M/Z: 688.3948
Hit 4 annotations: Fumonisin B2_[M+H-H2O]+
; 12-O-Retinoylphorbol-13-acetate_[M]+
; (2e,4e)-5-[(3s,4s,7s,8s,9r,12s,23r,24s,28r)-7,24-dihydroxy-3,4,8,20,20,22,22-heptamethyl-28-(prop-1-en-2-yl)-21-oxa-1-azaoctacyclo[13.13.1.0²,¹⁴.0³,¹².0⁴,⁹.0¹⁷,²⁵.0¹⁸,²³.0²⁶,²⁹]nonacosa-2(14),15,17(25),18,26(29)-pentaen-8-yl]-2-methylpenta-2,4-dienoic acid_[M+Na]+
; (1r,2s,6r,9r,10s,11r,12r,13s,14s,15r,16s,17r,18r,19s,22s,23s,25r)-10,12,14,16,17,23-hexahydroxy-22-{[(3s)-3-hydroxy-3-methyl-2-oxopentyl]oxy}-6,10,19-trimethyl-24-oxa-4-azaheptacyclo[12.12.0.0²,¹¹.0⁴,⁹.0¹⁵,²⁵.0¹⁸,²³.0¹⁹,²⁵]hexacosan-13-yl (2r)-2-methylbutanoate_[M+H-2H2O]+
- 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 17 Reference Ions Near m/z 688.3948
NovoCell ID | m/z | Mass Window | Metabolite | Ranking | Anatomy Context |
---|---|---|---|---|---|
MSI_000007803 Unreliable | 688.3949 | 688.3949 ~ 688.395 MzDiff: 0.5 ppm |
Fumonisin B2 (BioDeep_00000001868) Formula: C34H59NO14 (705.3935) |
3.13 (100%) | Rattus norvegicus [UBERON:0004359] corpus epididymis |
MSI_000025572 Unreliable | 688.3901 | 688.3901 ~ 688.3902 MzDiff: 0.4 ppm |
Fumonisin B2 (BioDeep_00000001868) Formula: C34H59NO14 (705.3935) |
2.49 (33%) | Mus musculus [UBERON:0000913] interstitial fluid |
MSI_000027570 Unreliable | 688.3977 | 688.3974 ~ 688.398 MzDiff: 2.2 ppm |
Fumonisin B2 (BioDeep_00000001868) Formula: C34H59NO14 (705.3935) |
2.77 (100%) | Mus musculus [UBERON:0002048] lung |
MSI_000032409 Unreliable | 688.3957 | 688.3955 ~ 688.396 MzDiff: 2.1 ppm |
(2e,4e)-5-[(3s,4s,7s,8s,9r,12s,23r,24s,28r)-7,24-dihydroxy-3,4,8,20,20,22,22-heptamethyl-28-(prop-1-en-2-yl)-21-oxa-1-azaoctacyclo[13.13.1.0²,¹⁴.0³,¹².0⁴,⁹.0¹⁷,²⁵.0¹⁸,²³.0²⁶,²⁹]nonacosa-2(14),15,17(25),18,26(29)-pentaen-8-yl]-2-methylpenta-2,4-dienoic acid (BioDeep_00002082076) Formula: C43H55NO5 (665.408) |
1.36 (50%) | Posidonia oceanica [PO:0005020] vascular bundle |
MSI_000038523 Unreliable | 688.3957 | 688.3955 ~ 688.396 MzDiff: 2.1 ppm |
(2e,4e)-5-[(3s,4s,7s,8s,9r,12s,23r,24s,28r)-7,24-dihydroxy-3,4,8,20,20,22,22-heptamethyl-28-(prop-1-en-2-yl)-21-oxa-1-azaoctacyclo[13.13.1.0²,¹⁴.0³,¹².0⁴,⁹.0¹⁷,²⁵.0¹⁸,²³.0²⁶,²⁹]nonacosa-2(14),15,17(25),18,26(29)-pentaen-8-yl]-2-methylpenta-2,4-dienoic acid (BioDeep_00002082076) Formula: C43H55NO5 (665.408) |
1.74 (50%) | Posidonia oceanica [PO:0005059] root endodermis |
MSI_000001022 Unreliable | 688.3903 | 688.3903 ~ 688.3903 MzDiff: none |
Fumonisin B2 (BioDeep_00000001868) Formula: C34H59NO14 (705.3935) |
0.23 (100%) | Mus musculus [UBERON:0001224] renal pelvis |
MSI_000001669 Unavailable | 688.3903 | 688.3903 ~ 688.3903 MzDiff: none |
Fumonisin B2 (BioDeep_00000001868) Formula: C34H59NO14 (705.3935) |
-0.49 (100%) | Mus musculus [UBERON:0001225] cortex of kidney |
MSI_000002262 Unavailable | 688.3903 | 688.3903 ~ 688.3903 MzDiff: none |
Fumonisin B2 (BioDeep_00000001868) Formula: C34H59NO14 (705.3935) |
-0.6 (100%) | Mus musculus [UBERON:0001293] outer medulla of kidney |
MSI_000013336 Unreliable | 688.395 | 688.395 ~ 688.395 MzDiff: none |
Fumonisin B2 (BioDeep_00000001868) Formula: C34H59NO14 (705.3935) |
1.5 (100%) | Plant [PO:0005417] phloem |
MSI_000015246 Unavailable | 688.395 | 688.395 ~ 688.395 MzDiff: none |
Fumonisin B2 (BioDeep_00000001868) Formula: C34H59NO14 (705.3935) |
-0.65 (100%) | Plant [PO:0006036] root epidermis |
MSI_000018961 Unreliable | 688.395 | 688.395 ~ 688.395 MzDiff: none |
Fumonisin B2 (BioDeep_00000001868) Formula: C34H59NO14 (705.3935) |
