Quality analysis methods and quality analysis apparatus

By irradiating precursor ions with radicals to generate product ions and analyzing their mass-to-charge ratios, the method addresses the low selectivity of CID, enabling accurate identification of heterocyclic compounds by matching theoretical and actual spectra.

JP7776005B2Active Publication Date: 2025-11-26SHIMADZU SEISAKUSHO LTD
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Patent Information

Application Number
JP2024530315
Authority / Receiving Office
JP · JP
Patent Type
Patents
Current Assignee / Owner
Priority Date
2022-06-30
Filing Date
2023-04-14
Publication Date
2025-11-26
Estimated Expiration
2043-04-14

AI Technical Summary

Technical Problem

Collision-induced dissociation (CID) methods for analyzing heterocyclic compounds suffer from low selectivity in precursor ion fragmentation, leading to varying product ion spectral patterns and difficulty in accurately identifying sample components due to similar spectral similarities among candidate compounds.

Method used

Irradiate precursor ions with oxygen radicals, hydroxyl radicals, or nitrogen radicals to generate product ions, and analyze these ions based on their mass-to-charge ratios, calculating hypothetical product ions from heterocyclic compounds to determine candidate molecules by comparing actual and theoretical spectra.

Benefits of technology

Improves the accuracy of identifying heterocyclic compounds by selectively cleaving at double bonds, narrowing down candidate molecules based on matching mass-to-charge ratios, thereby enhancing the precision of sample component identification.

✦ Generated by Eureka AI based on patent content.

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Abstract

A mass spectrometry device 100 is provided with: measurement execution units 1, 2, 62 that isolate and detect, in accordance with the mass-to-charge ratio, product ions generated by emitting oxygen radicals, hydroxyl radicals, or nitrogen radicals against precursor ions derived from a sample component; a candidate molecule inferring unit 63 for determining, on the basis of the mass-to-charge ratio of the precursor ions, a candidate molecule under the assumption that the sample component is a compound having a heterocyclic ring that includes a double bond between carbon atoms; a hypothetical product ion inferring unit 64 for calculating the mass-to-charge ratio of hypothetical product ions assumed to be produced through cleavage of a heterocyclic ring pertaining to the precursor ions of the candidate molecule or cleavage of a bond adjacent to the heterocyclic ring; and a determination unit 65 for determining whether or not the sample component is the candidate molecule by comparing the mass-to-charge ratio of the detected product ions and the mass-to-charge ratio of the hypothetical product ions.
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Description

[Technical Field]

[0001] The present invention relates to a mass spectrometry method and a mass spectrometry apparatus. [Background technology]

[0002] Heterocyclic compounds are compounds with rings composed of multiple elements, and are often found in pharmaceuticals and biological samples. Therefore, heterocyclic compounds contained in samples are analyzed to develop new pharmaceuticals and search for biomarkers for disease detection.

[0003] Collision-induced dissociation (CID) is a well-known method for analyzing compounds contained in samples. In CID, precursor ions are accelerated by adding energy and then repeatedly collided with an inert gas such as argon, fragmenting the precursor ions to generate product ions. The product ions thus generated are separated and detected according to their mass-to-charge ratio to obtain a product ion spectrum. Additionally, multiple candidate compounds are estimated from the mass-to-charge ratio of the precursor ions, and the product ions generated when these candidate compounds fragment are theoretically estimated to create a virtual product ion spectrum for each candidate compound. The compounds contained in the sample are then identified based on the degree of agreement between the product ion spectrum obtained from an actual sample measurement and the virtual product ion spectra of the multiple candidate compounds. [Prior art documents] [Patent documents]

[0004] [Patent Document 1] International Publication No. 2018 / 186286 [Patent Document 2] International Publication No. 2019 / 155725 [Non-patent literature]

[0005] [Non-Patent Document 1] Hidenori Takahashi, Yuji Shimabukuro, Daiki Asakawa, Akihito Korenaga, Masaki Yamada, Shinichi Iwamoto, Motoi Wada, Koichi Tanaka, "Identifying Double Bond Positions in Phospholipids Using Liquid Chromatography-Triple Quadrupole Tandem Mass Spectrometry Based on Oxygen Attachment Dissociation", Mass Spedctrometry, Volume 8, Issue 2, Pages S0080, 2020 Summary of the Invention [Problem to be solved by the invention]

[0006] Collision-induced dissociation is an ion dissociation method in which energy is deposited in precursor ions to fragment them. However, because this energy is dispersed throughout the precursor ion molecule, the selectivity of the precursor ion fragmentation site is low. Furthermore, the location of precursor ion fragmentation varies depending on the magnitude of the collision energy and the collision gas pressure, resulting in significant changes in the product ion spectral pattern. Therefore, even if the product ions generated from each candidate compound are theoretically estimated, it is difficult to obtain a virtual product ion spectrum that closely matches the product ion spectrum obtained in actual measurements. As a result, there are many candidate compounds with similar product ion spectral similarities, making it difficult to narrow down the candidate compounds, making it difficult to identify sample components with high accuracy.

[0007] The problem to be solved by the present invention is to provide a technique that can improve the accuracy of identifying sample components. [Means for solving the problem]

[0008] In order to solve the above problems, the mass spectrometry method according to the present invention comprises: Precursor ions derived from sample components are irradiated with oxygen radicals, hydroxyl radicals, or nitrogen radicals to generate product ions. separating and detecting the product ions according to their mass-to-charge ratios; determining a candidate molecule based on the mass-to-charge ratio of the precursor ion, assuming that the sample component is a compound having a heterocycle containing a double bond between carbon atoms; calculating the mass-to-charge ratio of a hypothetical product ion that is assumed to be generated by cleavage of the heterocycle or a bond adjacent to the heterocycle of the precursor ion of the candidate molecule; The mass-to-charge ratio of the detected product ions is compared with the mass-to-charge ratio of the hypothetical product ions to determine whether the sample component is the candidate molecule. It is something.

