| Volatilomic compound identification in several Indonesian underutilized Zingiberaceae spices using SPME-GC/MS (ST002102) |
IPB University |
Zingiberaceae |
EI |
33 |
| 2014 Biotron Experiment Metabolites (part II) (ST000564) |
University of Florida |
Zea mays |
ESI |
25 |
| Metabonomics analysis reveals the physiological mechanism of promoting maize shoots growth under negative pressure to stabilize soil water content (ST001955) |
Heilongjiang Bayi Agricultural University |
Zea mays |
APCI |
107 |
| Metabolomics study on Xenopus tropicalis tadpoles overexpressing human IMPDH2 pathogenic variant (ST003858) |
University of Washington |
Xenopus tropicalis |
ESI |
66 |
| Xenopus tropicalis regeneration timecourse (ST002271) |
University of Washington |
Xenopus tropicalis |
ESI |
61 |
| Xenopus tropicalis glycolysis and PPP inhibition (ST002270) |
University of Washington |
Xenopus tropicalis |
ESI |
61 |
| Metabolomic analysis of Axon Regeneration in Xenopus laevis Optic Nerve (ST003280) |
University of Miami |
Xenopus laevis |
ESI |
52 |
| Metabolomic analysis of Axon Regeneration in Xenopus laevis Retina (ST003278) |
University of Miami |
Xenopus laevis |
ESI |
30 |
| Lipidomic analysis of Axon Regeneration in Xenopus laevis Tectum (ST003250) |
University of Miami |
Xenopus laevis |
ESI |
1139 |
| Mass spectrometry dataset of LC-MS Lipidomics Analysis of Xenopus Laevis Optic Nerve (ST002414) |
University of Miami |
Xenopus laevis |
ESI |
2493 |
| Lipidomic analysis of Axon Regeneration in Xenopus laevis Retina (ST003226) |
University of Miami |
Xenopus laevis |
ESI |
1360 |
| Lipidomic analysis of Axon Regeneration in Xenopus laevis Chiasm (ST003225) |
University of Miami |
Xenopus laevis |
ESI |
865 |
| Metabolomic analysis of Axon Regeneration in Xenopus laevis Tectum (ST003279) |
University of Miami |
Xenopus laevis |
ESI |
29 |
| Linking bacterial metabolites to disease-associated microbes to uncover mechanisms of host-microbial interactions in intestinal inflammation. Veillonella parvula media profiling of IBD drug metabolites (ST002473) |
Broad Institute of MIT and Harvard |
Veillonella parvula |
ESI |
22 |
| Linking bacterial metabolites to disease-associated microbes to uncover mechanisms of host-microbial interactions in intestinal inflammation. Veillonella parvula cell and media profiling (ST002472) |
Broad Institute of MIT and Harvard |
Veillonella parvula |
ESI |
85 |
| Development and Characterisation of a Novel Class of Aroyl Guanidine Containing Anti-Trypanosomal Compounds (ST001276) |
Monash University |
Trypanosoma brucei brucei |
ESI |
205 |
| Metabolomics-based profiling of the mode of action of Pathogen Box compounds in Trypanosoma brucei (part-II) (ST001275) |
Monash University |
Trypanosoma brucei brucei |
ESI |
339 |
| Metabolomics-based profiling of the mode of action of Pathogen Box compounds in Trypanosoma brucei (part-I) (ST001274) |
Monash University |
Trypanosoma brucei brucei |
ESI |
214 |
| Evaluation of the short-term effects of the allelochemical umbelliferone on Triticum durum L. metabolism through GC-MS based untargeted metabolomics (ST001056) |
UniversitĂ Mediterranea di Reggio Calabria |
Triticum durum |
EI |
22 |
| Metabolites produced by strains associated with inflammation (ST000692) |
University of Michigan |
Treponema pectinovorum |
ESI |
127 |
| The apicomplexan parasite Toxoplasma gondii forms bradyzoite-containing tissue cysts that cause chronic and drug-tolerant infections. (ST002051) |
Robert Koch-Institute |
Toxoplasma gondii |
ESI |
48 |
| Multi-omics analysis delineates the distinct functions of sub-cellular acetyl-CoA pools in Toxoplasma gondii (ST001304) |
Monash University |
Toxoplasma gondii |
ESI |
199 |
| Red squirrels age related changes (ST000724) |
University of Michigan |
Tamiasciurus hudsonicus |
ESI |
123 |
| Allantoin differences in Synechococcus cells grown in high versus low lightgrowth (ST000318) |
University of California, Davis |
Synechococcus sp. CC9605 |
ESI |
34 |
| The circadian oscillator in Synechococcus elongatus controls metabolite partitioning during diurnal growth (part II) (ST000395) |
University of California, Davis |
Synechococcus elongatus PCC 7942 |
EI |
28 |
| Coral endosymbiont growth is enhanced by metabolic interactions with bacteria (ST002933) |
University of Technology Sydney |
Symbiodiniaceae |
EI |
26 |
| Sepsis-related metabolic changes in ileum, jejunum, skeletal muscle, liver and lung (ST001190) |
Indiana University School of Medicine |
