在BioDeep NovoCell知识数据库中,参考离子总共被划分为4个级别。
  • Confirmed: 这个参考离子已经通过手动审计得到确认和验证。
  • Reliable: 这个参考离子可能在特定的解剖组织环境中高度保守。
  • Unreliable: 这个参考离子具有较高的排名价值,但缺乏可重复性。
  • Unavailable: 由于排名价值低且缺乏可重复性,这个参考离子不应用于注释。

Found 5 Reference Ions Near m/z 409.0687
NovoCell ID m/z Mass Window Metabolite Ranking Anatomy Context
MSI_000011120 Unreliable 409.068 409.068 ~ 409.068
MzDiff: none
Glucotropaeolin (BioDeep_00000003556)
Formula: C14H19NO9S2 (409.0501)
2.02 (100%) Mus musculus
[UBERON:0012378] muscle layer of urinary bladder
MSI_000011186 Unreliable 409.0611 409.0611 ~ 409.0611
MzDiff: none
Chloroatranorin (BioDeep_00000238885)
Formula: C19H17ClO8 (408.0612)
1.82 (100%) Mus musculus
[UBERON:0012378] muscle layer of urinary bladder
MSI_000009411 Unavailable 409.0611 409.0611 ~ 409.0611
MzDiff: none
Chloroatranorin (BioDeep_00000238885)
Formula: C19H17ClO8 (408.0612)
-0.35 (100%) Mus musculus
[UBERON:0004645] urinary bladder urothelium
MSI_000009514 Unavailable 409.068 409.068 ~ 409.068
MzDiff: none
Glucotropaeolin (BioDeep_00000003556)
Formula: C14H19NO9S2 (409.0501)
-0.71 (100%) Mus musculus
[UBERON:0004645] urinary bladder urothelium
MSI_000035078 Unreliable 409.073 409.073 ~ 409.073
MzDiff: none
Glucotropaeolin (BioDeep_00000003556)
Formula: C14H19NO9S2 (409.0501)
2.28 (100%) Posidonia oceanica
[PO:0006203] pericycle

Found 6 Sample Hits
Metabolite Species Sample
Glucotropaeolin

Formula: C14H19NO9S2 (409.0501)
Adducts: [M-H2O+NH4]+ (Ppm: 13.2)
Mus musculus (Urinary bladder)
HR2MSI_mouse_urinary_bladder - S096
Resolution: 10μm, 260x134

Description

Mass spectrometry imaging of phospholipids in mouse urinary bladder (imzML dataset)
The spatial distribution of phospholipids in a tissue section of mouse urinary bladder was analyzed by MALDI MS imaging at 10 micrometer pixel size with high mass resolution (using an LTQ Orbitrap mass spectrometer).

R, ö, mpp A, Guenther S, Schober Y, Schulz O, Takats Z, Kummer W, Spengler B, Histology by mass spectrometry: label-free tissue characterization obtained from high-accuracy bioanalytical imaging. Angew Chem Int Ed Engl, 49(22):3834-8(2010)

Fig. S2: Single ion images of compounds shown in Fig. 1A-B : (upper left to lower right) m/z = 743.5482 (unknown), m/z = 741.5307 (SM (16:0), [M+K]+), m/z = 798.5410 (PC (34:1), [M+K]+), m/z = 616.1767 (heme b, M+), m/z = 772.5253 (PC (32:0), [M+K]+).

Stability of determined mass values was in the range of +/- 1 ppm over 22 hours of measurement (Fig. S4), with a standard deviation of 0.56 ppm. Accuracy data were obtained during tissue scanning experiments by monitoring the mass signal at nominal mass 798. The internal lock mass function of the Orbitrap instrument was used for automatic calibration during imaging measurements, using the known matrix-related ion signals at m/z = 137.0233, m/z = 444.0925 and m/z = 716.1246.

