- 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 16 Reference Ions Near m/z 838.6171
NovoCell ID | m/z | Mass Window | Metabolite | Ranking | Anatomy Context |
---|---|---|---|---|---|
MSI_000008744 Reliable | 838.6224 | 838.622 ~ 838.6227 MzDiff: 2.9 ppm |
PC(18:4(6Z,9Z,12Z,15Z)/20:5(5Z,8Z,11Z,14Z,17Z)) (BioDeep_00000029511) Formula: C46H74NO8P (799.5152) |
5.67 (56%) | Rattus norvegicus [UBERON:0004360] cauda epididymis |
MSI_000006870 | 838.6225 | 838.6223 ~ 838.6227 MzDiff: 1.8 ppm |
PC(18:4(6Z,9Z,12Z,15Z)/20:5(5Z,8Z,11Z,14Z,17Z)) (BioDeep_00000029511) Formula: C46H74NO8P (799.5152) |
2.42 (62%) | Rattus norvegicus [UBERON:0004358] caput epididymis |
MSI_000020670 Unreliable | 838.6123 | 838.6122 ~ 838.6125 MzDiff: 1.3 ppm |
PE(22:0/20:4(6E,8Z,11Z,14Z)+=O(5)) (BioDeep_00000208756) Formula: C47H84NO9P (837.5883) |
5.12 (67%) | Rattus norvegicus [UBERON:0004360] cauda epididymis |
MSI_000060428 Unreliable | 838.6173 | 838.6171 ~ 838.6175 MzDiff: 1.6 ppm |
PC(18:0/22:4) (BioDeep_00000029339) Formula: C48H88NO8P (837.6247) |
3.41 (67%) | Mus musculus [UBERON:0002421] hippocampal formation |
MSI_000002816 Unavailable | 838.6169 | 838.6169 ~ 838.6169 MzDiff: none |
Kurahyne (BioDeep_00000409013) Formula: C47H78N6O7 (838.5932) |
-0.45 (100%) | Rattus norvegicus [UBERON:0001950] neocortex |
MSI_000003543 Unavailable | 838.6169 | 838.6169 ~ 838.6169 MzDiff: none |
Kurahyne (BioDeep_00000409013) Formula: C47H78N6O7 (838.5932) |
-0.56 (100%) | Rattus norvegicus [UBERON:0002037] cerebellum |
MSI_000004811 Unreliable | 838.6169 | 838.6169 ~ 838.6169 MzDiff: none |
Kurahyne (BioDeep_00000409013) Formula: C47H78N6O7 (838.5932) |
1.69 (100%) | Rattus norvegicus [UBERON:0002298] brainstem |
MSI_000005664 Unavailable | 838.6169 | 838.6169 ~ 838.6169 MzDiff: none |
Kurahyne (BioDeep_00000409013) Formula: C47H78N6O7 (838.5932) |
-0.42 (100%) | Rattus norvegicus [UBERON:0002435] striatum |
MSI_000026688 Unreliable | 838.6247 | 838.6247 ~ 838.6247 MzDiff: none |
PE(22:6(4Z,7Z,10Z,13Z,16Z,19Z)/24:1(15Z)) (BioDeep_00000030910) Formula: C51H88NO8P (873.6247) |
1.85 (100%) | Mus musculus [UBERON:0002048] lung |
MSI_000028613 Unreliable | 838.6242 | 838.6242 ~ 838.6242 MzDiff: none |
PC(18:4(6Z,9Z,12Z,15Z)/20:5(5Z,8Z,11Z,14Z,17Z)) (BioDeep_00000029511) Formula: C46H74NO8P (799.5152) |
0.77 (100%) | Macropus giganteus [UBERON:0001891] midbrain |
MSI_000029368 Unreliable | 838.6242 | 838.6242 ~ 838.6242 MzDiff: none |
PC(18:4(6Z,9Z,12Z,15Z)/20:5(5Z,8Z,11Z,14Z,17Z)) (BioDeep_00000029511) Formula: C46H74NO8P (799.5152) |
1.13 (100%) | Macropus giganteus [UBERON:0002336] corpus callosum |
MSI_000044810 Unavailable | 838.6087 | 838.6087 ~ 838.6087 MzDiff: none |
PE(22:0/20:4(6E,8Z,11Z,14Z)+=O(5)) (BioDeep_00000208756) Formula: C47H84NO9P (837.5883) |
-0.48 (100%) | Rattus norvegicus [UBERON:0002264] olfactory bulb |
MSI_000059250 Unavailable | 838.6171 | 838.6171 ~ 838.6171 MzDiff: none |