Sus scrofa |
EI |
45 |
| Multi-Omics Plasma Signatures of Severe Injury with Influence of REBOA Intervention in a Swine Model. (ST003046) |
University of Colorado Anschutz Medical Campus |
Sus scrofa |
ESI |
38 |
| Spatiotemporal mapping of lipid disturbance in heart injury - Part 3 (ST003059) |
National University of Singapore |
Sus scrofa |
ESI |
128 |
| Development of a weaned pig model of enterotoxigenic E.coli-induced environmental enteropathy (ST001041) |
Texas A&M University |
Sus scrofa |
EI |
57 |
| Vaginal swab lipidome profiles at 48 h reflect the fat composition of neonatal diet during first two days postnatal (ST001224) |
Purdue University |
Sus scrofa |
ESI |
32 |
| The double-edged role of FASII regulator FabT in Streptococcus pyogenes infection - Lipidomics (ST003401) |
INSERM |
Streptococcus pyogenes |
APCI |
46 |
| The double-edged role of FASII regulator FabT in Streptococcus pyogenes infection - Metabolomics (ST003403) |
INSERM |
Streptococcus pyogenes |
ESI |
558 |
| Determining the metabolic profile of wildtype, lrgAB, and atlA mutant Steptococcus mutans grown aerobically and anaerobically (ST000351) |
University of Florida |
Streptococcus mutans |
ESI |
53 |
| Proteomic and metabolomic profiling of methicillin resistant versus methicillin sensitive Staphylococcus aureus using a simultaneous extraction protocol (ST003343) |
Mohammed Bin Rashid University of Medicine and Health Science |
Staphylococcus aureus |
ESI |
23 |
| Providing insight into the mechanism of action of Cationic Lipidated Oligomers (CLOs) using metabolomics (ST003053) |
Monash University |
Staphylococcus aureus |
ESI |
192 |
| Metabolome of three Vancomycin-intermediate Staphylococcus aureus (VISA) mutants compared with the parent strain MM66 (ST000309) |
Oklahoma State University |
Staphylococcus aureus |
EI |
29 |
| Metabolic contribution of pSymA and pSymB megaplasmid/chromid for multipartite Sinorhizobium meliloti cultured in minimal M9 medium (ST000258) |
McMaster University |
Sinorhizobium meliloti |
ESI |
54 |
| Loss of vitamin C biosynthesis protects from the pathology of a Schistosome infection and egg production. (ST004274) |
University of Texas Southwestern Medical Center at Dallas |
Schistosoma mansoni |
ESI |
65 |
| Mechanisms of Metabolic Cycles in Diapausing Flesh Fly by Metabolomics Approach (ST000294) |
University of Florida |
Sarcophaga crassipalpis |
ESI |
46 |
| Metabolomics analysis of multiple metabolic functions in the YjgF/YER057c/UK114 (Rid) protein family LCMS (ST000119) |
University of California, Davis |
Salmonella enterica;Escherichia coli |
ESI |
29 |
| Metabolomics analysis of multiple metabolic functions in the YjgF/YER057c/UK114 (Rid) protein family GCMS (part 2) (ST000118) |
University of California, Davis |
Salmonella enterica;Escherichia coli |
EI |
23 |
| Effect of minimal and complex media on the metabolite profiles (ST000569) |
Graduate school of Korea University |
Saccharomyces cerevisiae |
EI |
30 |
| Mitochondrial-Derived Compartments Facilitate Cellular Adaptation to Amino Acid Stress (ST001901) |
University of Utah School of Medicine |
Saccharomyces cerevisiae |
EI |
44 |
| Steady-state metabolomics time course of Saccharomyces cerevisiae mitochondrial fatty acid synthesis (mtFAS) mutants (ST001401) |
University of Utah |
Saccharomyces cerevisiae |
EI |
31 |
| Methionine restriction constrains lipoylation and activates mitochondria for nitrogenic synthesis of amino acids (Part 2) (ST002542) |
Life Sciences Institute, ZheJiang University |
Saccharomyces cerevisiae |
ESI |
29 |
| Methionine restriction constrains lipoylation and activates mitochondria for nitrogenic synthesis of amino acids (Part 1) (ST002541) |
Life Sciences Institute, ZheJiang University |
Saccharomyces cerevisiae |
ESI |
29 |
| The Chromosome-Scale Assembly and Multi-Omics Analysis Reveal Adaptive Evolution and Nitrogen Utilization Mechanisms in Edible Grass (Rumex patientia L.Ă— Rumex tianschanicus A. LOS) (ST003736) |
Hunan Agricultural University |
Rumex patientia L.Ă— Rumex tianschanicus A. LOS |
ESI |
231 |
| The Chromosome-Scale Assembly and Multi-Omics Analysis Reveal Adaptive Evolution and Nitrogen Utilization Mechanisms in Edible Grass (ST003768) |
Hunan Agricultural University |
Rumex patientia L.Ă— Rumex tianschanicus A. LOS |
ESI |
514 |
| Evolutionary genomics identifies host-directed therapeutics to treat intracellular bacterial infections (ST002747) |
CZ Biohub |
Rickettsia parkeri; Homo sapiens |
ESI |
671 |