Glucotropaeolin

Formula: C14H19NO9S2 (409.0501)
Adducts: [M-H2O+NH4]+ (Ppm: 0.9)
Posidonia oceanica (root)
20190614_MS1_A19r-20
Resolution: 17μm, 262x276

Description

Seagrasses are one of the most efficient natural sinks of carbon dioxide (CO2) on Earth. Despite covering less than 0.1% of coastal regions, they have the capacity to bury up to 10% of marine organic matter and can bury the same amount of carbon 35 times faster than tropical rainforests. On land, the soil’s ability to sequestrate carbon is intimately linked to microbial metabolism. Despite the growing attention to the link between plant production, microbial communities, and the carbon cycle in terrestrial ecosystems, these processes remain enigmatic in the sea. Here, we show that seagrasses excrete organic sugars, namely in the form of sucrose, into their rhizospheres. Surprisingly, the microbial communities living underneath meadows do not fully use this sugar stock in their metabolism. Instead, sucrose piles up in the sediments to mM concentrations underneath multiple types of seagrass meadows. Sediment incubation experiments show that microbial communities living underneath a meadow use sucrose at low metabolic rates. Our metagenomic analyses revealed that the distinct community of microorganisms occurring underneath meadows is limited in their ability to degrade simple sugars, which allows these compounds to persist in the environment over relatively long periods of time. Our findings reveal how seagrasses form blue carbon stocks despite the relatively small area they occupy. Unfortunately, anthropogenic disturbances are threatening the long-term persistence of seagrass meadows. Given that these sediments contain a large stock of sugars that heterotopic bacteria can degrade, it is even more important to protect these ecosystems from degradation.

Cysteineglutathione disulfide

Formula: C13H22N4O8S2 (426.0879)
Adducts: [M+H-H2O]+ (Ppm: 15.4)
Mus musculus (Liver)
Salmonella_final_pos_recal
Resolution: 17μm, 691x430

Description

A more complete and holistic view on host–microbe interactions is needed to understand the physiological and cellular barriers that affect the efficacy of drug treatments and allow the discovery and development of new therapeutics. Here, we developed a multimodal imaging approach combining histopathology with mass spectrometry imaging (MSI) and same section imaging mass cytometry (IMC) to study the effects of Salmonella Typhimurium infection in the liver of a mouse model using the S. Typhimurium strains SL3261 and SL1344. This approach enables correlation of tissue morphology and specific cell phenotypes with molecular images of tissue metabolism. IMC revealed a marked increase in immune cell markers and localization in immune aggregates in infected tissues. A correlative computational method (network analysis) was deployed to find metabolic features associated with infection and revealed metabolic clusters of acetyl carnitines, as well as phosphatidylcholine and phosphatidylethanolamine plasmalogen species, which could be associated with pro-inflammatory immune cell types. By developing an IMC marker for the detection of Salmonella LPS, we were further able to identify and characterize those cell types which contained S. Typhimurium. [dataset] Nicole Strittmatter. Holistic Characterization of a Salmonella Typhimurium Infection Model Using Integrated Molecular Imaging, metabolights_dataset, V1; 2022. https://www.ebi.ac.uk/metabolights/MTBLS2671.

Glucotropaeolin

Formula: C14H19NO9S2 (409.0501)
Adducts: [M-H2O+NH4]+ (Ppm: 8.8)
Mytilus edulis (mantle)
20190201_MS38_Crassostrea_Mantle_350-1500_DHB_pos_A28_10um_270x210
Resolution: 10μm, 270x210

Description

Glucotropaeolin

Formula: C14H19NO9S2 (409.0501)
Adducts: [M-H2O+NH4]+ (Ppm: 6.6)
Mytilus edulis (gill)
20190202_MS38_Crassostrea_Gill_350-1500_DHB_pos_A25_11um_305x210
Resolution: 11μm, 305x210

Description

single cell layer class_4 is the gill structure cells, metabolite ion 534.2956 is the top representive ion of this type of cell

Glucotropaeolin

Formula: C14H19NO9S2 (409.0501)
Adducts: [M-H2O+NH4]+ (Ppm: 11.4)
Mytilus edulis (mantle)
20190216_MS38_Mytilus_mantle_350-1500_DHB_pos_A26_10um_275x210
Resolution: 10μm, 275x210

Description