[0009] Furthermore, a mass spectrometer according to the present invention, which is made to solve the above problems, comprises: a reaction chamber into which precursor ions derived from sample components are introduced; a measurement execution unit that irradiates precursor ions introduced into the reaction chamber with oxygen radicals, hydroxyl radicals, or nitrogen radicals, and separates and detects product ions generated from the precursor ions by the irradiation of the radicals according to their mass-to-charge ratios; a candidate molecule estimation unit that determines a candidate molecule based on the mass-to-charge ratio of the precursor ion by assuming that the sample component is a compound having a heterocycle including a double bond between carbon atoms; the virtual product ion estimation unit that calculates the mass-to-charge ratio of a virtual product ion that is assumed to be generated by cleavage of the heterocycle or a bond adjacent to the heterocycle of the precursor ion of the candidate molecule; a determination unit that determines whether the sample component is the candidate molecule by comparing the mass-to-charge ratio of the detected product ion with the mass-to-charge ratio of the virtual product ion; Equipped with. [Effects of the Invention]

[0010] The present inventors have discovered that when a heterocyclic compound containing a double bond between carbon atoms is irradiated with oxygen radicals, hydroxyl radicals, or nitrogen radicals, the radicals attach to the double bond between carbon atoms contained in the heterocycle, and radical-induced dissociation proceeds from that site. In radical-induced dissociation of heterocyclic compounds, in many cases, the precursor ion cleaves directly at the double bond to which the radical is attached. However, in some cases, the precursor ion cleaves at the bond adjacent to the double bond (a single bond contained in the heterocycle or a bond adjacent to the heterocycle). In this invention, a candidate molecule is identified based on the mass-to-charge ratio of the precursor ion, assuming that the sample component is a compound containing a heterocycle containing a double bond between carbon atoms. The mass-to-charge ratio of a hypothetical product ion assumed to be generated by cleavage of the heterocycle or the bond adjacent to the heterocycle of the precursor ion of the candidate molecule is then calculated and compared with the mass-to-charge ratio of the product ion detected in an actual measurement. If these mass-to-charge ratios match, the sample component is determined to be the candidate molecule. If these mass-to-charge ratios do not match, it is highly likely that the sample component is not a heterocyclic compound containing a double bond between carbon atoms. In this way, the present invention can narrow down candidate compounds by determining whether the sample component is a heterocyclic compound containing a double bond between carbon atoms, thereby improving the accuracy of identifying the sample component. [Brief explanation of the drawings]

[0011] [Figure 1] 1 is a schematic diagram of a liquid chromatograph mass spectrometer, which is an embodiment of a mass spectrometer according to the present invention; [Figure 2] FIG. 2 is a schematic diagram of a radical generation unit in the mass spectrometer of the present embodiment. [Figure 3] FIG. 2 is a schematic diagram of a radical transport path in the mass spectrometer of the present embodiment. [Figure 4] 1 is a flowchart showing an embodiment of a mass spectrometry method according to the present invention. [Figure 5]FIG. 1 is a diagram illustrating the molecular structure of mequitazine and its radical attachment / dissociation mechanism. [Figure 6] CID spectrum of mequitazine. [Figure 7] Radical attachment dissociation MS spectrum of mequitazine. [Figure 8] Molecular structures of two candidate molecules narrowed down based on the results of radical attachment dissociation MS spectroscopy. [Figure 9] A diagram explaining the molecular structure of reserpine and the radical attachment / dissociation mechanism. [Figure 10] CID spectrum of reserpine. [Figure 11] Radical attachment dissociation MS spectrum of reserpine. [Figure 12] A diagram explaining the molecular structure of thiamine and the radical attachment / dissociation mechanism. [Figure 13] Radical attachment dissociation MS spectrum of thiamine. DETAILED DESCRIPTION OF THE INVENTION

[0012] An embodiment of a mass spectrometer and a mass spectrometric method according to the present invention will be described below with reference to the drawings. This embodiment aims to identify unknown compounds contained in a sample to be analyzed, and can be suitably used, for example, to identify unknown compounds contained in biological samples or environmental substances, and to search for compounds that can serve as lead compounds for drugs or biomarkers for diseases.

[0013] 1. Configuration of the mass spectrometer of this embodiment FIG. 1 is a diagram showing the configuration of the main parts of a liquid chromatograph mass spectrometer 100 in which a mass spectrometer 1 according to this embodiment is combined with a liquid chromatograph 2. As shown in FIG.

[0014] The liquid chromatograph 2 includes a mobile phase container 20 containing a mobile phase, a liquid delivery pump 21 for delivering the mobile phase, an injector 22, and a column 23. An autosampler 24 is connected to the injector 22, which introduces a plurality of liquid samples into the injector in a predetermined order.

[0015] The mass spectrometer 1 comprises a main body consisting of an ionization chamber 10, which is at approximately atmospheric pressure, and a vacuum chamber, and a control and processing unit 6. Inside the vacuum chamber, in order from the ionization chamber 10 side, there are a first intermediate vacuum chamber 11, a second intermediate vacuum chamber 12, a third intermediate vacuum chamber 13, and an analysis chamber 14, and the system is configured as a multi-stage differential pumping system in which the degree of vacuum increases in this order.

[0016] An electrospray ionization probe (ESI probe) 101 that imparts an electric charge to a liquid sample and sprays it is installed in the ionization chamber 10. Sample components separated in the column 23 of the liquid chromatograph 2 are sequentially introduced into the ESI probe 101.

[0017] The ionization chamber 10 and the first intermediate vacuum chamber 11 are connected via a thin-diameter heated capillary 102. The first intermediate vacuum chamber 11 is equipped with an ion lens 111, which is made up of multiple ring-shaped electrodes with different diameters and focuses ions near the ion optical axis C, which is the central axis of the ion flight path.