0.2 (100%) | Plant [PO:0020124] root stele |
MSI_000019632 Unreliable | 688.395 | 688.395 ~ 688.395 MzDiff: none |
Fumonisin B2 (BioDeep_00000001868) Formula: C34H59NO14 (705.3935) |
0.08 (100%) | Plant [PO:0025197] stele |
MSI_000027904 Unreliable | 688.3896 | 688.3896 ~ 688.3896 MzDiff: none |
Not Annotated | 2.01 (0%) | Mus musculus [UBERON:0002048] lung |
MSI_000033548 Unreliable | 688.3948 | 688.3948 ~ 688.3948 MzDiff: none |
Fumonisin B2 (BioDeep_00000001868) Formula: C34H59NO14 (705.3935) |
1.73 (100%) | Posidonia oceanica [PO:0005352] xylem |
MSI_000038022 Unavailable | 688.3948 | 688.3948 ~ 688.3948 MzDiff: none |
Fumonisin B2 (BioDeep_00000001868) Formula: C34H59NO14 (705.3935) |
-0.23 (100%) | Posidonia oceanica [UBERON:0000329] hair root |
MSI_000044527 Unavailable | 688.395 | 688.395 ~ 688.395 MzDiff: none |
Fumonisin B2 (BioDeep_00000001868) Formula: C34H59NO14 (705.3935) |
-0.36 (100%) | Rattus norvegicus [UBERON:0002264] olfactory bulb |
MSI_000056342 Unavailable | 688.385 | 688.385 ~ 688.385 MzDiff: none |
Fumonisin B2 (BioDeep_00000001868) Formula: C34H59NO14 (705.3935) |
-0.68 (100%) | Homo sapiens [UBERON:0007779] transudate |
Found 23 Sample Hits
Metabolite | Species | Sample | |
---|---|---|---|
Fumonisin B2 Formula: C34H59NO14 (705.3935) Adducts: [M+H-H2O]+ (Ppm: 0.1) |
Mus musculus (Kidney) |
FULL_MS_centriod_CHCA_20210819Resolution: 17μm, 638x437
AP-MALDI instrument demo test, mass spectrum scan in centroid mode. |
|
Fumonisin B2 Formula: C34H59NO14 (705.3935) Adducts: [M+H-H2O]+ (Ppm: 6.9) |
Plant (Root) |
MPIMM_035_QE_P_PO_6pmResolution: 30μm, 165x170
|
|
Fumonisin B2 Formula: C34H59NO14 (705.3935) Adducts: [M+H-H2O]+ (Ppm: 7.2) |
Vitis vinifera (Fruit) |
grape_dhb_91_1Resolution: 50μm, 120x114
Grape berries fruit, condition: Ripe |
|
Fumonisin B2 Formula: C34H59NO14 (705.3935) Adducts: [M+H-H2O]+ (Ppm: 6.9) |
Rattus norvegicus (Epididymis) |
epik_dhb_head_ito03_17Resolution: 17μm, 208x108
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. |
|
Fumonisin B2 Formula: C34H59NO14 (705.3935) Adducts: [M+H-H2O]+ (Ppm: 6.9) |
Rattus norvegicus (Epididymis) |
epik_dhb_head_ito03_18Resolution: 17μm, 208x104
|
|
Fumonisin B2 Formula: C34H59NO14 (705.3935) Adducts: [M+H-H2O]+ (Ppm: 6.8) |
Rattus norvegicus (Epididymis) |
epik_dhb_head_ito01_04Resolution: 17μm, 178x91
|
|
Fumonisin B2 Formula: C34H59NO14 (705.3935) Adducts: [M+H-H2O]+ (Ppm: 6.6) |
Rattus norvegicus (Epididymis) |
epik_dhb_head_ito03_14Resolution: 17μm, 205x103
|
|
m/z_688.3894 Formula: - (n/a) Adducts: (Ppm: 0) |
Mus musculus (Lung) |
image1Resolution: 40μm, 187x165
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 |
|
Fumonisin B2 Formula: C34H59NO14 (705.3935) Adducts: [M+H-H2O]+ (Ppm: 11.4) |
Mus musculus (Lung) |
image1Resolution: 40μm, 187x165
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 |
|
Fumonisin B2 Formula: C34H59NO14 (705.3935) Adducts: [M+H-H2O]+ (Ppm: 0.1) |
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. |
|
12-O-Retinoylphorbol-13-acetate Formula: C42H56O8 (688.3975) Adducts: [M]+ (Ppm: 0.4) |
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. |
|
m/z_688.3901 Formula: - (n/a) Adducts: (Ppm: 0) |
Mus musculus (Lung) |
image5Resolution: 40μm, 163x183
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. |
|
Fumonisin B2 Formula: C34H59NO14 (705.3935) Adducts: [M+H-H2O]+ (Ppm: 11.3) |
Mus musculus (Lung) |
image5Resolution: 40μm, 163x183
