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r>ftp://ftp.ebi.ac.uk/pub/databases/metabolights/studies/public/MTBLS15462/FILES/RAW_FILES/GAN_FBFP8.d.zip</Other><Other>ftp://ftp.ebi.ac.uk/pub/databases/metabolights/studies/public/MTBLS15462/FILES/RAW_FILES/QC06.d.zip</Other><Other>ftp://ftp.ebi.ac.uk/pub/databases/metabolights/studies/public/MTBLS15462/FILES/RAW_FILES/GAN_FMT3.d.zip</Other><Other>ftp://ftp.ebi.ac.uk/pub/databases/metabolights/studies/public/MTBLS15462/FILES/RAW_FILES/POS-GAN_FMT8.d.zip</Other><Other>ftp://ftp.ebi.ac.uk/pub/databases/metabolights/studies/public/MTBLS15462/FILES/RAW_FILES/GAN_FMT9.d.zip</Other><Other>ftp://ftp.ebi.ac.uk/pub/databases/metabolights/studies/public/MTBLS15462/FILES/RAW_FILES/GAN_FM8.d.zip</Other><Other>ftp://ftp.ebi.ac.uk/pub/databases/metabolights/studies/public/MTBLS15462/FILES/RAW_FILES/POS-GAN_BFP1.d.zip</Other><Other>ftp://ftp.ebi.ac.uk/pub/databases/metabolights/studies/public/MTBLS15462/FILES/RAW_FILES/GAN_FMT10.d.zip</Other><Other>ftp://ftp.ebi.ac.uk/pub/databases/metabolights/studies/public/MTBLS15462/FILES/RAW_FILES/GAN_FBFP5.d.zip</Other><Other>ftp://ftp.ebi.ac.uk/pub/databases/metabolights/studies/public/MTBLS15462/FILES/RAW_FILES/GAN_N9.d.zip</Other><Other>ftp://ftp.ebi.ac.uk/pub/databases/metabolights/studies/public/MTBLS15462/FILES/RAW_FILES/GAN_M9.d.zip</Other><Other>ftp://ftp.ebi.ac.uk/pub/databases/metabolights/studies/public/MTBLS15462/FILES/RAW_FILES/QC03.d.zip</Other><Other>ftp://ftp.ebi.ac.uk/pub/databases/metabolights/studies/public/MTBLS15462/FILES/RAW_FILES/GAN_FMT6.d.zip</Other><Other>ftp://ftp.ebi.ac.uk/pub/databases/metabolights/studies/public/MTBLS15462/FILES/RAW_FILES/POS-GAN_N1.d.zip</Other><Other>ftp://ftp.ebi.ac.uk/pub/databases/metabolights/studies/public/MTBLS15462/FILES/RAW_FILES/POS-GAN_M1.d.zip</Other></files><type>primary</type></body><statusCodeValue>200</statusCodeValue><statusCode>OK</statusCode></file_versions><scores/><additional><ftp_download_link>ftp://ftp.ebi.ac.uk/pub/databases/metabolights/studies/public/MTBLS15462</ftp_download_link><metabolite_identification_protocol>&lt;p>Metabolite features were annotated using MS-DIAL based on accurate mass and MS/MS spectral information. MS/MS spectra were matched against publicly available reference spectral databases, including GNPS, MassBank, MassBank Europe, CASMI, and other MS/MS spectral libraries available in MS-DIAL. Metabolite annotations were assigned based on the matching results of the detected features with reference spectra.&lt;/p></metabolite_identification_protocol><repository>MetaboLights</repository><study_status>Public</study_status><ptm_modification></ptm_modification><instrument_platform>Liquid Chromatography MS - negative - reverse-phase</instrument_platform><instrument_platform>Liquid Chromatography MS - positive - reverse-phase</instrument_platform><chromatography_protocol>&lt;p>Chromatographic separation was performed using an Agilent 1290 Infinity UHPLC system equipped with an Agilent Eclipse Plus C18 column (2.1 × 50 mm, 1.8 μm). The column temperature was maintained at 40°C and the flow rate was 0.3 mL/min. The mobile phases consisted of 0.1% formic acid in water (A) and acetonitrile (B).&lt;/p></chromatography_protocol><publication>Hepatic untargeted metabolomic profiling associated with the immunoprotective effects of banana flower polysaccharides.