[0018] The first intermediate vacuum chamber 11 and the second intermediate vacuum chamber 12 are separated by a skimmer 112 having a small hole at the top. The second intermediate vacuum chamber 12 is provided with an ion guide 121 which is made up of a plurality of rod electrodes arranged to surround the ion optical axis C and which focuses ions in the vicinity of the ion optical axis C.

[0019] The third intermediate vacuum chamber 13 is equipped with a quadrupole mass filter 131 that separates ions according to their mass-to-charge ratio, a collision cell 132 equipped with a multipole ion guide 133 inside, and an ion guide 134 that transports ions emitted from the collision cell 132. The ion guide 134 is composed of multiple ring-shaped electrodes of the same diameter.

[0020] A collision gas supply unit 4 is connected to the collision cell 132. The collision gas supply unit 4 has a collision gas source 41, a gas introduction flow path 42 that introduces gas from the collision gas source 41 into the collision cell 132, and a valve 43 that opens and closes the gas introduction flow path 42. The collision gas is, for example, an inert gas such as nitrogen gas or argon gas.

[0021] A radical supply unit 5 is also connected to the collision cell 132. The radical supply unit 5 has a configuration similar to that described in Patent Document 5 and Non-Patent Document 1. As shown in Fig. 2, the radical supply unit 5 includes a radical source 54 having a radical generation chamber 51 formed therein, a vacuum pump (not shown) for evacuating the radical generation chamber 51, a raw material gas supply source 52 for supplying a gas (raw material gas) that serves as a raw material for radicals, and a high-frequency power supply unit 53. A valve 56 for adjusting the flow rate of the raw material gas is provided in the flow path from the raw material gas supply source 52 to the radical generation chamber 51.

[0022] 2 shows a cross-sectional view of the radical source 54. The radical source 54 has a tubular body 541 made of a dielectric material such as alumina (for example, aluminum oxide, quartz, or aluminum nitride), and its internal space serves as the radical generation chamber 51. The tubular body 541 is inserted into a hollow cylindrical magnet 544 and fixed in place by a plunger 545. A spiral antenna 542 (indicated by a dashed line in FIG. 2) is wound around the outer periphery of the portion of the tubular body 541 located inside the magnet 544.

[0023] The radical source 54 is provided with a high-frequency power input unit 546. High-frequency power is supplied to the high-frequency power input unit 546 from the high-frequency power supply unit 53. Furthermore, the radical source 54 is provided with a flange 547 for fixing the tip portion of the radical source 54. A hollow cylindrical magnet 548 having the same diameter as the magnet 544 is housed inside the flange 547 and pairs with the magnet 544. The magnets 544 and 548 generate a magnetic field inside the tubular body 541 (radical generation chamber 51), and this action makes it easy to generate and maintain plasma.

[0024] A transport pipe 58 for transporting the radicals generated in the radical generation chamber 51 to the collision cell 132 is connected to the outlet end of the radical source 54 via a valve 582. The transport pipe 58 is an insulating pipe, and for example, a quartz glass pipe or a borosilicate glass pipe can be used.

[0025] 3, a plurality of heads 581 are provided in a portion of the transport tube 58 that is disposed along the wall surface of the collision cell 132. Each head 581 is provided with an inclined cone-shaped irradiation port, and radicals are irradiated in a direction that intersects with the central axis (ion optical axis C) of the ion flight direction. This allows the radicals to be evenly irradiated onto the ions flying inside the collision cell 132.

[0026] The analysis chamber 14 is equipped with an ion transport electrode 141 for transporting ions incident from the third intermediate vacuum chamber 13, an orthogonal acceleration electrode 142 consisting of a pair of pusher electrode 1421 and puller electrode 1422 arranged opposite each other across the ion incident optical axis (orthogonal acceleration region), an acceleration electrode 143 for accelerating ions sent out into the flight space by the orthogonal acceleration electrode 142, a reflectron electrode 144 for forming a return trajectory of ions in the flight space, an ion detector 145, and a flight tube 146 for defining the outer edge of the flight space. The ion detector 145 is, for example, an electron multiplier or a microchannel plate.

[0027] The control and processing unit 6 controls the operations of the above-mentioned units and has the function of storing and analyzing data obtained by the ion detector 145. The control and processing unit 6 is equipped with a memory unit 61. The memory unit 61 also stores a method file describing the measurement conditions for performing measurements, which will be described later, and information for converting the flight time of ions into the mass-to-charge ratio of ions.

[0028] The control and processing unit 6 includes, as functional blocks, a measurement control unit 62, a candidate molecule estimation unit 63, a virtual product ion estimation unit 64, and a determination unit 65. The actual entity of the control and processing unit 6 is a general personal computer to which an input unit 7 and a display unit 8 are connected, and the above functional blocks are realized by executing a pre-installed mass analysis program on the processor. The measurement control unit 62 of this embodiment, together with the liquid chromatograph 2 and the mass spectrometer 1, operates as the measurement execution unit of the present invention.

[0029] 2. Mass spectrometry procedure in this embodiment Next, as an example of a mass spectrometry method according to the present invention, an analytical procedure using the liquid chromatograph mass spectrometer 100 of this embodiment will be described with reference to Fig. 4. This analytical example aims to search for unknown components, particularly heterocyclic compounds, contained in a liquid sample.

[0030] When the user introduces a sample to be analyzed into the autosampler 24 and instructs the start of analysis, the measurement control unit 62 first evacuates the inside of the radical generation chamber 51 to a predetermined vacuum level using a vacuum pump, and then introduces a source gas (water vapor in this embodiment) at a predetermined flow rate from the source gas supply source 52 into the radical generation chamber 51. At this time, the high-frequency power supply unit 53 is not operated, and the valve 58 is also closed.

