Substituted tolyl fungicides and their mixtures
Substituted tolyl derivatives and their compositions address the limitations of existing fungicides by offering effective, less toxic, and safer alternatives with synergistic disease control, reducing resistance development.
Patent Information
- Authority / Receiving Office
- JP · JP
- Patent Type
- Patents
- Current Assignee / Owner
- Filing Date
- 2021-05-05
- Publication Date
- 2026-03-10
AI Technical Summary
Existing fungicides face challenges in effectively controlling plant diseases caused by fungal pathogens, as they can be costly, toxic, and may develop resistance, necessitating new compounds or combinations with synergistic effects to broaden spectrum and slow resistance development.
Development of substituted tolyl derivatives, their N-oxides, and salts, along with fungicidal compositions that include these compounds and additional fungicidal agents, providing synergistic effects for enhanced plant disease control.
The compositions offer effective, less toxic, and environmentally safer options for controlling plant diseases, with potential for broader spectrum control and reduced resistance development.
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Abstract
Description
[Technical Field]
[0001] The present invention relates to certain tolyl derivatives, their N-oxides and salts, as well as mixtures and compositions containing such tolyl derivatives and methods of using such tolyl derivatives and their mixtures and compositions as fungicides. [Background technology]
[0002] Control of plant diseases caused by fungal plant pathogens is crucial to achieving high crop efficiency. Damage caused by plant diseases on ornamental plants, vegetables, field crops, grains, and fruit crops can result in significant losses in productivity, thereby increasing costs to consumers. In addition to being highly destructive in many cases, plant diseases can be difficult to control and can develop resistance to commercially available fungicides. While many products are commercially available for these purposes, there is a continuing need for new fungicidal compounds that are more effective, less costly, less toxic, safer for the environment, or have different sites of action. In addition to the introduction of new fungicides, fungicide combinations are often used to facilitate disease control, broaden the spectrum of control, and slow resistance development. Furthermore, certain rare combinations of fungicides demonstrate greater-than-additive (i.e., synergistic) effects to provide commercially important levels of plant disease control. It is recognized in the art that the benefits of a particular fungicide combination vary depending on factors such as the specific plant species and plant disease being treated, and whether the plant is treated before or after infection with a fungal plant pathogen. Therefore, new advantageous combinations are needed to provide a variety of options to best meet specific plant disease control needs. Such combinations have now been discovered.
[0003] US Patent Nos. 5,629,999, 5,729,989, 5,829,092, 5,929,093, 5,929,094, and 5,929,094 disclose and tolyl derivatives and methods of using such derivatives as fungicides. [Prior art documents] [Patent documents]
[0004] [Patent Document 1] International Publication No. 2008 / 124092 Brochure [Patent Document 2] International Publication No. 2011 / 059619 Brochure [Patent Document 3] International Publication No. 2014 / 066120 Brochure [Patent Document 4] International Publication No. 2015 / 157005 Brochure [Patent Document 5] International Publication No. 2020 / 097012 Brochure Summary of the Invention [Means for solving the problem]
[0005] The present invention provides (a) Formula 1 [ka] at least one compound selected from the group consisting of the compounds of formula (including all stereoisomers), N-oxides, and salts thereof, During the ceremony, A, [ka] where the bond extending to the right is attached to the ring containing Q and the bond extending to the left is YN(R 3 )C(=W)R 4 attached to a substituted phenyl ring) is a radical selected from the group consisting of: Q is CR 6 or N; Y is CR 7a R 7b , O or NR 8 and; W is O or S; R 1 and R 2are each independently selected from halogen, cyano, hydroxy, nitro, amino, C1-C6 alkyl, C1-C6 haloalkyl, C2-C6 alkenyl, C2-C6 haloalkenyl, C2-C6 alkynyl, C2-C6 haloalkynyl, C2-C6 cyanoalkyl, C3-C6 cycloalkyl, C3-C6 halocycloalkyl, C4-C8 cycloalkylalkyl, C2-C6 alkoxyalkyl, C1-C6 alkoxy, C1-C6 haloalkoxy, C2-C6 alkene, nyloxy, C2-C6 haloalkenyloxy, C2-C6 alkynyloxy, C2-C6 haloalkynyloxy, C2-C6 cyanoalkoxy, C3-C6 cycloalkoxy, C4-C8 cycloalkylalkoxy, C2-C6 alkoxyalkoxy, C1-C6 alkylthio, C1-C6 haloalkylthio, C1-C6 alkylsulfinyl, C1-C6 haloalkylsulfinyl, C1-C6 alkylsulfonyl or C1-C6 haloalkylsulfonyl; R 3 is H, C1-C3 alkyl, C1-C3 haloalkyl, cyclopropyl, C2-C4 alkylcarbonyl, C2-C4 haloalkylcarbonyl, C2-C4 alkoxycarbonyl or C2-C4 haloalkoxycarbonyl; R 4 is C1-C3 alkyl, C1-C3 haloalkyl, C1-C3 alkoxy, C1-C3 haloalkoxy, C1-C3 alkylamino or C2-C4 dialkylamino; Each R 5 are independently halogen, cyano, C1-C3 alkyl, C1-C3 haloalkyl, C1-C3 alkoxy, or C1-C3 haloalkoxy; n is 0, 1 or 2; R 6is H, halogen, cyano, hydroxy, nitro, amino, C1-C6 alkyl, C1-C6 haloalkyl, C2-C6 alkenyl, C2-C6 haloalkenyl, C2-C6 alkynyl, C2-C6 haloalkynyl, C2-C6 cyanoalkyl, C1-C6 hydroxyalkyl, C2-C6 alkoxyalkyl, C1-C6 alkoxy, C1-C6 haloalkoxy, C2-C6 alkenyloxy, C2-C6 haloalkenyloxy, C2-C6 Alkynyloxy, C2-C6 haloalkynyloxy, C2-C6 cyanoalkoxy, C2-C6 alkoxyalkoxy, C1-C6 alkylamino, C1-C6 haloalkylamino, C2-C6 dialkylamino, C1-C6 alkylthio, C1-C6 haloalkylthio, C1-C6 alkylsulfinyl, C1-C6 haloalkylsulfinyl, C1-C6 alkylsulfonyl, C1-C6 haloalkylsulfonyl, -ZC(=O)V, CR 10a =NOR 10b , ON=CR 11a R 11b , C.R. 12a =NNR 12b R 12c or -LJ; R 7a is H, hydroxy, halogen, cyano, C1-C3 alkyl, C1-C3 haloalkyl, C2-C3 alkoxyalkyl, C1-C3 alkoxy, C1-C3 haloalkoxy, C1-C3 alkylsulfinyl or C1-C3 alkylsulfonyl; R 7b is H, C1-C3 alkyl, C1-C3 haloalkyl, C2-C3 alkoxyalkyl, C1-C3 alkoxy or C1-C3 haloalkoxy; R 8 is H, C1-C3 alkyl, C1-C3 haloalkyl, C2-C3 alkylcarbonyl, or C2-C3 haloalkylcarbonyl; Z is a direct bond, O, S, or NH; or CH2 optionally substituted with up to two substituents independently selected from halogen, methyl, or methoxy; V is R 9 OR 9 and; R 9 , R 10b , R 11a and R 12c are each H, C1-C3 alkyl, C1-C3 haloalkyl, C2-C4 alkenyl, C2-C4 haloalkenyl, C2-C4 alkynyl, C3-C6 cycloalkyl, C3-C6 halocycloalkyl, or C4-C8 cycloalkylalkyl; R 10a , R 11b , R 12a and R 12b are each independently H, C1-C3 alkyl, or C1-C3 haloalkyl; L is a direct bond, CH2, O, S, NR 13 , OCH2, CH2O, C(=O), S(=O) or S(=O)2; J is a 3- to 6-membered non-aromatic carbocyclic ring, where up to three carbon atom ring members are independently selected from C(=O) and C(=S), and each ring is optionally joined to a ring of R 14 and is substituted with up to four substituents independently selected from: J is a 3-6 membered heterocycle, each ring containing ring members selected from carbon atoms and 1-4 heteroatoms independently selected from up to 2 O, up to 2 S, and up to 4 N atoms, where up to 3 carbon atom ring members are independently selected from C(=O) and C(=S), and each ring is optionally selected from R 14 and is substituted with up to four substituents independently selected from: R 13 is H, C1-C3 alkyl, C1-C3 haloalkyl, C2-C3 alkylcarbonyl, or C2-C3 haloalkylcarbonyl; Each R 14 are independently halogen, hydroxy, cyano, nitro, C1-C4 alkyl, C1-C4 haloalkyl, C2-C4 alkenyl, C2-C4 haloalkenyl, C1-C4 alkoxy, C1-C4 haloalkoxy, or C(═O)OR 15 and; Each R 15are independently H, C1-C3 alkyl, C1-C3 haloalkyl, C2-C4 alkenyl, C2-C4 haloalkenyl, C2-C4 alkynyl, C3-C6 cycloalkyl, or C3-C6 halocycloalkyl Compounds and; (b) at least one additional fungicidal compound; The present invention relates to a fungicidal composition (i.e., combination, mixture) comprising:
[0006] The present invention also relates to compositions comprising: (a) at least one compound selected from the compounds of Formula 1 above, N-oxides, and salts thereof; and at least one invertebrate pest control compound or agent.
[0007] The present invention also relates to a composition comprising one of the above compositions comprising component (a) and at least one additional component selected from the group consisting of surfactants, solid diluents, and liquid diluents.
[0008] The present invention also relates to a method for controlling plant diseases caused by fungal plant pathogens, which method comprises applying a fungicidally effective amount of one of the compositions described above to a plant or part thereof, or to a plant seed.
[0009] The above method can also be described as a method for protecting a plant or plant seed from a disease caused by a fungal pathogen, comprising applying a fungicidally effective amount of one of the compositions to the plant (or part thereof) or plant seed (either directly or via the environment (e.g., growth medium) of the plant or plant seed).
[0010] The present invention also relates to compounds of formula 1 above, N-oxides or salts thereof. DETAILED DESCRIPTION OF THE INVENTION
[0011] As used herein, the terms "comprises," "comprising," "includes," "including," "has," "having," "contains," "containing," "characterized by," or any other variation thereof, are intended to cover a non-exclusive inclusion, subject to any limitations expressly stated. For example, a composition, mixture, process, method, article, or device that includes a list of elements is not necessarily limited to only those elements and may include other elements that are not expressly listed or inherent in such composition, mixture, process, method, article, or device.
[0012] The transitional phrase "consisting of" excludes any element, step, or ingredient not specified. In the context of a claim, such excludes the inclusion of materials other than those recited, except for impurities normally associated therewith. When the phrase "consisting of" appears in a clause in the body of a claim, rather than immediately following a preamble, it limits only the elements recited in that clause; other elements are not excluded from the claim as a whole.
[0013] The transitional phrase "consisting essentially of" is used to define a composition, method, or apparatus that includes materials, steps, features, ingredients, or elements in addition to those literally disclosed, provided that these additional materials, steps, features, ingredients, or elements do not materially affect the basic and novel characteristics of the claimed invention. The term "consisting essentially of" occupies a middle ground between "comprising" and "consisting of."
[0014] Where applicants have defined an invention or portion thereof using open-ended language such as "comprising," it should be readily understood that (unless otherwise expressly stated) this description should be construed as also describing such invention using the terms "consisting essentially of" or "consisting of."
[0015] Furthermore, unless expressly stated to the contrary, "or" means an inclusive "or" and not an exclusive "or." For example, a condition A or B is satisfied by any one of the following: A is true (or exists) and B is false (or does not exist), A is false (or does not exist) and B is true (or exists), and both A and B are true (or exist).
[0016] Also, the indefinite articles "a" and "an" preceding an element or component of the invention are intended to be open-ended regarding the number of instances (i.e., occurrences) of the element or component. Thus, "a" or "an" should be read to include one or at least one, and the singular form of an element or component also includes the plural, unless the number is specifically intended to be singular.
[0017] The term "agronomic" refers to the production of agricultural crops, such as for food and fiber, and includes the growing of corn or maize, soybeans and other legumes, rice, grains (e.g., wheat, oats, barley, rye, and rice), leafy vegetables (e.g., lettuce, cabbage, and other cruciferous crops), fruiting vegetables (e.g., tomatoes, peppers, eggplant, crucifers, and cucurbits), potatoes, sweet potatoes, grapes, cotton, fruit trees (e.g., pome fruits, stone fruits, and citrus fruits), small fruits (e.g., berries and cherries), and other specialty crops (e.g., canola, sunflowers, and olives).
[0018] The term "non-agronomic" refers to uses such as, for example, crops other than horticultural crops (e.g., greenhouse plants, nursery plants, or ornamental plants not grown in fields), residential, agricultural, commercial, and industrial structures, turf (e.g., turf farms, ranches, golf courses, turf, sports fields, etc.), wood products, storage products, forestry and plant care, public health (i.e., humans) and animal health (e.g., domesticated animals, such as pets, livestock, and poultry, and non-domesticated animals, such as wildlife) uses.
[0019] The term "crop vigor" refers to the rate of growth or biomass accumulation of a crop. "Increased vigor" refers to an increase in crop growth or biomass accumulation relative to an untreated control crop. The term "crop yield" refers to the return of crop material, both in terms of quantity and quality, obtained after harvesting the crop. "Increased crop yield" refers to an increase in crop yield relative to an untreated control crop.
[0020] The term "biologically effective amount" refers to an amount of a biologically active compound (e.g., a compound of Formula 1) sufficient to produce a desired biological effect when applied to (i.e., contacted with) the fungus to be controlled or its environment, or to a plant, a seed on which the plant grows, or the locus of the plant (e.g., a growth medium), either to protect the plant from damage caused by a fungal disease or for other desired effect (e.g., increased plant vigor).
[0021] As referred to in this disclosure and claims, "plants" include members of the Plantae kingdom (especially seed plants (Spermatopsida)) in all life cycles, including, for example, young plants (e.g., germinating seeds developing into seedlings) and mature reproductive stages (e.g., plants that produce flowers and seeds). Plant parts include geotropic members that typically grow below the surface of the growing medium (e.g., soil) (e.g., roots, tubers, bulbs, and corms), as well as members that grow above the growing medium (e.g., leaves (including stems and leaves), flowers, fruits, and seeds).
[0022] As referred to herein, the term "seedling" used alone or in combination with words means a young plant developing from the embryo of a seed.
[0023] As referred to herein, the term "broadleaf" used alone or in words (e.g., broadleaf crops) refers to dicotyledons or dicotyledons, terms used to describe a group of angiosperms characterized by an embryo with two cotyledons.
[0024] As referred to in this disclosure, the terms "fungal pathogen" and "fungal plant pathogen" include pathogens of the phyla Ascomycota, Basidiomycota, and Zygomycota, as well as fungus-like Oomycota, which are causative agents of a wide range of economically important plant diseases affecting ornamental, turf, vegetable, field, grain, and fruit crops. In the context of this disclosure, "protecting plants from disease" or "controlling plant diseases" includes preventative effects (interruption of the fungal cycle of infection, colonization, symptom development, and spore production) and / or curative effects (inhibition of colonization of plant host tissue).
[0025] As used herein, the term "mode of action" (MOA) is as defined by the Fungicide Resistance Action Committee (FRAC) and is used to distinguish fungicides according to their biochemical mode of action and resistance risk in the biosynthetic pathway of plant pathogens. Modes of action as defined by FRAC include: (A) nucleic acid synthesis, (B) mitosis and cell division, (C) respiration, (D) amino acid and protein synthesis, (E) signal transduction, (F) lipid synthesis and membrane integrity, (G) sterol biosynthesis in membranes, (H) cell wall biosynthesis, (I) melanin synthesis in cell walls, (P) induction of host plant defenses, (U) unknown mode of action, (NC) not classified, (M) multisite contact activity, and (BM) biological agents with multiple modes of action. Each mode of action (i.e., letters A-BM) contains one or more subgroups based on individual effective target sites of action or, if the exact target site is unknown, on cross-resistance profiles within the group or in relation to other groups (e.g., A contains subgroups A1, A2, A3, and A4). Each of these subgroups (e.g., A1, A2, A3, and A4) is assigned a FRAC code (numbers and / or letters). For example, the FRAC code for subgroup A1 is 4. Further information regarding target sites and FRAC codes can be obtained, for example, from publicly available databases maintained by FRAC.
[0026] As used herein, the term "cross-resistance" refers to the phenomenon that occurs when a pathogen develops resistance to one fungicide and simultaneously becomes resistant to one or more other fungicides, which are typically, but not always, in the same chemical class, have the same target site of action, or can be detoxified by the same mechanism.
[0027] Generally, when a molecular fragment (i.e., radical) is represented by a series of atomic symbols (e.g., C, H, N, O, and S), the implicit point or points of attachment will be readily apparent to one of ordinary skill in the art. In some instances herein, the point or points of attachment may also be explicitly indicated by a hyphen ("-"), particularly when alternative points of attachment are possible. For example, "-NCS" indicates that the point of attachment is at the nitrogen atom (i.e., an isothiocyanate, not a thiocyanate).
[0028] As used herein, the term "alkylating agent" refers to a compound in which a carbon-containing radical is attached through a carbon atom to a leaving group (e.g., a halide or sulfonate ester) that is displaceable by attachment of a nucleophile to said carbon atom. Unless otherwise specified, the term "alkylation" does not limit the carbon-containing radical to alkyl; carbon-containing radicals in alkylating agents include, for example, R 1 and R 2 These include a variety of carbon-bonded substituent radicals defined in terms of:
[0029] In the above description, the term "alkyl," used alone or in compound words such as "alkylthio" or "haloalkyl," includes straight-chain or branched alkyls, such as methyl, ethyl, n-propyl, i-propyl, or the various butyl, pentyl, and hexyl isomers. "Alkenyl" includes straight-chain or branched alkenes, such as ethenyl, 1-propenyl, 2-propenyl, and the various butenyl, pentenyl, and hexenyl isomers. "Alkenyl" also includes polyenes, such as 1,2-propadienyl and 2,4-hexadienyl. "Alkynyl" includes straight-chain or branched alkynes, such as ethynyl, 1-propynyl, 2-propynyl, and the various butynyl, pentynyl, and hexynyl isomers. "Alkynyl" may also include moieties composed of multiple triple bonds (eg, 2,5-hexadiynyl).
[0030] "Alkoxy" includes, for example, methoxy, ethoxy, n-propyloxy, i-propyloxy, and the different butoxy, pentoxy, and hexyloxy isomers. "Alkoxyalkyl" indicates alkoxy substitution on alkyl. Examples of "alkoxyalkyl" include CHOCH, CHOCHCH, CHCHOCH, CHCHCHOCH, CHCHCHCHOCH, and CHCHOCHCH. "Alkenyloxy" includes straight-chain or branched alkenyls bonded to and linked through an oxygen atom. Examples of "alkenyloxy" include HC=CHCHO, (CH)C=CHCHO, CHCH=CHCHO, CHCH=C(CH)CHO, and CH=CHCHCHO. "Alkynyloxy" includes straight-chain or branched alkynyls bonded to and linked through an oxygen atom. Examples of "alkynyloxy" include HC≡CCH2O, CH3C≡CCH2O, and CH3C≡CCH2CH2O. "Alkoxyalkoxy" indicates alkoxy substitution on another alkoxy moiety. Examples of "alkoxyalkoxy" include CH3OCHO, CH3OCH2O, and CH3CHOCH2O.
[0031] "Alkylthio" includes branched or straight-chain alkylthio moieties such as methylthio, ethylthio, and the different propylthio, butylthio, pentylthio, and hexylthio isomers. "Alkylsulfinyl" includes both optical isomers of alkylsulfinyl groups. Examples of "alkylsulfinyl" include CH3S(=O), CH3CH2S(=O), CH3CH2CH2S(=O), (CH3)2CHS(=O) and the different butylsulfinyl, pentylsulfinyl, and hexylsulfinyl isomers. Examples of "alkylsulfonyl" include CH3S(=O)2, CH3CH2S(=O), CH3CH2CH2S(=O), (CH3)2CHS(=O)2 and the different butylsulfonyl, pentylsulfonyl, and hexylsulfonyl isomers.
[0032] "Alkylamino" includes an NH radical substituted with a straight-chain or branched alkyl. Examples of "alkylamino" include CHNH, CHCHNH, CHCHCHNH, and (CH)CHNH. Examples of "dialkylamino" include (CH)N, (CHCH)N, and CHCH(CH)N.
[0033] The term "cycloalkyl" refers to a saturated carbocyclic ring of 3 to 6 carbon atoms connected together by single bonds. Examples of "cycloalkyl" include cyclopropyl, cyclobutyl, cyclopentyl, and cyclohexyl. The term "cycloalkylalkyl" refers to cycloalkyl substitution on an alkyl group. Examples of "cycloalkylalkyl" include cyclopropylmethyl, cyclopentylethyl, and other cycloalkyl moieties attached to a straight-chain or branched alkyl group. The term "cycloalkoxy" refers to a cycloalkyl attached to and linked through an oxygen atom, such as cyclopentyloxy and cyclohexyloxy. "Cycloalkylalkoxy" refers to cycloalkyl substitution on an alkoxy group. Examples of "cycloalkylalkoxy" include cyclopropylmethoxy, cyclopentylethoxy, and other cycloalkyl moieties attached to a straight-chain or branched alkoxy group.
[0034] "Alkylcarbonyl" refers to a straight or branched alkyl group attached to a C(=O) moiety. Examples of "alkylcarbonyl" include CH3C(=O), CH3CH2CH2C(=O), and (CH3)2CHC(=O). Examples of "alkoxycarbonyl" include CH3OC(=O), CH3CH2OC(=O), CH3CH2CH2OC(=O), and (CH3)2CHOC(=O).
[0035] The term "halogen," whether used alone or in compound words such as "haloalkyl," or in descriptions such as "alkyl substituted with halogen," includes fluorine, chlorine, bromine, or iodine. Furthermore, when used in compound words such as "haloalkyl" or in descriptions such as "alkyl substituted with halogen," said alkyl may be partially or fully substituted with halogen atoms (which may be the same or different). Examples of "haloalkyl" or "alkyl substituted with halogen" include F3C, ClCH2, CF3CH2, and CFC12. Terms such as "haloalkoxy" are defined analogously to the term "haloalkyl." Examples of "haloalkoxy" include CFO, CCl3CHO, F2CHCH2CHO, and CF3CHO.
[0036] "Cyanoalkyl" refers to an alkyl group substituted with one cyano group. Examples of "cyanoalkyl" include NCCH2, NCCH2CH2, and CH3CH(CN)CH2. The term "cyanoalkoxy" refers to an alkyloxy group substituted with one cyano group. Examples of "cyanoalkoxy" include NCCH2O, NCCH2CHO, and CH3CH(CN)CHO. "Hydroxyalkyl" refers to an alkyl group substituted with one hydroxy group. Examples of "hydroxyalkyl" include HOCH2CH2, CH3CH2(OH)CH, and HOCH2CH2CH2CH2.
[0037] The total number of carbon atoms in the substituent is "C i ~C j" prefix, where i and j are numbers from 1 to 6. For example, C1-C3 alkylsulfonyl refers to methylsulfonyl through propylsulfonyl; C2 alkoxyalkyl refers to CHOCH; C3 alkoxyalkyl refers to, for example, CHOCHCH or CHCHOCH; and C4 alkoxyalkyl refers to the various isomers of an alkyl group substituted with an alkoxy group containing a total of 4 carbon atoms (including, for example, CHCHCHOCH and CHCHOCHCH).
[0038] The term "unsubstituted" in reference to a group such as a ring or ring system means that the group does not have any substituents at one or more bonds to the remainder of Formula 1. The term "optionally substituted" means that the number of substituents can be zero. Unless otherwise specified, an optionally substituted group may be substituted with as many optional substituents as possible, so long as the non-hydrogen substituents replace hydrogen atoms on various available carbon or nitrogen atoms. Generally, the number of optional substituents (if present) ranges from 1 to 3. As used herein, the term "optionally substituted" is used interchangeably with the phrase "substituted or unsubstituted" or the term "(un)substituted."
[0039] The number of optional substituents may be limited by expressed limits. For example, "In some cases, R 14 The phrase "substituted with up to four substituents independently selected from" means that there can be 0, 1, 2, 3, or 4 substituents.
[0040] The compounds may have a variable number of substituents (e.g., (R 5 ) n (where n is 0-2), unless otherwise specified, the substituents are independently selected from the defined group of substituents. Various groups may optionally be present at certain positions (e.g., (R 5 )n (where n can be 0), a hydrogen may be present at this position even if not recited in the definition of the various groups.
[0041] The naming of substituents in this disclosure uses accepted terminology that provides simplicity in accurately conveying chemical structures to those of skill in the art. For the sake of simplicity, descriptors indicating positions within structural formulas may be omitted.
[0042] Unless otherwise specified, a "ring" (e.g., J) as a component of Formula 1 is a carbocyclic or heterocyclic ring. The term "ring member" refers to an atom (e.g., C, O, N, or S) or other moiety (e.g., C(=O) and C(=S)) that forms the backbone of a ring or ring system. The term "aromatic" indicates that each of the ring atoms is essentially coplanar and has p-orbitals perpendicular to the plane of the ring, and that (4n+2) π-electrons are associated with the ring according to Hückel's rule, where n is a positive integer.
[0043] The term "carbocycle" refers to a ring in which the atoms forming the backbone of the ring are selected only from carbon. Unless otherwise specified, a carbocycle can be saturated, partially unsaturated, or fully unsaturated. If a fully unsaturated carbocycle satisfies Hückel's rule, the ring is also referred to as an "aromatic ring." A "saturated carbocycle" refers to a ring having a backbone made of carbon atoms connected to each other by single bonds, and unless otherwise specified, the remaining carbon valences are occupied by hydrogen atoms.
[0044] As used herein, the term "partially unsaturated ring" or "partially unsaturated heterocycle" refers to a ring that contains unsaturated ring atoms and one or more double bonds, but is not aromatic.
[0045] The term "heterocyclic ring" or "heterocycle" refers to a ring in which at least one of the atoms forming the backbone of the ring is other than carbon. Unless otherwise specified, a heterocycle can be saturated, partially unsaturated, or fully unsaturated. If a fully unsaturated heterocycle satisfies Hückel's rule, the ring is also referred to as a "heteroaromatic ring" or "aromatic heterocyclic ring." A "saturated heterocycle" refers to a heterocycle containing only single bonds between ring members.
[0046] Unless otherwise specified, the heterocycle is attached to the remainder of Formula 1 through any available carbon or nitrogen atom by replacement of a hydrogen on said carbon or nitrogen atom.
[0047] The compounds of the present invention can exist as one or more stereoisomers. Stereoisomers are isomers that have identical constitution but differ in the spatial arrangement of their atoms, and include enantiomers, diastereomers, cis- and trans-isomers (also called geometric isomers), and atropisomers. Atropisomers result from restricted rotation around a single bond, and the high barrier to rotation makes it possible to isolate these isomeric species. As will be appreciated by those skilled in the art, one stereoisomer may be more reactive and / or exhibit advantageous effects when enriched or separated from other stereoisomers. In addition, those skilled in the art know methods for separating, enriching, and / or selectively preparing such stereoisomers. For a comprehensive discussion of all aspects of stereoisomerism, see Ernest L. Eliel and Samuel H. Wilen, Stereochemistry of Organic Compounds, John Wiley & Sons, 1994.
[0048] The present invention also includes compounds of Formula 1 that are enriched in one stereoisomer relative to the other. For example, the ratio of (Z)- to (E)-isomers in any compound of Formula 1 can vary over a wide range, regardless of whether it is prepared stereoselectively or non-stereoselectively. In addition, the present invention includes compounds of Formula 1 that are enriched in an enantiomer relative to a racemic mixture. Essentially pure enantiomers of compounds of Formula 1 are also included. When enantiomerically enriched, one enantiomer is present in greater amount than the other, and the degree of enrichment can be defined in terms of enantiomeric excess ("ee"), defined as (2x-1)·100%, where x is the mole fraction of the predominant enantiomer in the mixture (e.g., 20% ee corresponds to a 60:40 ratio of enantiomers).
[0049] Preferably, the compositions of the invention have at least 50% enantiomeric excess of the more active isomer; more preferably at least 75% enantiomeric excess; even more preferably at least 90% enantiomeric excess; and most preferably at least 94% enantiomeric excess. Of particular note are enantiomerically pure embodiments of the more active isomer.
[0050] The compounds of the present invention can exist as one or more conformers due to restricted rotation about the amide bond (e.g., C(=O)-N) in Formula 1. The present invention includes mixtures of conformers. In addition, the present invention includes compounds that are enriched in one conformer relative to another.
[0051] This invention includes all stereoisomers, conformations, and mixtures thereof in all proportions as well as isotopic forms such as deuterated compounds.
[0052] As those skilled in the art will recognize, not all nitrogen-containing heterocycles can form N-oxides because the nitrogen requires an available lone pair of electrons to be oxidized to the oxide. Those nitrogen-containing heterocycles capable of forming N-oxides will be familiar to those skilled in the art. Those skilled in the art will also be familiar with the ability of tertiary amines to form N-oxides. Synthetic methods for preparing N-oxides of heterocycles and tertiary amines are very familiar to those skilled in the art, including the oxidation of heterocycles and tertiary amines using peroxyacids such as peracetic acid and m-chloroperbenzoic acid (MCPBA), hydrogen peroxide, alkyl hydroperoxides such as t-butyl hydroperoxide, sodium perborate, and dioxiranes such as dimethyldioxirane.These methods for preparing N-oxides have been widely described and reviewed in the literature, see, for example, T. L. Gilchrist, Comprehensive Organic Synthesis, vol. 7, pp. 748-750 (S.V. Ley, Ed., Pergamon Press); M. Tisler and B. Stanovnik, Comprehensive Heterocyclic Chemistry, vol. 3, pp. 18-20 (A.J. Boulton and A. McKillop, Eds., Pergamon Press); M.R. Grimmett and B.R.T. Keene, Advances in Hetrocyclic Chemistry, vol. 43, pp. 149-161 (A.R. Katrittzky, Ed., Academic Press); M. Tisler and B. Stanovnik, Advances in Hetrocyclic Chemistry, vol. 9, pp. 285-291 (A.R. Katrittzky and A.J. Boulton, Eds., Academic Press). Press); and GWHCheeseman and ESGWerstiuk, Advances in Hetrocyclic Chemistry, vol. 22, pp. 390-392 (ARKatritzky and AJ Boulton, Eds., Academic Press).
[0053] Those skilled in the art will recognize that salts of compounds share biological utility with their corresponding non-salt forms because, under environmental and physiological conditions, salts are in equilibrium with their corresponding non-salt forms. Therefore, a wide variety of salts of compounds of Formula 1 are useful (i.e., agronomically suitable) for controlling plant diseases caused by fungal plant pathogens. Salts of compounds of Formula 1 include acid addition salts with inorganic or organic acids, such as hydrobromic acid, hydrochloric acid, nitric acid, phosphoric acid, sulfuric acid, acetic acid, butyric acid, fumaric acid, lactic acid, maleic acid, malonic acid, oxalic acid, propynoic acid, salicylic acid, tartaric acid, 4-toluenesulfonic acid, or valeric acid. When compounds of Formula 1 contain an acidic residue, such as a carboxylic acid, salts also include those formed with organic or inorganic bases, such as pyridine, triethylamine, or ammonia, or amides, hydrides, hydroxides, or carbonates of sodium, potassium, lithium, calcium, magnesium, or barium. Thus, the present invention includes compounds selected from Formula 1, their N-oxides and agriculturally suitable salts and solvates.