</publication><submitter_name>Ting Chen</submitter_name><submitter_affiliation>State Key Laboratory of Food Science and Resources, Nanchang University</submitter_affiliation><organism_part>liver</organism_part><technology_type>mass spectrometry assay</technology_type><disease></disease><extraction_protocol>&lt;p>Liver tissue (40 mg) was homogenized with 200 μL of ultrapure water and 800 μL of methanol. The samples were vortexed for 2 min and incubated overnight at 4°C. The samples were then centrifuged at 14,000 rpm for 15 min. The resulting supernatants were filtered through a 0.22 μm organic membrane and stored at −80°C until LC-MS analysis. Quality control (QC) samples were prepared as pooled aliquots of the study samples and analyzed together with the biological samples.&lt;/p></extraction_protocol><organism>Mus musculus</organism><full_dataset_link>https://www.ebi.ac.uk/metabolights/MTBLS15462</full_dataset_link><author>Ting Chen. Nanchang University. 3295642117@qq.com.</author><data_transformation_protocol>&lt;p>Raw LC-MS data files in Agilent .d format were processed using MS-DIAL to perform peak detection, peak alignment, and feature extraction, generating a metabolite abundance table. The resulting abundance table was subsequently imported into SIMCA for multivariate statistical analysis, including OPLS-DA, calculation of variable importance in projection (VIP) values, and permutation testing. Differential metabolites were screened based on a VIP value &amp;gt; 1 and a P value &amp;lt; 0.05.&lt;/p></data_transformation_protocol><study_factor>Experimental group</study_factor><submitter_email>3295642117@qq.com</submitter_email><sample_collection_protocol>&lt;p>Liver tissues were collected from mice after completion of the corresponding experimental treatments. Approximately 40 mg of liver tissue from each mouse was collected for metabolomics analysis. Samples were immediately processed for metabolite extraction or stored at −80°C until metabolite extraction and LC-MS analysis.&lt;/p></sample_collection_protocol><omics_type>Metabolomics</omics_type><study_design>Gut microbiota</study_design><study_design>biological sample</study_design><study_design>Metabolomics</study_design><study_design>Mus musculus</study_design><study_design>liver</study_design><study_design>untargeted analysis</study_design><study_design>reverse-phase LC</study_design><study_design>Host metabolic remodeling</study_design><study_design>positive</study_design><study_design>Agilent 6545 Q-TOF</study_design><study_design>Agilent 1290 Infinity UHPLC</study_design><study_design>Agilent 1290 Infinity UHPLC system</study_design><study_design>Immune homeostasis</study_design><study_design>negative</study_design><study_design>Banana flower polysaccharides</study_design><study_design>pooled QC</study_design><study_design>electrospray ionization (ESI)</study_design><study_design>Agilent Eclipse Plus C18</study_design><study_design>Agilent 6545 Quadrupole Time-of-Flight (Q-TOF) mass spectrometer</study_design><curator_keywords>Gut microbiota</curator_keywords><curator_keywords>biological sample</curator_keywords><curator_keywords>Metabolomics</curator_keywords><curator_keywords>Mus musculus</curator_keywords><curator_keywords>liver</curator_keywords><curator_keywords>untargeted