[0031] The measurement control unit 62 injects a liquid sample from the autosampler 24 into the injector 22 (step 1). The liquid sample injected into the injector 22 is carried by the flow of mobile phase sent from the mobile phase container 20 by the liquid sending pump 21 and introduced into the column 23. Inside the column 23, the components in the liquid sample are separated, and then introduced sequentially into the ESI probe 101 of the mass spectrometer 1 and ionized.

[0032] The measurement control unit 62 first repeatedly performs an MS scan measurement without radical irradiation while the sample components are being introduced into the ESI probe 101. When ions are detected in the MS scan measurement with an intensity equal to or greater than a predetermined threshold, the measurement control unit 62 sequentially performs an MS scan measurement without radical irradiation, a product ion scan measurement by CID (hereinafter also referred to as "CID measurement"), an MS scan measurement with oxygen radical irradiation, and a product ion scan measurement by oxygen radical attachment dissociation (hereinafter also referred to as "radical attachment dissociation measurement").

[0033] In MS scan measurements without radical irradiation, ions generated by the ESI probe 101 are transported directly to the orthogonal acceleration electrode 142 without mass separation and sent into a flight space. The ions then travel a predetermined flight path within the flight space and are sequentially detected by the ion detector 145. The output signals from the ion detector 145 are sequentially transmitted to the control and processing unit 60 and stored in the memory unit 61. When ions are detected with an intensity equal to or greater than a predetermined threshold during MS scan measurement, the ion's time of flight is converted to a mass-to-charge ratio based on the information stored in the memory unit 61, thereby creating MS spectrum data from the measurement data (step 2). The ions detected with an intensity equal to or greater than the threshold are then determined to be precursor ions. Hereinafter, the MS spectrum (data) created from MS scan measurements without radical irradiation will also be referred to as "MS spectrum (data) without radical irradiation."

[0034] In CID measurement, the valve 58 of the radical supply unit 5 is opened simultaneously with the start of measurement to introduce water vapor into the collision cell 132. In typical CID measurements, an inert gas such as argon gas is supplied to the collision cell 132 from the collision gas supply unit 4. However, in this analysis example, water vapor is supplied from the source gas supply source 52 of the radical supply unit 5 to quickly and easily switch from collision gas to radicals when performing radical attachment dissociation measurement after CID measurement. Ions generated by the ESI probe 101 enter the front-stage quadrupole mass filter 131, where precursor ions are selected. A predetermined amount of collision energy is imparted to the ions, which then enter the collision cell 132. Inside the collision cell 132, the precursor ions collide with water vapor gas molecules, fragmenting them to generate product ions (fragment ions). The product ions generated in the collision cell 132 are transported to the orthogonal acceleration unit 142 and sent into flight space. After traveling a predetermined flight path, they are sequentially detected by the ion detector 145. Simultaneously with the completion of the CID measurement (or after the completion of the measurement of the sample to be analyzed), the flight times of the ions are converted into mass-to-charge ratios of the ions based on the information stored in the memory unit 61, and product ion spectrum data is generated (step 3). Hereinafter, the product ion spectrum (data) generated from the CID measurement is also referred to as the "measured CID spectrum (data)."

[0035] In MS scan measurements using oxygen radicals, the radio-frequency power supply 53 of the radical supply unit 5 is activated simultaneously with the start of measurement to generate radicals from water vapor in the radical generation chamber 51. The radicals generated here include oxygen radicals. The generated radicals are introduced into the collision cell 132. The ions generated by the ESI probe 101 are introduced directly into the collision cell 132 without being mass-separated by the pre-quadrupole mass filter 131. Product ions are generated when oxygen radicals or other species attach to some of the ions. The product ions referred to here include fragment ions generated by the dissociation of ions generated from sample components through radical attachment reactions, and adduct ions in which radicals are attached to the fragment ions. These product ions, along with unreacted ions, are transported to the orthogonal acceleration electrode 142 and sent into flight space. After traveling a predetermined flight path, they are sequentially detected by the ion detector 145. Simultaneously with the completion of the MS scan measurement irradiating oxygen radicals (or after the measurement of the sample to be analyzed is completed), the time of flight of the ions is converted into the mass-to-charge ratio of the ions based on the information stored in the memory unit 61, and MS spectrum data is generated (step 4). Hereinafter, the MS spectrum (data) generated from the MS scan measurement irradiating oxygen radicals is also referred to as the "radical-irradiated MS spectrum (data)."

[0036] In radical attachment dissociation measurements, oxygen radicals and the like are continuously introduced into the collision cell 132. Precursor ions are selected from the ions generated by the ESI probe 101 by the front-stage quadrupole mass filter 131 and then injected into the collision cell 132. Inside the collision cell 132, oxygen radicals attach to the precursor ions, generating product ions. Similarly to the above, the product ions referred to here include fragment ions generated by dissociation of precursor ions derived from sample components via radical attachment reactions, and adduct ions in which radicals are attached to the precursor ions. These product ions, along with unreacted precursor ions, are transported to the orthogonal acceleration electrode 142 and sent into flight space. After traveling a predetermined flight path, they are sequentially detected by the ion detector 145. Simultaneously with the completion of the radical attachment dissociation measurements (or after the completion of the measurement of the sample to be analyzed), the flight times of the ions are converted to mass-to-charge ratios of the ions based on the information stored in the memory unit 61, and product ion spectral data is generated (step 5). Hereinafter, the product ion spectrum (data) created from the radical attachment dissociation measurement will also be referred to as "radical attachment dissociation MS spectrum (data)."

[0037] When the measurement of the liquid sample is completed, the candidate molecule estimation unit 63 determines the exact mass of the precursor ion from the MS spectrum data without radical irradiation, and determines a candidate molecule from that exact mass (step 6). Since the time-of-flight mass analyzer used in this embodiment can obtain the exact mass of the ion, it is possible to estimate the composition formula from the exact mass of the precursor ion, and then estimate possible molecular structures from that composition formula to determine a candidate molecule. The number of candidate molecules determined here is not limited to one, and typically there can be multiple.