PC(18:0/22:4) (BioDeep_00000029339) Formula: C48H88NO8P (837.6247) |
-0.96 (100%) | Mus musculus [UBERON:0001950] neocortex |
MSI_000059642 Unreliable | 838.6171 | 838.6171 ~ 838.6171 MzDiff: none |
PC(18:0/22:4) (BioDeep_00000029339) Formula: C48H88NO8P (837.6247) |
1.04 (100%) | Mus musculus [UBERON:0002298] brainstem |
MSI_000061351 Unreliable | 838.6193 | 838.6193 ~ 838.6193 MzDiff: none |
SM(d19:1/22:6(5Z,8E,10Z,13Z,15E,19Z)-2OH(7S, 17S)) (BioDeep_00000215689) Formula: C46H81N2O8P (820.573) |
0.17 (100%) | Mus musculus [UBERON:0000956] cerebral cortex |
MSI_000062624 Unreliable | 838.6189 | 838.6189 ~ 838.6189 MzDiff: none |
SM(d19:1/22:6(5Z,8E,10Z,13Z,15E,19Z)-2OH(7S, 17S)) (BioDeep_00000215689) Formula: C46H81N2O8P (820.573) |
1.48 (100%) | Mus musculus [UBERON:0002421] hippocampal formation |
Found 15 Sample Hits
Metabolite | Species | Sample | |
---|---|---|---|
Kurahyne Formula: C47H78N6O7 (838.5932) Adducts: [M-H2O+NH4]+ (Ppm: 0.6) |
Rattus norvegicus (Brain) |
Spectroswiss - sol_2x_br_2Resolution: 17μm, 488x193
|
|
PE(22:6(4Z,7Z,10Z,13Z,16Z,19Z)/24:1(15Z)) Formula: C51H88NO8P (873.6247) Adducts: [M+H-2H2O]+ (Ppm: 13.3) |
Rattus norvegicus (Epididymis) |
epik_dhb_head_ito08_47Resolution: 17μm, 301x111
|
|
PE(22:6(4Z,7Z,10Z,13Z,16Z,19Z)/24:1(15Z)) Formula: C51H88NO8P (873.6247) Adducts: [M+H-2H2O]+ (Ppm: 12.3) |
Mus musculus (Lung) |
image3Resolution: 40μm, 146x190
Fig. 4 MALDI-MSI data of mouse lung tissue after administration with D9-choline and U13C-DPPC–containing Poractant alfa surfactant (labels administered 12 h prior to tissue collection). Ion images of (A) m/z 796.6856 ([U13C-DPPC+Na]+), (B) m/z 756.5154 [PC32:0+Na]+), and (C) m/z 765.6079 ([D9-PC32:0+Na]+). D: Overlay image of [U13C-PC32:0+Na]+ (red) and [D9-PC32:0+Na]+ (green). Part-per-million (ppm) mass errors are indicated in parentheses. All images were visualized using total-ion-current normalization and using hotspot removal (high quantile = 99%). DPPC = PC16:0/16:0. MSI, mass spectrometry imaging; PC, phosphatidylcholine; U13C-DPPC, universally 13C-labeled dipalmitoyl PC. |
|
PE(22:0/20:4(6E,8Z,11Z,14Z)+=O(5)) Formula: C47H84NO9P (837.5883) Adducts: [M+H]+ (Ppm: 15.6) |
Rattus norvegicus (Brain) |
2018June2820180628_brain_POS_3s2_validatedResolution: 17μm, 213x141
All MSI experiments were performed on a hybrid linear ion trap 21 T FT-ICR mass spectrometer at the National High Magnetic Field Laboratory (NHMFL) at Florida State University (Tallahassee, FL). A Velos Pro linear ion trap (Thermo Scientific, San Jose, CA) was combined with NHMFL-designed external linear quadrupole ion trap, quadrupole ion transfer optics and a novel dynamically harmonized ICR cell, which is operated at 7.5 V trapping potential[1]. Briefly, the cell uses 120° cell segments for ion excitation and detection, for improved excitation electric field, detection sensitivity and reduced third harmonic signals[2][3].