analysis</curator_keywords><curator_keywords>reverse-phase LC</curator_keywords><curator_keywords>Host metabolic remodeling</curator_keywords><curator_keywords>positive</curator_keywords><curator_keywords>Agilent 6545 Q-TOF</curator_keywords><curator_keywords>Agilent 1290 Infinity UHPLC</curator_keywords><curator_keywords>Agilent 1290 Infinity UHPLC system</curator_keywords><curator_keywords>Immune homeostasis</curator_keywords><curator_keywords>negative</curator_keywords><curator_keywords>Banana flower polysaccharides</curator_keywords><curator_keywords>pooled QC</curator_keywords><curator_keywords>electrospray ionization (ESI)</curator_keywords><curator_keywords>Agilent Eclipse Plus C18</curator_keywords><curator_keywords>Agilent 6545 Quadrupole Time-of-Flight (Q-TOF) mass spectrometer</curator_keywords><mass_spectrometry_protocol>&lt;p>Mass spectrometric analysis was performed using an Agilent 6545 Quadrupole Time-of-Flight (Q-TOF) mass spectrometer equipped with an electrospray ionization (ESI) source. Data were acquired over an m/z range of 100–1000 in both positive and negative ionization modes.&lt;/p></mass_spectrometry_protocol><metabolite_name>low score: Docosatetraenoic acid</metabolite_name><metabolite_name>low score: PFCA-H; C22H2F42O2</metabolite_name><metabolite_name>low score: LTB4-[d4]</metabolite_name><metabolite_name>low score: PFCA-H; C15H2F28O2</metabolite_name><metabolite_name>low score: sclareol</metabolite_name><metabolite_name>low score: 3'-Dephosphocoenzyme A</metabolite_name><metabolite_name>low score: Glutathione</metabolite_name><metabolite_name>low score: MMV688372</metabolite_name><metabolite_name>low score: PFCA-H; C13H2F24O2</metabolite_name><metabolite_name>low score: Sphingomyelin d18:1-C17:0</metabolite_name><metabolite_name>low score: Isotectorigenin, 7-Methyl Ether</metabolite_name><metabolite_name>low score: Phosphatidylcholine 18:0-20:4</metabolite_name><metabolite_name>low score: Xanthine</metabolite_name><metabolite_name>low score: 11.14.17-eicosatrienoic acid</metabolite_name><metabolite_name>low score: PI 36:4</metabolite_name><metabolite_name>low score: PE 44:10</metabolite_name><metabolite_name>low score: Phosphatidylethanolamine lyso 20:0</metabolite_name><metabolite_name>low score: Palmitic acid</metabolite_name><metabolite_name>low score: Stearic acid</metabolite_name><metabolite_name>low score: Hydroxyprogesterone</metabolite_name><metabolite_name>low score: maltotriose</metabolite_name><metabolite_name>low score: LPC 16:0</metabolite_name><metabolite_name>low score: (2-aminoethoxy)[2-hydroxy-3-(octadecanoyloxy)propoxy]phosphinic acid</metabolite_name><metabolite_name>low score: Phosphatidylcholine 14</metabolite_name><metabolite_name>low score: Methylxanthoxylin</metabolite_name><metabolite_name>low score: 16:0 PS (1,2-dihexadecanoyl-sn-glycero-3-phospho-L-serine (sodium salt))</metabolite_name><metabolite_name>low score: Taurine</metabolite_name><metabolite_name>low score: PS 42:10</metabolite_name><metabolite_name>low score: D-Glucose-6-phosphate</metabolite_name><metabolite_name>low score: Phosphatidylcholine lyso 17:0</metabolite_name><metabolite_name>low score: Dihydroxy (3Alpha,12Alpha)Pregnan-20-One</metabolite_name><metabolite_name>low score: Guanosine 5'-diphosphate-D-mannose</metabolite_name><metabolite_name>low score: HEPTADECANOATE</metabolite_name><metabolite_name>low