[0038] The candidate molecule estimation unit 63 theoretically estimates fragment ions that can be generated from the molecular structure of each candidate molecule by computer calculation (in silico) to generate theoretical CID spectrum data (step 7). The candidate molecule estimation unit 63 is not limited to generating theoretical CID spectra by itself, but may also generate theoretical CID spectra by accessing an external site via a network such as the Internet. One such site is MetFlag. The candidate molecule estimation unit 63 compares the mass peaks in the theoretical CID spectrum data with the mass peaks in the measured CID spectrum data to narrow down the candidate molecules from the previously determined candidate molecules to those whose spectral data match (score) a predetermined standard (step 8).

[0039] The candidate molecule estimation unit 63 then compares the mass peaks present in the MS spectrum data without radical irradiation with those present in the MS spectrum data with radical irradiation. It then checks whether the MS spectrum data with radical irradiation contains a mass peak corresponding to an adduct ion formed by oxygen radicals attached to a precursor ion. If such an adduct ion is present, it estimates that the sample component is likely to be a heterocyclic compound (step 9). If it estimates that the sample component is likely to be a heterocyclic compound, it adds a predetermined value to the scores of candidate molecules that are heterocyclic compounds (and / or subtracts a predetermined value from the scores of candidate molecules other than heterocyclic compounds). Conversely, if it estimates that the sample component is likely not a heterocyclic compound, it adds a predetermined value to the scores of candidate molecules other than heterocyclic compounds (and / or subtracts a predetermined value from the scores of candidate molecules that are heterocyclic compounds).

[0040] Next, for compounds having a heterocycle containing a double bond between carbon atoms (hereinafter, such heterocyclic compounds are also referred to as "double-bond heterocyclic compounds") among the candidate molecules narrowed down by the above process, the virtual product ion estimation unit 64 calculates the mass-to-charge ratio of virtual product ions generated by cleavage of the heterocycle or a bond adjacent to the heterocycle (step 10).

[0041] In the radical-induced dissociation of heterocyclic compounds, in many cases, the precursor ion is cleaved directly at the double bond to which the radical is attached. However, in some cases, the precursor ion is cleaved at the bond adjacent to the double bond (a single bond contained in the heterocycle or a bond adjacent to the heterocycle). Therefore, for example, for candidate molecules for which it is known in advance that the heterocycle of the virtual molecule will cleave at the double bond, only the mass-to-charge ratio of the virtual product ion generated by the heterocycle cleavage at the double bond may be determined. For other virtual product ions, it is sufficient to determine both the mass-to-charge ratio of the virtual product ion generated by the heterocycle of the virtual molecule cleaving at the double bond and the mass-to-charge ratio of one or more virtual product ions generated by the heterocycle of the virtual molecule cleaving at the bond adjacent to the double bond.

[0042] Once the mass-to-charge ratios of the virtual product ions for each candidate molecule that is a double-bond heterocyclic compound have been calculated, the determination unit 65 checks whether mass peaks corresponding to those virtual product ions are present in the radical attachment dissociation MS spectrum data. If a mass peak corresponding to the virtual product ion of any of the candidate molecules is present, it is determined that the sample component is likely to be that candidate molecule (step 11). On the other hand, if no mass peaks corresponding to the virtual product ions of any of the candidate molecules are present, it is determined that the sample component is likely not a double-bond heterocyclic compound. The determination unit 65 displays the determination results on the screen of the display unit 8 together with the molecular structure of each candidate molecule, information on whether it is a heterocyclic compound, and a score (step 12).

[0043] As described above, in this embodiment, candidate molecules are identified based on the exact mass of the precursor ion, using the MS spectrum data without radical irradiation, the MS spectrum data with radical irradiation, the measured CID spectrum data, and the spectrum data with radical irradiation for the sample component. Then, a score is calculated by comparing the theoretical CID spectrum with the measured CID spectrum, and a score is added (or subtracted) based on an estimate of whether the sample component is a heterocyclic compound based on the presence or absence of adduct ions. Finally, a determination is made as to whether a mass peak corresponding to a hypothetical product ion that would be generated if the sample component were a double-bond heterocyclic compound is present in the spectrum with radical irradiation. By performing these processes, the candidate molecules for the sample component can be narrowed down, thereby improving the accuracy of sample component identification.

[0044] 3. Working Example Example 1 In Example 1, we will explain the experimental results of confirming that irradiation with oxygen radicals causes precursor ions of double-bond heterocyclic compounds to dissociate at the double bond in the heterocycle. In the first example, mequitazine was measured. Mequitazine is a compound with the molecular structure shown in Figure 5 and is included in pharmaceuticals. Figure 5 also shows the assumed mechanism of radical attachment dissociation for mequitazine.

[0045] Figure 6 shows the measured CID spectrum of mequitazine. This spectrum was obtained by CID measurement using the observed ion (protonated ion) with a mass-to-charge ratio of 323.1563 as the precursor ion. Analysis of this measured CID spectrum data using MetFlag revealed that the correct compound, mequitazine, was ranked 19th. Note that in this example, mequitazine, a known compound, was measured; however, when measuring unknown components in a sample, it is unclear in which score the correct compound appears. Conventional mass spectrometry requires preparing standard samples for each of the top-scoring candidate molecules, performing CID measurements to obtain measured CID spectrum data, and then identifying the sample component as a candidate molecule. This requires time and effort to prepare and measure numerous standard samples. Furthermore, it is not always possible to isolate and prepare standard samples for some candidate molecules.

[0046] The radical attachment dissociation MS spectrum of mequitazine is shown in Figure 7. This radical attachment dissociation MS spectrum was obtained by irradiating precursor ions with a mass-to-charge ratio of 323.1576 with oxygen radicals generated using water vapor as the source gas.

