| Literature DB >> 35620066 |
Jian You Wang1,2, Guan-Ting Erica Chen1,2,3, Muhammad Jamil1,2, Justine Braguy1,2,3, Salim Sioud4, Kit Xi Liew1,2, Aparna Balakrishna1,2, Salim Al-Babili1,2,3.
Abstract
The plant hormone strigolactones (SLs) are secreted by plant roots to act as rhizospheric signals. Here, we present a protocol for characterizing plant-released SLs. We first outline all necessary steps required for collection, processing, and analysis of plant root exudates using the C18 column for SL extraction, followed by liquid chromatography-mass spectrometry (LC-MS) for SL quantification. We then describe image processing by SeedQuant, an open-source artificial-intelligence-based software, for measuring the biological activity of SLs in inducing root parasitic plant seed germination. For complete details on the use and execution of this protocol, please refer to Wang et al. (2019) and Braguy et al. (2021).Entities:
Keywords: Mass Spectrometry; Metabolism; Metabolomics; Model Organisms; Plant sciences
Mesh:
Substances:
Year: 2022 PMID: 35620066 PMCID: PMC9127222 DOI: 10.1016/j.xpro.2022.101352
Source DB: PubMed Journal: STAR Protoc ISSN: 2666-1667
Preparation of 1 L half-strength modified Hoagland nutrient solution
| Reagent | Stock concentration | Final concentration | Amount |
|---|---|---|---|
| 1. Ammonium nitrate (NH4NO3) | 5.6 mM | 5.6 μM | 1 mL |
| 2. Magnesium sulfate heptahydrate (MgSO4∗7H2O) | 0.8 mM | 0.8 μM | 1 mL |
| 3. Iron EDTA (FeSO4) | 0.18 mM | 1.8 μM | 10 mL |
| 4. Calcium chloride dihydrate (CaCl2.2H2O) | 1.6 mM | 1.6 μM | 1 mL |
| 5. Potassium nitrate (KNO3) | 0.8 mM | 0.8 μM | 1 mL |
| 6. Potassium phosphate dibasic trihydrate (K2HPO4.3H2O) | 0.4 mM | 0.4 μM | 1 mL |
| 7. Micronutrients∗∗ | n/a | n/a | 1 mL |
| ddH2O | n/a | n/a | 984 mL |
Stocks of half-strength modified Hoagland nutrient solution
| Stock no. | Chemicals name | Concentration (mM) | Molecular weight (g/mol) | Mass (g/L) |
|---|---|---|---|---|
| 1. | NH4NO3 | 5.6 | 80.04 | 224.1 |
| 2. | MgSO4.7H2O | 0.8 | 246.48 | 98.6 |
| K2SO4 | 0.8 | 174.2 | 70.0 | |
| 3. | FeSO4.7H2O | 0.18 | 278.0 | 2.55 |
| Na2EDTA.2H2O | 0.02 | 372.2 | 1.86 | |
| 4. | CaCl2.2H2O | 1.6 | 147.02 | 117.6 |
| 5. | KNO3 | 0.8 | 101.11 | 40.4 |
| 6. | K2HPO4.3H2O | 0.4 | 228.2 | 50.0 |
| 7. | ||||
| H3BO3 | 0.023 | 61.84 | 0.711 | |
| MnCl2.4H2O | 0.0045 | 197.91 | 0.445 | |
| CuSO4.5H2O | 0.0003 | 249.68 | 0.037 | |
| ZnCl2 | 0.0015 | 136.32 | 0.102 | |
| Na2MoO4.2H2O | 0.0001 | 241.95 | 0.012 | |
1. NH4NO3; 2. K2HPO4.3H2O; 3. MgSO4+ K2SO4; 4. FeSO4.7H2O and Na2EDTA.2H2O; 5. CaCl2; 6. KNO3; 7. Micro nutrient.
Figure 1The setup for the hydroponic system of 50 mL falcon tube
(A) Make one hole in the center of the cap of the 50 mL tube. Cut the bottom of a 1.5 mL lid-removed black Eppendorf tube and place it in the hole of the 50 mL tube’s cap.
(B) A represented picture of rice seedlings grown under hydroponic system.
Figure 2SL quantification of rice grown under Low Pi and -Pi conditions
Data represent mean ± SD. n=5. Statistical analysis was performed using two-tail student t-test. Different letters denote significant differences (∗p < 0.05, ∗∗p< 0.01, ∗∗∗p< 0.001, ∗∗∗∗p< 0.0001). 4-DO, 4-deoxyorobanchol; Oro, Orobanchol.