[0054] Compounds selected from Formula 1, their stereoisomers, tautomers, N-oxides, and salts typically exist in more than one form; therefore, Formula 1 includes all crystalline and amorphous forms of the compounds represented by Formula 1. Amorphous forms include solid embodiments, such as waxes and rubbers, as well as liquid embodiments, such as solutions and melts. Crystalline forms include embodiments that exhibit a substantially single crystal type and embodiments that exhibit a mixture of polymorphs (i.e., multiple crystalline types). The term "polymorph" refers to a particular crystalline form of a compound that can crystallize in various crystalline forms, which have different molecular arrangements and / or conformations within the crystal lattice. Polymorphs can have the same chemical composition, but they can also differ in composition due to the presence or absence of co-crystallized water or other molecules that can be weakly or strongly bound in the lattice. Polymorphs may differ in chemical, physical, and biological properties, such as crystal shape, density, hardness, color, chemical stability, melting point, hygroscopicity, suspendability, dissolution rate, and biological availability. As will be appreciated by those skilled in the art, polymorphs of the compound of Formula 1 may exhibit advantageous effects (e.g., compatibility in preparing useful formulations, improved biological performance) compared to other polymorphs of the same compound of Formula 1 or mixtures of multiple polymorphs. Preparation and isolation of specific polymorphs of the compound of Formula 1 can be achieved by methods known to those skilled in the art, such as crystallization using selected solvents and temperatures. For a comprehensive discussion of polymorphism, see R. Hilfiker, Ed., Polymorphism in the Pharmaceutical Industry, Wiley-VCH, Weinheim, 2006.
[0055] As described in the Summary of the Invention, an embodiment of the present invention relates to a composition comprising (a) at least one compound selected from formula 1, its N-oxides and salts, together with (b) at least one additional fungicidal compound. More specifically, component (b) is: (b1) methyl benzimidazole carbamate (MBC) fungicide; (b2) dicarboximide fungicides; (b3) demethylation inhibitor (DMI) fungicides; (b4) phenylamide (PA) fungicides; (b5) amine / morpholine fungicides; (b6) phospholipid biosynthesis inhibitors fungicides; (b7) succinate dehydrogenase inhibitor (SDHI) fungicides; (b8) hydroxy(2-amino)pyrimidine fungicides; (b9) Anilinopyrimidine (AP) fungicides; (b10) N-phenylcarbamate fungicides; (b11) quinone external inhibitor (QoI) fungicides; (b12) phenylpyrrole (PP) fungicide; (b13) azanaphthalene fungicides; (b14) cell peroxidation inhibitor fungicide; (b15) melanin biosynthesis inhibitor-reductase (MBI-R) fungicides; (b16a) melanin biosynthesis inhibitor-dehydratase (MBI-D) fungicide; (b16b) Melanin biosynthesis inhibitor-polyketide synthase (MBI-P) fungicide; (b17) ketoreductase inhibitor (KRI) fungicides; (b18) squalene-epoxidase inhibitor fungicides; (b19) polyoxin fungicides; (b20) phenylurea fungicides; (b21) quinone internal inhibitor (QiI) fungicides; (b22) benzamide and thiazolecarboxamide fungicides; (b23) enopyranuronic acid antibiotic fungicide; (b24) hexopyranosyl antibiotic fungicides; (b25) Glucopyranosyl antibiotics: protein synthesis fungicides; (b26) glucopyranosyl antibiotic fungicides; (b27) cyanoacetamide-oxime fungicides; (b28) carbamate fungicides; (b29) oxidative phosphorylation uncoupler fungicide; (b30) organotin fungicides; (b31) carboxylic acid fungicides; (b32) heterocyclic aromatic fungicides; (b33) phosphonate fungicides; (b34) phthalamic acid fungicides; (b35) benzotriazine fungicides; (b36) benzene-sulfonamide fungicides; (b37) pyridazinone fungicides; (b38) thiophene-carboxamide fungicides; (b39) Complex I NADH oxidoreductase inhibitor fungicide; (b40) carboxylic acid amide (CAA) fungicides; (b41) tetracycline antibiotic fungicides; (b42) thiocarbamate fungicides; (b43) benzamide fungicides; (b44) microbial fungicides; (b45) quinone external inhibitor, stigmatellin binding (QoSI) fungicide; (b46) plant extract fungicides; (b47) cyanoacrylate fungicides; (b48) Polyene fungicides; (b49) oxysterol-binding protein inhibitor (OSBPI) fungicides; (b50) aryl-phenyl-ketone fungicides; (b51) host plant defense-inducing fungicides; (b52) multi-site active fungicides; (b53) biological agents with multiple modes of action; (b54) a fungicide other than the fungicides of component (a) and components (b1) to (b53); and Salts of compounds (b1) to (b54) is selected from the group consisting of:
[0056] Of note are embodiments in which component (b) comprises at least one fungicidal compound from each of two different groups selected from (b1) through (b54).
[0057] "Methyl benzimidazole carbamate (MBC) fungicide (b1)" (FRAC code 1) inhibits mitosis by binding to beta-tubulin during microtubule assembly. Inhibition of microtubule assembly can disrupt cell division, intracellular transport, and cellular structure. Methyl benzimidazole carbamate fungicides include benzimidazole fungicides and thiophanate fungicides. Benzimidazoles include benomyl, carbendazim, fuberidazole, and thiabendazole. Thiophanates include thiophanate and thiophanate-methyl.
[0058] "Dicarboximide fungicides (b2)" (FRAC code 2) inhibit mitogen-activated protein (MAP) / histidine kinases in osmotic signaling. Examples include chlozolinate, dimethaclon, iprodione, procymidone, and anclozolin.
[0059] "Demethylation inhibitor (DMI) fungicides (b3)" (FRAC code 3) (sterol biosynthesis inhibitors (SBI): class I) inhibit C14-demethylase, which plays a role in sterol production. Sterols, such as ergosterol, are necessary for membrane structure and function; they are essential for the development of functional cell walls. Therefore, exposure to these fungicides results in the abnormal growth and eventual death of susceptible fungi. DMI fungicides are divided into several chemical classes: piperazines, pyridines, pyrimidines, imidazoles, triazoles, and triazolinethiones. Piperazines include triforine. Pyridines include buthiobate, pyrifenox, pyrisoxazole, and (αS)-[3-(4-chloro-2-fluorophenyl)-5-(2,4-difluorophenyl)-4-isoxazolyl]-3-pyridinemethanol. Pyrimidines include fenarimol, nuarimol and triarimol. Imidazoles include econazole, imazalil, oxpoconazole, pefurazoate, prochloraz and triflumizole.Triazoles include azaconazole, bitertanol, bromuconazole, cyproconazole, difenoconazole, diniconazole (e.g., diniconazole-M), epoxiconazole, etaconazole, fenbuconazole, fluquinconazole, flusilazole, flutriafol, hexaconazole, imibenconazole, ipconazole, ipfentrifluconazole, mefentriflucosazole, metconazole, myclobutanil, penconazole, propiconazole, quinconazole, simeconazole, tebuconazole, tetraconazole, triadimefon, triadimenol, triticonazole, uniconazole, uniconazole-P, α-(1-chlorocyclopropyl)-α-[2- Examples of triazole-1-ethanol include (2,2-dichlorocyclopropyl)ethyl]-1H-1,2,4-triazole-1-ethanol, rel-1-[[(2R,3S)-3-(2-chlorophenyl)-2-(2,4-difluorophenyl)-2-oxiranyl]methyl]-1H-1,2,4-triazole, rel-2-[[(2R,3S)-3-(2-chlorophenyl)-2-(2,4-difluorophenyl)-2-oxiranyl]methyl]-1,2-dihydro-3H-1,2,4-triazole-3-thione, and rel-1-[[(2R,3S)-3-(2-chlorophenyl)-2-(2,4-difluorophenyl)-2-oxiranyl]methyl]-5-(2-propen-1-ylthio)-1H-1,2,4-triazole. Examples of triazolinethiones include prothioconazole. Biochemical studies have shown that all of the above-mentioned fungicides are DMI fungicides as described by K. H. Kuck et al. in Modern Selective Fungicides - Properties, Applications and Mechanisms of Action, H. Lyr (Ed.), Gustav Fischer Verlag: New York, 1995, 205-258.
[0060] "Phenylamide (PA) fungicides (b4)" (FRAC code 4) are specific inhibitors of RNA polymerase in Oomycete fungi. Susceptible fungi exposed to these fungicides show a reduced ability to incorporate uridine into rRNA. Growth and development of susceptible fungi is hindered by exposure to this class of fungicide. Phenylamide fungicides include acylalanine fungicides, oxazolidinone fungicides, and butyrolactone fungicides. Acylalanines include benalaxyl, benalaxyl-M (also known as chiralaxyl), furalaxyl, metalaxyl, and metalaxyl-M (also known as mefenoxam). Oxazolidinones include oxadixyl. Butyrolactones include ofurace.
[0061] "Amine / morpholine fungicides (b5)" (FRAC code 5) (SBI: class II) target two sites in the sterol biosynthetic pathway, Δ 8 →Δ 7 Isomerase and Δ 14 They inhibit reductase. Sterols, such as ergosterol, are necessary for membrane structure and function, and they are essential for the development of functional cell walls. Therefore, exposure to these fungicides results in the abnormal growth and eventual death of susceptible fungi. Amine / morpholine fungicides (also known as non-DMI sterol biosynthesis inhibitors) include morpholine fungicides, piperidine fungicides, and spiroketal-amine fungicides. Morpholines include aldimorph, dodemorph, fenpropimorph, tridemorph, and trimorphamide. Piperidines include fenpropidin and piperaline. Spiroketal-amines include spiroxamine.
[0062] "Phospholipid biosynthesis inhibitor fungicides (b6)" (FRAC code 6) inhibit fungal growth by affecting phospholipid biosynthesis. Phospholipid biosynthesis fungicides include phosphorothiolate and dithiolane fungicides. Phosphorothiolates include edifenphos, iprobenfos, and pyrazophos. Dithiolanes include isoprothiolane.
[0063] "Succinate dehydrogenase inhibitor (SDHI) fungicides (b7)" (FRAC code 7) inhibit complex II fungal respiration by disrupting a key enzyme in the Krebs cycle (TCA cycle) called succinate dehydrogenase. Inhibition of respiration prevents fungi from producing ATP, thereby inhibiting growth and reproduction. SDHI fungicides include phenylbenzamide, phenyl-oxo-ethylthiophenamide, pyridinyl-ethyl-benzamide, furancarboxamide, oxathiinecarboxamide, thiazolecarboxamide, pyrazole-4-carboxamide, N-cyclopropyl-N-benzyl-pyrazolecarboxamide, N-methoxy(phenylethyl)pyrazolecarboxamide, pyridinecarboxamide, and pyrazinecarboxamide fungicides. Phenylbenzamides include benodanil, flutolanil, and mepronil. Phenyl-oxo-ethylthiophenamides include isofetamide. Pyridinyl-ethyl-benzamides include fluopyram. Furancarboxamides include fenfuram. Oxathiincarboxamides include carboxin and oxycarboxin. Thiazolecarboxamides include thifluzamide. Pyrazole-4-carboxamides include benzovindiflupyr, bixafen, fluveneteram (provisional generic name, registration number 1676101-39-5), fluindapyr, fluxapyroxad, furametpyr, inpirfluxam, isopyrazam, penflufen, penthiopyrad, pyrapropoin (provisional generic name, registration number 1803108-03-3), sedaxane, and N-[2-(2,4-dichlorophenyl)-2-methoxy-1-methylethyl]-3-(difluoromethyl)-1-methyl-1H-pyrazole-4-carboxamide. N-cyclopropyl-N-benzyl-pyrazolecarboxamides include isoflucipram. N-methoxy(phenylethyl)pyrazolecarboxamides include pydiflumetofen. Pyridinecarboxamides include boscalid. Pyrazinecarboxamides include pyraziflumide.
[0064] "Hydroxy(2-amino)pyrimidine fungicides (b8)" (FRAC code 8) inhibit nucleic acid synthesis by interfering with adenosine deaminase. Examples include bupirimate, dimethirimol, and ethirimol.
[0065] "Anilinopyrimidine (AP) fungicides (b9)" (FRAC code 9) are proposed to inhibit the biosynthesis of the amino acid methionine and to interfere with the secretion of hydrolytic enzymes that lyse plant cells during infection. Examples include cyprodinil, mepanipyrim, and pyrimethanil.
[0066] "N-phenylcarbamate fungicides (b10)" (FRAC code 10) inhibit mitosis by binding to beta-tubulin and disrupting microtubule assembly. Disruption of microtubule assembly can disrupt cell division, intracellular transport and cellular structure. An example is diethofencarb.
[0067] Quinone external inhibitor (QoI) fungicides (b11) (FRAC code 11) inhibit fungal complex III mitochondrial respiration by affecting ubiquinol oxidase. The oxidation of ubiquinol occurs via the quinone external (QoI) inhibitor of the cytochrome bc1 complex, located in the inner membrane of fungal mitochondria. o) site. Inhibition of mitochondrial respiration prevents normal fungal growth and development. Quinone external inhibitor fungicides include methoxyacrylate fungicides, methoxyacetamide fungicides, methoxycarbamate fungicides, oximinoacetate fungicides, oximinoacetamide fungicides, and dihydrodioxazine fungicides (collectively known as strobilurin fungicides), as well as oxazolidinedione, imidazolinone, and benzyl-carbamate fungicides. Methoxyacrylates include azoxystrobin, cumoxystrobin, enoxastrobin (also known as enestrobin), flufenoxystrobin, picoxystrobin, and pyraoxystrobin. Methoxyacetamides include mandestrobin. Methoxy-carbamates include pyraclostrobin, pyrametostrobin, and triclopiricarb. Oximino-acetates include kresoxim-methyl and trifloxystrobin. Oximino-acetamides include dimoxystrobin, phenaminestrobin, metominostrobin, and orysastrobin. Dihydrodioxazines include fluoxastrobin. Oxazolidinediones include famoxadone. Imidazolinones include fenamidone. Benzyl-carbamates include pyribencarb.
[0068] "Phenylpyrrole (PP) fungicides (b12)" (FRAC code 12) inhibit MAP / histidine kinases involved in osmotic signaling in fungi. Fenpiclonil and fludioxonil are examples of this fungicide class.
[0069] "Azanaphthalene fungicides (b13)" (FRAC code 13) are proposed to inhibit signal transduction by a mechanism that is still unknown. They have been shown to interfere with germination and / or appressorium formation of powdery mildew-causing fungi. Azanaphthalene fungicides include aryloxyquinolines and quinazolinones. Aryloxyquinolines include quinoxyfen. Quinazolinones include proquinazide.
[0070] "Cellular peroxidation inhibitor fungicides (b14)" (FRAC code 14) are proposed to inhibit lipid peroxidation, which affects fungal membrane synthesis. Members of this class, such as etridiazole, may also affect other biological processes, such as respiration and melanin biosynthesis. Cellular peroxidation fungicides include aromatic hydrocarbon fungicides and 1,2,4-thiadiazole fungicides. Aromatic hydrocarbon fungicides include biphenyl, chloroneb, dicloran, quintozene, tecnazene, and tolclofos-methyl. 1,2,4-thiadiazoles include etridiazole.
[0071] "Melanin biosynthesis inhibitor-reductase (MBI-R) fungicides (b15)" (FRAC code 16.1) inhibit the naphthalene reduction step in melanin biosynthesis. Melanin is required for host plant infection by some fungi. Melanin biosynthesis inhibitor-reductase fungicides include isobenzofuranone fungicides, pyrroloquinolinone fungicides, and triazolobenzothiazole fungicides. Isobenzofuranones include phthalide. Pyrroloquinolinones include pyroquilon. Triazolobenzothiazoles include tricyclazole.
[0072] "Melanin biosynthesis inhibitor-dehydratase (MBI-D) fungicides (b16a)" (FRAC code 16.2) inhibit scytalone dehydratase in melanin biosynthesis. Melanin is required for host plant infection by some fungi. Melanin biosynthesis inhibitor-dehydratase fungicides include cyclopropanecarboxamide fungicides, carboxamide fungicides, and propionamide fungicides. Cyclopropanecarboxamides include carpropamid. Carboxamides include diclocymet. Propionamides include fenoxanil.
[0073] "Melanin biosynthesis inhibitor-polyketide synthase (MBI-P) fungicides (b16b)" (FRAC code 16.3) inhibit polyketide synthase in melanin biosynthesis. Melanin is required for host plant infection by some fungi. Melanin biosynthesis inhibitor-polyketide synthase fungicides include trifluoroethyl carbamate fungicides. Trifluoroethyl carbamates include tolprocarb.
[0074] "Ketoreductase inhibitor (KRI) fungicides (b17)" (FRAC code 17) inhibit 3-ketoreductase during C4-demethylation in sterol production. Ketoreductase inhibitor fungicides (also known as sterol biosynthesis inhibitors (SBI): class III) include hydroxyanilides and amino-pyrazolinones. Hydroxyanilides include fenhexamid. Amino-pyrazolinones include fenpyrazamine. Additionally, quinofumelin (provisional generic name, registration number 861647-84-9) and ipflufenoquin (provisional generic name, registration number 1314008-27-9) are considered to be ketoreductase inhibitor fungicides.
[0075] "Squalene epoxidase inhibitor fungicides (b18)" (FRAC code 18) (SBI: Class IV) inhibit squalene epoxidase in the sterol biosynthetic pathway. Sterols, such as ergosterol, are necessary for membrane structure and function; they are essential for the development of functional cell walls. Therefore, exposure to these fungicides results in the abnormal growth and eventual death of susceptible fungi. Squalene epoxidase inhibitor fungicides include thiocarbamate fungicides and allylamine fungicides. Thiocarbamates include pyributicarb. Allylamines include naftifine and terbinafine.
[0076] "Polyoxin fungicides (b19)" (FRAC code 19) inhibit chitin synthase. Examples include polyoxins.
[0077] "Phenylurea fungicides (b20)" (FRAC code 20) are proposed to affect cell division. An example is pencycuron.
[0078] "Quinone internal inhibitor (QiI) fungicides (b21)" (FRAC code 21) inhibit fungal complex III mitochondrial respiration by affecting ubiquinone reductase. Ubiquinone reduction is blocked at the "quinone internal" (Qi) site of the cytochrome bc1 complex, located in the inner mitochondrial membrane of fungi. Inhibition of mitochondrial respiration prevents normal fungal growth and development. Quinone internal inhibitor fungicides include cyanoimidazole fungicides, sulfamoyl-triazole fungicides, and picolinamide fungicides. Cyanoimidazoles include cyazofamid. Sulfamoyl-triazoles include amisulbrom. Picolinamides include fenpicoxamide.
[0079] "Benzamide and thiazolecarboxamide fungicides (b22)" (FRAC code 22) inhibit mitosis by binding to beta-tubulin and disrupting microtubule assembly. Disruption of microtubule assembly can disrupt cell division, intracellular transport, and cellular structure. Benzamides include toluamides such as zoxamide. Thiazolecarboxamides include ethylamino-thiazolecarboxamides such as ethaboxam.
[0080] "Enopyranuronic acid antibiotic fungicides (b23)" (FRAC code 23) inhibit fungal growth by affecting protein biosynthesis. An example is blasticidin-S.
[0081] "Hexopyranosyl antibiotic fungicides (b24)" (FRAC code 24) inhibit fungal growth by affecting protein biosynthesis. Examples include kasugamycin.
[0082] "Glucopyranosyl antibiotics: protein synthesis fungicides (b25)" (FRAC code 25) inhibit fungal growth by affecting protein biosynthesis. Examples include streptomycin.
[0083] "Glucopyranosyl antibiotic fungicides (b26)" (FRAC code U18, formerly FRAC code 26, reclassified as U18) are proposed to inhibit trehalase and inositol biosynthesis. Examples include validamycin.
[0084] "Cyanoacetamide-oxime fungicides (b27)" (FRAC code 27) includes cymoxanil.
[0085] "Carbamate fungicides (b28)" (FRAC code 28) are considered multi-site inhibitors of fungal growth. They are proposed to interfere with the synthesis of fatty acids in the cell membrane, which then disrupts the permeability of the cell membrane. Iodocarb, propamacarb, and prothiocarb are examples of this fungicide class.
[0086] "Oxidative phosphorylation uncoupling fungicides (b29)" (FRAC code 29) inhibit fungal respiration by uncoupling oxidative phosphorylation. Inhibition of respiration prevents normal fungal growth and development. This class includes dinitrophenyl crotonates such as binapacryl, meptyldinocap, and dinocap, and 2,6-dinitroanilines such as fluazinam.
[0087] "Organotin fungicides (b30)" (FRAC code 30) inhibit adenosine triphosphate (ATP) synthase in the oxidative phosphorylation pathway. Examples include triphenyltin acetate, triphenyltin chloride, and triphenyltin hydroxide.
[0088] "Carboxylic acid fungicides (b31)" (FRAC code 31) inhibit fungal growth by affecting deoxyribonucleic acid (DNA) topoisomerase type II (gyrase). Examples include oxolinic acid.
[0089] "Heteroaromatic fungicides (b32)" (FRAC code 32) are proposed to affect DNA / ribonucleic acid (RNA) synthesis. Heteroaromatic fungicides include isoxazoles and isothiazolones. Isoxazoles include hymexazole, and isothiazolones include octhilinone.
[0090] "Phosphonate fungicides (b33)" (FRAC code P07, formerly FRAC code 33 reclassified to P07) include phosphorous acid and its various salts, such as fosetyl-aluminium.
[0091] "Phthalamic acid fungicides (b34)" (FRAC code 34) include tecloftalam.
[0092] "Benzotriazine fungicides (b35)" (FRAC code 35) include triazoxide.
[0093] "Benzene-sulfonamide fungicides (b36)" (FRAC code 36) includes flusulfamide.
[0094] "Pyridazinone fungicides (b37)" (FRAC code 37) include diclomedine.
[0095] Thiophene-carboxamide fungicides (b38) (FRAC code 38) have been proposed to affect ATP production. An example is silthiofam.
[0096] "Complex I NADH oxidoreductase inhibitor fungicides (b39)" (FRAC code 39) inhibit electron transport in mitochondria and include pyrimidine amines such as diflumetrim, pyrazole-5-carboxamides such as tolfenpyrad, and quinazolines such as fenazaquin.
[0097] "Carboxylic acid amide (CAA) fungicides (b40)" (FRAC code 40) inhibit cellulose synthase, thereby preventing the growth of and killing target fungi. Carboxylic acid amide fungicides include cinnamic acid amide fungicides, valinamide carbamate fungicides, and mandelamide fungicides. Cinnamic acid amides include dimethomorph, flumorph, and pyrimorph. Valinamide carbamates include benthiavalicarb, benthiavalicarb-isopropyl, iprovalcarb. Andand valifenalate (also known as valifenal). Mandelic acid amides include mandipropamide, N-[2-[4-[[3-(4-chlorophenyl)-2-propyn-1-yl]oxy]-3-methoxyphenyl]ethyl]-3-methyl-2-[(methylsulfonyl)amino]butanamide, and N-[2-[4-[[3-(4-chlorophenyl)-2-propyn-1-yl]oxy]-3-methoxyphenyl]ethyl]-3-methyl-2-[(ethylsulfonyl)amino]butanamide.
[0098] "Tetracycline antibiotic fungicides (b41)" (FRAC code 41) inhibit fungal growth by affecting protein synthesis. Examples include oxytetracycline.
[0099] "Thiocarbamate fungicides (b42)" (FRAC code M12, formerly FRAC code 42 after being reclassified as M12) includes metasulfocarb.
[0100] "Benzamide fungicides (b43)" (FRAC code 43) inhibit fungal growth by delocalizing spectrin-like proteins. Examples include pyridinylmethylbenzamide fungicides such as fluopicolide and fluopimomide.
[0101] Microbial fungicides (b44) (FRAC code BM02, formerly FRAC code 44, reclassified as BM02) disrupt the cell membranes of fungal pathogens. These include Bacillus species such as Bacillus amyloliquefaciens strains AP-136, AP-188, AP-218, AP-219, AP-295, QST713, FZB24, F727, MB1600, D747, and FCC1256 (disclosed in PCT / US2019 / 053424 and deposited under ATCC No. PTA-122162), TJ100 (also known as strain 1 BE; known from EP2962568), and the fungicidal lipopeptides they produce.
[0102] "Quinone external inhibitor, stigmatellin-binding (QoSI) fungicides (b45)" (FRAC code 45) inhibit fungal complex III mitochondrial respiration by affecting ubiquinone reductase at the "quinone external" (Qo) site, the stigmatellin-binding subsite, of the cytochrome bc1 complex. Inhibition of mitochondrial respiration prevents normal fungal growth and development. QoSI fungicides include triazolo-pyrimidylamines, such as ametoctrazine.
[0103] "Plant extract fungicides (b46)" (FRAC code 46) cause cell membrane disruption. Plant extract fungicides include terpene hydrocarbons, terpene alcohols and terpene phenols, such as extracts from Melaleuca alternifolia (tea tree), and vegetable oils (mixtures) such as eugenol, geraniol and thymol.
[0104] "Cyanoacrylate fungicide (b47)" (FRAC code 47) binds to the myosin motor domain, resulting in motor activity and actin organization. Cyanoacrylates include fungicides such as Fenamacryl.
[0105] "Polyene fungicides (b48)" (FRAC code 48) cause destruction of fungal cell membranes by binding to ergosterol, the main sterol in the membrane. Examples include natamycin (pimaricin).
[0106] "Oxysterol-binding protein inhibitor (OSBPI) fungicides (b49)" (FRAC code 49) bind to oxysterol-binding proteins in oomycetes, causing inhibition of zoospore release, zoospore motility, and sporangial germination. Oxysterol-binding fungicides include piperidinyl-thiazole-isoxazolines such as oxathiapiprolin and fluoxapiprolin.
[0107] "Aryl-phenyl-ketone fungicides (b50)" (FRAC code 50, formerly FRAC code U8 reclassified to 50) inhibit the growth of fungal mycelia. Aryl-phenyl-ketone fungicides include benzophenones, such as metrafenone, and benzoylpyridines, such as pyriophenone.
[0108] "Host plant defense induction fungicides (b51)" induce host plant defense mechanisms. Host plant defense induction fungicides include benzothiadiazole fungicides (FRAC code P01), benzisothiazole fungicides (FRAC code P02), thiadiazolecarboxamide fungicides (FRAC code P03), polysaccharide fungicides (FRAC code P04), plant extract fungicides (FRAC code P05), microbial fungicides (FRAC code P06), and phosphonate fungicides (FRAC code P07, see (b33) above). Benzothiadiazoles include acibenzolar-S-methyl. Benzisothiazoles include probenazole. Thiadiazolecarboxamides include thiadianils and isotianils. Polysaccharides include laminarin. Plant extracts include extracts from Reynoutria sachalinensis (Japanese knotweed), and microbial extracts include Bacillus mycoides isolate J and cell walls of Saccharomyces cerevisiae strain LAS117.
[0109] "Multi-site active fungicides (b52)" inhibit fungal growth through multiple sites of action and have contact / preventive activity. Multi-site active fungicides include copper fungicides (FRAC code M01), sulfur fungicides (FRAC code M02), dithiocarbamate fungicides (FRAC code M03), phthalimide fungicides (FRAC code M04), chloronitrile fungicides (FRAC code M05), sulfamide fungicides (FRAC code M06), multi-site contact guanidine fungicides (FRAC code M07), triazine fungicides (FRAC code M08), quinone fungicides (FRAC code M09), quinoxaline fungicides (FRAC code M10), maleimide fungicides (FRAC code M11) and thiocarbamate (FRAC code M12, see (b42) above) fungicides. Copper fungicides are inorganic compounds containing copper, typically in the copper(II) oxidation state; examples include copper oxychloride, copper sulfate, and copper hydroxide, such as compositions such as Bordeaux mixture (tribasic copper sulfate). Sulfur fungicides are inorganic chemicals containing a ring or chain of sulfur atoms; examples include elemental sulfur. Dithiocarbamate fungicides contain a dithiocarbamate molecular moiety; examples include ferbam, mancozeb, maneb, metiram, propineb, thiram, zinc thiazole, zineb, and ziram. Phthalimide fungicides contain a phthalimide molecular moiety; examples include folpet, captan, and captafol. Chloronitrile fungicides contain aromatic rings substituted with chloro and cyano; examples include chlorothalonil. Sulfamide fungicides include dichlofluanid and trifluanid. Multi-site contact guanidine fungicides include guazatine, iminoctadine arbesylate, and iminoctadine triacetate. Triazine fungicides include anilazine. Quinone fungicides include dithianon. Quinoxaline fungicides include quinomethionate (also known as chinomethionate). Maleimide fungicides include fluoroimide.
[0110] "Biological agents with multiple modes of action (b53)" include agents of biological origin that exhibit multiple mechanisms of action without evidence of a dominant mode of action. This class of fungicides includes polypeptide (lecithin) fungicides, phenolic fungicides, sesquiterpene fungicides, triterpenoid fungicides, and coumarin fungicides (FRAC code BMO1), such as extracts from cotyledons of lupin plantlets. This class also includes microbial fungicides (FRAC code BMO2, see (b44) above).
[0111] "Fungicides other than those of component (a) and components (b1) to (b53); (b54)" include certain fungicides whose mode of action may be unknown. These include (b54.1) "phenyl-acetamide fungicides" (FRAC code U06), (b54.2) "guanidine fungicides" (FRAC code U12), (b54.3) "thiazolidine fungicides" (FRAC code U13), (b54.4) "pyrimidinone-hydrazone fungicides" (FRAC code U14), (b54.5) "4-quinolyl acetate fungicides" (FRAC code U16), (b54.6) "tetrazolyl oxime fungicides" (FRAC code U17) and "glucopyranosyl antibiotic fungicides" (FRAC code U18, see (b26) above). Phenyl-acetamides include cyflufenamid. Guanidines include dodine. Thiazolidines include fluthianil. Pyrimidinone-hydrazones include ferimzone. 4-Quinolyl acetates include tebufloquine. Tetrazolyl oximes include picarbutrazox.
[0112] The (b54) class also includes bethoxadin, diclobenthiazox (provisional generic name, registration number 957144-77-3), dipimethitron (provisional generic name, registration number 16114-35-5), flometoquin, neo-asozine (ferric methanearsonate), pyrrolnitrin, triniphanide (registration number 304911-98-6), N'-[4-[4-chloro-3-(trifluoromethyl)phenoxy]-2,5-dimethylphenyl]-N-ethyl-N-methylmethanimidamide, 5-fluoro-2-[(4-fluorophenyl)methoxy]-4-pyrimidinamine, and 4-fluorophenyl N-[1-[[[1-(4-cyanophenyl)ethyl]sulfonyl]methyl]propyl]carbamate.
[0113] "Additional fungicides other than those of classes (1) to (54)" whose mode of action is unknown or cannot yet be classified include fungicidal compounds selected from components (b54.7) to (b54.11), as shown below.
[0114] Ingredient 54.7 is related to florylpicoxamide (provisional generic name) (registration number 1961312-55-9, CAS name (1S)-2,2-bis(4-fluorophenyl)-1-methylethyl N-[[3-(acetyloxy)-4-methoxy-2-pyridinyl]carbonyl]-L-alaninate), which is considered to be a quinone internal inhibitor (QiI) fungicide (FRAC code 21) that inhibits fungal complex III mitochondrial respiration.
[0115] Ingredient (54.8) is considered to be a quinone extrinsic inhibitor (QoI) fungicide (FRAC code 45) that inhibits fungal complex III mitochondrial respiration and is related to methyltetraprole (provisional generic name) (registration number 1472649-01-6, CAS name 1-[2-[[[1-(4-chlorophenyl)-1H-pyrazol-3-yl]oxy]methyl]-3-methyl-phenyl]-1,4-dihydro-4-methyl-5H-tetrazol-5-one), which is active against QoI-resistant bacteria.