[0047] In Example 1, double-bond heterocyclic compounds were selected from the candidate molecules, and the mass-to-charge ratios of the hypothetical product ions generated by dissociation of precursor ions at the double bonds in the heterocycles were determined. The presence of mass peaks of ions with these mass-to-charge ratios in the radical attachment dissociation MS spectrum was then confirmed. In Example 1, of the top 19 candidate molecules presented by MetFlag, only the two heterocyclic compounds shown in Figure 8 exhibited mass peaks (m / z: 124.1118) corresponding to the hypothetical product ions shown in Figure 5. This suggests that the sample component is likely to be one of these two candidate molecules. This narrows down the top candidate molecules to two without performing CID measurements on all of the candidate molecules, thereby improving the accuracy of sample component identification.

[0048] <Example 2> As Example 2, reserpine, which is a type of pharmaceutical alkaloid, will be described with reference to Figures 9 to 11. Reserpine has a structure in which a benzene ring and a pyrrole ring are fused, as shown in Figure 9, and belongs to a group of compounds called indoles. Figure 9 also shows the radical attachment and dissociation mechanism assumed for reserpine.

[0049] Figure 10 shows the measured CID spectrum of reserpine, and Figure 11 shows the radical attachment dissociation MS spectrum of reserpine. The radical attachment dissociation MS spectrum in Figure 11 contains a mass peak with a mass-to-charge ratio of 450.2128, which corresponds to a product ion generated by cleavage of the heterocycle of the precursor ion, and is not seen in the measured CID spectrum in Figure 10.

[0050] Example 3 As Example 3, thiamine (vitamin B1) will be described with reference to Figures 12 and 13. Figure 12 shows the molecular structure of thiamine, along with the mechanism of radical attachment and dissociation that is assumed for thiamine.

[0051] Figure 13 shows the radical attachment dissociation MS spectrum of thiamine. The radical attachment dissociation MS spectrum in Figure 13 also shows a mass peak with a mass-to-charge ratio of 138.0669, corresponding to the product ions generated by cleavage of the heterocycle of the precursor ion. However, compared to the radical attachment dissociation MS spectrum of mequitazine shown in Figure 7 and the radical attachment dissociation MS spectrum of reserpine shown in Figure 11, the mass peak intensity of the product ions generated by cleavage of the heterocycle of the precursor ion is weaker. The inventors conducted measurements on various compounds and found that the higher the electron conjugation in the heterocycle, the less likely radical attachment dissociation tends to occur. Experiments conducted by the inventors have shown that benzene rings do not exhibit radical attachment dissociation, which is consistent with this trend. Although the heterocycle of thiamine contains a nitrogen atom, it is a cyclic conjugated compound, which is likely why the heterocycle of the precursor ion was less susceptible to cleavage. On the other hand, the heterocycles of indole and imidazole, which contain pyrrole rings, are more susceptible to cleavage, resulting in the generation of many product ions. Therefore, the mass spectrometer and mass spectrometric method of the above embodiment are considered to be particularly useful for identifying these compounds.

[0052] The above-described embodiments and examples are merely examples and can be modified as appropriate in accordance with the spirit of the present invention.

[0053] The mass spectrometry method and mass spectrometry apparatus according to the present invention can be used to analyze various heterocyclic compounds, including but not limited to the compounds listed in Examples 1-3. Specifically, heterocyclic compounds containing at least one of boron, nitrogen, phosphorus, sulfur, and oxygen atoms in the heterocycle, such as borole, pyrrole, imidazole, phosphole, thiophene, or furan, are examples of such heterocyclic compounds. Specific examples of such compounds include thiamine (vitamin B1), nicotinamide (a type of vitamin B3), pyridoxine (a type of vitamin B6), tryptophan (an amino acid), mequitazine (an antihistamine), reserpine (a tranquilizer / hypotensive), epinastine (a hay fever drug), and clozapine (a drug for schizophrenia).

[0054] In the above embodiment, MS scan measurement without radical irradiation, CID measurement, MS scan measurement with oxygen radical irradiation, and radical attachment dissociation measurement were performed, and spectral data was obtained for each. However, performing all of these measurements is not essential to the present invention. Simply performing radical attachment dissociation measurement and obtaining a radical attachment dissociation MS spectrum can at least estimate whether a candidate molecule is a double-bond heterocyclic compound. Furthermore, while four measurements were performed consecutively in the above example, each measurement may be performed individually. In this case, an inert gas such as argon gas may be supplied from the collision gas supply unit 4 during CID measurement. Furthermore, if the number of molecular structures possible based on the accurate mass-to-charge ratio of the precursor ion obtained from the MS spectrum without radical irradiation is limited, or if the number of candidate molecules estimated from molecular structures based on analytical results using techniques other than mass spectrometry, such as nuclear magnetic resonance spectroscopy or crystalline sponge spectroscopy, is less than a certain number (e.g., less than 10), the CID measurement and the calculation of the score based on a comparison of the mass peaks of the theoretical CID spectrum with the mass peaks of the measured CID spectrum may be omitted.

[0055] Adduct ions with attached oxygen radicals also appear in radical attachment dissociation MS spectra. However, if the sample being analyzed contains oxides, ions with the same mass-to-charge ratio as the ions with attached oxygen radicals may be generated from the oxides, making it impossible to distinguish between the two. Therefore, it is preferable to confirm the presence or absence of adduct ions by separately performing MS scan measurements without radical irradiation and MS scan measurements with oxygen radical irradiation, as described above, and comparing the results. Alternatively, instead of performing MS scan measurements with oxygen radical irradiation, the source gas (water vapor or oxygen gas) used in the radical attachment dissociation measurements may be replaced with oxygen having a mass number of 18, and the presence or absence of adduct ions with attached oxygen having a mass number of 18 may be used to determine the presence or absence of adduct ions.