Figure 3The chromatography of SL identification from authentic standards
(A) Accurate mass of 4-deoxyorobanchol (4-DO).
(B) MS/MS fragmentation of 4-DO (Seto et al., 2014).
(C) Accurate mass of Orobanchol (Oro).
(D) MS/MS fragmentation of Oro (Seto et al., 2014). The yellow flags point out the major fragments. +EIC = extracted ion chromatogram of positive mode.
Figure 4The chromatography of SL identification from authentic standard GR24
Accurate mass of GR24 (up). MS/MS fragmentation of GR24 (down) (Rebecca et al., 2020). The yellow flags point out the major fragments. +EIC = extracted ion chromatogram of positive mode.
Solvent composition
| Reagent | Final concentration | Amount |
|---|---|---|
| (A) Water | N/A | 500 mL |
| (B) Acetonitrile | N/A | 500 mL |
| Formic acid | 0.1% (V/V) |
LC gradient condition for SL identification
| Time | Flow (mL/min) | %A | %B |
|---|---|---|---|
| 0 | 0.5 | 75 | 25 |
| 15 | 0.5 | 0 | 100 |
| 20 | 0.5 | 0 | 100 |
| 21 | 0.5 | 75 | 25 |
| 23 | 0.5 | 75 | 25 |
General settings of MS
| Parameters | Values |
|---|---|
| Ionization | Heated Electrospray Ionization |
| Spray Voltage | Static |
| Positive Ion (V) | 3,500 |
| Negative Ion (V) | 2,500 |
| Gas Mode | Static |
| Sheath Gas (Arb) | 60 |
| Aux Gas (Arb) | 15 |
| Sweep Gas (Arb) | 2 |
| Ion Transfer Tube Temperature (°C) | 350 |
| Vaporized Temperature (°C) | 400 |
| Detector Type | Orbitrap |
| Orbitrap Resolution | 120000 |
| Use Quadrupole Isolation | TRUE |
| Scan Range (m/z) | 50–500 |
| RF Lens (%) | 60 |
| AGC Target | Standard |
| Microscans | 1 |
| Data Type | Centroid |
General settings of MS/MS
| Parameters | Values |
|---|---|
| Isolation Mode | Quadrupole |
| Isolation Window (m/z) | 1.6 |
| Isolation Offset | Off |
| Activation Type | HCD |
| Collision Energy Mode | Assisted |
| HCD Assisted Collision Energies (%) | 10,20,30,40 |
| Detection Type | Orbitrap |
| Orbitrap Resolution | 60,000 |
| Scan Range Mode | Auto |
| AGC Target | Standard |
| Microscans | 1 |
| Data Type | Centroid |
Figure 5The chromatography of SL identification from pearl millet exudate
Accurate mass of Orobanchol (up). MS/MS fragmentation of Orobanchyl acetate (down). The yellow flags point out the major fragments. +EIC= Extracted ion chromatogram of positive mode.
Figure 6The representative UHPLC–MS/MS chromatograms.
Overview of MRM chromatography from (A) TSQ-Altis and (B) QTRAP5500 Mass spectrometer, respectively. 4-DO, 4-deoxyorobanchol; Oro, Orobanchol; MeO-5DS, methoxy-5-deoxystrigol; D6-5DS, isotopically labeled (D6)-5-deoxystrigol.