[0116] The compound (54.9) is related to 3-chloro-4-(2,6-difluorophenyl)-6-methyl-5-phenylpyridazine (provisional generic name pyridaclomethyl, registration number 1358061-55-8), which is believed to be a promoter of tubulin polymerization, resulting in antifungal activity against fungal species belonging to the phyla Ascomycota and Basidiomycota.
[0117] Component 54.10 is related to aminopyrifen (provisional generic name) (registration number 1531626-08-0, CAS name 4-phenoxyphenyl)methyl 2-amino-6-methyl-pyridine-3-carboxylate), which is thought to inhibit the GWT-1 protein in glycosylphosphatidylinositol-anchor biosynthesis in Neurospora crassa.
[0118] The component (b54.11) is given by the formula b54.11 [ka] (In the formula, R b1 teeth, [ka] and; R b3 is a C2-C3 alkoxycarbonyl or a C2-C3 haloalkylaminocarbonyl; L is CH2 or CH2O, where the atom is attached to the phenyl ring on the right side in formula b54.11; R b2 teeth, [ka] and; R b4 is a C1-C3 alkyl, where the wavy bond indicates that the adjacent double bond is in either the (Z)- or (E)-configuration, or a mixture thereof. It is related to the compound
[0119] Examples of compounds of formula b54.11 include (b54.11a) N-(2,2,2-trifluoroethyl)-2-[[4-[5-(trifluoromethyl)-1,2,4-oxadiazol-3-yl]phenyl]methyl]-4-oxazolecarboxamide, (b54.11b) ethyl 1-[[4-[5-(trifluoromethyl)-1,2,4-oxadiazol-3-yl]phenoxy]methyl]-1H-pyrazole-4-carboxylate, (b54.11c) ethyl 1-[[4-[[(1Z)-2-ethoxy-3,3,3-trifluoro-1-propen-1-yl]oxy]phenyl]methyl]-1H-pyrazole-4-carboxylate and (b54.11d) ethyl 1-[[4-[[2-(trifluoromethyl)-1,3-dioxolan-2-yl]methoxy]phenyl]methyl]-1H-pyrazole-4-carboxylate. Compounds of formula b54.11, their use as fungicides and methods for their preparation are generally known; see, for example, WO 2018 / 187553 and WO 2020 / 056090.
[0120] The component (b54.12) is the formula b54.12 [ka] (In the formula, R b7 , R b8 and R b9 are each independently H, halogen, or cyano; R b10 and R b11 are each independently H, halogen, C1-C3 alkyl, or C1-C3 methoxy. It is related to the compound
[0121] Examples of compounds of Formula b54.12 include (b54.12a) 4-(2-chloro-4-fluorophenyl)-N-(2-fluoro-4-methyl-6-nitrophenyl)-1,3-dimethyl-1H-pyrazol-5-amine, (b54.12b) 4-(2-chloro-4-fluorophenyl)-N-(2-fluoro-6-nitrophenyl)-1,3-dimethyl-1H-pyrazol-5-amine, (b54.12c) 3,5-difluoro-4-[5-[(4-methoxy-2-nitrophenyl)amino]-1,3-dimethyl-1H-pyrazol-4-yl]-benzonitrile and (b54.12d) N-(2-chloro-4-fluoro-6-nitrophenyl)-4-(2-chloro-4-fluorophenyl)-1,3-dimethyl-1H-pyrazol-5-amine. Compounds of formula b54.12, their use as fungicides and methods for their preparation are generally known; see, for example, WO 2020 / 051402.
[0122] Embodiments of the invention as described in the Summary of the Invention include those described below. In the following embodiments, Formula 1 includes stereoisomers, N-oxides, and salts thereof, and references to "compounds of Formula 1" include the definitions of the substituents specified in the Summary of the Invention, unless further defined in the embodiments.
[0123] [Embodiment 1] A composition comprising components (a) and (b) described in [Means for Solving the Problems], wherein in formula 1, A is A-1, A-3 or A-4.
[0124] [Embodiment 2] The composition of embodiment 1, wherein A is A-1 or A-3.
[0125] [Embodiment 3] The composition of embodiment 1, wherein A is A-1.
[0126] [Embodiment 4] The composition of embodiment 1, wherein A is A-3.
[0127] [Embodiment 5] The composition of embodiment 1, wherein A is A-4.
[0128] [Embodiment 6] A composition comprising components (a) and (b) described in [Means for Solving the Problems], wherein A in formula 1 is A-2.
[0129] [Embodiment 7] In Equation 1, Q is CR 6 A composition comprising components (a) and (b) as described in [Summary] or any one of embodiments 1 to 6.
[0130] [Embodiment 8] A composition comprising components (a) and (b) as described in the Summary of the Invention or any one of embodiments 1-6, wherein Q is N in Formula 1.
[0131] [Embodiment 9] In Formula 1, Y is CR 7a R 7b or O. [Summary] or a composition comprising components (a) and (b) as described in any one of embodiments 1 to 8.
[0132] [Embodiment 10] In Formula 1, Y is CR 7a R 7b or NR 8 A composition comprising components (a) and (b) as described in [Summary] or any one of embodiments 1 to 8.
[0133] [Embodiment 11] Y is CR 7a R 7b 11. The composition of embodiment 9 or 10, wherein
[0134] [Embodiment 12] The composition of embodiment 9, wherein Y is O.
[0135] [Embodiment 13] Y is NR 8 11. The composition of embodiment 10, wherein
[0136] [Embodiment 14] A composition comprising components (a) and (b) as described in the Summary of the Invention or any one of embodiments 1-13, wherein in Formula 1, W is O.
[0137] [Embodiment 15] A composition comprising components (a) and (b) as described in the Summary of the Invention or any one of embodiments 1-13, wherein W is S in Formula 1.
[0138] [Embodiment 16] In Equation 1, R 1 and R 2 are each independently selected from halogen, cyano, hydroxy, nitro, amino, C1-C3 alkyl, C1-C3 haloalkyl, C2-C4 alkenyl, C2-C4 haloalkenyl, C2-C4 alkynyl, C2-C4 haloalkynyl, C2-C4 cyanoalkyl, C3-C6 cycloalkyl, C3-C6 halocycloalkyl, C4-C6 cycloalkylalkyl, C2-C4 alkoxyalkyl, C1-C3 alkoxy, C1-C3 haloalkoxy, C2-C4 alkenyloxy, C2-C4 haloalkenyloxy, C2-C4 A composition comprising components (a) and (b) as described in [Summary] or any one of embodiments 1-15, wherein components (a) and (b) are alkynyloxy, C2-C4 haloalkynyloxy, C2-C4 cyanoalkoxy, C3-C6 cycloalkoxy, C4-C6 cycloalkylalkoxy, C2-C4 alkoxyalkoxy, C1-C3 alkylthio, C1-C3 haloalkylthio, C1-C3 alkylsulfinyl, C1-C3 haloalkylsulfinyl, C1-C3 alkylsulfonyl, or C1-C3 haloalkylsulfonyl.
[0139] [Embodiment 17] R 1 and R2 are each independently halogen, cyano, C1-C3 alkyl, C1-C3 haloalkyl, C2-C4 alkenyl, C2-C4 haloalkenyl, C2-C4 cyanoalkyl, C2-C4 alkoxyalkyl, C1-C3 alkoxy, C1-C3 haloalkoxy, C2-C4 alkenyloxy, C2-C4 haloalkenyloxy, C2-C4 cyanoalkoxy, C2-C4 alkoxyalkoxy, C1-C3 alkylthio, C1-C3 haloalkylthio, C1-C3 alkylsulfinyl, C1-C3 haloalkylsulfinyl, C1-C3 alkylsulfonyl, or C1-C3 haloalkylsulfonyl.
[0140] [Embodiment 18] R 1 and R 2 are each independently halogen, cyano, C1-C3 alkyl, C1-C3 haloalkyl, C2-C4 alkoxyalkyl, C1-C3 alkoxy, C1-C3 haloalkoxy, C2-C4 alkenyloxy, C2-C4 haloalkenyloxy, C2-C4 alkoxyalkoxy, or C1-C3 alkylthio.
[0141] [Embodiment 19] R 1 and R 2 are each independently halogen, cyano, C1-C3 alkyl, C1-C3 haloalkyl, C1-C3 alkoxy, C1-C3 haloalkoxy, or C1-C3 alkylthio.
[0142] [Embodiment 20] R 1 and R 2 is each independently halogen, cyano, methyl, halomethyl, methoxy, or halomethoxy.
[0143] [Embodiment 21] R 1 and R 2is each independently Br, Cl, F, methyl, trifluoromethyl, methoxy, or trifluoromethoxy.
[0144] [Embodiment 21a] R 1 and R 2 is each independently Br, Cl, F, methyl, or trifluoromethyl.
[0145] [Embodiment 22] R 1 and R 2 is each independently Cl, F, or methyl.
[0146] [Embodiment 23] R 1 and R 2 is each independently Cl or F.
[0147] [Embodiment 24] R 1 and R 2 and each are F.
[0148] [Embodiment 25] In Equation 1, R 3 is H, C1-C3 alkyl, C2-C4 alkylcarbonyl, or C2-C4 alkoxycarbonyl.
[0149] [Embodiment 26] R 3 The compound of embodiment 25, wherein is H, methyl, methylcarbonyl, or methoxycarbonyl.
[0150] [Embodiment 27] R 3 is H or methyl.
[0151] [Embodiment 28] R 3 is H.
[0152] [Embodiment 29] In Equation 1, R 4 is methyl, methoxy, ethoxy, methylamino, or dimethylamino.
[0153] [Embodiment 30] R 4 is methyl, methoxy, or ethoxy.
[0154] [Embodiment 30a] R 4 is methoxy or ethoxy.
[0155] [Embodiment 31] R 4 The composition of embodiment 30a, wherein is methoxy.
[0156] [Embodiment 32] In Equation 1, each R 5 is independently halogen, cyano, methyl, or methoxy.
[0157] [Embodiment 33] Each R 5 is independently halogen or methyl.
[0158] [Embodiment 34] Each R 5 is methyl.
[0159] [Embodiment 35] A composition comprising components (a) and (b) as described in [Summary] or any one of embodiments 1 to 34, wherein in formula 1, n is 0 or 1.
[0160] [Embodiment 36] The composition of embodiment 35, wherein n is 0.
[0161] [Embodiment 37] In Equation 1, R 6 is H, halogen, cyano, nitro, amino, C1-C6 alkyl, C1-C6 haloalkyl, C2-C6 alkenyl, C2-C6 haloalkenyl, C2-C6 alkynyl, C2-C6 haloalkynyl, C2-C6 alkoxyalkyl, C1-C6 alkoxy, C1-C6 haloalkoxy, C2-C6 alkenyloxy, C2-C6 haloalkenyloxy, C2-C6 alkynyloxy, C2-C6 haloalkynyloxy, C2-C6 alkoxyalkoxy, C1-C6 alkylthio, C1-C6 haloalkylthio, C1-C6 alkylsulfinyl, C1-C6 haloalkylsulfinyl, C1-C6 alkylsulfonyl, C1-C6 haloalkylsulfonyl, -ZC(=O)V, CR 10a =NOR 10b , ON=CR 11a R 11b , C.R. 12a =NNR 12b R 12c or -LJ. A composition comprising components (a) and (b) as described in the Summary of the Invention or any one of embodiments 1-36.
[0162] [Embodiment 38] R 6is H, halogen, cyano, nitro, amino, C1-C6 alkyl, C1-C6 haloalkyl, C2-C6 alkenyl, C2-C6 haloalkenyl, C2-C6 alkynyl, C2-C6 haloalkynyl, C2-C6 alkoxyalkyl, C1-C6 alkoxy, C1-C6 haloalkoxy, C2-C6 alkenyloxy, C2-C6 haloalkenyloxy, C2-C6 alkynyloxy, C2-C6 haloalkynyloxy, C2-C6 alkoxyalkoxy, C1-C6 alkylthio, C1-C6 haloalkylthio, -ZC(=O)V, CR 10a =NOR 10b , C.R. 12a =NNR 12b R 12c or -LJ.
[0163] [Embodiment 39] R 6 is H, halogen, cyano, nitro, C1-C6 alkyl, C1-C6 haloalkyl, C2-C6 alkenyl, C2-C6 haloalkenyl, C2-C6 alkynyl, C2-C6 haloalkynyl, C1-C6 alkoxy, C1-C6 haloalkoxy, C2-C6 alkenyloxy, C2-C6 haloalkenyloxy, C2-C6 alkynyloxy, C2-C6 haloalkynyloxy, C1-C6 alkylthio, C1-C6 haloalkylthio, CR 10a =NOR 10b or -LJ.
[0164] [Embodiment 40] R 6 is H, halogen, cyano, C1-C3 alkyl, C1-C3 haloalkyl, C1-C3 alkoxy, C1-C3 haloalkoxy, C2-C4 alkenyloxy, C2-C4 haloalkenyloxy, C2-C4 alkynyloxy, CR 10a =NOR 10b or -LJ.
[0165] [Embodiment 41] R 6is H, halogen, cyano, C1-C3 alkyl, C1-C3 haloalkyl, C1-C3 alkoxy, C1-C3 haloalkoxy, C2-C4 alkynyloxy, CR 10a =NOR 10b or -LJ.
[0166] [Embodiment 42] R 6 is H, Br, Cl, methyl, propyl, i-propyl, CHF, CHF, trifluoromethyl, methoxy, ethoxy, i-propyloxy, OCHF, OCHF, trifluoromethoxy, OCHC≡CH, CH=NOCH, C(Me)=NOCH, or -LJ.
[0167] [Embodiment 43] R 6 The composition of embodiment 42, wherein is Br, Cl, methyl, i-propyl, CHF2, trifluoromethyl, methoxy, ethoxy, i-propyloxy, trifluoromethoxy, OCH2C≡CH, C(Me)═NOCH3, or -LJ.
[0168] [Embodiment 44] R 6 The composition of embodiment 43, wherein is Br, Cl, methyl, i-propyl, CHF2, trifluoromethyl, i-propyloxy, C(CH3)=NOCH3, or -LJ.
[0169] [Embodiment 45] R 6 The composition of embodiment 44, wherein is Br, Cl, methyl, i-propyl, trifluoromethyl, or -LJ.
[0170] [Embodiment 46] R 6 The composition of embodiment 45, wherein is Br, Cl, i-propyl, trifluoromethyl, or -LJ.
[0171] [Embodiment 47] R6 The composition of embodiment 46, wherein is Cl, i-propyl, trifluoromethyl, or -LJ.
[0172] [Embodiment 48] In Equation 1, R 7a is H, hydroxy, halogen, cyano, methyl, halomethyl, methoxy, or halomethoxy.
[0173] [Embodiment 49] R 7a is H, halogen, methyl, or methoxy.
[0174] [Embodiment 50] R 7a is H or methyl.
[0175] [Embodiment 51] R 7a is H.
[0176] [Embodiment 52] In Equation 1, R 7b is H, methyl, halomethyl, methoxy, or halomethoxy.
[0177] [Embodiment 53] R 7b is H, methyl, or methoxy.
[0178] [Embodiment 54] R 7b is H or methyl.
[0179] [Embodiment 55] R 7bis H.
[0180] [Embodiment 56] In Equation 1, R 8 is H, methyl, halomethyl, or methylcarbonyl.
[0181] [Embodiment 57] R 8 is H or methyl.
[0182] [Embodiment 58] R 8 is H.
[0183] [Embodiment 59] A composition comprising components (a) and (b) as described in the Summary of the Invention or any one of embodiments 1-58, wherein, in Formula 1, Z is a direct bond, O, NH, CH2, or CH(OCH3).
[0184] [Embodiment 60] The composition of embodiment 59, wherein Z is a direct bond, O, or CH2.
[0185] [Embodiment 61] The composition of embodiment 60, wherein Z is a direct bond.
[0186] [Embodiment 62] The composition of embodiment 61, wherein Z is O.
[0187] [Embodiment 63] The composition of embodiment 62, wherein Z is CH2.
[0188] [Embodiment 64] In Equation 1, R 9 , R 10b , R 11a and R 12care respectively H, C1-C3 alkyl, C1-C3 haloalkyl, C2-C4 alkenyl, C2-C4 haloalkenyl, or C2-C4 alkynyl.
[0189] [Embodiment 65] R 9 , R 10b , R 11a and R 12c are each H, C1-C3 alkyl, C1-C3 haloalkyl, C2-C4 alkenyl, or C2-C4 haloalkenyl.
[0190] [Embodiment 66] R 9 , R 10b , R 11a and R 12c are each H, methyl, ethyl, or C2-C4 alkenyl.
[0191] [Embodiment 67] R 9 , R 10b , R 11a and R 12c are each H or methyl.
[0192] [Embodiment 68] R 9 , R 10b , R 11a and R 12c and each are H.
[0193] [Embodiment 69] R 9 , R 10b , R 11a and R 12c and each is methyl.
[0194] [Embodiment 70] In Equation 1, R10a , R 11b , R 12a and R 12b are each independently H, methyl, or halomethyl.
[0195] [Embodiment 71] R 10a , R 11b , R 12a and R 12b is each independently H or methyl.
[0196] [Embodiment 72] R 10a , R 11b , R 12a and R 12b and each are H.
[0197] [Embodiment 73] R 10a , R 11b , R 12a and R 12b and each is methyl.
[0198] [Embodiment 74] In Formula 1, L is a direct bond, CH2, O, S, NR 13 , OCH2, CH2O, or C(=O).
[0199] [Embodiment 75] The composition of embodiment 74, wherein L is a direct bond, CH2, O, OCH2, CH2O, or C(=O).
[0200] [Embodiment 76] The composition of embodiment 75, wherein L is a direct bond, CH2, O, OCH2, or CH2O.
[0201] [Embodiment 77] The composition of embodiment 76, wherein L is a direct bond, O, or OCH2.
[0202] [Embodiment 77a] The composition of any one of embodiments 74-77, wherein L is a direct bond or O.
[0203] [Embodiment 78] The composition of embodiment 77a, wherein L is a direct bond.
[0204] [Embodiment 79] The composition of embodiment 77a, wherein L is O.
[0205] [Embodiment 80] The composition of embodiment 76, wherein L is CH2.
[0206] [Embodiment 81] The composition of embodiment 76, wherein L is OCH2 or CH2O.
[0207] [Embodiment 82] In Equation 1, J is Exhibit A Exhibit A [ka] [ka] [ka] [ka] wherein the floating bond is connected to L through any available carbon or nitrogen atom of the depicted ring; and x is 0, 1, 2, or 3. A composition comprising components (a) and (b) as described in any one of [Summary] or embodiments 1 to 81 selected from J-1 to J-71 depicted in.
[0208] [Embodiment 83] 83. The composition of embodiment 82, wherein J is J-4, J-5, J-6, J-7, J-8, J-9, J-18, J-19, J-20, J-21, J-22, J-23, J-24, J-25, J-26, J-27, J-34, J-35, J-36, J-37, J-38, J-53, J-56, J-57, J-58, J-59, J-60, J-61, J-63, J-64, J-65, J-66, J-67, J-68, J-69, or J-70.
[0209] [Embodiment 84] 84. The composition of embodiment 83, wherein J is J-4, J-5, J-6, J-22, J-23, J-24, J-35, J-36, J-37, J-38, J-53, J-57, J-58, J-59, J-60, J-63, J-64, J-65, J-66, J-67, J-68, J-69, or J-70.
[0210] [Embodiment 85] The composition of embodiment 84, wherein J is J-53, J-58, J-59, J-60, J-65, J-66, J-67, J-68, J-69, or J-70.
[0211] [Embodiment 86] The composition of embodiment 85, wherein J is J-53, J-58, J-59, J-60, J-65, J-66, J-67, or J-68.
[0212] [Embodiment 87] The composition of embodiment 86, wherein J is J-58, J-66, or J-67.
[0213] [Embodiment 88] The composition of embodiment 87, wherein J is J-66 or J-67.
[0214] [Embodiment 89] The composition of embodiment 87, wherein J is J-58.
[0215] [Embodiment 90] The composition of embodiment 87, wherein J is J-66.
[0216] [Embodiment 91] The composition of embodiment 87, wherein J is J-67.
[0217] [Embodiment 92] The composition of embodiment 91, wherein J is J-66 and x is 1 or 2.
[0218] [Embodiment 93] The composition of embodiment 92, wherein J is J-66 and x is 2.
[0219] [Embodiment 94] 94. The composition of any one of embodiments 82-93, wherein x is 0, 1, or 2.
[0220] [Embodiment 95] The composition of embodiment 94, wherein x is 2.
[0221] [Embodiment 95a] The composition of embodiment 94, wherein x is 1.
[0222] [Embodiment 96] The composition of embodiment 94, wherein x is 0.
[0223] [Embodiment 97] In Equation 1, each R 14 are independently halogen, cyano, C1-C4 alkyl, C1-C4 haloalkyl, C1-C4 alkoxy, C1-C4 haloalkoxy, or C(═O)OR 15 97. A composition comprising components (a) and (b) as described in [Summary] or any one of embodiments 1-96.
[0224] [Embodiment 98] Each R 14 are independently halogen, cyano, methyl, halomethyl, methoxy, halomethoxy, or C(═O)OR 1598. The composition of embodiment 97, wherein
[0225] [Embodiment 99] Each R 14 are independently halogen, methyl, methoxy or C(═O)OR 15 99. The composition of embodiment 98, wherein
[0226] [Embodiment 100] Each R 14 are independently halogen, methyl or C(═O)OR 15 100. The composition of embodiment 99, wherein
[0227] [Embodiment 101] Each R 14 is independently halogen or methyl.
[0228] [Embodiment 102] Each R 14 is independently Br, Cl, F or methyl.
[0229] [Embodiment 103] In Equation 1, each R 15 is independently C1-C3 alkyl, C1-C3 haloalkyl, or cyclopropyl.
[0230] [Embodiment 104] Each R 15 is independently C1-C3 alkyl or C1-C3 haloalkyl.
[0231] [Embodiment 105] Each R 15 is independently methyl or ethyl.
[0232] [Embodiment 106] Each R 15 is methyl.
[0233] [Embodiment 107] A composition comprising components (a) and (b) as described in the Summary of the Invention or any one of embodiments 1-106, wherein component (a) does not comprise an N-oxide of a compound of Formula 1.
[0234] [Embodiment 108] (a) is Methyl N-[[5-[1-(2,6-difluoro-4-nitrophenyl)-1H-pyrazol-3-yl]-2-methylphenyl]methyl]carbamate (Compound 1); Methyl N-[[5-[1-(2,6-difluoro-4-methoxyphenyl)-1H-pyrazol-3-yl]-2-methylphenyl]methyl]carbamate (Compound 3); Methyl N-[[5-[1-(2,6-difluorophenyl)-1H-pyrazol-3-yl]-2-methylphenyl]methyl]carbamate (Compound 4); Methyl N-[[5-[1-(4-amino-2,6-difluorophenyl)-1H-pyrazol-3-yl]-2-methylphenyl]methyl]carbamate (Compound 5); Methyl N-[[5-[1-(4-chloro-2,6-difluorophenyl)-1H-pyrazol-3-yl]-2-methylphenyl]methyl]carbamate (Compound 6); Methyl N-[[5-[1-(4-bromo-2,6-difluorophenyl)-1H-pyrazol-3-yl]-2-methylphenyl]methyl]carbamate (Compound 7); Methyl N-[[5-[1-(2,6-difluoro-4-iodophenyl)-1H-pyrazol-3-yl]-2-methylphenyl]methyl]carbamate (compound 8); Methyl N-[[5-[1-(2,6-difluoro-4-hydroxyphenyl)-1H-pyrazol-3-yl]-2-methylphenyl]methyl]carbamate (Compound 10); Methyl N-[[5-[1-(4-ethoxy-2,6-difluorophenyl)-1H-pyrazol-3-yl]-2-methylphenyl]methyl]carbamate (Compound 11); Methyl N-[[5-[1-[4-(cyclobutyloxy)-2,6-difluorophenyl]-1H-pyrazol-3-yl]-2-methylphenyl]methyl]carbamate (Compound 13); Methyl N-[[5-[1-[2,6-difluoro-4-(1-methylethoxy)phenyl]-1H-pyrazol-3-yl]-2-methylphenyl]methyl]carbamate (compound 14); Methyl N-[[5-[1-[4-(difluoromethoxy)-2,6-difluorophenyl]-1H-pyrazol-3-yl]-2-methylphenyl]methyl]carbamate (Compound 15); Methyl N-[[5-[1-[2,6-difluoro-4-(2-propyn-1-yloxy)phenyl]-1H-pyrazol-3-yl]-2-methylphenyl]methyl]carbamate (compound 30); Methyl N-[[5-[1-(2,6-difluoro-4-methoxyphenyl)-1H-pyrazol-3-yl]-2-methylphenyl]methyl]carbamate (compound 33); Methyl N-[[5-[1-(4-cyclopropyl-2,6-difluorophenyl)-1H-pyrazol-3-yl]-2-methylphenyl]methyl]carbamate (compound 41); Methyl N-[[5-[1-[4-[(1,1-dimethylethyl)thio]-2,6-difluorophenyl]-1H-pyrazol-3-yl]-2-methylphenyl]methyl]carbamate (compound 42); Methyl N-[[5-[1-[4-[(difluoromethyl)thio]-2,6-difluorophenyl]-1H-pyrazol-3-yl]-2-methylphenyl]methyl]carbamate (compound 43); Methyl N-[[5-[1-(4-ethynyl-2,6-difluorophenyl)-1H-pyrazol-3-yl]-2-methylphenyl]methyl]carbamate (compound 53); Methyl N-[[5-[1-[2,6-difluoro-4-(1-methylethyl)phenyl]-1H-pyrazol-3-yl]-2-methylphenyl]methyl]carbamate (compound 63); Methyl N-[[5-[1-[2,6-difluoro-4-(trifluoromethyl)phenyl]-1H-pyrazol-3-yl]-2-methylphenyl]methyl]carbamate (compound 64); Methyl N-[[5-[1-(2,6-dichloro-4-cyclopropylphenyl)-1H-pyrazol-3-yl]-2-methylphenyl]methyl]carbamate (compound 65); Methyl N-[[5-[1-[4-(cyclopropyloxy)-2,6-difluorophenyl]-1H-pyrazol-3-yl]-2-methylphenyl]methyl]carbamate (compound 66); Methyl N-[[5-[1-(2,6-difluoro-4-formylphenyl)-1H-pyrazol-3-yl]-2-methylphenyl]methyl]carbamate (compound 67); Methyl N-[[5-[1-(4-acetyl-2,6-difluorophenyl)-1H-pyrazol-3-yl]-2-methylphenyl]methyl]carbamate (compound 68); Methyl 3,5-difluoro-4-[3-[3-[[(methoxycarbonyl)amino]methyl]-4-methylphenyl]-1H-pyrazol-1-yl]benzoate (compound 70); Methyl N-[[5-[1-[2,6-difluoro-4-(hydroxymethyl)phenyl]-1H-pyrazol-3-yl]-2-methylphenyl]methyl]carbamate (compound 71); Methyl N-[[5-[1-[2,6-difluoro-4-(trifluoromethoxy)phenyl]-1H-pyrazol-3-yl]-2-methylphenyl]methyl]carbamate (compound 78); Methyl (E)-N-[[5-[1-[2,6-difluoro-4-[1-(methoxyimino)ethyl]phenyl]-1H-pyrazol-3-yl]-2-methylphenyl]methyl]carbamate (compound 83); Methyl N-[[5-[1-[4-(difluoromethyl)-2,6-difluorophenyl]-1H-pyrazol-3-yl]-2-methylphenyl]methyl]carbamate (compound 87); Methyl N-[[5-[1-[4-(2,2-difluorocyclopropyl)-2,6-difluorophenyl]-1H-pyrazol-3-yl]-2-methylphenyl]methyl]carbamate (compound 89); Methyl N-[[5-[1-[4-[(1,1-dimethylethoxy)-2,6-difluorophenyl]-1H-pyrazol-3-yl]-2-methylphenyl]methyl]carbamate (compound 93); Methyl (Z)-N-[[5-[1-[2,6-difluoro-4-[1-(methoxyimino)ethyl]phenyl]-1H-pyrazol-3-yl]-2-methylphenyl]methyl]carbamate (compound 99); Methyl N-[[5-[2-[2,6-difluoro-4-(1-methylethyl)phenyl]-2H-1,2,3-triazol-4-yl]-2-methylphenyl]methyl]carbamate (compound 108); Methyl N-[[5-[2-[2,6-difluoro-4-methylphenyl]-2H-1,2,3-triazol-4-yl]-2-methylphenyl]methyl]carbamate (Compound 111); Methyl N-[[5-[2-[4-cyclopropyl-2,6-difluorophenyl)-2H-1,2,3-triazol-4-yl)-2-methylbenzyl)carbamate (compound 113); Methyl N-[[5-[2-(4-amino-2,6-difluorophenyl)-2H-1,2,3-triazol-4-yl]-2-methylphenyl]methyl]carbamate (Compound 115); Methyl N-[[5-[2-(4-chloro-2,6-difluorophenyl)-2H-1,2,3-triazol-4-yl]-2-methylphenyl]methyl]carbamate (Compound 117); Methyl N-[[5-[2-(2,6-difluoro-4-nitrophenyl)-2H-1,2,3-triazol-4-yl]-2-methylphenyl]methyl]carbamate (compound 118); Methyl N-[[5-[1-(4-chloro-2,6-difluorophenyl)-1H-1,2,3-triazol-4-yl]-2-methylphenyl]methyl]carbamate (Compound 121); Methyl N-[[5-[1-(4-amino-2,6-difluorophenyl)-1H-1,2,3-triazol-4-yl]-2-methylphenyl]methyl]carbamate (Compound 131); Methyl N-[[5-[1-(2,6-difluoro-4-nitrophenyl)-1H-1,2,3-triazol-4-yl]-2-methylphenyl]methyl]carbamate (compound 132); Methyl N-[[5-[1-[4-(1,3-dioxan-2-yl)-2,6-difluorophenyl)]-1H-pyrazol-3-yl]-2-methylphenyl]methyl]carbamate (compound 134); Methyl N-[[5-[1-[2,6-dichloro-4-(1,1-dimethylethyl)phenyl]-1H-pyrazol-3-yl]-2-methylphenyl]methyl]carbamate (Compound 135); Methyl N-[[5-[2-[2,6-difluoro-4-(1-methylpropyl)phenyl]-2H-1,2,3-triazol-4-yl]-2-methylphenyl]methyl]carbamate (Compound 139); and Methyl (E)-N-[[5-[2-[2,6-difluoro-4-[1-(methoxyimino)ethyl]phenyl]-2H-1,2,3-triazol-4-yl]-2-methylphenyl]methyl]carbamate (Compound 142) A composition comprising components (a) and (b) as described in any one of the Summary of the Invention or embodiments 1-107, comprising a compound selected from the group consisting of:
[0235] [Embodiment 109] The composition of embodiment 108, wherein component (a) comprises a compound selected from the group consisting of compounds 3, 4, 6, 7, 11, 13, 14, 15, 30, 33, 41, 63, 64, 66, 78, 83, 87, 89, 93, 99, 108, 111, 113, 117, 134, 135, and 142.
[0236] [Embodiment 110] The composition of embodiment 109, wherein component (a) comprises a compound selected from the group consisting of compounds 3, 4, 6, 7, 11, 13, 14, 15, 30, 33, 41, 63, 64, 78, 99, 108, and 117.
[0237] [Embodiment 111] The composition of embodiment 110, wherein component (a) comprises a compound selected from the group consisting of compounds 3, 4, 6, 7, 11, 14, 15, 30, 33, 41, 63, 64, 78, and 99.
[0238] [Embodiment 112] The composition of embodiment 111, wherein component (a) comprises a compound selected from the group consisting of compounds 3, 4, 6, 15, 41, 63, and 64.