[0056] Although the above embodiment uses a liquid chromatograph mass spectrometer, a gas chromatograph mass spectrometer may also be used, or compounds may be isolated by another method without using a chromatograph and only mass analysis may be performed. In the above embodiment, an orthogonal acceleration time-of-flight type post-stage mass filter was used, but a multi-turn type, magnetic sector type, or other mass filter may also be used. Furthermore, the configurations of the radical supply unit and radical transport tube described in the above embodiment are merely examples and may be modified as appropriate.

[0057] The accurate mass may be a mass with sufficient accuracy to allow the compositional formula of an unknown sample compound to be estimated from the precursor ion based on its accurate mass-to-charge ratio. In the above example, the accurate mass is calculated with an accuracy of four decimal places, but the required accuracy varies depending on the properties of the compound to be measured (e.g., the number of compounds with similar structures), and is not limited to the accuracy described in the above example.

[0058] Instead of oxygen radicals, hydroxyl radicals or nitrogen radicals may be used as radicals to irradiate precursor ions. Radical attachment and dissociation measurements conducted by the present inventor have shown that these three types of radicals exhibit common dissociation characteristics when irradiated onto various compounds. Therefore, hydroxyl radicals or nitrogen radicals may be used instead of or in addition to the oxygen radicals used in the above example. Hydroxyl radicals are generated together with oxygen radicals from the water vapor used in the above example. Nitrogen radicals can also be generated from air or nitrogen gas. Furthermore, oxygen gas or ozone gas may be used as a source gas when irradiating oxygen radicals in the same manner as in the above example.

[0059] In the above embodiment, precursor ions passing through the collision cell 132 are irradiated with radicals, but it is also possible to use an ion trap instead of the collision cell 132, capture precursor ions in the ion trap, and irradiate them with radicals.

[0060] [Aspect] It will be appreciated by those skilled in the art that the exemplary embodiments described above are examples of the following aspects.

[0061] (Section 1) A mass spectrometry method according to one embodiment includes the steps of: Precursor ions derived from sample components are irradiated with oxygen radicals, hydroxyl radicals, or nitrogen radicals to generate product ions. separating and detecting the product ions according to their mass-to-charge ratios; determining a candidate molecule assuming that the sample component is a compound having a heterocycle containing a double bond between carbon atoms based on the mass-to-charge ratio of the precursor ion; calculating the mass-to-charge ratio of a hypothetical product ion that is assumed to be generated by cleavage of the heterocycle or a bond adjacent to the heterocycle of the precursor ion of the candidate molecule; The mass-to-charge ratio of the detected product ions is compared with the mass-to-charge ratio of the hypothetical product ions to determine whether the sample component is the candidate molecule. It is something.

[0062] (Section 2) A mass spectrometer according to one aspect comprises: a reaction chamber into which precursor ions derived from sample components are introduced; a measurement execution unit that irradiates precursor ions introduced into the reaction chamber with oxygen radicals, hydroxyl radicals, or nitrogen radicals, and separates and detects product ions generated from the precursor ions by the irradiation of the radicals according to their mass-to-charge ratios; a candidate molecule estimation unit that determines a candidate molecule based on the mass-to-charge ratio of the precursor ion by assuming that the sample component is a compound having a heterocycle including a double bond between carbon atoms; the virtual product ion estimation unit that calculates the mass-to-charge ratio of a virtual product ion that is assumed to be generated by cleavage of the heterocycle or a bond adjacent to the heterocycle of the precursor ion of the candidate molecule; a determination unit that determines whether the sample component is the candidate molecule by comparing the mass-to-charge ratio of the detected product ion with the mass-to-charge ratio of the virtual product ion; Equipped with.

[0063] When a heterocyclic compound containing a double bond between carbon atoms is irradiated with oxygen radicals, hydroxyl radicals, or nitrogen radicals, the radicals attach to the double bond between the carbon atoms in the heterocycle, and radical-induced dissociation proceeds from that site. In radical-induced dissociation of heterocyclic compounds, in many cases, the precursor ion cleaves directly at the double bond to which the radical is attached. However, in some cases, the precursor ion cleaves at the bond adjacent to the double bond (a single bond in the heterocycle or a bond adjacent to the heterocycle). In the mass spectrometry method of paragraph 1 and the mass spectrometer of paragraph 2, candidate molecules are identified based on the mass-to-charge ratio of the precursor ion, assuming that the sample component is a compound containing a heterocycle containing a double bond between carbon atoms. The number of candidate molecules identified based on the mass-to-charge ratio of the precursor ion is not limited to one; multiple candidate molecules may exist. Then, for each of the one or more candidate molecules, the mass-to-charge ratio of a hypothetical product ion assumed to be generated by cleavage of a heterocycle or a bond adjacent to the heterocycle in the precursor ion of the candidate molecule is calculated and compared with the mass-to-charge ratio of the product ion detected in an actual measurement. If these mass-to-charge ratios match, the sample component is determined to be the candidate molecule. On the other hand, if these mass-to-charge ratios do not match, it is determined that the sample component is unlikely to be a heterocyclic compound containing a double bond between carbon atoms. In this way, the mass spectrometry method of paragraph 1 and the mass spectrometer of paragraph 2 can narrow down the candidate compounds by determining whether the sample component is a heterocyclic compound containing a double bond between carbon atoms, thereby improving the accuracy of identifying the sample component.

[0064] (Section 3) 3. The mass spectrometer according to claim 2, The sample component is a heterocyclic compound containing a nitrogen atom or a sulfur atom in the heterocycle.

[0065] (Section 4) 4. The mass spectrometer according to claim 2 or 3, The heterocycle is a pyrrole ring or an imidazole ring.

