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 18 Reference Ions Near m/z 788.6006
NovoCell ID m/z Mass Window Metabolite Ranking Anatomy Context
MSI_000008350 Reliable 788.6053 788.605 ~ 788.6058
MzDiff: 3.3 ppm
PE(18:3(6Z,9Z,12Z)/24:1(15Z)) (BioDeep_00000030358)
Formula: C47H86NO8P (823.6091)
8.2 (100%) Rattus norvegicus
[UBERON:0004360] cauda epididymis
MSI_000008376 Reliable 788.5927 788.5924 ~ 788.5929
MzDiff: 2.2 ppm
PE(20:0/18:1(12Z)-O(9S,10R)) (BioDeep_00000186870)
Formula: C43H82NO9P (787.5727)
7.65 (100%) Rattus norvegicus
[UBERON:0004360] cauda epididymis
MSI_000020939 Unreliable 788.6046 788.6043 ~ 788.605
MzDiff: 2.8 ppm
PE(18:3(6Z,9Z,12Z)/24:1(15Z)) (BioDeep_00000030358)
Formula: C47H86NO8P (823.6091)
3.93 (100%) Rattus norvegicus
[UBERON:0004359] corpus epididymis
MSI_000020956 Unreliable 788.5926 788.5924 ~ 788.5929
MzDiff: 2.2 ppm
PE(20:0/18:1(12Z)-O(9S,10R)) (BioDeep_00000186870)
Formula: C43H82NO9P (787.5727)
2.8 (100%) Rattus norvegicus
[UBERON:0004359] corpus epididymis
MSI_000020721 Unreliable 788.5993 788.5991 ~ 788.5995
MzDiff: 1.7 ppm
PE(18:3(6Z,9Z,12Z)/24:1(15Z)) (BioDeep_00000030358)
Formula: C47H86NO8P (823.6091)
4.25 (33%) Rattus norvegicus
[UBERON:0004360] cauda epididymis
MSI_000001144 Unavailable 788.6063 788.6063 ~ 788.6063
MzDiff: none
PC(18:0/18:1(9Z)) (BioDeep_00000019219)
Formula: C44H86NO8P (787.6091)
-0.42 (100%) Mus musculus
[UBERON:0001224] renal pelvis
MSI_000001620 Unavailable 788.6063 788.6063 ~ 788.6063
MzDiff: none
PC(18:0/18:1(9Z)) (BioDeep_00000019219)
Formula: C44H86NO8P (787.6091)
-0.44 (100%) Mus musculus
[UBERON:0001225] cortex of kidney
MSI_000002078 Unavailable 788.6063 788.6063 ~ 788.6063
MzDiff: none
PC(18:0/18:1(9Z)) (BioDeep_00000019219)
Formula: C44H86NO8P (787.6091)
-0.43 (100%) Mus musculus
[UBERON:0001293] outer medulla of kidney
MSI_000004554 Unreliable 788.6068 788.6068 ~ 788.6068
MzDiff: none
SM(d17:1/20:3(8Z,11Z,14Z)-2OH(5,6)) (BioDeep_00000215364)
Formula: C42H79N2O8P (770.5574)
0.45 (100%) Homo sapiens
[UBERON:0002107] liver
MSI_000010080 Unreliable 788.6069 788.6069 ~ 788.6069
MzDiff: none
PC(18:0/18:1(9Z)) (BioDeep_00000019219)
Formula: C44H86NO8P (787.6091)
0.18 (100%) Bathymodiolus
[UBERON:0009120] gill filament
MSI_000028620 Unreliable 788.5918 788.5918 ~ 788.5918
MzDiff: none
PE(20:0/18:1(12Z)-O(9S,10R)) (BioDeep_00000186870)
Formula: C43H82NO9P (787.5727)
0.76 (100%) Macropus giganteus
[UBERON:0001891] midbrain
MSI_000028671 Unreliable 788.6006 788.6006 ~ 788.6006
MzDiff: none
PE(18:3(6Z,9Z,12Z)/24:1(15Z)) (BioDeep_00000030358)
Formula: C47H86NO8P (823.6091)
0.64 (100%) Macropus giganteus
[UBERON:0001891] midbrain
MSI_000028957 Unreliable 788.6068 788.6068 ~ 788.6068
MzDiff: none
Not Annotated 0.12 (0%) Macropus giganteus
[UBERON:0001891] midbrain
MSI_000029140 Unreliable 788.6068 788.6068 ~ 788.6068
MzDiff: none
Not Annotated 1.88 (0%) Macropus giganteus
[UBERON:0002336] corpus callosum
MSI_000029449 Unreliable 788.5918 788.5918 ~ 788.5918
MzDiff: none
PE(20:0/18:1(12Z)-O(9S,10R)) (BioDeep_00000186870)
Formula: C43H82NO9P (787.5727)
0.85 (100%) Macropus giganteus
[UBERON:0002336] corpus callosum
MSI_000029451 Unreliable 788.6006 788.6006 ~ 788.6006
MzDiff: none
PE(18:3(6Z,9Z,12Z)/24:1(15Z)) (BioDeep_00000030358)
Formula: C47H86NO8P (823.6091)
0.85 (100%) Macropus giganteus
[UBERON:0002336] corpus callosum
MSI_000031544 Unreliable 788.6068 788.6068 ~ 788.6068
MzDiff: none
Not Annotated 0.38 (0%) Macropus giganteus
[UBERON:0006093] precuneus cortex
MSI_000044380 Unavailable 788.6058 788.6058 ~ 788.6058
MzDiff: none
SM(d20:1/18:1(12Z)-2OH(9,10)) (BioDeep_00000215734)
Formula: C43H85N2O8P (788.6043)
-0.08 (100%) Rattus norvegicus
[UBERON:0002264] olfactory bulb