The commercial ion source and stacked ring ion guide were replaced with an elevated-pressure MALDI ion source incorporating a dual-ion funnel interface (Spectroglyph LLC, Kennewick, WA) as has been described previously[4]. Voltages within the funnels were 625 kHz, 150 V peak-to-peak (first, high-pressure ion funnel) and 1.2 MHz, 90 V peak-to-peak (second, low-pressure ion funnel). An electric field gradient of ∼10 V/cm was maintained within the dual-funnel system, with a gradient of 100 V/cm between the sample and the funnel inlet. The system was equipped with a Q-switched, frequency-tripled Nd:YLF laser emitting 349 nm light (Explorer One, Spectra Physics, Mountain View, CA). The laser was operated at a repetition rate of 1 kHz and pulse energy of ∼1.2 μJ. Pressure within the ion source was set to 10 mbar in the first ion funnel and 2 mbar in the second ion funnel. MALDI stage motion was synchronized with ion accumulation using the Velos trigger signal indicating commencement of the ion trap injection event, as previously described[4]. The mass spectrometer was operated with an ion injection time of 250 ms and automatic gain control (AGC) was turned off. A transient duration of 3.1 s was used for ultrahigh mass resolving power analyses, resulting in a total time of 4s per pixel. Spectra were obtained in both positive and negative mode, at 100 μm spatial resolution. Total number of pixels per brain section were approximately 22 000 and 24 h of experimental time. A Predator data station was used for ion excitation and detection[5].
Refs:
[1] Hendrickson CL, Quinn JP, Kaiser NK, Smith DF, Blakney GT, Chen T, Marshall AG, Weisbrod CR, Beu SC. 21 Tesla Fourier Transform Ion Cyclotron Resonance Mass Spectrometer: A National Resource for Ultrahigh Resolution Mass Analysis. J Am Soc Mass Spectrom. 2015 Sep;26(9):1626-32. doi:10.1007/s13361-015-1182-2. Epub 2015 Jun 20. PMID:26091892.
[2] Hendrickson CL, Beu SC, Blakney GT, Kaiser NK, McIntosh DG, Quinn JP, Marshall AG. In Optimized cell geometry for Fourier transform ion cyclotron resonance mass spectrometry, Proceedings of the 57th ASMS Conference on Mass Spectrometry and Allied Topics, Philadelphia, PA, May 31 to June 4; Philadelphia, PA, 2009.
[3] Chen T, Beu SC, Kaiser NK, Hendrickson CL. Note: Optimized circuit for excitation and detection with one pair of electrodes for improved Fourier transform ion cyclotron resonance mass spectrometry. Rev Sci Instrum. 2014 Jun;85(6):066107. doi:10.1063/1.4883179. PMID:24985871.
[4] Belov ME, Ellis SR, Dilillo M, Paine MRL, Danielson WF, Anderson GA, de Graaf EL, Eijkel GB, Heeren RMA, McDonnell LA. Design and Performance of a Novel Interface for Combined Matrix-Assisted Laser Desorption Ionization at Elevated Pressure and Electrospray Ionization with Orbitrap Mass Spectrometry. Anal Chem. 2017 Jul 18;89(14):7493-7501. doi:10.1021/acs.analchem.7b01168. Epub 2017 Jun 28. PMID:28613836.