[0239] [Embodiment 113] The composition of embodiment 114, wherein component (a) comprises a compound selected from the group consisting of compounds 6, 41, 63, and 64.
[0240] [Embodiment 114] The composition of embodiment 113, wherein component (a) comprises compound 6.
[0241] [Embodiment 115] The composition of embodiment 113, wherein component (a) comprises compound 41.
[0242] [Embodiment 116] The composition of embodiment 113, wherein component (a) comprises compound 63.
[0243] [Embodiment 117] The composition of embodiment 113, wherein component (a) comprises compound 64.
[0244] [Embodiment 118] 118. The composition of embodiments 108-117, wherein component (b) comprises at least two fungicidal compounds selected from the group consisting of azoxystrobin, benzovindiflupyr, bixafen, chlorothalonil, copper sulfate, cyproconazole, difenoconazole, epoxiconazole, fenpropimorph, florylpicoxamide, fluindapyr, flutriafol, fluxapyroxad, inpirfluxam, isoflucipram, mancozeb, mefentriflucosazole, metominostrobin, picoxystrobin, prothioconazole, pydiflumetofen, pyraclostrobin, tebuconazole, and trifloxystrobin.
[0245] Embodiments of the present invention, such as embodiments 1-118 above and any other embodiments described herein, can be combined in any manner, and the explanations of variables in the embodiments relate not only to compositions comprising a compound of Formula 1 together with at least one other fungicidal compound, but also to compositions comprising a compound of Formula 1 together with at least one invertebrate pest control compound or agent, and to starting compounds and intermediate compounds useful for preparing a compound of Formula 1. In addition, embodiments of the present invention, such as embodiments 1-118 above and any other embodiments described herein, and any combination thereof, relate to methods of the present invention. Thus, of note as a further embodiment is a composition as disclosed above comprising: (a) at least one compound selected from the compound of Formula 1 above, its N-oxide, and salt; and at least one invertebrate pest control compound or agent.
[0246] Combinations of embodiments 1 to 118 are exemplified by the following: [Embodiment A] Component (a) comprises a compound of formula 1 or a salt thereof, wherein: A is A-1, A-3 or A-4; Q is CR 6and; Y is CR 7a R 7b and; W is O; R 1 and R 2 are each independently halogen, cyano, C1-C3 alkyl, C1-C3 haloalkyl, C2-C4 alkoxyalkyl, C1-C3 alkoxy, C1-C3 haloalkoxy, C2-C4 alkenyloxy, C2-C4 haloalkenyloxy, C2-C4 alkoxyalkoxy, or C1-C3 alkylthio; R 3 is H, methyl, methylcarbonyl or methoxycarbonyl; R 4 is methyl, methoxy, ethoxy, methylamino or dimethylamino; Each R 5 are independently halogen or methyl; R 6 is H, halogen, cyano, nitro, amino, C1-C6 alkyl, C1-C6 haloalkyl, C2-C6 alkenyl, C2-C6 haloalkenyl, C2-C6 alkynyl, C2-C6 haloalkynyl, C2-C6 alkoxyalkyl, C1-C6 alkoxy, C1-C6 haloalkoxy, C2-C6 alkenyloxy, C2-C6 haloalkenyloxy, C2-C6 alkynyloxy, C2-C6 haloalkynyloxy, C2-C6 alkoxyalkoxy, C1-C6 alkylthio, C1-C6 haloalkylthio, -ZC(=O)V, CR 10a =NOR 10b , C.R. 12a =NNR 12b R 12c or -LJ; R 7a is H, halogen, methyl or methoxy; R 7b is H or methyl; Z is a direct bond, O, NH, CH2, or CH(OCH3); R 9 , R 10b and R 12care each H, C1-C3 alkyl, C1-C3 haloalkyl, C2-C4 alkenyl, or C2-C4 haloalkenyl; R 10a , R 12a and R 12b are each independently H, methyl, or halomethyl; L is a direct bond, CH2, O, OCH2, or CH2O; J is J-1 to J-71 [ka] [ka] [ka] [ka] wherein the floating bond is connected to L through any available carbon or nitrogen atom of the depicted ring; x is 0, 1, 2, or 3; Each R 14 are independently halogen, methyl, methoxy or C(═O)OR 15 and; Each R 15 are independently C1-C3 alkyl, C1-C3 haloalkyl, or cyclopropyl. Selected from A composition comprising components (a) and (b) as described in [Means for Solving the Problems].
[0247] [Embodiment AA] In Equation 1, A is A-1; R 1 and R 2 are each independently Br, Cl, F, methyl, or trifluoromethyl; R 3 is H or methyl; R 4 is methoxy or ethoxy; n is 0; R 7a is H; R 7b is H; R 9 , R 10b and R 12c are each H or methyl; R 10a , R 12a and R 12b are each independently H or methyl; L is a direct bond or O; J is J-58, J-66 or J-67; Each R 14 are independently halogen or methyl The composition of embodiment A.
[0248] [Embodiment B] In Equation 1, A is A-1; R 1 and R 2 are each independently Br, Cl, F, methyl, trifluoromethyl, methoxy, or trifluoromethoxy; R 3 is H or methyl; R 4 is methyl, methoxy or ethoxy; Each R 5 is methyl; R 6 is H, halogen, cyano, C1-C3 alkyl, C1-C3 haloalkyl, C1-C3 alkoxy, C1-C3 haloalkoxy, C2-C4 alkenyloxy, C2-C4 haloalkenyloxy, C2-C4 alkynyloxy, CR 10a =NOR 10b , or -LJ; R 7a is H or methyl; R 10b is H, methyl, ethyl, or C2-C4 alkenyl; R 10a is H or methyl; L is a direct bond or O; J is J-53, J-58, J-59, J-60, J-65, J-66, J-67 or J-68; Each R 14 are independently halogen or methyl The composition of embodiment A.
[0249] [Embodiment C] In Equation 1, R 1 and R 2 are each independently Cl or F; R 3 is H; R 4 is methoxy; n is 0; R 6 is Br, Cl, methyl, i-propyl, CHF2, trifluoromethyl, methoxy, ethoxy, i-propyloxy, trifluoromethoxy, OCH2C≡CH, C(Me)=NOCH3 or -LJ; R 7a is H; R 7b is H; L is a direct bond; J is J-58, J-66 or J-67 The composition of embodiment B.
[0250] [Embodiment D] In Equation 1, R 1 and R 2 are F, respectively; R 6 is Br, Cl, methyl, i-propyl, CHF2, trifluoromethyl, i-propyloxy, C(CH3)=NOCH3 or -LJ; J is J-66; x is 0, 1 or 2; R 14 is Br, Cl, F or methyl The composition of embodiment C.
[0251] [Embodiment E] In Equation 1, R 6 is Cl, i-propyl, trifluoromethyl or -LJ; x is 0 The composition of embodiment D.
[0252] [Embodiment F] The composition of any one of embodiments A-E, wherein component (a) comprises a compound selected from the group consisting of Compound 3, Compound 4, Compound 6, Compound 7, Compound 11, Compound 13, Compound 14, Compound 15, Compound 30, Compound 33, Compound 41, Compound 63, Compound 64, Compound 66, Compound 78, Compound 83, Compound 87, Compound 89, Compound 93, Compound 99, Compound 108, Compound 111, Compound 113, Compound 117, Compound 134, Compound 135, and Compound 142.
[0253] [Embodiment G] The composition of embodiment F, wherein component (a) comprises a compound selected from the group consisting of Compound 3, Compound 4, Compound 6, Compound 7, Compound 11, Compound 14, Compound 15, Compound 30, Compound 33, Compound 41, Compound 63, Compound 64, Compound 78, and Compound 99.
[0254] [Embodiment H] The composition of embodiment G, wherein component (a) comprises a compound selected from the group consisting of Compound 3, Compound 4, Compound 6, Compound 15, Compound 41, Compound 63, and Compound 64.
[0255] [Embodiment I] The composition of embodiment H, wherein component (a) comprises a compound selected from the group consisting of Compound 6, Compound 41, Compound 63, and Compound 64.
[0256] [Embodiment J] The composition of embodiment I, wherein component (a) comprises compound 63.
[0257] [Embodiment B1] The compositions described in the Summary of the Invention (including but not limited to the compositions described in any one of Embodiments 1-118 and A-J), wherein component (b) comprises (b1) at least one compound selected from a methylbenzimidazole carbamate fungicide, such as benomyl, carbendazim, fuberidazole thiabendazole, thiophanate, and thiophanate-methyl.
[0258] [Embodiment B2] The composition described in the Summary of the Invention (including but not limited to any one of embodiments 1-118 and A-J), wherein component (b) comprises (b2) at least one compound selected from dicarboximide fungicides, such as chlozolinate, dimethaclon, iprodione, procymidone, and vinclozolin.
[0259] [Embodiment B3] The component (b) is (b3) azaconazole, bitertanol, bromuconazole, buthiobate, cyproconazole, difenoconazole, diniconazole (e.g., diniconazole-M), econazole, epoxiconazole, etaconazole, fenarimol, fenbuconazole, fluquinconazole, flusilazole, flutriafol, hexaconazole, imazalil, imibenconazole, ipconazole, ipfentrifluconazole, mefentriflucosazole, metconazole, myclobutanil, nuarimol, oxpoconazole, pe A composition described in the Summary of the Invention (including but not limited to any one of embodiments 1-118 and A-J) comprising at least one compound selected from a demethylation inhibitor fungicide such as furazoate, penconazole, prochloraz, propiconazole, pyrifenox, pyrisoxazole, quinconazole, simeconazole, tebuconazole, tetraconazole, triadimefon, triadimenol, triarimol, triflumizole, triforine, triticonazole, uniconazole, and uniconazole-P.
[0260] [Embodiment B4] The composition described in the Summary of the Invention (including but not limited to any one of embodiments 1-118 and A-J), wherein component (b) comprises (b4) at least one compound selected from phenylamide fungicides, such as benalaxyl, benalaxyl-M, furalaxyl, metalaxyl, metalaxyl-M, ofurace, and oxadixyl.
[0261] [Embodiment B5] The composition described in the Summary of the Invention (including but not limited to any one of Embodiments 1-118 and A-J), wherein component (b) comprises (b5) at least one compound selected from an amine / morpholine fungicide, such as aldimorph, dodemorph, fenpropidin, fenpropimorph, piperaline, spiroxamine, tridemorph, and trimorphamide.
[0262] [Embodiment B6] The composition described in the Summary of the Invention (including but not limited to any one of embodiments 1-118 and A-J), wherein component (b) comprises at least one compound selected from (b6) phospholipid biosynthesis inhibitor fungicides, such as edifenphos, iprobenfos, isoprothiolane, and pyrazophos.
[0263] [Embodiment B7] The composition described in [Summary] (including but not limited to any one of Embodiments 1-118 and A-J), wherein component (b) comprises (b7) at least one compound selected from succinate dehydrogenase inhibitor fungicides such as benodanil, benzovindiflupyr, bixafen, boscalid, carboxin, fenfuram, fluveneteram, fluindapyr, fluopyram, flutolanil, fluxapyroxad, furametpyr, inpirfluxam, isofetamide, isofulcipram, isopyrazam, mepronil, oxycarboxin, penflufen, penthiopyrad, pydiflumetofen, pyrapropoin, pyraziflumide, sedaxane, and thifluzamide.
[0264] [Embodiment B8] The composition described in the Summary of the Invention (including but not limited to any one of embodiments 1-118 and A-J), wherein component (b) comprises at least one compound selected from (b8) hydroxy(2-amino)pyrimidine fungicides, such as bupirimate, dimethirimol, and ethirimol.
[0265] [Embodiment B9] The composition described in the Summary of the Invention (including but not limited to the compositions of any one of Embodiments 1-118 and A-J), wherein component (b) comprises (b9) at least one compound selected from anilinopyrimidine fungicides, such as cyprodinil, mepanipyrim, and pyrimethanil.
[0266] [Embodiment B10] The composition described in the Summary of the Invention (including but not limited to the compositions of any one of Embodiments 1-118 and A-J), wherein component (b) comprises at least one compound selected from (b10) an N-phenylcarbamate fungicide, such as diethofencarb.
[0267] [Embodiment B11] The composition of any one of Embodiments 1-118 and A-J, wherein component (b) comprises at least one compound selected from (b11) a fungicide quinone external inhibitor fungicide, such as azoxystrobin, cumoxystrobin, dimoxystrobin, enoxastrobin, famoxadone, fenamidone, phenaminestrobin, flufenoxystrobin, fluoxastrobin, kresoxim-methyl, mandestrobin, metominostrobin, orysastrobin, picoxystrobin, pyraclostrobin, pyrametostrobin, pyroxystrobin, pyribencarb, triclopyricarb, and trifloxystrobin.
[0268] [Embodiment B12] The composition described in the Summary of the Invention (including but not limited to the compositions of any one of embodiments 1-118 and A-J), wherein component (b) comprises at least one compound selected from (b12) phenylpyrrole fungicide compounds, such as fenpiclonil and fludioxonil.
[0269] [Embodiment B13] The composition described in the Summary of the Invention (including but not limited to the composition of any one of Embodiments 1-118 and A-J), wherein component (b) comprises at least one compound selected from (b13) azanaphthalene fungicides, such as quinoxyfen and proquinazide.
[0270] [Embodiment B14] The composition described in the Summary of the Invention (including but not limited to any one of embodiments 1-118 and A-J), wherein component (b) comprises at least one compound selected from (b14) a cellular peroxidation inhibitor fungicide, such as biphenyl, chloroneb, dicloran, etridiazole, quintozene, tecnazene, and tolclofos-methyl.
[0271] [Embodiment B15] The composition described in [Summary] (including but not limited to the compositions of any one of embodiments 1-118 and A-J), wherein component (b) comprises at least one compound selected from (b15) melanin biosynthesis inhibitor-reductase fungicides, such as fthalide, pyroquilon, and tricyclazole.
[0272] [Embodiment B16a] The composition described in the Summary of the Invention (including but not limited to any one of embodiments 1-118 and A-J), wherein component (b) comprises at least one compound selected from (b16a) melanin biosynthesis inhibitor-dehydratase fungicides, such as carpropamid, diclocymet, and fenoxanil.
[0273] [Embodiment B16b] The composition described in the Summary of the Invention (including but not limited to the compositions of any one of embodiments 1-118 and A-J), wherein component (b) comprises at least one compound selected from (b16b) a melanin biosynthesis inhibitor-polyketide synthase fungicide, such as tolprocarb.
[0274] [Embodiment B17] The composition described in the Summary of the Invention (including but not limited to any one of embodiments 1-118 and A-J), wherein component (b) comprises at least one compound selected from (b17) ketoreductase inhibitor fungicides, such as fenhexamid, fenpyrazamine, ipflufenoquine, and quinofumelin.
[0275] [Embodiment B18] The composition described in [Summary] (including but not limited to the compositions of any one of embodiments 1-118 and A-J), wherein component (b) comprises at least one compound selected from (b18) squalene-epoxidase inhibitor fungicides, such as naftifine, pyributicarb, and terbinafine.
[0276] [Embodiment B19] The composition described in the Summary of the Invention (including but not limited to the compositions of any one of embodiments 1-118 and A-J), wherein component (b) comprises at least one compound selected from (b19) a polyoxin fungicide, such as polyoxin.
[0277] [Embodiment B20] The composition described in the Summary of the Invention (including but not limited to the compositions of any one of embodiments 1-118 and A-J), wherein component (b) comprises at least one compound selected from (b20) a phenylurea fungicide, such as pencycuron.
[0278] [Embodiment B21] The composition described in [Summary] (including but not limited to the compositions of any one of embodiments 1-118 and A-J), wherein component (b) comprises (b21) at least one compound selected from quinone internal inhibitor fungicides, such as amisulbrom, cyazofamid, and fenpicoxamid.
[0279] [Embodiment B22] The composition described in the Summary of the Invention (including but not limited to any one of embodiments 1-118 and A-J), wherein component (b) comprises at least one compound selected from (b22) benzamide and thiazolecarboxamide fungicides, such as ethaboxam and zoxamide.
[0280] [Embodiment B23] The composition described in [Summary] (including but not limited to any one of embodiments 1-118 and A-J), wherein component (b) comprises at least one compound selected from (b23) an enopyranuronic acid antibiotic fungicide, such as blasticidin-S.
[0281] [Embodiment B24] The composition described in [Summary] (including but not limited to the compositions of any one of embodiments 1-118 and A-J), wherein component (b) comprises at least one compound selected from (b24) a hexopyranosyl antibiotic fungicide, such as kasugamycin.
[0282] [Embodiment B25] The composition described in [Summary] (including but not limited to any one of embodiments 1-118 and A-J), wherein component (b) comprises at least one compound selected from (b25) glucopyranosyl antibiotics: protein synthetic fungicides, such as streptomycin.
[0283] [Embodiment B26] The composition described in [Summary] (including but not limited to the compositions of any one of embodiments 1-118 and A-J), wherein component (b) comprises at least one compound selected from (b26) glucopyranosyl antibiotics: trehalase and inositol biosynthetic fungicides, such as validamycin.
[0284] [Embodiment B27] The composition described in the Summary of the Invention (including but not limited to the compositions of any one of Embodiments 1-118 and A-J), wherein component (b) comprises at least one compound selected from (b27) a cyanoacetamide-oxime fungicide, such as cymoxanil.
[0285] [Embodiment B28] The composition described in the Summary of the Invention (including but not limited to the compositions of any one of Embodiments 1-118 and A-J), wherein component (b) comprises (b28) at least one compound selected from carbamate fungicides, such as iodocarb, propamacarb, and prothiocarb.
[0286] [Embodiment B29] The composition described in [Summary] (including but not limited to any one of embodiments 1-118 and A-J), wherein component (b) comprises at least one compound selected from (b29) oxidative phosphorylation uncoupling fungicides, such as binapacryl, dinocap, fluazinam, and meptyldinocap.
[0287] [Embodiment B30] The composition described in the Summary of the Invention (including but not limited to the compositions of any one of Embodiments 1-118 and A-J), wherein component (b) comprises (b30) at least one compound selected from organotin fungicides, such as triphenyltin acetate, triphenyltin chloride, and triphenyltin hydroxide.
[0288] [Embodiment B31] The composition described in the Summary of the Invention (including but not limited to the compositions of any one of embodiments 1-118 and A-J), wherein component (b) comprises at least one compound selected from (b31) a carboxylic acid fungicide, such as oxolinic acid.
[0289] [Embodiment B32] The composition described in [Summary] (including but not limited to the compositions of any one of embodiments 1-118 and A-J), wherein component (b) comprises at least one compound selected from (b32) hymexazole and heterocyclic aromatic fungicides, such as octhilinone.
[0290] [Embodiment B33] The compositions described in the Summary of the Invention (including but not limited to any one of embodiments 1-118 and A-J), wherein component (b) comprises at least one compound selected from (b33) phosphorous acid and its various salts, such as fosetyl aluminum.
[0291] [Embodiment B34] The composition described in the Summary of the Invention (including but not limited to the compositions of any one of Embodiments 1-118 and A-J), wherein component (b) comprises at least one compound selected from (b34) a phthalamic acid fungicide, such as tecloftalam.
[0292] [Embodiment B35] The composition described in the Summary of the Invention (including but not limited to the compositions of any one of embodiments 1-118 and A-J), wherein component (b) comprises at least one compound selected from (b35) a benzotriazine fungicide, such as triazoxide.
[0293] [Embodiment B36] The composition described in the Summary of the Invention (including but not limited to the compositions of any one of Embodiments 1-118 and A-J), wherein component (b) comprises at least one compound selected from (b36) a benzene-sulfonamide fungicide, such as flusulfamide.
[0294] [Embodiment B37] The composition described in the Summary of the Invention (including but not limited to the compositions of any one of embodiments 1-118 and A-J), wherein component (b) comprises at least one compound selected from (b37) a pyridazinone fungicide, such as diclomedine.
[0295] [Embodiment B38] The composition described in the Summary of the Invention (including but not limited to the compositions of any one of Embodiments 1-118 and A-J), wherein component (b) comprises at least one compound selected from (b38) a thiophene-carboxamide fungicide, such as silthiofam.
[0296] [Embodiment B39] The composition described in the Summary of the Invention (including but not limited to any one of embodiments 1-118 and A-J), wherein component (b) comprises at least one compound selected from (b39) Complex I NADH oxidoreductase inhibitor fungicides, such as diflumetrim, fenazaquin, and tolfenpyrad.
[0297] [Embodiment B40] Ingredient (b) is (b40) benthiavalicarb, benthiavalicarb-isopropyl, dimethomorph, flumorph, iprovalicarb, mandipropamide, pirimol Fu and and a carboxylic acid amide fungicide such as valifenalate.
[0298] [Embodiment B41] The composition described in [Summary] (including but not limited to the compositions of any one of embodiments 1-118 and A-J), wherein component (b) comprises at least one compound selected from (b41) a tetracycline antibiotic fungicide, such as oxytetracycline.
[0299] [Embodiment B42] The composition described in the Summary of the Invention (including but not limited to the compositions of any one of Embodiments 1-118 and A-J), wherein component (b) comprises at least one compound selected from (b42) a thiocarbamate fungicide, such as metasulfocarb.
[0300] [Embodiment B43] The composition described in [Summary] (including but not limited to the compositions of any one of embodiments 1-118 and A-J), wherein component (b) comprises at least one compound selected from (b43) benzamide fungicides, such as fluopicolide and fluopimomide.
[0301] [Embodiment B44] The composition of any one of embodiments 1 to 118 and A-J described in [Summary], wherein component (b) comprises (b44) at least one compound selected from microbial fungicides, such as Bacillus amyloliquefaciens strains AP-136, AP-188, AP-218, AP-219, AP-295, D747, F727, FCC1256, FZB24, FZB42, MB1600, QST713, RTI301, RTI472, TJ100 (also known as strain 1 BE; known from EP 2962568), and fungicidal lipopeptides produced by them.
[0302] [Embodiment B45] The composition described in [Summary] (including but not limited to any one of embodiments 1-118 and A-J), wherein component (b) comprises at least one compound selected from (b45) quinone external inhibitors, stigmatellin-binding fungicides, such as ametoctrazin, and the like.
[0303] [Embodiment B46] The composition described in the Summary of the Invention (including but not limited to any one of embodiments 1-118 and A-J), wherein component (b) comprises at least one compound selected from (b46) plant extract fungicides, such as eugenol, geraniol, and thymol.
[0304] [Embodiment B47] The composition described in the Summary of the Invention (including but not limited to the compositions of any one of embodiments 1-118 and A-J), wherein component (b) comprises at least one compound selected from (b47) a cyanoacrylate fungicide, such as fenamacryl.
[0305] [Embodiment B48] The composition described in [Summary] (including but not limited to the compositions of any one of embodiments 1-118 and A-J), wherein component (b) comprises at least one compound selected from (b48) polyene fungicides, such as natamycin.
[0306] [Embodiment B49] The composition described in the Summary of the Invention (including but not limited to any one of embodiments 1-118 and A-J), wherein component (b) comprises at least one compound selected from (b49) oxysterol binding protein inhibitor fungicides, such as oxathiapiprolin and fluoxapiprolin.
[0307] [Embodiment B50] The composition described in the Summary of the Invention (including but not limited to the compositions of any one of Embodiments 1-118 and A-J), wherein component (b) comprises at least one compound selected from (b50) aryl-phenyl-ketone fungicides, such as metrafenone and pyriophenone.
[0308] [Embodiment B51] The composition described in [Summary] (including but not limited to any one of embodiments 1 to 118 and A-J), wherein component (b) comprises at least one compound selected from (b51) acibenzolar-S-methyl, probenazole, tiadinil, isotianil, laminarin, host plant defense inducing fungicides such as extracts from the cell wall of Reynoutria sachalinensis and Bacillus mycoides isolate J, and Saccharomyces cerevisiae strain LAS117.
[0309] [Embodiment B52] The composition of any one of Embodiments 1-118 and A-J described in [Summary], wherein component (b) comprises (b52) at least one compound selected from copper oxychloride, copper sulfate, copper hydroxide, Bordeaux composition (tribasic copper sulfide), elemental sulfur, ferbam, mancozeb, maneb, metiram, propineb, thiram, zinc thiazole, zineb, ziram, folpet, captan, captafol, chlorothalonil, dichlofluanid, trifluanid, guazatine, iminoctadine albesylate, iminoctadine triacetate, anilazine, dithianon, quinomethionate, and multi-site-active fungicides such as fluoroimides.
[0310] [Embodiment B53] The composition described in the Summary of the Invention (including but not limited to any one of embodiments 1-118 and A-J), wherein component (b) comprises at least one compound selected from a multiple mode of action biological fungicide, such as (b53) an extract from cotyledons of lupin plantlets.
[0311] [Embodiment B54] The component (b) is (b54) bethoxadin, cyflufenamid, diclobenthiazox, dipimethitron, dodine, ferimzone, flometoquin, fluthianil, neo-asodine, picarbutrazox, pyrrolnitrin, tebufloquine, triniphanide, N'-[4-[4-chloro-3-(trifluoromethyl)phenoxy]-2,5-dimethylphenyl]-N-ethyl-N-methylmethanimidamide, 5-fluoro-2-[(4-fluorophenyl)methoxy]-4-pyrimidinamine and 4-fluorophenyl A composition described in the Summary of the Invention (including but not limited to any one of embodiments 1-118 and A-J) comprising at least one compound selected from a fungicide other than the fungicides of component (a) and components (b1)-(b53), such as N-[1-[[[1-(4-cyanophenyl)ethyl]sulfonyl]methyl]propyl]carbamate (XR-539).
[0312] [Embodiment B55] The composition described in the Summary of the Invention (including but not limited to any one of embodiments 1-118 and AJ), wherein component (b) comprises florylpicoxamide.
[0313] [Embodiment B56] The composition described in the Summary of the Invention (including but not limited to compositions of any one of embodiments 1-118 and A-J), wherein component (b) comprises methyltetraprole.
[0314] [Embodiment B57] The composition described in the Summary of the Invention (including but not limited to any one of Embodiments 1-118 and A-J), wherein component (b) comprises 3-chloro-4-(2,6-difluorophenyl)-6-methyl-5-phenylpyridazine (tentative generic name: pyridaclomethyl).
[0315] [Embodiment B58] The composition described in the Summary of the Invention (including but not limited to the compositions of any one of embodiments 1-118 and AJ), wherein component (b) comprises aminopyrifen.
[0316] [Embodiment B59] Component (b) is at least one compound selected from (b54.11) (i.e., formula b54.11), [ka] During the ceremony, R b1 but [ka] and; R b3 is C2-C3 alkoxycarbonyl or C2-C3 haloalkylaminocarbonyl; L is CH2 or CH2O, where the atom is attached to the phenyl ring on the right side in formula b54.11; R b2 but, [ka] and; R b4 is a C1-C3 alkyl, where the wavy bond indicates that the adjacent double bond is in either the (Z)- or (E)-configuration, or a mixture thereof; A composition described in the Summary of the Invention (including but not limited to the compositions of any one of embodiments 1-118 and AJ) comprising a compound.
[0317] [Embodiment B60] The composition of embodiment B59, wherein component (b) comprises at least one fungicidal compound selected from the group consisting of N-(2,2,2-trifluoroethyl)-2-[[4-[5-(trifluoromethyl)-1,2,4-oxadiazol-3-yl]phenyl]methyl]-4-oxazolecarboxamide, ethyl 1-[[4-[5-(trifluoromethyl)-1,2,4-oxadiazol-3-yl]phenoxy]methyl]-1H-pyrazole-4-carboxylate, ethyl 1-[[4-[[(1Z)-2-ethoxy-3,3,3-trifluoro-1-propen-1-yl]oxy]phenyl]methyl]-1H-pyrazole-4-carboxylate, and ethyl 1-[[4-[[2-(trifluoromethyl)-1,3-dioxolan-2-yl]methoxy]phenyl]methyl]-1H-pyrazole-4-carboxylate.
[0318] [Embodiment B60a] The composition of embodiment B60, wherein component (b) comprises at least one fungicidal compound selected from the group consisting of ethyl 1-[[4-[[(1Z)-2-ethoxy-3,3,3-trifluoro-1-propen-1-yl]oxy]phenyl]methyl]-1H-pyrazole-4-carboxylate and ethyl 1-[[4-[[2-(trifluoromethyl)-1,3-dioxolan-2-yl]methoxy]phenyl]methyl]-1H-pyrazole-4-carboxylate.
[0319] [Embodiment B61] Component (b) is (b54.12) (i.e., Equation 54.12) [ka] (In the formula, R b7 , R b8 and R b9 are each independently H, halogen, or cyano; R b10 and R b11are each independently H, halogen, C1-C3 alkyl, or C1-C3 methoxy. A composition described in [Summary] (including, but not limited to, the compositions of any one of embodiments 1-118 and A-J), comprising at least one compound selected from:
[0320] [Embodiment B62] The composition of embodiment B61, wherein component (b) comprises at least one fungicidal compound selected from the group consisting of 4-(2-chloro-4-fluorophenyl)-N-(2-fluoro-4-methyl-6-nitrophenyl)-1,3-dimethyl-1H-pyrazol-5-amine, 4-(2-chloro-4-fluorophenyl)-N-(2-fluoro-6-nitrophenyl)-1,3-dimethyl-1H-pyrazol-5-amine, 3,5-difluoro-4-[5-[(4-methoxy-2-nitrophenyl)amino]-1,3-dimethyl-1H-pyrazol-4-yl]-benzonitrile, and N-(2-chloro-4-fluoro-6-nitrophenyl)-4-(2-chloro-4-fluorophenyl)-1,3-dimethyl-1H-pyrazol-5-amine.
[0321] [Embodiment B63] Ingredient (b) is azoxystrobin, benzovindiflupyr, boscalid (nicobifen), bixafen, bromuconazole, carbendazim, chlorothalonil, copper sulfate, cyflufenamid, cyproconazole, difenoconazole, dimoxystrobin, epoxiconazole, famoxadone, fenbuconazole, fenpropidin, fenpropimorph, florylpicoxamide, fluindapyr, flusilazole, flutriafol, fluxapyroxad, hexafluoropropane ... Saconazole, impilfluxam, ipconazole, isoflucipram, kresoxim-methyl, mancozeb, mefentriflucosazole, manzate, metconazole, metominostrobin, metrafenone, myclobutanil, penconazole, penthiopyrad, picoxystrobin, prochloraz, propiconazole, proquinazid, prothioconazole, pydiflumetofen, pyraclostrobin, pyrametostrobin, pyroxystrobin, pyriophenone Quinoxyfen, tebuconazole, trifloxystrobin, triticonazole, N-(2,2,2-trifluoroethyl)-2-[[4-[5-(trifluoromethyl)-1,2,4-oxadiazol-3-yl]phenyl]methyl]-4-oxazolecarboxamide, ethyl 1-[[4-[5-(trifluoromethyl)-1,2,4-oxadiazol-3-yl]phenoxy]methyl]-1H-pyrazole-4-carboxylate, ethyl 1-[[4-[[(1Z)-2-ethoxy-3,3,3-trifluoro-1-propen-1-yl]oxy]phenyl]methyl]-1H-pyrazole-4-carboxylate, and ethyl A composition described in the Summary of the Invention (including but not limited to any one of embodiments 1-118 and A-J) comprising at least one fungicidal compound (fungicide) selected from the group consisting of 1-[[4-[[2-(trifluoromethyl)-1,3-dioxolan-2-yl]methoxy]phenyl]methyl]-1H-pyrazole-4-carboxylate.