Found 11 Sample Hits
Metabolite Species Sample
m/z_788.5994

Formula: - (n/a)
Adducts: (Ppm: 0)
Rattus norvegicus (Epididymis)
epik_dhb_head_ito03_17
Resolution: 17μm, 208x108

Description

1 male adult wild-type rat was obtained from Inserm U1085 - Irset Research Institute (University of Rennes1, France). Animals were age 60 days and were reared under ad-lib conditions. Care and handling of all animals complied with EU directive 2010/63/EU on the protection of animals used for scientific purposes. The whole epididymis was excised from each animal immediately post-mortem, loosely wrapped rapidly in an aluminum foil and a 2.5% (w/v) carboxymethylcellulose (CMC) solution was poured to embed the epididymis to preserve their morphology. To remove air bubbles, the filled aluminum molds was gently freezed by depositing it on isopentane or dry ice, then on the nitrogen vapors and finally by progressively dipping the CMC/sample coated with aluminum foil into liquid nitrogen (or only flush with liquid nitrogen). Frozen tissues were stored at -80 °C until use to avoid degradation.

PE(18:3(6Z,9Z,12Z)/24:1(15Z))

Formula: C47H86NO8P (823.6091)
Adducts: [M+H-2H2O]+ (Ppm: 13.2)
Rattus norvegicus (Epididymis)
epik_dhb_head_ito08_43
Resolution: 17μm, 298x106

Description

PE(18:3(6Z,9Z,12Z)/24:1(15Z))

Formula: C47H86NO8P (823.6091)
Adducts: [M+H-2H2O]+ (Ppm: 12.7)
Rattus norvegicus (Epididymis)
epik_dhb_head_ito08_44
Resolution: 17μm, 299x111

Description

PE(18:3(6Z,9Z,12Z)/24:1(15Z))

Formula: C47H86NO8P (823.6091)
Adducts: [M+H-2H2O]+ (Ppm: 11.5)
Rattus norvegicus (Epididymis)
epik_dhb_head_ito08_46
Resolution: 17μm, 298x106

Description

PE(18:3(6Z,9Z,12Z)/24:1(15Z))

Formula: C47H86NO8P (823.6091)
Adducts: [M+H-2H2O]+ (Ppm: 11.6)
Rattus norvegicus (Epididymis)
epik_dhb_head_ito08_48
Resolution: 17μm, 294x107