score: Flavin adenine dinucleotide</metabolite_name><metabolite_name>low score: Germinaline</metabolite_name><metabolite_name>low score: CDP-ETHANOLAMINE</metabolite_name><metabolite_name>low score: LTD4-[d5]</metabolite_name><metabolite_name>low score: Chlordiazepoxide</metabolite_name><metabolite_name>low score: Glutathione (oxidized)</metabolite_name><metabolite_name>low score: Kaempferol glucuronide</metabolite_name><metabolite_name>low score: NCGC00380958-01!2-[[2-[2-[2-[2-[[2-[2-(2-hydroxypropanoylamino)-3-methylbutanoyl]oxy-3-methylbutanoyl]amino]-3-methylbutanoyl]oxypropanoylamino]-3-methylbutanoyl]oxy-3-methylbutanoyl]amino]-3-methylbutanoic acid</metabolite_name><metabolite_name>low score: Glucocheirolin</metabolite_name><metabolite_name>low score: (Methylsulfinyl)hexyl glucosinolate</metabolite_name><metabolite_name>low score: LPE 16:0</metabolite_name><metabolite_name>low score: 2-(hydroxymethyl)-6-(6-hydroxy-6-methyl-3-propan-2-ylcyclohex-3-en-1-yl)oxyoxane-3,4,5-triol</metabolite_name><metabolite_name>low score: PFCA-H; C17H2F32O2</metabolite_name><metabolite_name>low score: Phosphatidylinositol lyso 18:1</metabolite_name><metabolite_name>low score: URIDINE 5&amp;#39;-DIPHOSPHOGALACTOSE</metabolite_name><metabolite_name>low score: 4-hydroxy-5-[(2S,3R,4S,5S,6R)-3,4,5-trihydroxy-6-(hydroxymethyl)oxan-2-yl]oxy-1H-benzo[f][2]benzofuran-3-one</metabolite_name><metabolite_name>low score: Phosphatidylcholine 17:0-18:2</metabolite_name><metabolite_name>low score: PC 40:9</metabolite_name><metabolite_name>low score: 6-Phosphogluconic acid Barium salt hydrate</metabolite_name><metabolite_name>low score: PFCA-H; C21H2F40O2</metabolite_name><metabolite_name>low score: Argopsin</metabolite_name><metabolite_name>low score: PFCA-H; C14H2F26O2</metabolite_name><metabolite_name>low score: 3-(3,4-dihydroxyphenyl)-5,7-dihydroxy-6,8-bis(3-methylbut-2-enyl)chromen-4-one</metabolite_name><metabolite_name>low score: PFCA-H; C12H2F22O2</metabolite_name><metabolite_name>low score: Arachidonic acid</metabolite_name><metabolite_name>low score: Oleic acid</metabolite_name><metabolite_name>low score: 5-Hydroxymethylcytidine</metabolite_name><metabolite_name>low score: Ortophosphate</metabolite_name><metabolite_name>low score: FUSIDIC ACID</metabolite_name><metabolite_name>low score: FLAVIN ADENINE DINUCLEOTIDE</metabolite_name><metabolite_name>low score: [2-hydroxy-3-[hydroxy-[2,3,4,5,6-pentahydroxycyclohexyl]oxyphosphoryl]oxypropyl] octadecanoate</metabolite_name><metabolite_name>low score: D-Fructose-6-phosphate disodium salt hydrate</metabolite_name><metabolite_name>low score: (E)-Hexadec-9-enoic acid</metabolite_name><metabolite_name>low score: octadecanoic acid</metabolite_name><metabolite_name>low score: PI 38:4</metabolite_name><metabolite_name>low score: NCGC00380367-01_C21H24O5_7-Benzofurancarboxylic acid, 2,3-dihydro-2-(1-hydroxy-1-methylethyl)-4-methoxy-6-(2-phenylethyl)-</metabolite_name><metabolite_name>low score: Eriodermin</metabolite_name><metabolite_name>low score: Phosphatidylcholine alkenyl 16</metabolite_name><metabolite_name>low score: PFCA-H; C16H2F30O2</metabolite_name><metabolite_name>low score: LPC 18:1</metabolite_name><metabolite_name>low score: 5-(5-methoxycarbonyl-5,8a-dimethyl-2-methylidene-3,4,4a,6,7,8-hexahydro-1H-naphthalen-1-yl)-3-methylpentanoic acid</metabolite_name><metabolite_name>low score: (S)-LACTATE</metabolite_name><metabolite_name>low score: Taurocholic acid</metabolite_name><metabolite_name>low score: PFCA-unsaturated; C21HF39O2</metabolite_name><metabolite_name>low score: Butylparaben</metabolite_name><metabolite_name>low score: NCGC00381195-01!