[0322] [Embodiment B64] Ingredient (b) is azoxystrobin, benzovindiflupyr, bixafen, chlorothalonil, copper sulfate, cyflufenamid, cyproconazole, difenoconazole, dimoxystrobin, epoxiconazole, famoxadone, fenpropidin, fenpropimorph, florylpicoxamide, fluindapyr, flusilazole, flutriafol, fluxapyroxad, inpirfluxam, isoflucipram, kresoxim-methyl, mancozeb, manzate, mefentriflucosazole, metconazole, metominostrobin, Bin, metrafenone, myclobutanil, penthiopyrad, picoxystrobin, propiconazole, proquinazid, prothioconazole, pydiflumetofen, pyraclostrobin, pyrametostrobin, pyroxystrobin, pyriophenone, quinoxyfen, tebuconazole, trifloxystrobin, triticonazole, N-(2,2,2-trifluoroethyl)-2-[[4-[5-(trifluoromethyl)-1,2,4-oxadiazol-3-yl]phenyl]methyl]-4-oxazolecarboxamide, ethyl The composition of embodiment B63 comprising at least one compound selected from the group consisting of 1-[[4-[5-(trifluoromethyl)-1,2,4-oxadiazol-3-yl]phenoxy]methyl]-1H-pyrazole-4-carboxylate, ethyl 1-[[4-[[(1Z)-2-ethoxy-3,3,3-trifluoro-1-propen-1-yl]oxy]phenyl]methyl]-1H-pyrazole-4-carboxylate, and ethyl 1-[[4-[[2-(trifluoromethyl)-1,3-dioxolan-2-yl]methoxy]phenyl]methyl]-1H-pyrazole-4-carboxylate.
[0323] [Embodiment B65] Ingredient (b) is azoxystrobin, benzovindiflupyr, bixafen, chlorothalonil, copper sulfate, cyproconazole, difenoconazole, epoxiconazole, fenpropimorph, florylpicoxamide, fluindapyr, flutriafol, fluxapyroxad, inpirfluxam, isoflucipram, mancozeb, mefentriflucosazole, metominostrobin, picoxystrobin, prothioconazole, pydiflumetofen, pyraclostrobin, tebuconazole, trifloxystrobin, ethyl 1-[[4-[[(1Z)-2-ethoxy-3,3,3-trifluoro-1-propen-1-yl]oxy]phenyl]methyl]-1H-pyrazole-4-carboxylate and ethyl The composition of embodiment B64 comprising at least one compound selected from the group consisting of 1-[[4-[[2-(trifluoromethyl)-1,3-dioxolan-2-yl]methoxy]phenyl]methyl]-1H-pyrazole-4-carboxylate.
[0324] [Embodiment B66] The composition of embodiment B65, wherein component (b) comprises at least one compound selected from the group consisting of azoxystrobin, benzovindiflupyr, bixafen, chlorothalonil, copper sulfate, cyproconazole, difenoconazole, epoxiconazole, fenpropimorph, florylpicoxamide, fluindapyr, flutriafol, fluxapyroxad, inpirfluxam, isoflucipram, mancozeb, mefentriflucosazole, metominostrobin, picoxystrobin, prothioconazole, pydiflumetofen, pyraclostrobin, tebuconazole, and trifloxystrobin.
[0325] [Embodiment B67] The composition of embodiment B66, wherein component (b) comprises at least one compound selected from the group consisting of azoxystrobin, benzovindiflupyr, chlorothalonil, cyproconazole, difenoconazole, epoxiconazole, fenpropimorph, fluindapyr, flutriafol, mancozeb, mefentriflucosazole, picoxystrobin, prothioconazole, pydiflumetofen, tebuconazole, and trifloxystrobin.
[0326] Of note is the composition of any one of the embodiments described herein, e.g., any of embodiments 1-118, A-J, and B1-B67, in which reference to Formula 1 includes salts thereof, but not N-oxides thereof; thus, the phrase "a compound of Formula 1" can be replaced with the phrase "a compound of Formula 1 or a salt thereof." In this composition of note, component (a) comprises a compound of Formula 1 or a salt thereof.
[0327] Also of note as an embodiment are fungicidal compositions of the invention comprising a fungicidally effective amount of the composition of any of embodiments 1-118, A-J, and B1-B67, and at least one additional component selected from the group consisting of surfactants, solid diluents, and liquid diluents.
[0328] Embodiments of the invention further include a method for controlling plant diseases caused by fungal plant pathogens, comprising applying to a plant or part thereof, or to a plant seed or seedling, a fungicidally effective amount of a composition (e.g., a composition comprising a formulation ingredient as described herein) according to any one of embodiments 1-118, A-J, and B1-B67. Embodiments of the invention also include a method for protecting a plant or plant seed from disease caused by a fungal pathogen, comprising applying to the plant or plant seed a fungicidally effective amount of a composition according to any one of embodiments 1-118, A-J, and B1-B67.
[0329] Some embodiments of the present invention involve controlling or protecting against plant diseases that primarily affect the leaves of plants and / or applying the compositions of the present invention to the leaves of plants (i.e., to the plant instead of the seeds). Preferred methods of use include those involving the preferred compositions described above; diseases controlled with particular effectiveness include plant diseases caused by fungal plant pathogens. The combination of fungicides used in accordance with the present invention can facilitate disease control and delay resistance development.
[0330] The method embodiment further includes: [Embodiment C1] 118. A method for protecting plants from a disease selected from rust, powdery mildew, Septoria, and Botrytis, comprising applying to the plant a fungicidally effective amount of a composition comprising components (a) and (b) as described in the Summary of the Invention or any one of embodiments 1-118.
[0331] [Embodiment C2] The method of embodiment C1, wherein the disease is rust and component (b) of the composition comprises at least one fungicidal compound selected from (b3) demethylation inhibitor (DMI) fungicides, (b5) amine / morpholine fungicides, (b7) succinate dehydrogenase inhibitor fungicides, (b11) quinone extrinsic inhibitor (QoI) fungicides, (b13) methyl benzimidazole carbamate fungicides, and (b52) multi-site active fungicides.
[0332] [Embodiment C3] The method of embodiment C2, wherein component (b) of the composition comprises at least one fungicidal compound selected from (b3) demethylation inhibitor (DMI) fungicides, (b7) succinate dehydrogenase inhibitor fungicides, (b11) quinone external inhibitor (QoI) fungicides, and (b52) multi-site active fungicides.
[0333] [Embodiment C4] The method of embodiment C3, wherein component (b) of the composition comprises at least one fungicidal compound selected from (b3) demethylation inhibitor (DMI) fungicides, (b7) succinate dehydrogenase inhibitor fungicides, and (b11) quinone external inhibitor (QoI) fungicides.
[0334] [Embodiment C5] The method of any one of embodiments C1-C4, wherein component (b) of the composition comprises at least one fungicidal compound selected from the group consisting of azoxystrobin, benzovindiflupyr, bixafen, cyproconazole, difenoconazole, epoxiconazole, fenpropimorph, florylpicoxamide, fluindapyr, flutriafol, fluxapyroxad, inpirfluxam, isoflucipram, mancozeb, mefentriflucosazole, metominostrobin, picoxystrobin, prothioconazole, pydiflumetofen, pyraclostrobin, tebuconazole, and trifloxystrobin.
[0335] [Embodiment C6] The method of embodiment C5, wherein component (b) of the composition comprises at least one fungicidal compound selected from the group consisting of azoxystrobin, benzovindiflupyr, cyproconazole, epoxiconazole, fenpropimorph, flutriafol, fluxapyroxad, metominostrobin, picoxystrobin, prothioconazole, pydiflumetofen, tebuconazole, and trifloxystrobin.
[0336] [Embodiment C7] The method of any one of embodiments C2 to C6, wherein the disease is Asian soybean rust caused by Phakopsora pachyrhizi.
[0337] [Embodiment C8] The method of any one of embodiments C2 to C6, wherein the disease is wheat leaf rust caused by Puccinia recondita.
[0338] [Embodiment C9] The method of embodiment C1, wherein the disease is powdery mildew and component (b) of the composition comprises at least one fungicidal compound selected from (b3) demethylation inhibitor (DMI) fungicides, (b11) quinone external inhibitor (QoI) fungicides, (b13) azanaphthalene fungicides, and (b52) multi-site active fungicides.
[0339] [Embodiment C10] The method of embodiment C9, wherein component (b) of the composition comprises at least one fungicidal compound selected from (b3) demethylation inhibitor (DMI) fungicides, (b11) quinone external inhibitor (QoI) fungicides, and (b52) multi-site active fungicides.
[0340] [Embodiment C11] The method of embodiments C9 and C10 comprising at least one fungicidal compound selected from the group consisting of azoxystrobin, chlorothalonil, copper sulfate, cyproconazole, difenoconazole, epoxiconazole, flutriafol, mancozeb, mefentriflucosazole, metominostrobin, picoxystrobin, prothioconazole, pyraclostrobin, tebuconazole, and trifloxystrobin.
[0341] [Embodiment C12] The method of embodiment C11, wherein component (b) of the composition comprises at least one fungicidal compound selected from the group consisting of cyproconazole, difenoconazole, epoxiconazole, flutriafol, mancozeb, prothioconazole, tebuconazole, and trifloxystrobin.
[0342] [Embodiment C13] The method of embodiment C10, wherein component (b) of the composition comprises at least one fungicidal compound selected from (b3) DMI fungicides.
[0343] [Embodiment C14] The method of embodiment C13, wherein component (b) of the composition comprises at least one fungicidal compound selected from the group consisting of cyproconazole, difenoconazole, epoxiconazole, flutriafol, prothioconazole, and tebuconazole.
[0344] [Embodiment C15] The method of embodiment C10, wherein component (b) of the composition comprises at least one fungicidal compound selected from (b11) Qol fungicides.
[0345] [Embodiment C16] The method of embodiment C15 wherein component (b) of the composition comprises at least one fungicidal compound selected from the group consisting of azoxystrobin, picoxystrobin, pyraclostrobin, and trifloxystrobin.
[0346] [Embodiment C17] The method of any one of embodiments C9 to C16, wherein the disease is wheat powdery mildew caused by Erysiphe graminis.
[0347] [Embodiment C18] The method of embodiment C1, wherein the disease is Septoria disease and component (b) of the composition comprises at least one fungicidal compound selected from (b3) demethylation inhibitor (DMI) fungicides and (b11) quinone external inhibitor (QoI) fungicides.
[0348] [Embodiment C19] The method of embodiment C18, wherein component (b) of the composition comprises at least one fungicidal compound selected from the group consisting of azoxystrobin, cyproconazole, difenoconazole, epoxiconazole, fenpropimorph, florylpicoxamide, flutriafol, mefentriflucosazole, metominostrobin, picoxystrobin, prothioconazole, pyraclostrobin, tebuconazole, and trifloxystrobin.
[0349] [Embodiment C20] The method of any one of embodiments C18 and C19, wherein the disease is wheat leaf blight caused by Zymoseptoria tritici.
[0350] [Embodiment C21] The method of embodiment C1, wherein the disease is Botrytis disease and component (b) of the composition comprises at least one fungicidal compound selected from (b11) quinone external inhibitor (QoI) fungicides and (b52) multi-site active fungicides.
[0351] [Embodiment C22] The method of embodiment C21 wherein component (b) of the composition comprises at least one fungicidal compound selected from the group consisting of azoxystrobin, chlorothalonil, mancozeb, metominostrobin, picoxystrobin, pyraclostrobin, and trifloxystrobin.
[0352] [Embodiment C23] The method of embodiment C22 wherein component (b) of the composition comprises at least one fungicidal compound selected from the group consisting of azoxystrobin mancozeb, and trifloxystrobin.
[0353] [Embodiment C24] The method of any one of embodiments C1 to C23, wherein components (a) and (b) are applied in synergistically effective amounts (and in a synergistic ratio to each other).
[0354] Of note are embodiments that are equivalents of embodiments C1 to C24 relating to a method for controlling plant diseases caused by fungal plant pathogens, the method comprising applying to a plant or part thereof a fungicidally effective amount of a fungicidal composition of the present invention.
[0355] As stated in the Summary of the Invention, the present invention also relates to compounds of Formula 1, or N-oxides or salts thereof. It is also noted that embodiments of the present invention, such as embodiments 1 to 118, also relate to compounds of Formula 1.
[0356] The present invention also provides a fungicidal composition comprising a compound of formula 1 (including all stereoisomers, N-oxides, and salts thereof) (i.e., in a fungicidally effective amount) and at least one additional component selected from the group consisting of surfactants, solid diluents, and liquid diluents. Notable embodiments of such compositions are those comprising a compound corresponding to any of the compound embodiments described above.
[0357] Compounds of Formula 1 may be prepared using one or more of the following methods and variations illustrated in Schemes 1-12. A, Q, R in compounds of Formulas 1-16 below 1 , R 2 , R 3 , R 4 , R 5 The definitions of , W, Y, and n are as defined above in the Summary of the Invention unless otherwise specified. Compounds of Formula 1a and 1d are subsets of Formula 1, and all substituents of Formula 1a and 1d are as defined above for Formula 1 unless otherwise specified.
[0358] As shown in Scheme 1, compounds of Formula 1 can be prepared by reacting compounds of Formula 2 with compounds of Formula 3 under copper- or palladium-catalyzed cross-coupling conditions. For compounds of Formula 3 (where X is a halogen or triflate), Ullmann or Buchwald-Hartwig conditions can be used. For relevant references, see, e.g., Chemical Reviews 2002, 102(5), 1359-1470; Angew. Chem. Int. Ed. Engl. 2008, 47(34), 6338-6361; and Chem. Sci. 2010, 1(1), 13-31; and International Publication No. WO 2014 / 066120. This Example 1 also illustrates the method of Scheme 1. These reactions typically require the presence of a base, such as a metal carbonate, such as potassium carbonate, a suitable catalyst, and a ligand, such as copper(I) iodide and trans-1,2-diamino-N,N'-dimethylcyclohexane. The reaction is generally carried out in an aprotic solvent, such as N,N-dimethylformamide, dioxane, or toluene, at temperatures between ambient temperature and the boiling point of the solvent. Compounds of formula 3 contain electron-withdrawing substituents (e.g., R 1 , R 2 and / or R 6When X is nitro, cyano, or an ester and X is a halogen, direct nucleophilic substitution of X with a compound of formula 2 can be achieved. These reactions are carried out in solvents such as N,N-dimethylformamide, N,N-dimethylacetamide, dimethyl sulfoxide, dioxane, tetrahydrofuran, or acetonitrile at temperatures between about ambient and 130° C. in the presence of a base such as an alkali carbonate, hydride, alkoxide, or trialkyl. For reaction conditions, see Bioorganic & Medicinal Chemistry Letters 2014, 24(24), 5805-5813; Bioorganic & Medicinal Chemistry Letters 2010, 20(15), 4521-4525; and Journal of Materials Chemistry A: Materials for Energy and Sustainability 2014, 2(21), 7917-7926; and WO 2016 / 187667. Additionally, Examples 2, 7, and 11 illustrate the preparation of compounds of Formula 1 by direct nucleophilic substitution. For compounds of Formula 3 (wherein X is a boronic acid), Chan-Lam conditions can be used. These reactions are carried out in the presence of a suitable base, such as pyridine or triethylamine, and a catalyst, such as copper(II) acetate. Typically, the reactions are carried out in an aprotic solvent, such as dichloromethane or chloroform, at temperatures between about ambient temperature and the boiling point of the solvent, and in the presence of oxygen. For key references, see, e.g., Tetrahedron 2018, 74(5), 606-617; and Tetrahedron Lett. 1998, 39(19), 2933-2936. [ka]
[0359] Compounds of Formula 3 are widely available from commercial sources and can be readily prepared using commercial precursors and known methods (see, e.g., U.S. Patent Application Publication No. 2013 / 0158004 and WO 2018 / 011094).
[0360] In some cases, the method of Scheme 1 yields two regioisomers. For example, as shown in Scheme 2, the reaction of a compound of Formula 2a (i.e., Formula 2 where A is A-4) with a compound of Formula 3 typically gives an isomeric mixture of a compound of Formula 1a' (i.e., Formula 1 where A is A-4) and a compound of Formula 1a'' (i.e., Formula 1 where A is A-3). Purification of the regioisomers can be achieved using standard techniques, such as column chromatography. For relevant references, see, for example, WO 2009 / 013211. The method of Scheme 2 is also described in Example 18, Step F. [ka]
[0361] As shown in Scheme 3, compounds of Formula 2a (i.e., Formula 2 where A is A-4) can be prepared by reacting an alkyne of Formula 4 with a suitable precursor of the azide ion in the presence of a copper(I) salt. Suitable azide sources include, for example, trimethylsilyl azide and sodium azide. Suitable copper(I) salts include copper(I) iodide, copper(I) bromide, and copper(I) chloride. Alternatively, copper(II) salts can be used in combination with a mild reducing agent, such as copper(II) sulfate in combination with sodium ascorbate. The reaction is typically carried out at temperatures between about 25 and 100°C in solvents such as N,N-dimethylformamide, tetrahydrofuran, methanol, tert-butanol, and dimethyl sulfoxide (optionally containing water). The use of lower-boiling solvents may, in some cases, require high pressure to facilitate carrying out the reaction at temperatures above the normal boiling point of the solvent. For key references, see, for example, Organic Letters 2009, 11(23), 5490-5493; European J. Organic Chem. 2004, (18), 3789-3791; Synlett 2005, (19), 2941-2947; and Tetrahedron Letters 2006, 47(18), 3035-3038; and WO 2004 / 072243. The method of Scheme 3 is also illustrated in this Example 18, Step E. [ka]
[0362] Scheme 4 outlines two methods for preparing compounds of formula 4. As shown in Method A, compounds of formula 4 can be prepared from compounds of formula 5 and alkynes of formula 6 using Sonogashira reaction coupling conditions. Sonogashira coupling is well known in the literature. See, for example, Molecules 2010, 15, 9157-9173; Sonogashira, K. In Handbook of Organopalladium Chemistry for Organic Synthesis; Negishi, E., Ed.; Wiley-Interscience: New York, 2002, pp 493-529; Palladium in Heterocyclic Chemistry, A Guide for the Synthetic Chemist, Li, J.; Gribble, G., Eds. in Tetrahedron Organic Series, Volume 20; Pergamon Press: New York, 2000.
[0363] As shown in Method B, compounds of Formula 4 can be prepared by reacting compounds of Formula 5 with ethynyltrimethylsilane (Formula 7) in the presence of a suitable palladium catalyst (such as tetrakis(triphenylphosphine)palladium or dichlorobis-(triphenylphosphine)-palladium(II)) and a suitable copper catalyst (such as copper(I) iodide). The reaction is preferably carried out in the presence of an amine base such as triethylamine, N,N-diisopropylethylamine, diethylamine, or piperidine. The reaction is typically carried out in a solvent such as tetrahydrofuran, toluene, or N,N-dimethylformamide; however, in some cases, the reaction can be carried out without any solvent other than the compound of Formula 5, ethynyltrimethylsilane, and the amine base. Removal of the trimethylsilane group to give compounds of Formula 4 can be carried out using well-known conditions, such as treatment with an alkali metal hydroxide or carbonate, such as potassium hydroxide, sodium hydroxide, or potassium carbonate, in methanol or ethanol. The reaction is preferably carried out in a suitable organic solvent. Typically, the process is most satisfactorily carried out at temperatures ranging from about 0° C. to the reflux temperature of the solvent. For representative procedures, see JACS 2003, 125(38), 11545-11552 and Bioorganic & Medicinal Chemistry 2009, 17(24), 8149-8160. This Example 18, Steps A and B, also illustrate the process of Scheme 4. [ka]
[0364] As shown in Scheme 5, compounds of Formula 2 can also be prepared by Suzuki coupling of compounds of Formula 5 with boron intermediates of Formula 8, where A is attached to the boron through a carbon atom ring member and is unsubstituted on the N atom ring member (i.e., A is a 5-membered heterocyclic aromatic ring containing the ring members -NH- and -(CB(OH)2)-). The reaction is carried out in the presence of a Pd(0) or Pd(II) salt, a suitable ligand, and a base. Suitable bases for this transformation are potassium carbonate or cesium carbonate, while Pd(II) salts such as Pd(OAc)2 or PdCl2 are used in conjunction with ligands such as triphenylphosphine or 1,1'-bis(diphenylphosphino)ferrocene (dppf). Conditions for Suzuki coupling are well documented in the literature; see, for example, Angewandte Chemie International Edition 2006, 45(21), 3484-3488 and Tetrahedron Letters 2002, 43(16), 2885-2888. The boron intermediate of formula 8 is commercially available or can be prepared from the corresponding halide or trifluoromethanesulfonate by methods known in the literature; see, for example, WO 2007 / 043278; U.S. Pat. No. 8,080,566; Organic Letters 2011, 13(6), 1366-1369; European Journal of Medicinal Chemistry 2014, 87, 529-539 and Organic Letters 2012, 14(2), 600-603.
[0365] Other coupling procedures, such as those published by Heck, Stille, and Kumada, offer numerous alternatives for the introduction of heterocyclic A rings onto formula 5. See also, for example, Zificsak et al., Tetrahedron 2004, 60, 8991-9016. [ka]
[0366] As shown in Scheme 6, compounds of Formula 5 can be prepared by reacting an amine of Formula 9 with an acid chloride of Formula 10 in the presence of a base such as potassium carbonate, triethylamine, or pyridine. The reaction can be carried out at a temperature ranging from about 0°C to 50°C without a solvent other than the compounds of Formulas 9, 10, and the base, or in a solvent such as acetonitrile, dichloromethane, chloroform, diethyl ether, or tetrahydrofuran. For reaction conditions, see, for example, WO 2004 / 037770 and EP 1 586 552. The method of Scheme 6 is also illustrated in this Example 18, Step D.
[0367] For the synthesis of the compound of formula 10, see Advanced Organic Synthesis, 4 th Edition, Wiley & Sons 1992, 437, and references cited therein. Compounds of formula 9 are commercially available or can be readily synthesized by general methods known to those skilled in the art. [ka]
[0368] As shown in Scheme 7, compounds of formula 1 can also be prepared by the reaction of an acid chloride of formula 10 with a compound of formula 11, similar to the method of Scheme 6. The method of Scheme 7 is illustrated in this Example 17, Step F. [ka]
[0369] As shown in Scheme 8, compounds of formula 11 can be prepared from nitriles of formula 12 using a suitable reducing agent, such as lithium aluminum hydride or borane / tetrahydrofuran complex or tris(pentafluorophenyl)borane, in an aprotic solvent such as tetrahydrofuran at temperatures between ambient temperature and the boiling point of the solvent. For relevant examples, see the procedures and references contained within WO 2011 / 079102 and WO 2011 / 073444. The method of Scheme 8 is also illustrated in this Example 17, Step E.
[0370] Nitriles of formula 12 can also be converted to amines of formula 11 by catalytic hydrogenation. These reactions are traditionally carried out in the presence of a transition metal catalyst such as palladium(0) on carbon, Raney nickel, or platinum oxide in a lower alcohol such as methanol or ethanol at temperatures between ambient and 100° C. under an atmosphere of hydrogen gas at pressures between 1 and 7500 kPa. For relevant examples, see the procedures and references contained within WO 2009 / 152868 and WO 2010 / 023161. [ka]
[0371] As shown in Scheme 9, compounds of Formula 12 can be prepared by coupling a compound of Formula 13, where A is unsubstituted on the N atom ring member (i.e., A is a 5-membered heterocyclic aromatic ring containing the ring member -NH-), with a compound of Formula 3 using a method similar to Scheme 1. This Example 17, Step A, illustrates the method of Scheme 9. [ka]
[0372] As shown in Scheme 10, compounds of formula 13 can be prepared from compounds of formula 14. In a typical procedure, compounds of formula 14 are contacted with a cyanide salt, such as copper(I) cyanide or zinc(II) cyanide, in the presence of a suitable transition metal catalyst, such as copper(I) iodide or tetrakis(triphenylphosphine)palladium(0), in a polar aprotic solvent, such as N,N-dimethylformamide or dimethylsulfoxide, at a temperature of about 50° C. to 150° C. See WO 2012 / 032528 and WO 2011 / 133882 and references contained therein for related procedures. [ka]
[0373] As shown in Scheme 11, compounds of formula 14 can be prepared by first reacting compounds of formula 15 with N,N-dimethylformamide dimethyl acetal (DMF-DMA) in a solvent such as toluene or benzene at a temperature of about 40° C. to 100° C. to provide an intermediate compound of formula 16. In a subsequent step, compounds of formula 16 are reacted with hydrazine or a hydrazine salt in a lower alcohol such as methanol or ethanol to provide compounds of formula 14. [ka]
[0374] The compounds of Formula 1 described herein and their intermediates can be subjected to a variety of electrophilic, nucleophilic, organometallic, oxidation, and reduction reactions to add or modify existing substituents, thus providing other functionalized compounds of Formula 1. For example, as shown in Scheme 12, compounds of Formula 1c (i.e., where Q is CR 6 and R 6 Compounds of formula 1 (where Q is NH) can be prepared by the synthesis of compounds of formula 1b (i.e., where Q is CR) using Fe, Zn, or SnCl in aqueous acidic solutions at temperatures ranging from ambient to reflux. 6 and R 6The amine group of formula 1c can be prepared by reduction of the corresponding nitro compound of formula 1 (where Q is NO). Alcohol cosolvents such as methanol, ethanol, and i-propanol can also be used. In a subsequent reaction, the amino group of formula 1c can be converted to a halogen under diazotization conditions in the presence of a halogen source to give formula 1d (i.e., Q is CR 6 and R 6 can provide compounds of formula 1), where R is a halogen. A variety of halogen sources can be used in the method of Scheme 12. For example, the addition of tert-butyl nitrite to a solution of an amino compound of formula 1c in the presence of copper(II) bromide in a solvent such as acetonitrile provides the corresponding bromide compound of formula 1d; similarly, reaction with diiodomethane provides the corresponding iodo compound of formula 1d. Compounds of formula 1c can also be converted to diazonium salts and then to the corresponding compounds of formula 1d by treatment with sodium nitrite in a solvent such as water, acetic acid, or trifluoroacetic acid in the presence of a mineral acid, typically containing the same halide atom, followed by treatment with the corresponding copper(I) or copper(II) salt according to general procedures well known to those skilled in the art. Many known reduction, diazotization, and halogenation methods can be readily adapted to prepare compounds of formula 1c and 1d, see, for example, the procedures and references contained within U.S. Patent Application Publication Nos. 2017 / 0121300, 2017 / 069105, and 2017 / 038909, and WO 2017 / 036357. The method of Scheme 12 is also illustrated in Examples 3, 4, and 13. [ka]
[0375] The methods of Scheme 12 provide just two examples of techniques for adding or modifying existing substituents in compounds of Formula 1. Those skilled in the art will recognize that compounds of Formula 1 can also be subjected to a number of reactions to provide other functionalized compounds of Formula 1. For example, aromatic halides of Formula 1 (e.g., Formula 1d, where the halogen is Br or I) can be reacted with alcohols or thiols under metal-catalyzed conditions to provide compounds of Formula 1 containing alkoxy or alkylthio substituents (see Example 15 for conditions).
[0376] Compounds of Formula 1 where W is O and the intermediates described in the methods above can be converted to the corresponding thiolates where W is S using a variety of standard thiating reagents, such as phosphorus pentasulfide or 2,4-bis(4-methoxyphenyl)-1,3-dithia-2,4-diphosphetane-2,4-disulfide (Lawson's reagent). Reactions of this type are known, see for example Heterocycles 1995, 40, 271-278; Journal of Medicinal Chemistry 2008, 51, 8124-8134; Journal of Medicinal Chemistry 1990, 33, 2697-706; Synthesis 1989, (5), 396-3977; J. Chem. Soc., Perkin Trans. 1, 1988, 1663-1668; Tetrahedron 1988 44, 3025-3036; and Journal of Organic Chemistry 1988 53(6), 1323-1326.
[0377] It is recognized that some reagents and reaction conditions described above for preparing compounds of Formula 1 may be incompatible with certain functional groups present in the intermediates. In these cases, the incorporation of protection / deprotection sequences or functional group interconversions into the synthesis may be helpful to obtain the desired products. The use and selection of protecting groups will be apparent to those skilled in chemical synthesis (see, for example, T.W. Greene and P.G.M. Buts, Protective Groups in Organic Synthesis, 2nd ed.; Wiley: New York, 1991). Those skilled in the art will recognize that, in some cases, after the introduction of certain reagents depicted in any individual scheme, it may be necessary to perform additional routine synthetic steps not described in detail to complete the synthesis of compounds of Formula 1. Those skilled in the art will also recognize that it may be necessary to perform combinations of steps described in the above schemes in an order other than that implied by the specific order presented to prepare compounds of Formula 1.
[0378] Without further elaboration, it is believed that one skilled in the art using the preceding description can utilize the present invention to the fullest extent. The following examples are therefore merely illustrative and should not be construed as limiting the present disclosure in any way. The steps in the following examples illustrate the procedure for each step in a total synthetic transformation, and the starting materials for each step may not necessarily have been prepared by the specific preparative experiment whose procedure is described in another example or step. Percentages are by weight unless otherwise specified. Parts and percentages regarding chromatographic solvent mixtures are by volume unless otherwise specified. 1 H NMR spectra are reported in ppm downfield from tetramethylsilane; "s" means singlet, "d" means doublet, "t" means triplet, "m" means multiplet, "br s" means broad singlet, and "dd" means doublet of doublet. Mass spectra were analyzed by atmospheric pressure chemical ionization (APCI). +) or electrospray ionization (ESI + ) or ) using liquid chromatography coupled with a mass spectrometer (LCMS), + The molecular weight is reported as the molecular weight of the parent ion (M+1) of highest isotopically abundance formed by addition of (molecular weight 1). [Example]
[0379] Example 1 Preparation of methyl N-[[5-[1-(2,6-difluoro-4-methoxyphenyl)-1H-pyrazol-3-yl]-2-methyl-phenyl]methyl]carbamate (compound 3) To a mixture of methyl N-[[2-methyl-5-(1H-pyrazol-3-yl)phenyl]methyl]carbamate (1.12 g, 4.57 mmol) (see WO 2008124092 for method of preparation), copper(I) iodide (0.17 g, 0.914 mmol), and 2-bromo-1,3-difluoro-5-methoxy-benzene (1.32 g, 5.94 mmol) was added potassium carbonate (11.4 mmol), followed by N,N-dimethylformamide (8 mL). Nitrogen gas was bubbled through the reaction mixture for 30 minutes, and then trans-N,N'-dimethylcyclohexane-1,2-diamine (0.26 g, 1.83 mmol) was added. The reaction mixture was heated at 80 °C overnight, cooled to room temperature, and diluted with ethyl acetate. The resulting mixture was washed with saturated aqueous sodium chloride (4x), dried over magnesium sulfate, filtered, and concentrated under reduced pressure. The resulting material was purified by silica gel column chromatography (eluting with a gradient of 20-80% ethyl acetate in hexanes) to afford the title compound, a compound of this invention, as a colorless oil (0.43 g). 1 H NMR(CDCl3):δ 7.74(d,1H),7.67(dd,1H),7.59(d,1H),7.22(d,1H),6.74(d,1H),6.61(d,2H),4.87(br s,1H),4.41(d,2H),3.84(s,3H),3.69(s,3H),2.36(s,3H). LCMS: m / z: 388 [M+H] +
[0380] Example 2 Preparation of methyl N-[[5-[1-(2,6-difluoro-4-nitrophenyl)-1H-pyrazol-3-yl]-2-methyl-phenyl]methyl]carbamate (Compound 1) To a stirred solution of methyl N-[[2-methyl-5-(1H-pyrazol-3-yl)phenyl]methyl]carbamate (0.45 g, 1.84 mmol) (see WO 2008124092 for method of preparation) in dimethyl sulfoxide (5 mL) was added potassium carbonate (762 mg, 5.52 mmol) and 1,2,3-trifluoro-5-nitrobenzene (0.235 mL, 2.02 mmol). The reaction mixture was stirred overnight at room temperature and diluted with ethyl acetate. The resulting mixture was washed with saturated aqueous sodium chloride (4x), dried over magnesium sulfate, filtered, and concentrated under reduced pressure. The resulting material was purified by column chromatography (gradient elution with 10-50% ethyl acetate in hexanes) to afford the title compound, a compound of this invention, as a yellow solid (0.44 g). 1 H NMR(CDCl3):δ 8.02(d,2H),7.79(dd,1H),7.75(d,1H),7.69(dd,1H),7.25(d,1H),6.85(d,1H),4.86(br s,1H),4.44(d,2H),3.71(s,3H),2.38(s,3H).