Solvent composition
| Reagent | Final concentration | Amount |
|---|---|---|
| (A) Water | N/A | 500 mL |
| (B) Acetonitrile | N/A | 500 mL |
| Formic acid | 0.1% (V/V) |
LC gradient condition for MRM analysis
| Time | Flow (mL/min) | %A | %B |
|---|---|---|---|
| 0 | 0.5 | 75 | 25 |
| 15 | 0.5 | 0 | 100 |
| 20 | 0.5 | 0 | 100 |
| 21 | 0.5 | 75 | 25 |
| 25 | 0.5 | 75 | 25 |
MS parameter settings of SRM analysis
| Parameters | Values |
|---|---|
| Ionization | Heated Electrospray Ionization |
| Spray Voltage | Static |
| Positive Ion (V) | 4,000 |
| Negative Ion (V) | 3,500 |
| Sheath Gas (Arb) | 40 |
| Aux Gas (Arb) | 15 |
| Sweep Gas (Arb) | 5 |
| Ion Transfer Tube Temperature (°C) | 350 |
| Vaporized Temperature (°C) | 350 |
| Cycle Time (Sec) | 0.8 |
| Q1 Resolution (FWHM) | 0.2 |
| Q3 Resolution (FWHM) | 0.2 |
| CID Gas (mTorr) | 2 |
| Chromatographic Peak Width (Sec) | 6 |
The MRM detection parameters of SLs
| Strigolactones | Monitoring transitions (m/z; [M+H] +) | ||
|---|---|---|---|
| Precursor ion | Diagnostic product ion | Confirming product ion | |
| D6-5DS | 337.19 | 97.02 | 240.16 |
| GR24 | 299.08 | 97.02 | 157.06 |
| 4DO | 331.15 | 97.02 | 234.1 |
| Oro | 347.14 | 97.02 | 329.14 |
| MeO-5DS isomer | 361.16 | 97.02 | 247.12 |
| Oro-Acetate∗ | 389.15 | 97.02 | 329.14 |
| 411.1∗ | 97.02 | 351.1 | |
The MRM parameters of HPLC-triple quadrupole/linear ion trap instrument (QTRAP5500)
| Parameters | Values |
|---|---|
| Ionization | Turbo Spray |
| Spray Voltage | 5,500 |
| Curtain Gas (CUR) | 20 |
| Collision Gas (CAD) | Medium |
| Temperature (TEM) | 400 |
| Ion Source Gas 1 (GS1) | 80 |
| Ion Source Gas 2 (GS2) | 70 |
| Declustering Potential (DP) | 60 |
| Entrance Potential (EP) | 12 |
| Collision Energy (CE) | 16 |
| Collision Cell Exit Potential (CXP) | 15 |
Figure 7Expected outcome obtained from this protocol
(A) Overview and annotation of SeedQuant software interface.
(B) Evaluation of MiZax effect by SL quantification.
(C) Striga bioassay results processed by SeedQuant.
(D) SL quantification between two rice genotypes. Data represent mean ± SD. n=4. Statistical analysis was performed using One-way analysis of variance (ANOVA) and Tukey’s post hoc test. MiZax3, zaxinone mimics 3; WT, wild type; d17, dwarf17, a SL biosynthesis mutant. ND, not-detected
MRM raw data of LCMS used in the SL quantification between two rice genotypes
| Sample | Analyte name | Analyte peak area (counts) | Analyte retention time (min) | IS peak name | IS peak area (counts) | IS retention time (min) | Content (pg/replicate) |
|---|---|---|---|---|---|---|---|
| 4-DeoxyOrobanchol | N/A | N/A | D6-5DS | 5.97E+06 | 14.86 | N/A | |
| 4-DeoxyOrobanchol | N/A | N/A | D6-5DS | 5.88E+06 | 14.83 | N/A | |
| 4-DeoxyOrobanchol | N/A | N/A | D6-5DS | 4.85E+06 | 14.84 | N/A | |
| 4-DeoxyOrobanchol | N/A | N/A | D6-5DS | 7.22E+06 | 14.84 | N/A | |
| WT-1 | 4-DeoxyOrobanchol | 4.74E+05 | 14.9 | D6-5DS | 7.36E+06 | 14.86 | 43.28 |
| WT-2 | 4-DeoxyOrobanchol | 6.72E+05 | 14.9 | D6-5DS | 7.45E+06 | 14.86 | 60.62 |
