_COMMENTS":"In summary, 400 µL of MeOH containing ISTDs (heptadecanoic acid, deuterium-labeled DL-valine, deuterium-labeled succinic acid, and deuterium-labeled glutamic acid, c = 1 µg/mL) was added to 30 µl of the serum samples which were vortex mixed and incubated on ice for 30 min after which they were centrifuged (9400 × g, 3 min) and 350 µL of the supernatant was collected after centrifugation. The solvent was evaporated to dryness and 25 µL of MOX reagent was added and the sample was incubated for 60 min at 45 °C. 25 µL of MSTFA was added and after 60 min incubation at 45 °C 25 µL of the retention index standard mixture (n-alkanes, c=10 µg/mL) was added. The analyses were carried out on an Agilent 7890B GC coupled to 7200 QTOF MS. Injection volume was 1 µL with 100:1 cold solvent split on PTV at 70 °C, heating to 300 °C at 120 °C/minute. Column: Zebron ZB-SemiVolatiles. Length: 20m, I.D. 0.18mm, film thickness: 0.18 µm. With initial Helium flow 1.2 mL/min, increasing to 2.4 mL/min after 16 mins. Oven temperature program: 50 °C (5 min), then to 270°C at 20 °C/min and then to 300 °C at 40 °C/min (5 min). EI source: 250 °C, 70 eV electron energy, 35µA emission, solvent delay 3 min. Mass range 55 to 650 amu, acquisition rate 5 spectra/s, acquisition time 200 ms/spectrum. Quad at 150 °C, 1.5 mL/min N2 collision flow, aux-2 temperature: 280 °C. Calibration curves were constructed using alanine, citric acid, fumaric acid, glutamic acid, glycine, lactic acid, malic acid, 2-hydroxybutyric acid, 3-hydroxybutyric acid, linoleic acid, oleic acid, palmitic acid, stearic acid, cholesterol, fructose, glutamine, indole-3-propionic acid, isoleucine, leucine, proline, succinic acid, valine, asparagine, aspartic acid, arachidonic acid, glycerol-3-phosphate, lysine, methionine, ornithine, phenylalanine, serine and threonine purchased from Sigma-Aldrich (St. Louis, MO, USA) at concentration range of 0.1 to 80 µg/mL. An aliquot of each sample was collected and pooled and used as quality control samples, together with a NIST SRM 1950 serum sample and an in-house pooled serum sample. Relative standard deviations (% RSDs) of the metabolite concentrations in control serum samples showed % RSDs within accepted analytical limits at averages of 27.2% and 29.2% for in-house QC abd pooled QC samples. Data values for final analysis were log2-transformed and scaled to zero mean and unit variance."},

"MS_METABOLITE_DATA":{
"Units":"log2 autoscaled abundance",

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}

}