[0381] Example 3 Preparation of methyl N-[[5-[1-(4-amino-2,6-difluorophenyl)-1H-pyrazol-3-yl]-2-methyl-phenyl]methyl]carbamate (compound 5) To a mixture of methyl N-[[5-[1-(2,6-difluoro-4-nitrophenyl)-1H-pyrazol-3-yl]-2-methylphenyl]methyl]carbamate (i.e., the product of Example 2) (0.4 g, 0.995 mmol) and ammonium chloride (32 mg, 0.597 mmol) in ethanol / water (9:1, 20 mL) was added iron powder (555 mg, 9.95 mmol) in portions. The reaction mixture was heated at reflux for 1.5 hours, then cooled to room temperature and filtered through a pad of Celite® (diatomaceous filter aid), rinsing with ethyl acetate. The filtrate was washed with saturated aqueous sodium chloride (4x), dried over magnesium sulfate, filtered, and concentrated under reduced pressure. The resulting material was purified by silica gel column chromatography (gradient elution with 30 to 100% ethyl acetate in hexanes) to afford the title compound, a compound of this invention, as a pale yellow solid (0.3 g). 1 H NMR(CDCl3):δ 7.75(d,1H),7.66(dd,1H),7.56(d,1H),7.21(d,1H),6.72(d,1H),6.31(d,2H),4.82(br s,1H),4.41(d,2H),4.04(br s,2H),3.69(s,3H),2.36(s,3H).
[0382] Example 4 Preparation of methyl N-[[5-[1-(4-bromo-2,6-difluorophenyl)-1H-pyrazol-3-yl]-2-methylphenyl]methyl]carbamate (compound 7) To a mixture of methyl N-[[5-[1-(4-amino-2,6-difluorophenyl)-1H-pyrazol-3-yl]-2-methylphenyl]methyl]carbamate (i.e., the product of Example 3) (90 mg, 0.242 mmol) in acetonitrile (2 mL) was added copper(II) bromide (65 mg, 0.290 mmol). The reaction mixture was cooled to approximately 0 °C, and n-butyl nitrite (0.043 mL, 0.363 mmol) was added. The reaction mixture was stirred overnight at room temperature and then quenched with hydrochloric acid (1 N aqueous solution). The resulting mixture was extracted with ethyl acetate (2x), and the combined extracts were dried over magnesium sulfate, filtered, and concentrated under reduced pressure. The resulting material was purified by silica gel column chromatography (eluting with a gradient of 10–40% ethyl acetate in hexanes). The resulting material was further purified by column chromatography (gradient elution with 0-10% ethyl acetate in dichloromethane) to give the title compound, a compound of this invention, as a yellow oil (49 mg). 1 H NMR(CDCl3): δ 7.74(d,1H),7.67-7.65(m,2H),7.29(d,2H),7.23(d,1H),6.78(d,1H),4.83(br s,1H),4.42(d,2H),3.70(s,3H),2.37(s,3H). LCMS: m / z: 436 [M+H] +
[0383] Example 5 Preparation of methyl N-[[5-[1-(2,6-difluoro-4-hydroxyphenyl)-1H-pyrazol-3-yl]-2-methylphenyl]methyl]carbamate (Compound 10) To a mixture of methyl N-[[5-[1-(2,6-difluoro-4-methoxyphenyl)-1H-pyrazol-3-yl]-2-methylphenyl]methyl]carbamate (i.e., the product of Example 1) (1.20 g, 3.10 mmol) in dichloromethane (30 mL) at 0° C., boron tribromide (1 M solution in dichloromethane, 9.40 mL, 9.30 mmol) was added dropwise. The reaction mixture was allowed to warm to room temperature and stirred overnight. The reaction mixture was slowly quenched with water (35 mL), followed by the dropwise addition of methanol (35 mL), and then stirred at room temperature for 1 hour. The layers were separated, and the aqueous layer was extracted with dichloromethane (2×). The combined organic extracts were dried over magnesium sulfate, filtered, and concentrated under reduced pressure. The resulting material was purified by silica gel column chromatography (gradient elution with 20-70% ethyl acetate in hexane) to give the title compound, a compound of this invention, as a white solid (0.87 g). 1 H NMR(CDCl3):δ 7.74(br s,1H),7.63(dd,1H),7.60(d,1H),7.24(d,1H),6.75(d,1H),6.46(d,2H),4.95(br s,1H),4.42(d,2H),3.69(s,3H),2.37(s,3H).
[0384] Example 6 Preparation of methyl N-[[5-[1-[2,6-difluoro-4-(1-methylethoxy)phenyl]-1H-pyrazol-3-yl]-2-methylphenyl]methyl]carbamate (Compound 14) To a mixture of methyl N-[[5-[1-(2,6-difluoro-4-hydroxyphenyl)-1H-pyrazol-3-yl]-2-methylphenyl]methyl]carbamate (i.e., the product of Example 5) (87 mg) in tetrahydrofuran (3 mL) was added triphenylphosphine (122 mg, 0.46 mmol), followed by 2-propanol (0.035 mL, 0.46 mmol) and diethyl azodicarboxylate (0.073 mL, 0.46 mmol). The reaction mixture was stirred at room temperature for 48 hours and concentrated under reduced pressure. The resulting material was purified by silica gel column chromatography (eluting with a gradient of 10 to 50% ethyl acetate in hexane) to afford the title compound, a compound of this invention, as a white solid (85 mg). 1 H NMR(CDCl3):δ 7.75(d,1H),7.67(dd,1H),7.59(d,1H),7.22(d,1H),6.74(d,1H),6.58(d,2H),4.54(m,1H),4.83(br s,1H),4.42(d,2H),3.70(s,3H),2.36(s,3H),1.37(d,6H). LCMS: m / z: 416 [M+H] +
[0385] Example 7 Preparation of methyl 3,5-difluoro-4-[3-[3-[[(methoxycarbonyl)amino]methyl]-4-methyl-phenyl]-1H-pyrazol-1-yl]benzoate (compound 70) To a mixture of methyl N-[[2-methyl-5-(1H-pyrazol-3-yl)phenyl]methyl]carbamate (2.58 g, 10.5 mmol) (see WO 2008124092 for method of preparation) and methyl 3,4,5-trifluorobenzoate (2.41 g, 12.6 mmol) in dimethyl sulfoxide (10 mL) was added potassium carbonate (4.35 g, 31.5 mmol). The reaction mixture was stirred at room temperature for 48 hours and diluted with ethyl acetate. The resulting mixture was washed with saturated aqueous ammonium chloride (4x), dried over magnesium sulfate, filtered, and concentrated under reduced pressure. The resulting material was purified by column chromatography (gradient elution with 10-50% ethyl acetate in hexane) to give the title compound, a compound of this invention, as a pale pink solid (3.55 g). 1 H NMR(CDCl3):δ 7.76(d,2H),7.74(m,2H),7.68(d,1H),7.24(d,1H),6.80(d,1H),4.87(br s,1H),4.42(d,2H),3.97(s,3H),3.70(s,3H),2.37(s,3H).
[0386] Example 8 Preparation of methyl N-[[5-[1-[2,6-difluoro-4-(hydroxymethyl)phenyl]-1H-pyrazol-3-yl]-2-methylphenyl]methyl]carbamate (Compound 71) To a mixture of methyl 3,5-difluoro-4-[3-[3-[[(methoxycarbonyl)amino]methyl]-4-methylphenyl]-1H-pyrazol-1-yl]benzoate (i.e., the product of Example 7) (3.55 g, 8.55 mmol) in methanol (45 mL) was added sodium borohydride (1.94 g, 51.3 mmol) in portions. The reaction mixture was stirred overnight at room temperature and then quenched with hydrochloric acid (1 N aqueous solution) and filtered. The filtrate was extracted with ethyl acetate (3×), and the combined extracts were dried over magnesium sulfate, filtered, and concentrated under reduced pressure. The resulting material was purified by silica gel column chromatography (gradient elution with 20 to 100% ethyl acetate in hexanes) to afford the title compound, a compound of this invention, as a white solid (2.52 g). 1 H NMR(DMSO-d6,):δ 8.11(d,1H),7.73(d,1H),7.65(t,1H),7.62(dd,1H),7.29(d,1H),7.22(d,1H) ,6.94(d,1H),5.59(t,1H),4.60(d,2H),4.21(d,2H),3.55(s,3H),2.30(s,3H).
[0387] Example 9 Preparation of methyl N-[[5-[1-(2,6-difluoro-4-formylphenyl)-1H-pyrazol-3-yl]-2-methyl-phenyl]methyl]carbamate (Compound 67) To a mixture of methyl N-[[5-[1-[2,6-difluoro-4-(hydroxymethyl)phenyl]-1H-pyrazol-3-yl]-2-methylphenyl]methyl]carbamate (i.e., the product of Example 8) (2.30 g, 5.94 mmol) in tetrahydrofuran (70 mL) was added Dess-Martin periodinane (2.52 g, 5.94 mmol) in portions. The reaction mixture was stirred overnight at room temperature, then quenched with aqueous sodium carbonate and extracted with ethyl acetate (2×). The combined extracts were filtered and rinsed with ethyl acetate. The filtrate was washed with saturated aqueous sodium bicarbonate (3×), dried over magnesium sulfate, filtered, and concentrated under reduced pressure. The resulting material was purified by silica gel column chromatography (gradient elution with 20–60% ethyl acetate in hexanes) to afford the title compound, a compound of this invention, as a white solid (1.78 g). 1 H NMR(CDCl3):δ 9.98(t,1H),7.76(m,2H),7.69(dd,1H),7.62(d,2H),7.24(d,1H),6.83(d,1H),4.86(br s,1H),4.43(d,2H),3.71(s,3H),2.38(s,3H).
[0388] Example 10 Preparation of methyl N-[[5-[1-[4-(difluoromethyl)-2,6-difluorophenyl]-1H-pyrazol-3-yl]-2-methylphenyl]methyl]carbamate (Compound 87) To a mixture of methyl N-[[5-[1-(2,6-difluoro-4-formylphenyl)-1H-pyrazol-3-yl]-2-methylphenyl]methyl]carbamate (i.e., the product of Example 9) (0.25 g, 0.65 mmol) in dichloromethane (10 mL) at approximately 0 °C, Deoxo-Fluor® (0.36 mL, 1.95 mmol) was added, followed by ethanol (1 drop). The reaction mixture was stirred overnight at room temperature and then slowly poured into saturated aqueous sodium carbonate (200 mL). After 30 minutes, the layers were separated, and the aqueous layer was extracted with dichloromethane (1×). The combined organics were dried over magnesium sulfate, filtered, and concentrated under reduced pressure. The resulting material was purified by silica gel column chromatography (eluting with a gradient of 10–50% ethyl acetate in hexanes) to afford the title compound, a compound of this invention, as a colorless oil (0.23 g). 1 H NMR(CDCl3):δ 7.75(d,1H),7.71-7.68(m,2H),7.27(d,2H),7.23(d,1H),6.80(d,1H),6.78-6.55(t,1H),4.85(br s,1H),4.42(d,2H),3.70(s,3H),2.37(s,3H). LCMS: m / z: 408 [M+H] +
[0389] Example 11 Preparation of methyl N-[[5-[1-(4-acetyl-2,6-difluorophenyl)-1H-pyrazol-3-yl]-2-methyl-phenyl]methyl]carbamate (compound 68) To a mixture of methyl N-[[2-methyl-5-(1H-pyrazol-3-yl)phenyl]methyl]carbamate (2.0 g, 8.16 mmol) (see WO 2008124092 for method of preparation) and 1-(3,4,5-trifluorophenyl)ethanone (2.0 g, 11.4 mmol) in dimethyl sulfoxide (9 mL) was added potassium carbonate (3.38 g, 24.5 mmol). The reaction mixture was stirred overnight at room temperature and then diluted with ethyl acetate. The resulting mixture was washed with saturated aqueous ammonium chloride (4x), dried over magnesium sulfate, filtered, and concentrated under reduced pressure. The resulting material was purified by silica gel column chromatography (gradient elution with 10-70% ethyl acetate in hexane) to afford the title compound, a compound of this invention, as a pale orange solid (2.10 g). 1 H NMR(CDCl3):δ 7.75(m,2H),7.69(dd,1H),7.67(d,2H),7.24(d,1H),6.81(d,1H),4.87(br s,1H),4.43(d,2H),3.70(s,3H),2.64(s,3H),2.37(s,3H).
[0390] Example 12 Preparation of methyl (E)-N-[[5-[1-[2,6-difluoro-4-[1-(methoxyimino)ethyl]phenyl]-1H-pyrazol-3-yl]-2-methylphenyl]methyl]carbamate (Compound 83) A mixture of methyl N-[[5-[1-(4-acetyl-2,6-difluorophenyl)-1H-pyrazol-3-yl]-2-methylphenyl]methyl]carbamate (i.e., the product of Example 11) (0.24 g, 0.602 mmol), O-methylhydroxylamine hydrochloride (60.3 mg, 0.722 mmol), and sodium acetate (59.2 mg, 0.722 mmol) in ethanol was heated at reflux overnight. The reaction mixture was cooled to room temperature and diluted with water. The resulting mixture was extracted with ethyl acetate (2×), and the combined extracts were dried over magnesium sulfate, filtered, and concentrated under reduced pressure to provide the title compound, a compound of this invention, as an amber solid (239 mg). 1 H NMR(CDCl3):δ 7.75(d,1H),7.68(m,2H),7.41(d,2H),7.23(d,1H),6.78(d,1H),4.85(br s,1H),4.42(d,2H),4.04(s,3H),3.70(s,3H),2.37(s,3H),2.21(s,3H). LCMS: m / z:429[M+H] +
[0391] Example 13 Preparation of methyl N-[[5-[1-(2,6-difluoro-4-iodophenyl)-1H-pyrazol-3-yl]-2-methyl-phenyl]methyl]carbamate (compound 8) To a mixture of methyl N-[[5-[1-(4-amino-2,6-difluorophenyl)-1H-pyrazol-3-yl]-2-methylphenyl]methyl]carbamate (i.e., the product of Example 3) (2.38 g, 6.40 mmol) in acetonitrile (50 mL) was added diiodomethane (2.1 mL, 25.6 mmol). The reaction mixture was cooled to approximately 0° C., and then tert-butyl nitrite (0.84 mL, 7.04 mmol) was added dropwise. The reaction mixture was stirred at room temperature for 5 hours, and then additional diiodomethane (12 mL, 150 mmol) was added. After stirring overnight, the reaction mixture was diluted with ethyl acetate and washed with saturated sodium metabisulfite solution (3×), saturated sodium chloride solution (2×), and hydrochloric acid (1 N aqueous solution). The mixture was dried over magnesium sulfate, filtered, and concentrated under reduced pressure. The resulting material was purified by silica gel column chromatography (gradient elution with 0-10% ethyl acetate in hexane) to give the title compound, a compound of this invention, as an off-white solid (1.0 g). 1 H NMR(CDCl3):δ 7.73(d,1H),7.66-7.64(m,2H),7.47(d,2H),7.22(d,1H),6.77(d,1H),4.86(br s,1H),4.42(d,2H),3.70(s,3H),2.36(s,3H).
[0392] Example 14 Preparation of methyl N-[[5-[1-(4-ethynyl-2,6-difluorophenyl)-1H-pyrazol-3-yl]-2-methyl-phenyl]methyl]carbamate (compound 53) Step A: Preparation of methyl N-[[5-[1-(2,6-difluorophenyl-4-(2-(trimethylsilyl)ethynyl)-1H-pyrazol-3-yl]-2-methylphenyl]methyl]carbamate To a mixture of methyl N-[[5-[1-(2,6-difluoro-4-iodophenyl)-1H-pyrazol-3-yl]-2-methylphenyl]methyl]carbamate (i.e., the product of Example 13) (0.2 g, 0.414 mmol), copper(I) iodide (8 mg, 0.041 mmol), N,N-dimethylformamide (4 mL), ethynyltrimethylsilane (0.088 mL, 0.621 mmol), and dichlorobis(triphenylphosphine)palladium (29 mg, 0.041 mmol), triethylamine (0.063 mL, 0.455 mmol) was added. The reaction mixture was stirred overnight at room temperature, then diluted with ethyl acetate, washed with saturated aqueous sodium chloride (4x), dried over magnesium sulfate, filtered, and concentrated under reduced pressure. The resulting material was purified by silica gel column chromatography (eluting with a gradient of 5-40% ethyl acetate in hexane) to give the title compound as a pale brown oil (0.17 g). 1 H NMR(CDCl3):δ 7.74(d,1H),7.67(m,2H),7.23(d,1H),7.16(d,2H),6.77(d,1H),4.84(br s,1H),4.42(d,2H),3.70(s,3H),2.37(s,3H),0.27(s,9H).
[0393] Step B: Preparation of methyl N-[[5-[1-(4-ethynyl-2,6-difluorophenyl)-1H-pyrazol-3-yl]-2-methylphenyl]methyl]carbamate (compound 53) To a mixture of methyl N-[[5-[1-(2,6-difluorophenyl-4-(2-(trimethylsilyl)ethynyl)-1H-pyrazol-3-yl]-2-methylphenyl]methyl]carbamate (i.e., the product of Step A) (0.12 g, 0.265 mmol) in methanol (6 mL) was added potassium carbonate (44 mg, 0.318 mmol). The reaction mixture was stirred at room temperature for 1.5 hours, then diluted with ethyl acetate and water and allowed to stand at room temperature overnight. The resulting mixture was washed with saturated sodium chloride solution (2×), dried over magnesium sulfate, filtered, and concentrated under reduced pressure. The resulting material was purified by silica gel column chromatography (gradient elution with 10–50% ethyl acetate in hexanes) to afford the title compound, a compound of this invention, as an amber oil (0.109 g). 1 H NMR(CDCl3):δ 7.75(d,1H),7.68-7.66(m,2H),7.23(d,1H),7.20(d,2H),6.78(d,1H),4.84(br s,1H),4.42(d,2H),3.70(s,3H),3.24(s,1H),2.37(s,3H). LCMS m / z: 382 [M+H] +
[0394] Example 15 Preparation of methyl N-[[5-[1-[4-[(1,1-dimethylethyl)thio]-2,6-difluorophenyl]-1H-pyrazol-3-yl]-2-methylphenyl]methyl]carbamate (compound 42) A mixture of methyl N-[[5-[1-(2,6-difluoro-4-iodophenyl)-1H-pyrazol-3-yl]-2-methylphenyl]methyl]carbamate (i.e., the product of Example 13) (0.217 g, 0.450 mmol) and N,N-dimethylformamide (2 mL) was purged with a stream of nitrogen gas for 10-15 minutes, and then tetrakis(triphenylphosphine)palladium (52 mg, 0.045 mmol) was added, followed by 2-methyl-2-propanethiol (0.100 mL, 0.900 mmol) and triethylamine (0.20 mL, 1.35 mmol). The reaction mixture was heated at 70 °C for 1 hour, then cooled to room temperature and diluted with ethyl acetate. The resulting mixture was washed with saturated sodium chloride solution (3x), dried over magnesium sulfate, filtered, and concentrated under reduced pressure. The resulting material was purified by silica gel column chromatography (gradient elution with 10-50% ethyl acetate in hexane) to give the title compound, a compound of this invention, as an orange oil (0.189 g). 1 H NMR(CDCl3):δ 7.75(d,1H),7.69-7.67(m,2H),7.27(d,2H),7.23(d,1H),6.79(d,1H),4.84(br s,1H),4.42(d,2H),3.70(s,3H),2.37(s,3H),1.37(s,9H).
[0395] Example 16 Preparation of methyl N-[[5-[1-[4-[(difluoromethyl)thio]-2,6-difluorophenyl]-1H-pyrazol-3-yl]-2-methylphenyl]methyl]carbamate (compound 43) Step A: Preparation of methyl N-[[5-[1-(2,6-difluoro-4-mercaptophenyl)-1H-pyrazol-3-yl]-2-methylphenyl]methyl]carbamate To a mixture of methyl N-[[5-[1-[4-[(1,1-dimethylethyl)thio]-2,6-difluorophenyl]-1H-pyrazol-3-yl]-2-methylphenyl]methyl]carbamate (i.e., the product of Example 15) (0.16 g, 0.360 mmol) in dichloromethane (5 mL) at approximately 0 °C, boron tribromide (1 M solution in dichloromethane, 1.10 mL, 1.08 mmol) was added dropwise. The reaction mixture was stirred overnight at room temperature and quenched with water (6 mL) and methanol (6 mL). After stirring for 2 hours, the layers were separated and the aqueous layer was extracted with dichloromethane (2×). The combined organics were dried over magnesium sulfate, filtered, and concentrated under reduced pressure. The resulting material was purified by silica gel column chromatography (eluting with a gradient of 20 to 100% ethyl acetate in hexanes) to provide the title compound as a solid (77 mg). 1 H NMR(CDCl3):δ 7.74(d,1H),7.67(dd,1H),7.62(m,1H),7.22(d,1H),6.98(d,2H),6.75(d,1H),4.83(br s,1H),4.42(d,2H),3.70(s,3H),2.36(s,3H).
[0396] Step B: Preparation of methyl N-[[5-[1-[4-[(difluoromethyl)thio]-2,6-difluorophenyl]-1H-pyrazol-3-yl]-2-methylphenyl]methyl]carbamate To a mixture of methyl N-[[5-[1-(2,6-difluoro-4-mercaptophenyl)-1H-pyrazol-3-yl]-2-methylphenyl]methyl]carbamate (i.e., the product of Step A) (77 mg, 0.198 mmol) in acetonitrile and water (1:1, 2 mL) was added potassium hydroxide (222 mg, 3.96 mmol), followed by diethyl (bromodifluoromethyl)phosphonate (0.070 mL, 0.396 mmol). The reaction mixture was stirred at room temperature for 1.5 hours and then diluted with ethyl acetate. The resulting mixture was washed with saturated sodium chloride solution (2x), dried over magnesium sulfate, filtered, and concentrated under reduced pressure. The resulting material was purified by silica gel column chromatography (eluting with a gradient of 10-50% ethyl acetate in hexanes) to afford the title compound, a compound of this invention, as an off-white solid (64 mg). 1 H NMR(CDCl3):δ 7.75(d,1H),7.70-7.68(m,2H),7.34(d,2H),7.24(d,1H),7.02-6.80(t,1H),6.80(d,1H),4.84(br s,1H),4.42(d,2H),3.70(s,3H),2.37(s,3H). LCMS m / z: 440 [M+H] +
[0397] Example 17 Preparation of methyl N-[[5-[1-(2,6-dichloro-4-cyclopropylphenyl)-1H-pyrazol-3-yl]-2-methylphenyl]methyl]carbamate (Compound 65) Step A: Preparation of 5-[1-(2,6-dichloro-4-nitrophenyl)-1H-pyrazol-3-yl]-2-methyl-benzonitrile A mixture of 2-methyl-5-(1H-pyrazol-3-yl)benzonitrile (3.0 g, 16.4 mmol) (see WO 2014066120 for method of preparation), 1,3-dichloro-2-fluoro-5-nitrobenzene (4.12 g, 19.6 mmol), and potassium carbonate (2.72 g, 19.6 mmol) in N,N-dimethylformamide (51 mL) was heated at 80° C. for 4 hours and then stirred at room temperature overnight. The reaction mixture was diluted with water, and the resulting precipitate was collected by filtration and rinsed with water. The solid precipitate was triturated in a mixture of hexane / 1-chlorobutane, filtered, and dried to give the title compound (3.59 g). 1 H NMR(CDCl3):δ 8.37(s,2H),8.11(s,1H),7.96(d,1H),7.64(s,1H),7.38(d,1H),6.87(s,1H),2.60(s,3H).
[0398] Step B: Preparation of 5-[1-(4-amino-2,6-dichlorophenyl)-1H-pyrazol-3-yl]-2-methyl-benzonitrile To a mixture of tin(II) chloride dihydrate (12.82 g, 56.82 mmol), acetic acid (51.78 mL), and concentrated hydrochloric acid (34.57 mL) was added 5-[1-(2,6-dichloro-4-nitrophenyl)-1H-pyrazol-3-yl]-2-methylbenzonitrile (i.e., the product of Step A) (6.07 g, 16.26 mmol) in portions while maintaining the reaction temperature at approximately 25° C. The reaction mixture was stirred overnight and then poured into a mixture of potassium hydroxide (200 g), water (200 g), and ice (400 g). The resulting solid precipitate was collected by filtration and dried to give the title compound (6.8 g). 1 H NMR(CDCl3):δ 8.22(s,1H),7.98(d,1H),7.55(s,1H),7.35(d,1H),6.76(s,1H),6.71(s,2H),4.06(s,2H),2.57(s,3H).
[0399] Step C: Preparation of 5-[1-(4-bromo-2,6-dichlorophenyl)-1H-pyrazol-3-yl]-2-methyl-benzonitrile A mixture of 5-[1-(4-amino-2,6-dichlorophenyl)-1H-pyrazol-3-yl]-2-methylbenzonitrile (i.e., the product of Step B) (6.75 g, 18.67 mmol) and n-butyl nitrite (27.38 mL, 233.7 mmol) was heated at reflux overnight, then cooled to room temperature and concentrated under reduced pressure. The resulting material was purified by silica gel column chromatography (elution with 20% ethyl acetate in hexane) to give the title compound (4.3 g). 1 H NMR(CDCl3):δ 8.22(s,1H),7.96(d,1H),7.66(s,2H),7.58(s,1H),7.36(d,1H),6.80(s,1H),2.57(s,3H).
[0400] Step D: Preparation of 5-[1-(2,6-dichloro-4-cyclopropylphenyl)-1H-pyrazol-3-yl]-2-methylbenzonitrile A mixture of 5-[1-(4-bromo-2,6-dichlorophenyl)-1H-pyrazol-3-yl]-2-methylbenzonitrile (i.e., the product of Step C) (2.19 g, 5.37 mmol), cyclopropylboronic acid (0.53 g, 6.31 mmol), sodium carbonate (1.99 g, 18.75 mmol), and bis(triphenylphosphine)palladium(II) dichloride (0.46 g, 0.66 mmol) in 1,2-dimethoxyethane (43.7 mL) and water (10.03 mL) was heated at 85 °C overnight. The reaction mixture was cooled to room temperature and partitioned between water and ethyl acetate. The organic layer was separated, dried over magnesium sulfate, filtered, and concentrated under reduced pressure. The resulting material was purified by silica gel column chromatography (eluting with a gradient of 0 to 10% ethyl acetate in hexanes) to give the title compound (0.90 g). 1H NMR(CDCl3):δ 8.13(s,1H),7.97(d,1H),7.55(s,1H),7.34(d,1H),7.15(s,2H),6.78(s, 1H),2.57(s,3H),1.98-1.90(m,1H),1.14-1.08(m,2H),0.81-0.75(m,2H).
[0401] Step E: Preparation of 5-[1-(2,6-dichloro-4-cyclopropylphenyl)-1H-pyrazol-3-yl]-2-methylbenzenemethanamine hydrochloride To a mixture of 5-[1-(2,6-dichloro-4-cyclopropylphenyl)-1H-pyrazol-3-yl]-2-methyl-benzonitrile (i.e., the product of Step D) (0.88 g, 2.39 mmol) in dichloromethane (5 mL), tris(2,3,4,5,6-pentafluorophenyl)borane (0.01 g, 0.07 mmol) was added, followed by diethylsilane (0.53 g, 5.97 mmol). The reaction mixture was stirred overnight at room temperature, cooled to approximately 0-5 °C, and then hydrochloric acid (4 N solution in dioxane, 2.02 mL) was added dropwise. The resulting precipitate was collected by filtration and air-dried to give the title compound as a solid (0.82 g). 1 H NMR(CDCl3):δ 8.30(br s,3H),8.03(s,1H),7.95(s,1H),7.77(d,1H),7.43(s,2H),7.32(d,1H),6.97(s,1H) ,3.57(s,2H),2.36(s,3H),2.13-2.05(m,1H),1.14-1.05(m,2H),0.91-0.85(m,2H).
[0402] Step F: Preparation of methyl N-[[5-[1-(2,6-dichloro-4-cyclopropylphenyl)-1H-pyrazol-3-yl]-2-methylphenyl]methyl]carbamate To a mixture of 5-[1-(2,6-dichloro-4-cyclopropylphenyl)-1H-pyrazol-3-yl]-2-methylbenzenemethanamine hydrochloride (i.e., the product of Step E) (0.82 g, 2.01 mmol) and potassium carbonate (0.83 g, 6.02 mmol) in acetonitrile (10 mL) at approximately 0-5 °C, methyl chloroformate (0.21 g, 2.21 mmol) was added. The reaction mixture was stirred overnight at room temperature and concentrated under reduced pressure. The resulting material was purified by silica gel column chromatography (eluting with a gradient of 0-100% ethyl acetate in hexane) to afford the title compound, a compound of this invention, as a solid (0.87 g). 1 H NMR(CDCl3):δ 7.78(s,1H),7.70(d,1H),7.63(s,1H),7.22(d,1H),7.15(s,2H),6.76(s,1H),4.82(br s,1H),4.41(br s,2H),3.70(s,3H),2.37(s,3H),1.95-1.88(m,1H),1.12-1.08(m,2H),0.80-0.72(m,2H). LCMS: m / z 430 [M+H] +
[0403] Example 18 Preparation of methyl N-[[5-[2-(2,6-difluoro-4-nitrophenyl)-2H-1,2,3-triazol-4-yl]-2-methylphenyl]methyl]carbamate (Compound 118) and methyl N-[[5-[1-(2,6-difluoro-4-nitrophenyl)-1H-1,2,3-triazol-4-yl]-2-methylphenyl]methyl]carbamate (Compound 132) Step A: Preparation of 2-methyl-5-[2-(trimethylsilyl)ethynyl]benzonitrile To a mixture of 2-amino-5-bromobenzonitrile (50 g, 255 mmol) and ethynyltrimethylsilane (181 mL, 1275 mmol) in tetrahydrofuran (600 mL) was added bis(triphenylphosphine)palladium(II) dichloride (26 g, 38 mmol), copper(I) iodide (14.5 g, 76.5 mmol), triphenylphosphine (20 g, 76.5 mmol), and triethylamine (600 mL). The reaction mixture was stirred at room temperature for 24 hours and concentrated under reduced pressure. The resulting material was purified by silica gel column chromatography (eluting with 5% ethyl acetate in petroleum ether) to give the title compound as a solid (45 g). 1 H NMR(CDCl3): δ 7.68(d,1H),7.63(dd,1H),7.24(s,1H),2.53(s,3H),0.24(s,9H).
[0404] Step B: Preparation of 5-ethynyl-2-methylbenzonitrile To a mixture of 2-methyl-5-[2-(trimethylsilyl)ethynyl]benzonitrile (i.e., the product of Step A) (40 g, 187.7 mmol) in methanol (800 mL) was added potassium hydroxide (67 mL, 1% in methanol). The reaction mixture was stirred at room temperature for 16 hours and then distilled to remove the methanol. The resulting mixture was diluted with water (200 mL) and extracted with ethyl acetate. The combined organic extracts were washed with saturated sodium chloride solution, dried over sodium sulfate, filtered, and concentrated under reduced pressure. The resulting material was purified by silica gel column chromatography (eluting with 12% ethyl acetate in petroleum ether) to give the title compound as a solid (15 g). 1 H NMR(CDCl3): δ 7.70(d,1H),7.57(dd,1H),7.28(d,1H),3.12(s,1H),2.55(s,3H).