[5] Blakney GT, Hendrickson CL, Marshall AG. Predator data station: A fast data acquisition system for advanced FT-ICR MS experiments. Int. J. Mass Spectrom. 2011;306 (2-3), 246- 252. doi:10.1016/j.ijms.2011.03.009. |
|
m/z_838.617 Formula: - (n/a) Adducts: (Ppm: 0) |
Rattus norvegicus (Brain) |
2018June2820180628_brain_POS_3s2_validatedResolution: 17μm, 213x141
All MSI experiments were performed on a hybrid linear ion trap 21 T FT-ICR mass spectrometer at the National High Magnetic Field Laboratory (NHMFL) at Florida State University (Tallahassee, FL). A Velos Pro linear ion trap (Thermo Scientific, San Jose, CA) was combined with NHMFL-designed external linear quadrupole ion trap, quadrupole ion transfer optics and a novel dynamically harmonized ICR cell, which is operated at 7.5 V trapping potential[1]. Briefly, the cell uses 120° cell segments for ion excitation and detection, for improved excitation electric field, detection sensitivity and reduced third harmonic signals[2][3].
The commercial ion source and stacked ring ion guide were replaced with an elevated-pressure MALDI ion source incorporating a dual-ion funnel interface (Spectroglyph LLC, Kennewick, WA) as has been described previously[4]. Voltages within the funnels were 625 kHz, 150 V peak-to-peak (first, high-pressure ion funnel) and 1.2 MHz, 90 V peak-to-peak (second, low-pressure ion funnel). An electric field gradient of ∼10 V/cm was maintained within the dual-funnel system, with a gradient of 100 V/cm between the sample and the funnel inlet. The system was equipped with a Q-switched, frequency-tripled Nd:YLF laser emitting 349 nm light (Explorer One, Spectra Physics, Mountain View, CA). The laser was operated at a repetition rate of 1 kHz and pulse energy of ∼1.2 μJ. Pressure within the ion source was set to 10 mbar in the first ion funnel and 2 mbar in the second ion funnel. MALDI stage motion was synchronized with ion accumulation using the Velos trigger signal indicating commencement of the ion trap injection event, as previously described[4]. The mass spectrometer was operated with an ion injection time of 250 ms and automatic gain control (AGC) was turned off. A transient duration of 3.1 s was used for ultrahigh mass resolving power analyses, resulting in a total time of 4s per pixel. Spectra were obtained in both positive and negative mode, at 100 μm spatial resolution. Total number of pixels per brain section were approximately 22 000 and 24 h of experimental time. A Predator data station was used for ion excitation and detection[5].
Refs:
[1] Hendrickson CL, Quinn JP, Kaiser NK, Smith DF, Blakney GT, Chen T, Marshall AG, Weisbrod CR, Beu SC. 21 Tesla Fourier Transform Ion Cyclotron Resonance Mass Spectrometer: A National Resource for Ultrahigh Resolution Mass Analysis. J Am Soc Mass Spectrom. 2015 Sep;26(9):1626-32. doi:10.1007/s13361-015-1182-2. Epub 2015 Jun 20. PMID:26091892.
[2] Hendrickson CL, Beu SC, Blakney GT, Kaiser NK, McIntosh DG, Quinn JP, Marshall AG. In Optimized cell geometry for Fourier transform ion cyclotron resonance mass spectrometry, Proceedings of the 57th ASMS Conference on Mass Spectrometry and Allied Topics, Philadelphia, PA, May 31 to June 4; Philadelphia, PA, 2009.
[3] Chen T, Beu SC, Kaiser NK, Hendrickson CL. Note: Optimized circuit for excitation and detection with one pair of electrodes for improved Fourier transform ion cyclotron resonance mass spectrometry. Rev Sci Instrum. 2014 Jun;85(6):066107. doi:10.1063/1.4883179. PMID:24985871.