[0066] As described in item 3, when the sample component is a heterocyclic compound containing a nitrogen atom or a sulfur atom, the heterocycle of the precursor ion is easily cleaved, and when the sample component is a pyrrole ring or an imidazole ring as described in item 4, the heterocycle of the precursor ion is easily cleaved. Therefore, the mass spectrometer described in item 3 or 4 can identify the sample component with higher accuracy.

[0067] (Section 5) The mass spectrometer according to any one of items 2 to 4, further comprising: the measurement execution unit separates and detects product ions generated by collision-induced dissociation of the precursor ions according to their mass-to-charge ratios to obtain product ion spectrum data; The candidate molecule estimation unit determines candidate molecules based on the mass-to-charge ratio of the precursor ion and the product ion spectrum data.

[0068] The mass spectrometer described in paragraph 5 further identifies candidate molecules using spectral data of product ions generated by collision-induced dissociation of precursor ions, thereby narrowing down the number of candidate molecules and enabling sample components to be identified with high accuracy.

[0069] (Section 6) The mass spectrometer according to any one of items 2 to 5, further comprising: the measurement execution unit separates and detects ions generated from the sample component according to their mass-to-charge ratio without dissociating them to obtain first mass spectrum data, and also irradiates the ions generated from the sample component with oxygen radicals, hydroxyl radicals, or nitrogen radicals, and separates and detects them according to their mass-to-charge ratio to obtain second mass spectrum data; The candidate molecule inference unit infers that the sample component is a heterocyclic compound based on the presence in the second mass spectrum data of an adduct ion that is not present in the first mass spectrum data.

[0070] When the sample component is a heterocyclic compound, not only is the heterocycle of the precursor ion likely to be cleaved by radical attachment, but adduct ions in which radicals are attached to the double bond of the heterocycle are also likely to be generated. The mass spectrometer described in paragraph 6 can determine whether the sample component is a heterocyclic compound based on the presence of such adduct ions. [Explanation of symbols]

[0071] 100...Liquid chromatograph mass spectrometer 1...Mass spectrometer 10...Ionization chamber 101...Electrospray ionization (ESI) probe 11...First intermediate vacuum chamber 12...Second intermediate vacuum chamber 13...Third intermediate vacuum chamber 131...Quadrupole mass filter 132...Collision cell 133...Multipole ion guide 14…Analysis room 142...Orthogonal acceleration electrode 144...Reflectron electrode 145...Ion detector 146...Flight tube 2...Liquid chromatograph 20…Mobile phase container 21...Liquid transfer pump 22...Injector 23...Column 24...Autosampler 4...Collision gas supply section 41...Collision gas source 42...Gas introduction channel 5...Radical supply unit 51...Radical generation chamber 52... Raw material gas supply source 53...High frequency power supply unit 54...Radical source 541...Tubular body 542...Spiral antenna 544, 548...Magnet 546…High frequency power input section 58...transport pipe 6...Control and processing section 61...Storage section 62...Measurement control section 63...Candidate molecule estimation section 64...Virtual product ion estimation section 65…Judgment section 7...Input section 8…Display section

Claims

1. Precursor ions derived from sample components are irradiated with oxygen radicals, hydroxyl radicals, or nitrogen radicals to generate product ions. separating and detecting the product ions according to their mass-to-charge ratios; determining a candidate molecule assuming that the sample component is a compound having a heterocycle containing a double bond between carbon atoms based on the mass-to-charge ratio of the precursor ion; calculating the mass-to-charge ratio of a hypothetical product ion that is assumed to be generated by cleavage of the heterocycle or a bond adjacent to the heterocycle of the precursor ion of the candidate molecule; The mass-to-charge ratio of the detected product ions is compared with the mass-to-charge ratio of the hypothetical product ions to determine whether the sample component is the candidate molecule. Mass spectrometry methods.

2. a reaction chamber into which precursor ions derived from sample components are introduced; a measurement execution unit that irradiates precursor ions introduced into the reaction chamber with oxygen radicals, hydroxyl radicals, or nitrogen radicals, and separates and detects product ions generated from the precursor ions by the irradiation of the radicals according to their mass-to-charge ratios; a candidate molecule estimation unit that determines a candidate molecule based on the mass-to-charge ratio of the precursor ion by assuming that the sample component is a compound having a heterocycle including a double bond between carbon atoms; the virtual product ion estimation unit that calculates the mass-to-charge ratio of a virtual product ion that is assumed to be generated by cleavage of the heterocycle or a bond adjacent to the heterocycle of the precursor ion of the candidate molecule; a determination unit that determines whether the sample component is the candidate molecule by comparing the mass-to-charge ratio of the detected product ion with the mass-to-charge ratio of the virtual product ion; A mass spectrometer comprising:

3. The mass spectrometer according to claim 2 , wherein the sample component is a heterocyclic compound containing a nitrogen atom or a sulfur atom in the heterocycle.

4. The mass spectrometer according to claim 3 , wherein the heterocycle is a pyrrole ring or an imidazole ring.

5. the measurement execution unit separates and detects product ions generated by collision-induced dissociation of the precursor ions according to their mass-to-charge ratios to obtain product ion spectrum data; The candidate molecule estimation unit determines a candidate molecule based on the mass-to-charge ratio of the precursor ion and the product ion spectrum data. The mass spectrometer according to claim 2 .

6. the measurement execution unit separates and detects ions generated from the sample component according to their mass-to-charge ratio without dissociating them to obtain first mass spectrum data, and also irradiates the ions generated from the sample component with oxygen radicals, hydroxyl radicals, or nitrogen radicals, and separates and detects them according to their mass-to-charge ratio to obtain second mass spectrum data; the candidate molecule inference unit infers that the sample component is a heterocyclic compound based on the presence in the second mass spectrum data of an adduct ion that is not present in the first mass spectrum data. The mass spectrometer according to claim 2 .

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