[0405] Step C: Preparation of 5-ethynyl-2-methylbenzenemethanamine hydrochloride To a mixture of diphenylsilane (81 mL, 443 mmol) in chloroform (250 mL) was added tris(2,3,4,5,6-pentafluorophenyl)borane (2.7 g, 5.3 mmol), followed by a solution of 5-ethynyl-2-methylbenzonitrile (i.e., the product of Step B) (25 g, 177.3 mmol) in chloroform. The reaction mixture was stirred at room temperature for 16 hours and concentrated under reduced pressure. Hydrochloric acid (2 N solution in diethyl ether) was added to the resulting material, and the mixture was stirred for 1 hour. The resulting solid precipitate was collected by filtration and dried to provide the title compound as a solid (30 g). 1 H NMR (DMSO-d6): δ 8.26(br s,3H),7.53(s,1H),7.37-7.39(m,1H),7.27-7.25(m,1H),4.19(s,1H),4.01(s,2H),2.35(s,3H).
[0406] Step D: Preparation of methyl [(5-ethynyl-2-methylphenyl)methyl]carbamate To a mixture of 5-ethynyl-2-methylbenzenemethanamine hydrochloride (i.e., the product of Step C) (30 g, 165.7 mmol) and potassium carbonate (68.5 g, 497 mmol) in acetonitrile (330 mL) at 0° C., methyl chloroformate (23.3 g, 248.6 mmol) was added dropwise over 20 minutes. The reaction mixture was stirred at room temperature for 16 hours, then diluted with water (200 mL) and extracted with ethyl acetate. The combined organic extracts were washed with saturated sodium chloride solution, dried over sodium sulfate, filtered, and concentrated under reduced pressure. The resulting material was purified by column chromatography (eluting with 30% ethyl acetate in petroleum ether) to give the title compound as a solid (25 g). 1 H NMR(CDCl3): δ 7.38(br s,1H),7.33-7.31(m,1H),7.13-7.11(m,1H),4.83(brs,1H)4.34(d,2H),3.71(s,3H),3.04(s,1H),2.32(s,3H).
[0407] Step E: Preparation of methyl N-[[5-(1H-1,2,3-triazol-4-yl)-2-methylphenyl]methyl]carbamate To a mixture of methyl [(5-ethynyl-2-methylphenyl)methyl]carbamate (i.e., the product of Step D) (30 g, 165.7 mmol) in N,N-dimethylformamide (117 mL) was added methanol (12 mL), trimethylsilyl azide (11.7 mL, 88.6 mmol), and copper(I) iodide (0.56 g, 2.9 mmol). The reaction mixture was heated at 100° C. for 16 hours, then diluted with saturated ammonium chloride solution and extracted with ethyl acetate. The combined organic extracts were washed with saturated sodium chloride solution, dried over sodium sulfate, filtered, and concentrated under reduced pressure. The resulting material was purified by silica gel column chromatography (eluting with 20% ethyl acetate in petroleum ether) to give the title compound as a solid (4 g). 1 H NMR(CDCl3):δ 11.8(br s,1H),7.94(s,1H),7.71(s,1H),7.64-7.61(m,1H),7.24(s,1H),4.93(br s,1H),4.43(d,2H),3.71(s,3H),2.37(s,3H).
[0408] Step F: Preparation of methyl N-[[5-[2-(2,6-difluoro-4-nitrophenyl)-2H-1,2,3-triazol-4-yl]-2-methylphenyl]methyl]carbamate (Compound 118) and methyl N-[[5-[1-(2,6-difluoro-4-nitrophenyl)-1H-1,2,3-triazol-4-yl]-2-methylphenyl]-methyl]carbamate (Compound 132) To a mixture of methyl N-[[5-(1H-1,2,3-triazol-4-yl)-2-methylphenyl]methyl]carbamate (i.e., the product of Step E) (4 g, 16.2 mmol) in dimethyl sulfoxide (40 mL) was added potassium carbonate (6.7 g, 48.6 mmol), followed by 1,2,3-trifluoro-5-nitrobenzene (3.1 g, 17.8 mmol). The reaction mixture was stirred at room temperature for 16 hours, then diluted with water (30 mL) and extracted with ethyl acetate. The combined organic extracts were washed with saturated sodium chloride solution, dried over sodium sulfate, filtered, and concentrated under reduced pressure. The resulting material was purified by silica gel column chromatography (elution with 20% ethyl acetate in petroleum ether) to give methyl N-[[5-[2-(2,6-difluoro-4-nitrophenyl)-2H-1,2,3-triazol-4-yl]-2-methylphenyl]methyl]carbamate (compound 118), a compound of the present invention, as a solid (2 g). 1 H NMR(DMSO-d6):δ 8.77(s,1H),8.45(dd,2H),7.80(s,1H),7.76-7.74(m,1H),7.69-7.66(m,1H),7.32(d,1H),4.24(d,2H),3.55(s,3H),2.33(s,3H). LCMS: m / z: 404 [M+H] + .
[0409] A solid containing a mixture of methyl N-[[5-[2-(2,6-difluoro-4-nitrophenyl)-2H-1,2,3-triazol-4-yl]-2-methylphenyl]methyl]carbamate (Compound 118) and methyl N-[[5-[1-(2,6-difluoro-4-nitrophenyl)-1H-1,2,3-triazol-4-yl]-2-methylphenyl]methyl]carbamate (Compound 132) was also obtained. Further purification of the solid by silica gel chromatography afforded methyl N-[[5-[1-(2,6-difluoro-4-nitrophenyl)-1H-1,2,300-triazol-4-yl]-2-methylphenyl]methyl]carbamate (Compound 132), a compound of the present invention, as a solid (800 mg). 1 H NMR (DMSO-d6): δ 9.08(s,1H),8.50(d,2H),7.83-7.82(m,2H),7.71-7.67(m,2H),7.29(d,1H),4.24(d,2H),3.57(s,3H),2.32(s,3H). LCMS: m / z: 404 [M+H] + .
[0410] Example 19 Preparation of methyl N-[[5-[2-(4-amino-2,6-difluorophenyl)-2H-1,2,3-triazol-4-yl]-2-methylphenyl]methyl]carbamate (Compound 115) To a mixture of methyl N-[[5-[2-(2,6-difluoro-4-nitrophenyl)-2H-1,2,3-triazol-4-yl]-2-methylphenyl]methyl]carbamate (i.e., the product of Example 18, Step F, compound 118) (2 g, 4.9 mmol) in ethanol (18 mL) and water (2 mL) was added iron powder (2.7 g, 49.6 mmol) and ammonium chloride (0.16 g, 2.9 mmol). The reaction mixture was heated at reflux for 1.5 hours, stirred at room temperature for 16 hours, and then filtered through a pad of Celite® (diatomaceous filter aid) and rinsed with ethyl acetate (30 mL). The filtrate was diluted with water and extracted with ethyl acetate. The combined organics were washed with saturated sodium chloride solution, dried over sodium sulfate, filtered, and concentrated under reduced pressure. The resulting material was purified by silica gel column chromatography (elution with 30% ethyl acetate in petroleum ether) to give the title compound, a compound of this invention, as a solid (1.6 g). 1 H NMR(CDCl3):δ 8.08(s,1H),7.74-7.73(m,1H),7.67-7.65(m,1H),7.24(s,1H),6.33-6.30(m,2H),4.89(br s,1H),4.42(d,2H),4.13(s,2H),3.70(s,3H),2.37(s,3H LCMS: m / z: 374 [M+H] + .
[0411] The following compounds were prepared similarly to the method of Example 19: Methyl N-[[5-[1-(4-amino-2,6-difluorophenyl)-1H-1,2,3-triazol-4-yl]-2-methylphenyl]methyl]carbamate (Compound 131). 1 H NMR(CDCl3):δ 7.91(s,1H),7.81(s,1H),7.70(d,1H),7.25(s,1H),6.35(d,2H),4.93(brs,1H),4.45(s,2H),4.19(brs,2H),3.71(s,3H),2.39(s,3H).
[0412] Example 20 Preparation of methyl N-[[5-[2-(4-chloro-2,6-difluorophenyl)-2H-1,2,3-triazol-4-yl]-2-methylphenyl]methyl]carbamate (Compound 117) To a mixture of methyl N-[[5-[2-(4-amino-2,6-difluorophenyl)-2H-1,2,3-triazol-4-yl]-2-methylphenyl]methyl]carbamate (i.e., the product of Example 19) (1 g, 2.68 mmol) in carbon tetrachloride (125 mL) was added n-butyl nitrite (3.3 g, 32.17 mmol). The reaction mixture was heated at reflux for 16 hours and then filtered through a pad of Celite® (diatomaceous filter aid) and rinsed with ethyl acetate (20 mL). The filtrate was diluted with water (60 mL) and extracted with ethyl acetate. The combined organics were washed with saturated sodium chloride solution, dried over sodium sulfate, filtered, and concentrated under reduced pressure. The resulting material was purified by silica gel chromatography (elution with 30% ethyl acetate in petroleum ether) to give the title compound, a compound of the present invention, as a solid (0.12 g). 1 H NMR(CDCl3):δ 8.13(s,1H),7.74-7.73(m,1H),7.66(dd,1H),7.28(s,1H),7.19-7.15(m,2H),4.90(brs,1H),4.43(d,2H),4.71(s,3H),2.38(s,3H). LCMS: m / z: 393 [M+H] + .
[0413] The following compounds were prepared similarly to the method of Example 20: Methyl N-[[5-[1-(4-chloro-2,6-difluorophenyl)-1H-1,2,3-triazol-4-yl]-2-methylphenyl]methyl]carbamate (Compound 121). 1 H NMR (CDCl3): δ 7.98(s,1H),7.79(brs,1H),7.70(d,1H),7.27-7.20(m,3H),4.91(br s,1H),4.44-4.43(m,2H),3.71(s,3H),2.38(s,3H). LCMS: m / z: 393 [M+H] + .
[0414] The procedures described herein, together with methods known in the art, can be used to prepare the following compounds in Tables 1A-33D. The following abbreviations are used in the tables, whereby: n means normal, i means iso, c means cyclo, Me means methyl, Et means ethyl, Pr means propyl, MeO means methoxy, EOt means ethoxy, MeS means methylthio, EtS means ethylthio, -CN means cyano, and -NO2 means nitro. [ka]
[0415] [Table 1]
[0416] This disclosure also includes the column headings of Table 1A (i.e., "R 1 and R 2 Included are Tables 2A through 33A, each of which is structured identically to Table 1A above, except that the column headings "R1 and R 2 is Cl' and R 6 is as defined in Table 1A above.
[0417] [Table 2]
[0418] Table 1B Table 1B is identical to Table 1A, except that the chemical structures in Table 1A are replaced with the following structures: [ka]
[0419] Tables 2B~33B Tables 2B to 33B are structured in the same manner as Tables 2A to 33A.
[0420] Table 1C Table 1C is identical to Table 1A, except that the chemical structures in Table 1A are replaced with the following structures: [ka]
[0421] Tables 2C~33C Tables 2C to 33C are structured in the same manner as Tables 2A to 33A.
[0422] Table 1D Table 1D is identical to Table 1A, except that the chemical structures in Table 1A are replaced with the following structures: [ka]
[0423] Tables 2D~33D Tables 2D to 33D are constructed in the same manner as Tables 2A to 33A.
[0424] Compounding / Usefulness The compounds of formula 1 of the present invention (including their N-oxides and salts), or mixtures (i.e., compositions) comprising the compounds with at least one additional fungicidal compound as described in the Summary of the Invention, will generally be used as the fungicidal active ingredient in compositions, i.e., formulations, with at least one additional ingredient selected from the group consisting of surfactants, solid diluents, and liquid diluents, which acts as a carrier. The formulation or composition ingredients are selected to be consistent with the physical properties of the active ingredient, the mode of application, and environmental factors such as soil type, moisture, and temperature.
[0425] Mixtures of component (a) (i.e., at least one compound of Formula 1, its N-oxide, or salt) with component (b) (e.g., selected from (b1)-(b54) and salts thereof, as described above) and / or one or more other biologically active compounds or agents (i.e., insecticides, other fungicides, nematicides, acaricides, herbicides, and other biological agents) can be formulated in a variety of ways, for example: (i) component (a), component (b) and / or one or more other biologically active compounds or agents may be formulated separately and applied separately or may be applied simultaneously in appropriate weight ratios, e.g., as a tank mix; or (ii) Component (a), component (b) and / or one or more other biologically active compounds or agents may be formulated together in a suitable weight ratio.
[0426] Useful formulations include liquid and solid compositions. Liquid compositions include solutions (including emulsifiable concentrates), suspensions, emulsions (including microemulsions, oil-in-water emulsions, flowable concentrates, and / or suspoemulsions), which can optionally be thickened to form gels. Common types of aqueous liquid compositions are soluble concentrates, suspension concentrates, capsule suspensions, concentrated emulsions, microemulsions, oil-in-water emulsions, flowable concentrates, and suspoemulsions. Common types of non-aqueous liquid compositions are emulsifiable concentrates, microemulsifiable concentrates, dispersible concentrates, and oil dispersions.
[0427] Common types of solid compositions are dusts, powders, granules, pellets, pellets, pastilles, tablets, filled films (including seed coatings), etc., which can be water-dispersible ("wettable") or water-soluble. Films and coatings formed from film-forming solutions or flowable suspensions are particularly useful for seed treatments. Active ingredients can be (micro)encapsulated and further formed into suspensions or solid formulations; alternatively, whole formulations of active ingredients can be encapsulated (or "overcoated"). Encapsulation can control or slow the release of the active ingredient. Emulsifiable granules combine the advantages of both emulsifiable concentrate and dry granular formulations. High-strength compositions are primarily used as intermediates for further formulations.
[0428] Of note are composition embodiments in which granules of a solid composition comprising a compound of Formula 1 (or an N-oxide or salt thereof) are mixed with granules of a solid composition comprising component (b). These mixtures can be further mixed with granules comprising additional agricultural protection substances. Alternatively, two or more agricultural protection substances (e.g., component (a) (Formula 1) compound, component (b) compound, agricultural protection substances other than component (a) or (b)) can be combined into one set of solid composition granules, which are then mixed with one or more sets of granules of a solid composition comprising one or more additional agricultural protection substances. These granule mixtures can follow the general granule mixture teachings of WO 94 / 24861 or, more preferably, the homogeneous granule mixture teachings of U.S. Pat. No. 6,022,552.
[0429] Sprayable formulations are typically diluted in a suitable vehicle before spraying. Such liquid and solid formulations are formulated and readily diluted in a spray vehicle, usually water, but sometimes another suitable vehicle such as an aromatic or paraffinic hydrocarbon or vegetable oil. Application rates can range from about one to several thousand liters per hectare, but are more typically in the range of about 10 to several hundred liters per hectare. Sprayable formulations can be tank-mixed with water or another suitable vehicle for foliar treatment by aerial or ground application, or for application to the plant's growing medium. Liquid and dry formulations can be metered directly into drip irrigation systems or into furrows during planting. Liquid and solid formulations can be applied onto seeds of crops and other desirable vegetation as pre-plant seed treatments to protect developing roots and other underground plant parts and / or foliage by systemic absorption.
[0430] The formulations will typically contain effective amounts of the active ingredient, diluent and surfactant within the approximate ranges set forth below, which add up to 100 weight percent.
[0431] [Table 3]
[0432] Solid diluents include, for example, clays such as bentonite, montmorillonite, attapulgite, and kaolin, gypsum, cellulose, titanium dioxide, zinc oxide, starch, dextrin, sugars (e.g., lactose, saccharose), silica, talc, mica, diatomaceous earth, urea, calcium carbonate, sodium carbonate and bicarbonate, and sodium sulfate. Typical solid diluents are described in Watkins et al., Handbook of Insecticide Dust Diluents and Carriers, 2nd Ed., Dorland Books, Caldwell, New Jersey.
[0433] Liquid diluents include, for example, water, N,N-dimethylalkanamides (e.g., N,N-dimethylformamide), limonene, dimethyl sulfoxide, N-alkylpyrrolidones (e.g., N-methylpyrrolidone), alkyl phosphates (e.g., triethyl phosphate), ethylene glycol, triethylene glycol, propylene glycol, dipropylene glycol, polypropylene glycol, propylene carbonate, butylene carbonate, paraffins (e.g., white mineral oil, normal paraffin, isoparaffin), alkylbenzenes, alkylnaphthalenes, glycerin, glycerol triacetate, sorbitol, aromatic hydrocarbons, dearomatized aliphatic compounds, alkylbenzenes, alkylnaphthalenes, cyclohexanone, 2-heptanone, isophorone, and ketones such as 4-hydroxy-4-methyl-2-pentanone, isoamyl alcohol, and the like. Other esters such as acetates such as acetate, hexyl acetate, heptyl acetate, octyl acetate, nonyl acetate, tridecyl acetate, and isobornyl acetate, alkylated lactate esters, dibasic acid esters, alkyl and aryl benzoates, and gamma-butyrolactone, as well as alcohols which may be linear, branched, saturated, or unsaturated, such as methanol, ethanol, n-propanol, isopropyl alcohol, n-butanol, isobutyl alcohol, n-hexanol, 2-ethylhexanol, n-octanol, decanol, isodecyl alcohol, isooctadecanol, cetyl alcohol, lauryl alcohol, tridecyl alcohol, oleyl alcohol, cyclohexanol, tetrahydrofurfuryl alcohol, diacetone alcohol, cresol, and benzyl alcohol. Liquid diluents also include saturated and unsaturated fatty acids (typically C6-C8), such as vegetable seed oils and fruit oils (e.g., olive oil, castor oil, linseed oil, sesame oil, corn (maize) oil, peanut oil, sunflower oil, grapeseed oil, safflower oil, cottonseed oil, soybean oil, rapeseed oil, coconut oil, and palm kernel oil), fats of animal origin (e.g., beef tallow, pork fat, lard, cod liver oil, fish oil), and mixtures thereof. 22) glycerol esters. Liquid diluents also include alkylated (e.g., methylated, ethylated, butylated) fatty acids, which may be obtained by hydrolysis of glycerol esters from plant and animal sources, or which can be purified by distillation. Typical liquid diluents are described in Marsden, Solvents Guide, 2nd Ed., Interscience, New York, 1950.
[0434] The solid and liquid compositions of the present invention often contain one or more surfactants. When added to a liquid, surfactants (also known as "surface-active agents") generally modify, and in most cases lower, the surface tension of the liquid. Depending on the nature of the hydrophilic and lipophilic groups in the surfactant molecule, surfactants can be useful as wetting agents, dispersing agents, emulsifying agents, or antifoaming agents.
[0435] Surfactants can be classified as nonionic, anionic, or cationic surfactants. Nonionic surfactants useful in the present compositions include alcohol alkoxylates, such as those based on natural and synthetic alcohols (which may be branched or linear) and those made from alcohols and ethylene oxide, propylene oxide, butylene oxide, or mixtures thereof; amine ethoxylates, alkanolamides, and ethoxylated alkanolamides; alkoxylated triglycerides, such as ethoxylated soybean oil, castor oil, and rapeseed oil; alkylphenol alkoxylates, such as octylphenol ethoxylate, nonylphenol ethoxylate, dinonylphenol ethoxylate, and dodecylphenol ethoxylate (prepared from phenols and ethylene oxide, propylene oxide, butylene oxide, or mixtures thereof); block polymers prepared from ethylene oxide or propylene oxide and reverse block polymers in which the end blocks are prepared from propylene oxide; ethoxylated fatty acids; ethoxylated fatty acid esters and oils; ethoxylated methyl esters; ethoxylated triglycerides. These surfactants include, but are not limited to, listyrylphenol (e.g., those made from ethylene oxide, propylene oxide, butylene oxide, or mixtures thereof); fatty acid esters, glycerol esters, lanolin-based derivatives, polyethoxylate esters such as polyethoxylated sorbitan fatty acid esters, polyethoxylated sorbitol fatty acid esters, and polyethoxylated glycerol fatty acid esters; other sorbitan derivatives such as sorbitan esters; polymeric surfactants such as random copolymers, block copolymers, alkyd PEG (polyethylene glycol) resins, graft or comb polymers, and star polymers; polyethylene glycol (PEG); polyethylene glycol fatty acid esters; silicone-based surfactants; and sugar derivatives such as sucrose esters, alkyl polyglycosides; alkyl polysaccharides; and glucamides such as a mixture of octyl-N-methylglucamide and decyl-N-methylglucamide (e.g., a product available from Clariant under the name Synergen® GA).
[0436] Useful anionic surfactants include alkylaryl sulfonic acids and their salts; carboxylated alcohol or alkylphenol ethoxylates; diphenyl sulfonate derivatives; lignin and lignin derivatives such as lignosulfonates; maleic or succinic acid or their anhydrides; olefin sulfonates; phosphate esters such as phosphate esters of alcohol alkoxylates, phosphate esters of alkylphenol alkoxylates, and phosphate esters of styrylphenol ethoxylates; protein-based surfactants; sarcosine derivatives; styrylphenol ether sulfates; sulfates of alcohols; sulfates of ethoxylated alcohols; sulfonates of amines and amides such as N,N-alkyl taurates; sulfonates of benzene, cumene, toluene, xylene, and dodecyl and tridecyl benzene; sulfonates of condensed naphthalenes; sulfonates of naphthalene and alkyl naphthalenes; sulfonates of fractionated petroleum; sulfosuccinates; and sulfosuccinates and their derivatives such as dialkyl sulfosuccinate salts.
[0437] Useful cationic surfactants include, but are not limited to, amides and ethoxylated amides; amines such as N-alkylpropanediamines, tripropylenetriamines, and dipropylenetetraamines, and ethoxylated amines, ethoxylated diamines, and propoxylated amines (made from amines and ethylene oxide, propylene oxide, butylene oxide, or mixtures thereof); amine salts and diamine salts such as amine acetates; quaternary ammonium salts such as quaternary salts, ethoxylated quaternary salts, and diquaternized salts; and amine oxides such as alkyldimethylamine oxides and bis-(2-hydroxyethyl)-alkylamine oxides.
[0438] Mixtures of nonionic and anionic surfactants or mixtures of nonionic and cationic surfactants are also useful in the present compositions. Nonionic, anionic, and cationic surfactants and their recommended uses are disclosed in various published references, including McCutcheon's Emulsifiers and Detergents, annual American and International Editions, published by McCutcheon's Division, The Manufacturing Confectioner Publishing Co.; Sisely and Wood, Encyclopedia of Surface Active Agents, Chemical Publ. Co., Inc., New York, 1964; and A.S. Davidson and B. Milwidsky, Synthetic Detergents, Seventh Edition, John Wiley and Sons, New York, 1987.
[0439] The compositions of the present invention may also contain formulation aids and additives known to those skilled in the art as formulation aids (some of which may also function as solid diluents, liquid diluents, or surfactants). Such formulation aids and additives may control pH (buffers), foaming during processing (antifoaming agents such as polyorganosiloxanes), active ingredient settling (suspending agents), viscosity (thixotropic thickeners), microbial growth in the container (antimicrobial agents), product freezing (antifreeze agents), color (dye / pigment dispersions), leaching (film formers or stickers), evaporation (evaporation inhibitors), and other formulation attributes. Film formers include, for example, polyvinyl acetate, polyvinyl acetate copolymers, polyvinylpyrrolidone-vinyl acetate copolymers, polyvinyl alcohol, polyvinyl alcohol copolymers, and waxes. Examples of formulation aids and additives include those listed in McCutcheon's Volume 2: Functional Materials, annual International and North American editions, published by McCutcheon's Division, The Manufacturing Confectioner Publishing Co.; and PCT Publication No. WO 03 / 024222.
[0440] The compound of Formula 1 and any other active ingredients are typically incorporated into the present compositions by dissolving the active ingredients in a solvent or by grinding in a liquid or dry diluent. Solutions, such as emulsifiable concentrates, can be prepared by simply mixing the ingredients. If the solvent of a liquid composition intended for use as an emulsifiable concentrate is water-miscible, an emulsifier is typically added to emulsify the active-containing solvent upon dilution with water. Active ingredient slurries with particle sizes of 2,000 μm or less can be wet-milled using a media mill to obtain particles with an average diameter below 3 μm. Aqueous slurries can be made into finished suspension concentrates (see, e.g., U.S. Pat. No. 3,060,084) or further processed by spray drying to form water-dispersible granules. Dry formulations usually require dry milling, which produces an average particle size in the 2-10 μm range. Fines and powders can be prepared by blending and grinding, usually (such as with a hammer mill or fluid energy mill). Granules and pellets can be prepared by spraying the active material onto a preformed granular carrier or by agglomeration techniques. See Browning, "Agglomeration," Chemical Engineering, December 4, 1967, pp. 147-48; Perry's Chemical Engineer's Handbook, 4th Ed., McGraw-Hill, New York, 1963, pp. 8-57 and subsequent publications; and WO 91 / 13546. Pellets can be prepared as described in U.S. Pat. No. 4,172,714. Water-dispersible and water-soluble granules can be prepared as taught in U.S. Pat. No. 4,144,050, U.S. Pat. No. 3,920,442, and German Patent No. 3,246,493. Tablets can be prepared as taught in US Pat. Nos. 5,180,587, 5,232,701, and 5,208,030.Films can be prepared as taught in British Patent No. 2,095,558 and US Pat. No. 3,299,566.
[0441] One embodiment of the present invention relates to a method for controlling fungal pathogens, comprising diluting a fungicidal composition of the present invention (a compound of Formula 1 formulated with a surfactant, a solid diluent, and a liquid diluent, or a formulated mixture of a compound of Formula 1 and at least one other fungicide) with water, and optionally adding an adjuvant to form a diluted composition, and contacting the fungal pathogen or its environment with an effective amount of the diluted composition.
[0442] Although a spray composition formed by diluting a sufficient concentration of the fungicidal composition with water may provide sufficient efficacy for the control of fungal pathogens, separately formulated adjuvant products may also be added to the spray tank mixture. These additional adjuvants, commonly known as "spray adjuvants" or "tank-mix adjuvants," include any substance mixed in the spray tank to improve pesticide performance or modify the physical properties of the spray mixture. Adjuvants may be anionic or nonionic surfactants, emulsifiers, petroleum-based crop oils, crop-derived seed oils, acidifiers, buffers, thickeners, or antifoaming agents. Adjuvants are used to enhance efficacy (e.g., bioavailability, adhesion, penetration, uniformity of coverage, and durability of protection) or to minimize or eliminate spray application problems associated with incompatibility, foaming, drift, evaporation, vaporization, and decomposition. To achieve optimal performance, adjuvants are selected with respect to the characteristics of the active ingredient, formulation, and target (e.g., crop, pest).
[0443] The amount of adjuvant added to the spray mixture generally ranges from about 0.1 to 2.5% by volume. The application rate of adjuvant added to the spray mixture is typically about 1 to 5 L per hectare. Representative examples of spray adjuvants include: Adigor® (Syngenta), a 47% methylated rapeseed oil in a liquid hydrocarbon; Silwet® (Helena Chemical Company), a polyalkylene oxide-modified heptamethyltrisiloxane; and Assist® (BASF), a 17% surfactant blend in 83% paraffin-based mineral oil.
[0444] One method of seed treatment involves spraying or dusting the seeds with a compound of the present invention (i.e., the compound as a formulated composition) before sowing. Compositions formulated for seed treatment generally contain a film former or adhesive. Thus, a seed coating composition of the present invention typically contains a biologically effective amount of a compound of Formula 1 and a film former or adhesive. Seeds can be coated by spraying a flowable suspension concentrate directly into a rolling bed of seeds and then allowing the seeds to dry. Alternatively, other types of formulations (e.g., wet powders, solutions, suspoemulsions, emulsifiable concentrates, and emulsions in water) can be sprayed onto the seeds. This process is particularly useful when applying a film coating onto the seeds. A variety of coating machines and processes are available to those skilled in the art. Suitable processes include those listed in P. Kosters et al., Seed Treatment: Progress and Prospects, 1994, BCPC Monograph No. 57, and the references cited therein.
[0445] For further information regarding the technical field of formulations, see T. Swoods, "The Formulator's Toolbox - Product Forms for Modern Agriculture" in Pesticide Chemistry and Bioscience, The Food-Environment Challenge, T. Brooks and T. R. Roberts, Eds., Proceedings of the 9th International Congress on Pesticide Chemistry, The Royal Society of Chemistry, Cambridge, 1999, pp. 120-133. See also U.S. Pat. No. 3,235,361, column 6, row 16-7, row 19, and Examples 10-41; U.S. Pat. No. 3,309,192, column 5, row 43-7, row 62, and Examples 8, 12, 15, 39, 41, 52, 53, 58, 132, 138-140, 162-164, 166, 167, and 169-182; U.S. Pat. No. 2,891,855, column 3, row 66-5, row 17, and Examples 1-4; Klingman, Weed Control as a Science, John Wiley and Sons, Inc., New York, 1961, pp. 81-96; Hance et al., Weed Control Handbook, 8th Ed., Blackwell Scientific Publications, Oxford, 1989; and Developments in formulation technology, PJB Publications, Richmond, UK, 2000.
[0446] In the following examples, all percentages are by weight, and all formulations are prepared by conventional methods. The active ingredients refer to the compounds in Tables A-F disclosed herein. Without further elaboration, it is believed that one skilled in the art can, using the preceding description, utilize the present invention to its fullest extent. Accordingly, the following examples are intended to be merely illustrative and are not intended to limit the present disclosure in any way.
[0447] Example A high strength concentrate Compound 3 98.5% Silica aerogel 0.5% Synthetic amorphous fine silica 1.0%
[0448] Example B Wettable powder Compound 4 65.0% Dodecylphenol polyethylene glycol ether 2.0% Sodium lignosulfonate 4.0% Sodium silicoaluminate 6.0% Montmorillonite (calcined) 23.0%
[0449] Example C granules Compound 6 10.0% Attapulgite Granules (Low Volatile Content, 0.71 / 0.30 mm; USS No. 25-50 Sieve) 90.0%
[0450] Example D Extruded pellets Compound 7 25.0% Anhydrous sodium sulfate 10.0% Crude calcium lignosulfonate 5.0% Sodium alkylnaphthalene sulfonate 1.0% Calcium / Magnesium Bentonite 59.0%
[0451] Example E emulsifiable concentrate Compound 11 10.0% Polyoxyethylene sorbitol hexoleate 20.0% C6~C 10 Fatty acid methyl ester 70.0%
[0452] Example F Microemulsion Compound 14 5.0% Polyvinylpyrrolidone-vinyl acetate copolymer 30.0% Alkyl polyglycoside 30.0% Glyceryl monooleate 15.0% Water 20.0%
[0453] Example G seed treatment agents Compound 15 20.00% Polyvinylpyrrolidone-vinyl acetate copolymer 5.00% Montan Acid Wax 5.00% Calcium lignosulfonate 1.00% Polyoxyethylene / Polyoxypropylene Block Copolymer 1.00% Stearyl alcohol (POE 20) 2.00% Polyorganosilane 0.20% Colorant: Red dye 0.05% Water 65.75%
[0454] Example H stick fertilizer Compound 30 2.50% Pyrrolidone-styrene copolymer 4.80% Tristyrylphenyl 16-ethoxylate 2.30% Talc 0.80% Cornstarch 5.00% Time-release fertilizer 36.00% Kaolin 38.00% Water 10.60%
[0455] Example I Suspension concentrate Compound 33 35% Butyl polyoxyethylene / polypropylene block copolymer 4.0% Stearic acid / polyethylene glycol copolymer 1.0% Styrene acrylic polymer 1.0% Xanthan gum 0.1% Propylene glycol 5.0% Silicone-based antifoam agent 0.1% 1,2-benzisothiazolin-3-one 0.1% Water 53.7%
[0456] Example J Emulsion in water Compound 41 10.0% Butyl polyoxyethylene / polypropylene block copolymer 4.0% Stearic acid / polyethylene glycol copolymer 1.0% Styrene acrylic polymer 1.0% Xanthan gum 0.1% Propylene glycol 5.0% Silicone-based antifoam agent 0.1% 1,2-benzisothiazolin-3-one 0.1% Aromatic Petroleum-Based Hydrocarbons 20.0 Water 58.7%
[0457] Example K Oil dispersion Compound 63 25% Polyoxyethylene sorbitol hexaoleate 15% Organically modified bentonite clay 2.5% Fatty acid methyl esters 57.5%
[0458] Example L Suspo Emulsion Compound 64 10.0% Imidacloprid 5.0% Butyl polyoxyethylene / polypropylene block copolymer 4.0% Stearic acid / polyethylene glycol copolymer 1.0% Styrene acrylic polymer 1.0% Xanthan gum 0.1% Propylene glycol 5.0% Silicone-based antifoam agent 0.1% 1,2-benzisothiazolin-3-one 0.1% Aromatic Petroleum-Based Hydrocarbons 20.0% Water 53.7%
[0459] Water-soluble and water-dispersible formulations are typically applied after dilution with water to form an aqueous composition. Aqueous compositions for direct application to plants or parts thereof (e.g., spray tank compositions) typically contain at least about 1 ppm or more (e.g., 1 ppm to 100 ppm) of a compound of the invention.