[4] Belov ME, Ellis SR, Dilillo M, Paine MRL, Danielson WF, Anderson GA, de Graaf EL, Eijkel GB, Heeren RMA, McDonnell LA. Design and Performance of a Novel Interface for Combined Matrix-Assisted Laser Desorption Ionization at Elevated Pressure and Electrospray Ionization with Orbitrap Mass Spectrometry. Anal Chem. 2017 Jul 18;89(14):7493-7501. doi:10.1021/acs.analchem.7b01168. Epub 2017 Jun 28. PMID:28613836.
[5] Blakney GT, Hendrickson CL, Marshall AG. Predator data station: A fast data acquisition system for advanced FT-ICR MS experiments. Int. J. Mass Spectrom. 2011;306 (2-3), 246- 252. doi:10.1016/j.ijms.2011.03.009. |
|
PE(22:6(4Z,7Z,10Z,13Z,16Z,19Z)/24:1(15Z)) Formula: C51H88NO8P (873.6247) Adducts: [M+H-2H2O]+ (Ppm: 3.4) |
Homo sapiens (esophagus) |
LNTO29_16_2Resolution: 17μm, 95x101
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PC(18:0/22:4) Formula: C48H88NO8P (837.6247) Adducts: [M+H]+ (Ppm: 7.2) |
Mus musculus (Liver) |
Salmonella_final_pos_recalResolution: 17μm, 691x430
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. |
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PE(22:6(4Z,7Z,10Z,13Z,16Z,19Z)/24:1(15Z)) Formula: C51H88NO8P (873.6247) Adducts: [M+H-2H2O]+ (Ppm: 4.4) |
Homo sapiens (esophagus) |
LNTO22_1_7Resolution: 75μm, 69x54
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PE(22:6(4Z,7Z,10Z,13Z,16Z,19Z)/24:1(15Z)) Formula: C51H88NO8P (873.6247) Adducts: [M+H-2H2O]+ (Ppm: 4.4) |
Homo sapiens (esophagus) |
LNTO22_1_8Resolution: 75μm, 69x61
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PC(18:0/22:4) Formula: C48H88NO8P (837.6247) Adducts: [M+H]+ (Ppm: 17.8) |
Mus musculus (brain) |
Brain01_Bregma-3-88b_centroidResolution: 17μm, 265x320
|
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SM(d19:1/22:6(5Z,8E,10Z,13Z,15E,19Z)-2OH(7S, 17S)) Formula: C46H81N2O8P (820.573) Adducts: [M+NH4]+ (Ppm: 14.8) |
Mus musculus (brain) |
Brain01_Bregma1-42_02_centroidResolution: 17μm, 434x258
|
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SM(d19:1/22:6(5Z,8E,10Z,13Z,15E,19Z)-2OH(7S, 17S)) Formula: C46H81N2O8P (820.573) Adducts: [M+NH4]+ (Ppm: 14.4) |
Mus musculus (brain) |
Brain01_Bregma1-42_01_centroidResolution: 17μm, 447x118
|
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SM(d19:1/22:6(5Z,8E,10Z,13Z,15E,19Z)-2OH(7S, 17S)) Formula: C46H81N2O8P (820.573) Adducts: [M+NH4]+ (Ppm: 12.7) |
Mus musculus (brain) |
Brain02_Bregma1-42_03Resolution: 17μm, 483x403
|
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PC(18:0/22:4) Formula: C48H88NO8P (837.6247) Adducts: [M+H]+ (Ppm: 17.6) |
Mus musculus (brain) |
Brain02_Bregma-3-88Resolution: 17μm, 288x282
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PC(18:0/22:4) Formula: C48H88NO8P (837.6247) Adducts: [M+H]+ (Ppm: 17.5) |
Mus musculus (brain) |
Brain02_Bregma-1-46Resolution: 17μm, 294x399
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