Description

PE(18:3(6Z,9Z,12Z)/24:1(15Z))

Formula: C47H86NO8P (823.6091)
Adducts: [M+H-2H2O]+ (Ppm: 12.4)
Rattus norvegicus (Epididymis)
epik_dhb_head_ito01_04
Resolution: 17μm, 178x91

Description

PE(18:3(6Z,9Z,12Z)/24:1(15Z))

Formula: C47H86NO8P (823.6091)
Adducts: [M+H-2H2O]+ (Ppm: 15.1)
Mus musculus (Lung)
image1
Resolution: 40μm, 187x165

Description

Fig. 2 MALDI-MSI data from the same mouse lung tissue analyzed in Fig. 1. A: Optical image of the post-MSI, H&E-stained tissue section. B–D, F–G: Ion images of (B) m/z 796.6855 ([U13C-DPPC+Na]+), (C) m/z 756.5514 ([PC32:0+Na]+), (D) m/z 765.6079 ([D9-PC32:0+Na]+), (F) m/z 754.5359 ([PC32:1+Na]+), and (G) m/z 763.5923 ([D9-PC32:1+Na]+). E, H: Ratio images of (E) [D9-PC32:0+Na]+:[PC32:0+Na]+ and (H) [D9-PC32:1+Na]+:[PC32:1+Na]+. 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. U13C-DPPC, universally 13C-labeled dipalmitoyl PC; PC, phosphatidylcholine; MSI, mass spectrometry imaging; H&E, hematoxylin and eosin. Fig 1-3, Fig S1-S3, S5

PE(18:3(6Z,9Z,12Z)/24:1(15Z))

Formula: C47H86NO8P (823.6091)
Adducts: [M+H-2H2O]+ (Ppm: 9.7)
Mus musculus (Lung)
image5
Resolution: 40μm, 163x183

Description

Supplementary Figure S8. MALDI-MSI data of mouse lung tissue administered with D9-choline and U 13C-DPPC–containing Poractant alfa surfactant (labels administered 18 h prior to sacrifice). 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-DPPC+Na]+ (red) and [D9-PC32:0+Na]+ (green). Parts per million (ppm) mass errors are indicated in parentheses. All images were visualised using totalion-current normalisation and using hotspot removal (high quantile = 99%). DPPC = PC16:0/16:0.

PE(18:3(6Z,9Z,12Z)/24:1(15Z))

Formula: C47H86NO8P (823.6091)
Adducts: [M+H-2H2O]+ (Ppm: 8.3)
Mus musculus (Lung)
image2
Resolution: 40μm, 550x256

Description

Supplementary Figure S6. Ion distribution images for (a) [PC36:4+Na]+ (m/z 804.5514) and (b) [PC38:6+Na]+ (m/z 828.5515) obtained from mouse lung tissue collected 6 h after administration of D9- choline and U13C-DPPC–containing CHF5633. Parts-per-million (ppm) mass errors are indicated in parentheses. (c) Magnification of the boxed region in (a) with selected bronchiolar regions outlined in white boxes. (d) The corresponding H&E-stained tissue section with the same selected bronchiolar regions outlined in black boxes. These data demonstrate the co-localisation of the polyunsaturated lipids PC36:4 and PC38:6 with the bronchiolar regions of the lung. All MSI images were visualised using total ion current normalisation and hotspot removal (high quantile = 99%).

PE(18:3(6Z,9Z,12Z)/24:1(15Z))

Formula: C47H86NO8P (823.6091)
Adducts: [M+H-2H2O]+ (Ppm: 6.8)
Macropus giganteus (Brain)
170321_kangaroobrain-dan3-pos_maxof50.0_med1
Resolution: 50μm, 81x50

Description

Sample information Organism: Macropus giganteus (kangaroo) Organism part: Brain Condition: Wildtype Sample growth conditions: Wild

SM(d20:1/18:1(12Z)-2OH(9,10))

Formula: C43H85N2O8P (788.6043)
Adducts: [M]+ (Ppm: 2.6)
Rattus norvegicus (Brain)
2018June2820180628_brain_POS_3s2_validated
Resolution: 17μm, 213x141

Description

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.