(2E,6E,12E)-19-(2-amino-2-oxoethyl)-9,11-dihydroxy-8-methoxy-10,12,14-trimethyl-15-oxohenicosa-2,6,12-trienedioic acid</metabolite_name><metabolite_name>low score: Phosphatidylinositol lyso 20:4</metabolite_name><metabolite_name>low score: URIDINE 5&amp;#39;-DIPHOSPHO-N-ACETYLGALACTOSAMINE</metabolite_name><metabolite_name>low score: PFCA-H; C20H2F38O2</metabolite_name><metabolite_name>low score: neobavaisoflavone</metabolite_name><metabolite_name>low score: Palmitic Acid</metabolite_name><metabolite_name>low score: 10-Nonadecenoic acid (19:1(n-9))</metabolite_name><metabolite_name>low score: GLUTAMINE</metabolite_name><metabolite_name>low score: Phosphoric acid</metabolite_name><metabolite_name>low score: (2S,3S)-3,5,7-trihydroxy-6-methyl-2-(3,4,5-trihydroxyphenyl)-2,3-dihydrochromen-4-one</metabolite_name><metabolite_name>low score: Phosphatidylinositol lyso 16:0</metabolite_name><metabolite_name>low score: PFCA-H; C19H2F36O2</metabolite_name><metabolite_name>low score: Sulfobacin B</metabolite_name><metabolite_name>low score: LPE 18:1</metabolite_name><metabolite_name>low score: Harman</metabolite_name><metabolite_name>low score: Linoleic acid</metabolite_name><metabolite_name>low score: Phosphatidylethanolamine lyso 18:0</metabolite_name><metabolite_name>low score: 9-HODE</metabolite_name><metabolite_name>low score: Gly-Gly</metabolite_name><metabolite_name>low score: (2E,4E)-1-[(2R,6S,14S,22S,25R)-25-(3,3-dimethyloxiran-2-yl)-15-methyl-1,3,13,15-tetraazaheptacyclo[18.4.1.0?,?.0?,??.0?,??.0??,??.0??,??]pentacosa-7,9,11,16(21),17,19-hexaen-3-yl]hexa-2,4-dien-1-one</metabolite_name><metabolite_name>low score: 3-GlcA-28-Glc oleanolic acid</metabolite_name></additional><is_claimable>false</is_claimable><name>Banana flower polysaccharides promote immunoprotection through gut microbiota-associated host metabolic remodeling</name><description>&lt;p>The gut microbiota is increasingly recognized as an important mediator of the systemic effects of dietary polysaccharides, but how microbiota remodeling is associated with host metabolic responses remains poorly understood. Here, we investigated hepatic metabolic remodeling associated with the immunoprotective effects of banana flower polysaccharides (BFP) in cyclophosphamide (Cy)-induced immunosuppressed mice. Hepatic untargeted metabolomic profiling was performed to characterize metabolic alterations associated with BFP treatment and microbiota-related interventions. The resulting data provide a resource for investigating host metabolic changes associated with BFP-mediated immunoprotection and gut microbiota remodeling.&lt;/p></description><dates><publication>2026-09-01</publication><submission>2026-08-26</submission></dates><accession>MTBLS15462</accession><cross_references><KEGG>COLNVLDHVKWLRT-QMMMGPOBSA-N</KEGG><KEGG>CKLJMWTZIZZHCS-REOHCLBHSA-N</KEGG><KEGG>CGJIPMVTBQUUQL-BQYQJAHWSA-N</KEGG><KEGG>COUZJTKJINDPEN-UHFFFAOYSA-N</KEGG><KEGG>CHHLANXNIQPKBE-UHFFFAOYNA-N</KEGG><KEGG>CPINTEKYWNYXNP-UHFFFAOYNA-N</KEGG></cross_references></HashMap>