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. |
|
m/z_688.3896 Formula: - (n/a) Adducts: (Ppm: 0) |
Mus musculus (Lung) |
image2Resolution: 40μm, 550x256
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%). |
|
Fumonisin B2 Formula: C34H59NO14 (705.3935) Adducts: [M+H-H2O]+ (Ppm: 10.4) |
Mus musculus (Lung) |
image2Resolution: 40μm, 550x256
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%). |
|
Fumonisin B2 Formula: C34H59NO14 (705.3935) Adducts: [M+H-H2O]+ (Ppm: 6.6) |
Posidonia oceanica (root) |
20190614_MS1_A19r-20Resolution: 17μm, 262x276
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. |
|
Fumonisin B2 Formula: C34H59NO14 (705.3935) Adducts: [M+H-H2O]+ (Ppm: 6.3) |
Posidonia oceanica (root) |
20190822_MS1_A19r-19Resolution: 17μm, 303x309
Seagrasses are among the most efficient sinks of carbon dioxide on Earth. While carbon sequestration in terrestrial plants is linked to the microorganisms living in their soils, the interactions of seagrasses with their rhizospheres are poorly understood. Here, we show that the seagrass, Posidonia oceanica excretes sugars, mainly sucrose, into its rhizosphere. These sugars accumulate to µM concentrations—nearly 80 times higher than previously observed in marine environments. This finding is unexpected as sugars are readily consumed by microorganisms. Our experiments indicated that under low oxygen conditions, phenolic compounds from P. oceanica inhibited microbial consumption of sucrose. Analyses of the rhizosphere community revealed that many microbes had the genes for degrading sucrose but these were only expressed by a few taxa that also expressed genes for degrading phenolics. Given that we observed high sucrose concentrations underneath three other species of marine plants, we predict that the presence of plant-produced phenolics under low oxygen conditions allows the accumulation of labile molecules across aquatic rhizospheres. |
|
(2e,4e)-5-[(3s,4s,7s,8s,9r,12s,23r,24s,28r)-7,24-dihydroxy-3,4,8,20,20,22,22-heptamethyl-28-(prop-1-en-2-yl)-21-oxa-1-azaoctacyclo[13.13.1.0²,¹⁴.0³,¹².0⁴,⁹.0¹⁷,²⁵.0¹⁸,²³.0²⁶,²⁹]nonacosa-2(14),15,17(25),18,26(29)-pentaen-8-yl]-2-methylpenta-2,4-dienoic acid Formula: C43H55NO5 (665.408) Adducts: [M+Na]+ (Ppm: 1.8) |
Posidonia oceanica (root) |
20190613_MS1_A19r-18Resolution: 17μm, 246x264
|
|
Fumonisin B2 Formula: C34H59NO14 (705.3935) Adducts: [M+H-H2O]+ (Ppm: 6.6) |
Posidonia oceanica (root) |
20190828_MS1_A19r-22Resolution: 17μm, 292x279
|
|
(1r,2s,6r,9r,10s,11r,12r,13s,14s,15r,16s,17r,18r,19s,22s,23s,25r)-10,12,14,16,17,23-hexahydroxy-22-{[(3s)-3-hydroxy-3-methyl-2-oxopentyl]oxy}-6,10,19-trimethyl-24-oxa-4-azaheptacyclo[12.12.0.0²,¹¹.0⁴,⁹.0¹⁵,²⁵.0¹⁸,²³.0¹⁹,²⁵]hexacosan-13-yl (2r)-2-methylbutanoate Formula: C38H61NO12 (723.4194) Adducts: [M+H-2H2O]+ (Ppm: 14.5) |
Posidonia oceanica (root) |
MS1_20180404_PO_1200Resolution: 17μm, 193x208
|
|
Fumonisin B2 Formula: C34H59NO14 (705.3935) Adducts: [M+H-H2O]+ (Ppm: 6.9) |
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. |
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Fumonisin B2 Formula: C34H59NO14 (705.3935) Adducts: [M+H-H2O]+ (Ppm: 4.1) |
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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Fumonisin B2 Formula: C34H59NO14 (705.3935) Adducts: [M+H-H2O]+ (Ppm: 6.5) |
Mus musculus (brain) |
Brain02_Bregma-3-88Resolution: 17μm, 288x282
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