| WT-3 | 4-DeoxyOrobanchol | 6.96E+05 | 14.93 | D6-5DS | 7.13E+06 | 14.88 | 65.62 |
| WT-4 | 4-DeoxyOrobanchol | 6.70E+05 | 14.91 | D6-5DS | 7.17E+06 | 14.86 | 62.79 |
| Orobanchol | N/A | N/A | D6-5DS | 5.97E+06 | 14.86 | N/A | |
| Orobanchol | N/A | N/A | D6-5DS | 5.88E+06 | 14.83 | N/A | |
| Orobanchol | N/A | N/A | D6-5DS | 4.85E+06 | 14.84 | N/A | |
| Orobanchol | N/A | N/A | D6-5DS | 7.22E+06 | 14.84 | N/A | |
| WT-1 | Orobanchol | 1.41E+06 | 10.62 | D6-5DS | 7.36E+06 | 14.86 | 128.30 |
| WT-2 | Orobanchol | 1.29E+06 | 10.61 | D6-5DS | 7.45E+06 | 14.86 | 115.97 |
| WT-3 | Orobanchol | 1.57E+06 | 10.64 | D6-5DS | 7.13E+06 | 14.88 | 148.31 |
| WT-4 | Orobanchol | 1.49E+06 | 10.61 | D6-5DS | 7.17E+06 | 14.86 | 139.61 |
| MeO-5DS | N/A | N/A | D6-5DS | 5.97E+06 | 14.86 | N/A | |
| MeO-5DS | N/A | N/A | D6-5DS | 5.88E+06 | 14.83 | N/A | |
| MeO-5DS | N/A | N/A | D6-5DS | 4.85E+06 | 14.84 | N/A | |
| MeO-5DS | N/A | N/A | D6-5DS | 7.22E+06 | 14.84 | N/A | |
| WT-1 | MeO-5DS | 1.08E+06 | 13.01 | D6-5DS | 7.36E+06 | 14.86 | 98.35 |
| WT-2 | MeO-5DS | 1.39E+06 | 13.01 | D6-5DS | 7.45E+06 | 14.86 | 125.18 |
| WT-3 | MeO-5DS | 1.51E+06 | 13.03 | D6-5DS | 7.13E+06 | 14.88 | 142.65 |
| WT-4 | MeO-5DS | 1.48E+06 | 13.01 | D6-5DS | 7.17E+06 | 14.86 | 138.67 |
Example of SeedQuant raw data
| Sample | Replicate | Radicle | Seed | Percentage of germinated (radical/seed) | Average |
|---|---|---|---|---|---|
| GR24 | 1 | 38 | 56 | 67.85714286 | 63.82134414 |
| 2 | 29 | 47 | 61.70212766 | ||
| 3 | 39 | 63 | 61.9047619 | ||
| H2O | 1 | 0 | 74 | 0 | 0 |
| 2 | 0 | 74 | 0 | ||
| 3 | 0 | 72 | 0 | ||
| 4 | 0 | 53 | 0 | ||
| WT1 | 1 | 36 | 83 | 43.37349398 | 52.41200095 |
| 2 | 31 | 51 | 60.78431373 | ||
| 3 | 40 | 68 | 58.82352941 | ||
| 4 | 28 | 60 | 46.66666667 | ||
| WT2 | 1 | 44 | 79 | 55.69620253 | 50.83424193 |
| 2 | 37 | 79 | 46.83544304 | ||
| 3 | 29 | 56 | 51.78571429 | ||
| 4 | 25 | 51 | 49.01960784 | ||
| WT3 | 1 | 36 | 65 | 55.38461538 | 54.44710337 |
| 2 | 36 | 69 | 52.17391304 | ||
| 3 | 32 | 60 | 53.33333333 | ||
| 4 | 33 | 58 | 56.89655172 | ||
| WT4 | 1 | 52 | 93 | 55.91397849 | 56.94924783 |
| 2 | 23 | 48 | 47.91666667 | ||
| 3 | 43 | 65 | 66.15384615 | ||
| 4 | 37 | 64 | 57.8125 | ||
| 1 | 21 | 89 | 23.59550562 | 24.93116051 | |
| 2 | 32 | 84 | 38.0952381 | ||
| 3 | 13 | 59 | 22.03389831 | ||
| 4 | 12 | 75 | 16 | ||
| 1 | 3 | 82 | 3.658536585 | 8.170308197 | |
| 2 | 3 | 53 | 5.660377358 | ||
| 3 | 6 | 69 | 8.695652174 | ||
| 4 | 11 | 75 | 14.66666667 | ||
| 1 | 13 | 57 | 22.80701754 | 18.33589502 | |
| 2 | 16 | 75 | 21.33333333 | ||
| 3 | 12 | 74 | 16.21621622 | ||
| 4 | 10 | 77 | 12.98701299 | ||
| 1 | 17 | 53 | 32.0754717 | 27.78734863 | |
| 2 | 12 | 59 | 20.33898305 | ||
| 3 | 11 | 44 | 25 | ||
| 4 | 28 | 83 | 33.73493976 |
| REAGENT or RESOURCE | SOURCE | IDENTIFIER |
|---|---|---|
| Methanol | VWR (≥99.9% (by GC), HiPerSolv CHROMANORM® for LC-MS) | Cat#83638 |
| Water | VWR (HiPerSolv CHROMANORM® for LC-MS) | Cat#83645 |
| Milli-Q Water | Merck (Quantum® Polishing Cartridge) | QTUM0TEX1 |
| Ethyl Acetate | VWR (≥99.8%, HiPerSolv CHROMANORM® for HPLC) | Cat#83621 |
| Acetonitrile | Fisher Scientific (Optima™ LC/MS Grade) | Cat#A955 |
| Formic acid | Merck (98%–100% for LC-MS LiChropur®) | Cat#533002 |
| 4-deoxyorobanchol | OlChemIm | Cat#0257141 |
| Orobanchol | OlChemIm | Cat#0256701 |
| Strigolab | ||
| D6-5-deoxystrigol | The University of Tokyo | |
| Ammonium nitrate | Fisher Scientific US | Cat#A676212 |
| Magnesium sulfate heptahydrate | GOLD BIOTECH | Cat#M-020-1 |
| Iron(II) sulfate heptahydrate, plant cell culture tested | Sigma-Aldrich | Cat#F8263-1KG |
| Ethylenediaminetetraacetic acid disodium salt dihydrate (EDTA) | Sigma-Aldrich | Cat#E6635-1KG |
| Calcium chloride dihyd 99% acs | Sigma-Aldrich | Cat#223506-500G |
| Potassium nitrate | Fisher Scientific US | Cat#MK6715212 |
| Potassium phosphate dibasic trihydrate 2ReagentPlus(R), >=99.0% | Sigma-Aldrich | Cat#P5504-5KG |
| Boric Acid | Sigma-Aldrich | Cat#B6768 |
| Manganese chloride tetrahydrate | ACROS ORGANICS | Cat#205895000 |
| Copper Sulfate pentahydrate | Sigma-Aldrich | Cat#C8027 |
| Zinc Chloride | Sigma-Aldrich | Cat#793523 |
| Sodium molybdate | ACROS ORGANICS | Cat#206375000 |
| Murashige & Skoog (MS) Basal Medium | Sigma-Aldrich | Cat#M5524-50L |
| Grade 4 qualitative filter papers, Whatman™, 90 mm, 1 cm thickness | A-VWR, Part of Avantor | Cat#512-1026 |
| Plastic round Petri dish (PETRI DISH 90 × 16.2 MM) | VWR INTERNATIONAL, LTD-UK | Cat#391-0443 |
| Silver sand | Hanson | |
| Pierce™ FlexMix™ Calibration Solution | Thermo Scientific | Cat#A39239 |
| 50 mL black falcon tube | Heathrow Scientific | Cat#518520 |
| 1.5 mL Eppendorf tube | Eppendorf, North America | Cat#022363204 |
| 1.5 mL Black Eppendorf tube | Argos Technologies™ | Cat#5087954 |
| 8 mL brown glass vial | VWR North America | Cat#548-0889 |
| Cap of 8 mL glass vial | VWR North America | Cat#548-0862 |
| 1.5 mL glass autosampler vial | VWR North America | Cat#VWRI548-0030 |
| Cap of 1.5 mL glass autosampler vial | VWR North America | Cat#89239-018 |
| 0.22 μm filter | Thermo Scientific | Cat#00215484 |
| Commercial bleach (sodium hypochlorite) | Clorox® Bleach | |
| Tween-20 | Thermo Scientific | Cat# 85113 |
| KAUST | ||
| KAUST | ||
| International Crops Research Institute for the Semi-Arid Tropics (ICRISAT) | ||
| Xcalibur™ Software | Thermo Fisher Scientific | OPTON-30965 |
| LAS-EZ-V3-0 software | Leica Microsystems | |
| SeedQuant | KAUST | |
| MultiQuant 2.1 | SCIEX | |
| Hypersil GOLD™ C18 Selectivity HPLC Columns | Thermo Scientific | 25003-032130 |
| SPE C18-Fast (500 mg/3 mL) | SEClute™ | 5138758 |
| Leica LED3000 R mounted with a CCD camera (Leica Microsystems) | Leica Microsystems | |
| UHPLC-Orbitrap ID-X Tribrid Mass Spectrometer | Thermo Fisher Scientific | |
| HPLC-triple quadrupole/linear ion trap instrument (QTRAP5500) | AB Sciex | |
| UHPLC- Triple-Stage Quadrupole Mass Spectrometer (TSQ-AltisTM) | Thermo Fisher Scientific | |