[0460] Seeds are typically treated at a rate of about 0.001 g (more typically about 0.1 g) to about 10 g per kilogram of seed (i.e., about 0.0001 to 1% by weight of the seed before treatment). Flowable suspensions formulated for seed treatment typically contain about 0.5 to about 70% active ingredient, about 0.5 to about 30% film-forming adhesive, about 0.5 to about 20% dispersant, 0 to about 5% thickener, 0 to 5% pigment and / or dye, 0 to about 2% antifoaming agent, 0 to about 1% preservative, and 0 to about 75% volatile liquid diluent.
[0461] The compositions of the present invention are useful as plant disease control agents. Accordingly, the present invention further includes a method for controlling plant diseases caused by fungal plant pathogens, comprising applying an effective amount of a compound of the present invention or a fungicidal composition containing the compound to a plant or part thereof, or to a plant seed to be protected. The compounds and / or compositions of the present invention provide control of diseases caused by a wide range of fungal plant pathogens in the Ascomycota, Basidiomycota, Zygomycota, and Oomycota phyla. This is effective in controlling a wide range of plant diseases, particularly foliar pathogens of ornamental plants, turf, vegetables, field, cereal, and fruit crops. These pathogens include, but are not limited to, those listed in Table 1-1. In the case of Ascomycota and Basidiomycota, both the sexual / telomorph / telomorph names and the asexual / asexual / deuteromorph names (in parentheses) are listed when known. Synonymous names of pathogens are indicated with an equal sign. For example, the sexual / telomorph / deuteromorph name Phaeosphaeria nodorum is followed by the corresponding asexual / asexual / deuteromorph name Stagnospora nodorum and the synonymous, older name Septoria nodorum.
[0462] [Table 4]
[0463] [Table 5]
[0464] In addition to fungicidal activity, the compositions or combinations also have activity against bacteria such as Erwinia amylovora, Xanthomonas campestris, Pseudomonas syringae, and other related species. By controlling harmful microorganisms, the compositions of the present invention are useful for improving (i.e., increasing) the ratio of beneficial to harmful microorganisms in contact with crop plants or their vegetative propagules (e.g., seeds, corms, bulbs, tubers, cuttings) or the agronomic environment of crop plants or their vegetative propagules.
[0465] The compositions of the present invention are useful for treating whole plants, plant parts, and seeds. Plant and seed varieties and cultivars can be obtained by traditional breeding and propagation methods, or by genetic engineering methods. Genetically modified plants or seeds (transgenic plants or seeds) are those in which a heterologous gene (transgene) has been stably integrated into the genome of the plant or seed. A transgene defined by a specific location in the plant genome is called a transformation or transgenic event.
[0466] Genetically modified plant cultivars that can be treated according to the present invention include those that exhibit tolerance to one or more biotic stresses (pests, such as nematodes, insects, mites, fungi, etc.) or abiotic stresses (drought, low temperatures, soil salinity, etc.), or that contain other desirable traits. Plants can be genetically modified to exhibit traits such as herbicide tolerance, insect resistance, modified oil profile, or drought tolerance.
[0467] Treatment of genetically modified plants and seeds with the compounds of the invention can result in superadditive or enhanced effects, such as reduced application rates, broadened spectrum of activity, increased tolerance to biotic / abiotic stresses, or enhanced storage stability, relative to what would be expected from the merely additive effects of applying the compounds of the invention to genetically modified plants and seeds.
[0468] The compounds and compositions of the present invention are useful in seed treatments to protect seeds from plant diseases. In the context of this disclosure and claims, treating seeds means contacting the seeds with a biologically effective amount of a compound of the present invention (typically formulated as a composition of the present invention). This seed treatment protects the seeds from soil-borne disease pathogens and may also generally protect the roots and other plant parts of the seedlings that grow from the germinating seeds and are in contact with the soil. This plant treatment may also protect leaves through translocation of the compound of the present invention or through the release of another active ingredient within the growing plant. Seed treatments can be applied to all types of seeds (e.g., those on which plants genetically transformed to express specialized traits are grown). Representative examples include those that express proteins toxic to invertebrate pests (e.g., Bacillus thuringiensis toxin) or those that express herbicide resistance (e.g., glyphosate acetyltransferase, which confers tolerance to glyphosate). Seed treatments with the compounds and compositions of the present invention may also increase the vigor of plants growing from the seeds.
[0469] The compounds and compositions of the present invention are particularly useful in the seed treatment of crops, including, but not limited to, maize or corn, soybeans, cotton, grains (e.g., wheat, oats, barley, rye, and rice), potatoes, vegetables, and oilseed rape.
[0470] Furthermore, the compounds and compositions of the present invention are useful for treating postharvest diseases of fruits and vegetables caused by fungi, oomycetes, and bacteria. This infection can occur before, during, and after harvest. For example, infection can occur before harvest and then remain dormant until some point during ripening (e.g., when the host begins tissue changes that allow infection to progress or conditions that favor disease development); similarly, infection can occur from surface wounds caused by mechanical or insect damage. In this regard, the compositions of the present invention can reduce losses (i.e., losses in quantity and quality) due to postharvest diseases that can occur at any time from harvest to consumption. Treatment of postharvest diseases with the compounds of the present invention can allow perishable edible plant parts (e.g., fruits, seeds, leaves, stems, bulbs, tubers) to be stored refrigerated or unrefrigerated after harvest, maintain their edibility, and extend the period without significant or harmful decomposition or contamination by fungi or other microorganisms. Pre- or post-harvest treatment of edible plant parts with the compounds of the invention may also reduce the formation of toxic metabolites of fungi or other microorganisms (eg, mycotoxins such as aflatoxins).
[0471] Control of plant diseases can usually be achieved by applying an effective amount of the compound of the present invention to the part of the plant to be protected, such as the roots, stems, leaves, fruits, seeds, tubers, or bulbs, or to the medium (soil or sand) in which the plant to be protected is growing, either before or after infection. The compound can also be applied to seeds to protect the seeds and the seedlings that grow from the seeds. The compound can also be applied via irrigation water to treat plants. Control of post-harvest pathogens that infect agricultural products before harvest is typically achieved by field application of the compound of the present invention; when infection occurs after harvest, the compound can be applied to the harvested crop as a dip, spray, fumigant, treatment wrap, and box liner.
[0472] The compounds and compositions of the present invention may also be applied using unmanned aerial vehicles (UAVs) to spray the compositions disclosed herein over a cropped area. In some embodiments, the cropped area is a crop-containing area. In some embodiments, the crop is selected from monocotyledonous or dicotyledonous plants. In some embodiments, the crop is selected from rice, corn, barley, soybean, wheat, vegetables, tobacco, tea plants, fruit trees, and sugarcane. In some embodiments, the compositions disclosed herein are formulated for spraying at ultra-low volumes. Products applied by drones may use water or oil as the spray carrier. Typical spray volumes (including product) used for drone application worldwide are 5.0 liters / ha to 100 liters / ha (approximately 0.5 to 10 gpa). This includes the ultra-low spray volume (ULV) to low spray volume (LV) range. Although not common, there may be situations where spray volumes as low as 1.0 liter / ha (0.1 gpa) may be used.
[0473] Suitable application rates (e.g., fungicidally effective amounts) of component (a) (i.e., at least one compound selected from the compounds of Formula 1, their N-oxides, and salts) and suitable application rates (e.g., biologically effective amounts, fungicidally effective amounts, or insecticidally effective amounts) for mixtures and compositions containing component (a) according to the present invention may be affected by factors such as the plant disease to be controlled, the plant species to be protected, the population structure of the pathogen to be controlled, ambient humidity, and temperature, and should be determined under actual use conditions. Those skilled in the art can easily determine, through simple experimentation, the fungicidally effective amount required for the desired level of plant disease control. Foliage can usually be protected when treated at a rate of less than about 1 g / ha to about 5,000 g / ha of active agent. Seeds and seedlings can usually be protected when treated at a rate of about 0.001 g (more typically about 0.1 g) to about 10 g per kilogram of seed. Those skilled in the art can easily determine, by simple experimentation, the application rates of mixtures and compositions comprising the particular combination of component (a) and active ingredients according to the present invention required to provide the desired spectrum of plant protection and control of plant diseases and, optionally, other plant pests.
[0474] The compounds and compositions of the present invention may also be useful for enhancing crop vigor. The method involves contacting a crop (e.g., foliage, flowers, fruits, or roots) or a seed from which the crop grows with a composition containing a compound of Formula 1 in an amount sufficient to achieve the desired plant vigor effect (i.e., a biologically effective amount). Typically, the compound of Formula 1 is applied in a formulated composition. While the compound of Formula 1 is often applied directly to the crop or its seeds, it can also be applied to the locus of the crop, i.e., to the crop's environment, particularly to a portion of the environment sufficiently close to the crop to allow the compound of Formula 1 to migrate thereto. A suitable locus for the method most commonly includes the growth medium (i.e., the medium that provides nutrients to the plant), typically the soil in which the plant grows. Treating a crop to enhance crop vigor therefore involves contacting the crop, the seed from which the crop grows, or the locus of the crop with a biologically effective amount of a compound of Formula 1.
[0475] Increased crop vigor can result in one or more of the following observed effects: (a) optimal cropping system as evidenced by superior seed germination, crop emergence, and crop stand; (b) increased crop growth as evidenced by fast and robust leaf growth (e.g., as measured by leaf area index), plant height, number of shoots (e.g., for rice), root mass, and total dry weight of the plant mass of the crop; (c) improved crop yield as evidenced by time to flowering, duration of flowering, number of flowers, total biomass accumulation (i.e., yield), and / or marketability of the fruit or grain quality of the produce (i.e., harvest quality); (d) increased ability of the crop to withstand or prevent plant disease infection and arthropod, nematode, or mollusk pest infestation; and (e) increased ability of the crop to withstand environmental stresses, such as extreme heat, suboptimal moisture, or exposure to phytotoxic chemicals.
[0476] The compounds and compositions of the present invention can increase the vigor of treated plants compared to untreated plants by preventing and / or curing plant diseases caused by fungal plant pathogens in the plant's environment. In the absence of such control of plant diseases, the disease reduces plant vigor by consuming plant tissues or sap or by transmitting plant pathogens such as viruses. Even in the absence of fungal plant pathogens, the compounds of the present invention can increase plant vigor by modifying plant metabolism. Generally, the vigor of crop plants will be most significantly increased by treating the plants with the compounds of the present invention when the plants are grown in a non-ideal environment (i.e., an environment that contains one or more aspects unfavorable to the plant achieving its maximum genetic potential, which would be indicative of an ideal environment).
[0477] Of note is a method for increasing the vigor of a crop plant when the plant is grown in an environment that includes a plant disease caused by a fungal plant pathogen. Also of note is a method for increasing the vigor of a crop plant when the plant is grown in an environment that does not include a plant disease caused by a fungal plant pathogen. Also of note is a method for increasing the vigor of a crop plant when the plant is grown in an environment that is less watery than ideal for supporting the growth of the crop plant.
[0478] The compounds and compositions of the present invention can also be mixed with one or more biologically active compounds or agents, including fungicides, insecticides, nematicides, bactericides, acaricides, herbicides, herbicide antidotes, growth regulators, such as insect molting inhibitors, and root stimulators, sterilizers, semiochemicals, repellents, attractants, pheromones, feeding stimulants, plant nutrients, other biologically active compounds, or insect pathogenic bacteria, viruses, or fungi to form multi-component pesticides that provide broad-spectrum agricultural protection. Therefore, the present invention also relates to compositions comprising a fungicidally effective amount of a compound of Formula 1 and a biologically effective amount of at least one additional biologically active compound or agent, which may further comprise at least one surfactant, solid diluent, or liquid diluent. Other biologically active compounds or agents can be formulated in compositions that include at least one surfactant, solid diluent, or liquid diluent. In the case of the mixtures of the present invention, one or more other biologically active compounds or agents may be formulated together with the compound of Formula 1 to form a premix, or one or more other biologically active compounds or agents may be formulated separately from the compound of Formula 1 and the formulations may be combined together before application (e.g., in a spray tank) or applied sequentially.
[0479] As noted in the Summary of the Invention, one aspect of the present invention is a fungicidal composition (i.e., a mixture or combination) comprising a compound of Formula 1, its N-oxide, or salt (i.e., component (a)), and at least one other fungicide (i.e., component (b)). Of note are combinations in which the other fungicidally active ingredient has a different site of action than the compound of Formula 1. In certain cases, combinations with at least one other fungicidally active ingredient having a similar spectrum of control but a different site of action may be particularly advantageous for resistance management. As such, the compositions of the present invention may further comprise a fungicidally effective amount of at least one additional fungicidally active ingredient having a similar spectrum of control but a different site of action.
[0480] Examples of component (b) fungicides include acibenzolar-S-methyl, aldimorph, ametoctrazine, amisulbrom, anilazine, azaconazole, azoxystrobin, benalaxyl (e.g., benalaxyl-M), benodanil, benomyl, benthiavalicarb (e.g., benthiavalicarb-isopropyl), benzovindiflupyr, bethoxadin, binapacryl, biphenyl, bitertanol, bixafen, blasticidin-S, boscalid, bromuconazole, bupirimate, buthiobate, captafol, captan, carbendazim, and carbo oxalin, carpropamid, chloroneb, chlorothalonil, chlozolinate, clotrimazole, copper hydroxide, copper oxychloride, copper sulfate, cumoxystrobin, cyazofamid, cyflufenamid, cymoxanil, cyproconazole, cyprodinil, dichlofluanid, diclocymet, diclomedine, dicloran, diethofencarb, difenoconazole, diflumetrim, dimethirimol, dimethomorph, dimoxystrobin, diniconazole (e.g. diniconazole-M), dinocap, dithianon, dithiolane, dodemorph, dodine, dipimethitrone, Econazole, edifenphos, enoxastrobin (also known as enestrobrin), epoxiconazole, etaconazole, ethaboxam, ethirimol, etridiazole, famoxadone, fenamidone, fenarimol, phenaminestrobin, fenbuconazole, fenfuram, fenhexamid, fenoxanil, fenpiclonil, fenpropidin, fenpropimorph, fenpyrazamine, triphenyltin acetate, triphenyltin chloride, triphenyltin hydroxide, ferbam, ferimzone, flometoquin, florilpico oxamide, fluazinam, fludioxonil, flufenoxystrobin, fluindapyr, flumorph, fluopicolide, fluopimomide, fluopyram, fluorimide, fluoxastrobin, fluquinconazole, flusilazole, flusulfamide, flutianil, flutolanil, flutriafol, fluxapyroxad, folpet, fthalide, fuberidazole, furalaxyl, furametpyr, guazatine, hexaconazole, hymexazole, imazalil, imibenconazole, iminoctadine albesilate, iminoctadine triacetate,Iodocarb, ipconazole, ipfentrifluconazole, iprobenfos, iprodione, iprovalicarb, isoconazole, isofetamide, isoprothiolane, isoflucipram, isopyrazam, isotianil, kasugamycin, kresoxim-methyl, mancozeb, mandepropamide, mandestrobin, maneb, mepanipyrim, mepronil, meptyldinocap, metalaxyl (e.g., metalaxyl-M / mefenoxam), mefentriflucosazole, metconazole, metasulfocarb, metiram, metominostrobin, mefentriflucosazole, metconazole, metha ...hiram, methasulfonate, methasulfonate, methasulf Trafenone, miconazole, myclobutanil, naftifine, neo-asozin, nuarimol, octilinone, ofurace, orysastrobin, oxadixyl, oxathiapiprolin, oxolinic acid, oxpoconazole, oxycarboxin, oxytetracycline, pefurazoate, penconazole, pencycuron, penflufen, penthiopyrad, phosphorous acid (including its salts, e.g., fosetylaluminum), picarbutrazox, picoxystrobin, piperalin, polyoxins, probenazole, prochloraz, procymidone, propamaka Rub, propiconazole, propineb, proquinazid, prothiocarb, prothioconazole, pyraclostrobin, pyrametostrobin, pyraoxystrobin, pyrazophos, pyribencarb, pyributicarb, pyrifenox, pyrimethanil, pyriophenone, pyrisoxazole, pyroquilon, pyrrolnitrin, quinconazole, quinofumelin (registration number 861647-84-9), quinomethionate, quinoxyfen, quintozene, sedaxane, silthiofam, simeconazole, spiroxamine, streptomycin, sulfur, tebuconazole, Tebufloquine, t tecloftalam, tecnazene, terbinafine, tetraconazole, thiabendazole, thifluzamide, thiophanate, thiophanate-methyl, thiram, tiadinil, tolclofos-methyl, trinifanide, tolprocarb, trifluanid, triadimefon, triadimenol, triarimol, triticonazole, triazoxide, tribasic copper sulfate, tricyclazole, triclopiricarb, tridemorph, trifloxystrobin, triflumizole, triforine, trimorphamide, uniconazole, uniconazole-P,Validamycin, Valifenalate (also known as Valifenal), Vinclozolin, Zineb, Ziram, Zoxamide, N-[2-(1S,2R)-[1,1'-bicyclopropyl]-2-ylphenyl]-3-(difluoromethyl)-1-methyl-1H-pyrazole-4-carboxamide, α-(1-chlorocyclopropyl)-α-[2-(2,2-dichlorocyclopropyl)ethyl]-1H-1,2,4-triazole-1-ethanol, (αS)-[3-(4-chloro-2-fluorophenyl)-5-(2,4-difluorophenyl)-4 -isoxazolyl]-3-pyridinemethanol, rel-1-[[(2R,3S)-3-(2-chlorophenyl)-2-(2,4-difluorophenyl)-2-oxiranyl]methyl]-1H-1,2,4-triazole, rel-2-[[(2R,3S)-3-(2-chlorophenyl)-2-(2,4-difluorophenyl)-2-oxiranyl]methyl]-1,2-dihydro-3H-1,2,4-triazole-3-thione, rel-1 ...H-1,2,4-triazole-3-thione, N-[2-[4-[[3-(4-chlorophenyl)-2-propyn-1-yl]oxy]-3-methoxyphenyl]ethyl]-3-methyl-2-[(methylsulfonyl)amino]butanamide, N-[2-[4-[[3-(4-chlorophenyl)-2-propyn-1-yl]oxy]-3-methoxyphenyl]ethyl]-3-methyl-2-[(ethylsulfonyl)amino]butanamide, N'-[4-[4-chloro-3-(trifluoromethyl)phenoxy] -2,5-dimethylphenyl]-N-ethyl-N-methylmethanimidamide, N-[2-(2,4-dichlorophenyl)-2-methoxy-1-methylethyl]-3-(difluoromethyl)-1-methyl-1H-pyrazole-4-carboxamide, N-(3',4'-difluoro[1,1'-biphenyl]-2-yl)-3-(trifluoromethyl)-2-pyrazinecarboxamide, 3-(difluoromethyl)-N-(2,3-dihydro-1,1,3-trimethyl-1H-inden-4-yl)-1-methyl-1H-pyrazole-4-carboxamide,5,8-Difluoro-N-[2-[3-methoxy-4-[[4-(trifluoromethyl)-2-pyridinyl]oxy]phenyl]ethyl]-4-quinazolinamine, 1-[4-[4-[5R-[(2,6-difluorophenoxy)methyl]-4,5-dihydro-3-isoxazolyl]-2-thiazolyl]-1-piperidinyl]-2-[5-methyl-3-(trifluoromethyl)-1H-pyrazol-1-yl]ethanone, 4-fluorophenyl N-[1-[[[1-(4-cyanophenyl)ethyl]sulfonyl]methyl]propyl]carbamate, 5-fluoro-2-[(4-fluorophenyl)methoxy]-4-pyrimidinamine, α-(methoxyimino)-N-methyl-2-[[[1-[3-(trifluoromethyl)phenyl]ethoxy]imino]methyl]benzeneacetamide, and [[4-methoxy-2-[[[(3S,7R,8R,9S)-9-methyl-8-(2-methyl-1-oxopropoxy-2,6-dioxo-7-(phenylmethyl)-1,5-dioxonan-3-yl]amino]carbonyl]-3-pyridinyl]oxy]methyl 2-methylpropanoate. Of note, therefore, is a fungicidal composition comprising as component (a) a compound of formula 1 (or an N-oxide or salt thereof) and as component (b) at least one fungicide selected from the preceding list.
[0481] Of particular note are compositions containing a compound of Formula 1 (or an N-oxide or salt thereof) (i.e., component (a) in the composition) and one or more of: aminopyrifen (Registration No. 1531626-08-0), azoxystrobin, benzovindiflupyr, bixafen, captan, carpropamid, chlorothalonil, copper hydroxide, copper oxychloride, copper sulfate, cymoxanil, cyproconazole, cyprodinil, diclobenthiazox (Registration No. 957144-77-3), diethofencarb, difenoconazole, dimethomorph, dipimethitron, epoxiconazole, ethaboxam, fenarimol, fenhexamid, fluazinam, fludioxonil, fluindapyr, fluopyram, flusilazole, flutianil, flutriafol, fluxapyroxad, folpet, ipflufenoquin (Registration No. Registration number 1314008-27-9), iprodione, isofetamide, isoflucipram, isopyrazam, kresoxim-methyl, mancozeb, mandestrobin, meptyldinocap, metalaxyl (e.g., metalaxyl-M / mefenoxam), mefentriflucosazole, metconazole, metrafenone, methyltetraprole (Registration number 1472649-01-6), myclobutanil, oxathiapiprolin, penflufen, penthiopyrad, phosphorous acid (including its salts, e.g., fosetylaluminium), picoxystrobin, propiconazole, proquinazide, prothioconazole, pyridaclomethyl (Registration number 1358061-55-8), pyraclostrobin, pyrapropoin (Registration number 1803108-03-3), pyrimethanil, sedaxane Spiroxamine, sulfur, tebuconazole, thiophanate-methyl, trifloxystrobin, zoxamide, α-(1-chlorocyclopropyl)-α-[2-(2,2-dichlorocyclopropyl)ethyl]-1H-1,2,4-triazole-1-ethanol, N-[2-(2,4-dichlorophenyl)-2-methoxy-1-methylethyl]-3-(difluoromethyl)-1-methyl-1H-pyrazole-4-carboxamide, 3-(difluoromethyl)-N-(2,3-dihydro-1,1,3-trimethyl-1H-inden-4-yl)-1-methyl-1H-pyrazole-4-carboxamide, 1-[4-[4-[5R-(2,6-difluorophenyl)-4,5-Dihydro-3-isoxazolyl]-2-thiazolyl]-1-piperidinyl]-2-[5-methyl-3-(trifluoromethyl)-1H-pyrazol-1-yl]ethanone, 1,1-dimethylethyl N-[6-[[[[(1-methyl-1H-tetrazol-5-yl)phenylmethylene]amino]oxy]methyl]-2-pyridinyl]carbamate, 5-fluoro-2-[(4-fluorophenyl)methoxy]-4-pyrimidinamine, (αS)-[3-(4-chloro-2-fluorophenyl)-5-(2,4-difluorophenyl)-4-isoxazolyl]-3-pyridinemethanol, rel-1-[[(2R,3S)-3-(2-chlorophenyl)-2-(2,4-difluorophenyl)-2-oxiranyl]methyl]-1H-1,2 ,4-triazole, rel-2-[[(2R,3S)-3-(2-chlorophenyl)-2-(2,4-difluorophenyl)-2-oxiranyl]methyl]-1,2-dihydro-3H-1,2,4-triazole-3-thione, and rel-1-[[(2R,3S)-3-(2-chlorophenyl)-2-(2,4-difluorophenyl)-2-oxiranyl]methyl]-5-(2-propen-1-ylthio)-1H-1,2,4-triazole (i.e., as component (b) in the composition).
[0482] Generally preferred for better control of plant diseases caused by fungal plant pathogens (e.g., lower application rates or a broader spectrum of plant pathogens controlled) or resistance management are combinations of a compound of Formula 1, its N-oxide, or salt with azoxystrobin, benzovindiflupyr, bixafen, boscalid, carbendazim, chlorothalonil, copper sulfate, cymoxanil, cyproconazole, difenoconazole, dimethomorph, dimoxystrobin, epoxiconazole, fenpropimorph, flurylpicoxamide, fludioxonil, fluindapyr, fluquinconazole, fluopicolide, fluoxast and a fungicidal compound selected from the group consisting of robin, flutriafol, fluxapyroxad, impilfluxam, ipfentrifluconazole, iprodione, isoflucipram, kresoxim-methyl, mancozeb, metalaxyl, mefentriflucosazole, metconazole, metominostrobin, picoxystrobin, prothioconazole, pydiflumetofen, pyraclostrobin, pyrametostrobin, pyroxystrobin, pyriophenone, sedaxane, silthiofam, tebuconazole, thiabendazole, thiophanate-methyl, trifloxystrobin and triticonazole.
[0483] In the fungicidal compositions of the present invention, component (a) (i.e., at least one compound selected from the compound of Formula 1, its N-oxides, and salts) and component (b) are present in fungicidally effective amounts. The weight ratio of component (a) to component (b) (i.e., one or more additional fungicidal compounds) is generally from about 1:3000 to about 3000:1, more typically from about 1:500 to about 500:1. Of note are compositions in which the weight ratio of component (a) to component (b) is from about 125:1 to about 1:125. Of particular note are compositions in which the weight ratio of component (a) to component (b) is from about 25:1 to about 1:25, or from about 5:1 to about 1:5. Those skilled in the art can easily determine by simple experimentation the weight ratios and application rates of the fungicidal compounds required for the desired spectrum of fungicidal protection and control. The inclusion of additional fungicidal compounds in component (b) can expand the spectrum of plant diseases controlled beyond that controlled by component (a) alone. Additionally, Tables A1-A27 and C1-C27 exemplify weight ratio combinations of fungicidal compounds of the present invention. Additionally, Table B1 lists typical, more typical, and most typical ranges of ratios for specific fungicidal compounds in component (b).
[0484] Tables A1-A27 list specific mixtures of the present invention (compound numbers refer to compounds in Index Tables A-L). In Table A1, each row under the column headings "Component (a)" and "Component (b)" specifically discloses a mixture of component (a) (i.e., Compound 3) with a component (b) fungicidal compound. The entries under the heading "Exemplary Ratios" disclose three specific weight ratios of component (a) to component (b) for the disclosed mixture. For example, the first row of Table A1 discloses a mixture of Compound 3 and acibenzolar-S-methyl and lists weight ratios of Compound 3 to acibenzolar-S-methyl of 1:1, 1:4, or 1:18.
[0485] [Table 6]
[0486] [Table 7]
[0487] [Table 8]
[0488] [Table 9]
[0489] [Table 10]
[0490] [Table 11]
[0491] [Table 12]
[0492] [Table 13]
[0493] Tables A2-A27 are each structured the same as Table A1 above, except that the entries under the "Component (a)" column heading are replaced with the respective Component (a) column entries shown below. Thus, for example, in Table A2, the entries under the "Component (a)" column heading all list "Compound 4." Thus, the first entry in Table A2 specifically discloses a mixture of Compound 4 and acibenzolar-S-methyl. Tables A3-A27 are similarly structured.
[0494] [Table 14]
[0495] Table B1 lists combinations of component (b) compounds with component (a) compounds, illustrating the mixtures, compositions, and methods of the present invention. The first column of Table B1 lists specific component (b) compounds (e.g., "acibenzolar-S-methyl" is the first entry). The second, third, and fourth columns of Table B1 list weight ratio ranges for the rate at which component (a) compounds are typically applied to field-grown crops relative to component (b). Thus, for example, the first row of Table B1 discloses that combinations of component (a) compounds and acibenzolar-S-methyl are typically applied in a weight ratio of component (a) to component (b) of 2:1 to 1:180, more typically 1:1 to 1:60, and most typically 1:1 to 1:18. The remaining rows of Table B1 should be interpreted similarly. Of particular note are compositions comprising a mixture of any one of the compounds listed in Embodiment 108 as component (a) with a compound listed in the component (b) column of Table B1, according to the weight ratios disclosed in Table B1. Table B1 therefore complements the specific proportions disclosed in Tables A1-A27 with ranges of proportions for these combinations.
[0496] [Table 15]
[0497] [Table 16]
[0498] [Table 17]
[0499] [Table 18]
[0500] [Table 19]
[0501] [Table 20]
[0502] [Table 21]
[0503] [Table 22]
[0504] As previously noted, the present invention includes embodiments comprising components (a) and (b) in a composition, wherein component (b) comprises at least one fungicidal compound from each of two groups selected from (b1) through (b54). Tables C1 through C27 list specific mixtures illustrating embodiments wherein component (b) comprises at least one fungicidal compound from each of two groups selected from (b1) through (b54). Table C1 discloses mixtures of compound 3 of the present invention with at least two component (b) compounds. The entries under the heading "Exemplary Ratios" disclose three specific weight ratios of component (a) to each component (b) compound. For example, row 1 discloses a mixture of compound 3 with cyproconazole and azoxystrobin, listing weight ratios of compound 3 to cyproconazole to azoxystrobin of 1:1:1, 2:1:1, or 3:1:1.
[0505] [Table 23]
[0506] [Table 24]
[0507] [Table 25]
[0508] [Table 26]
[0509] [Table 27]
[0510] [Table 28]
[0511] Tables C2-C27 are each structured the same as Table C1 above, except that the entries under the "Component (a)" column heading are replaced with the respective Component (a) column entries shown below. Thus, for example, in Table C2, the entries under the "Component (a)" column heading all list "Compound 4." Thus, the first entry in Table C2 specifically discloses mixtures of Compound 4 with cyproconazole and azoxystrobin in exemplary weight ratios of Compound 4 to cyproconazole to azoxystrobin of 1:1:1, 2:1:1, and 3:1:1. Tables C3-C27 are similarly structured.
[0512] [Table 29]
[0513] Of note are compositions of the invention comprising a compound of formula 1 (or an N-oxide or salt thereof) together with at least one other fungicidal compound having a different site of action than the compound of formula 1. In certain cases, a combination with at least one other fungicidal compound having a similar control spectrum but a different site of action may be particularly advantageous for resistance management. Thus, the compositions of the invention advantageously comprise at least one fungicidally active compound selected from the group consisting of (b1) to (b54) as described above, having a similar control spectrum but a different site of action.
[0514] Component (a), or a composition of component (a) together with component (b), can be further mixed with one or more other biologically active compounds or agents, such as insecticides, nematicides, fungicides, acaricides, herbicides, herbicide antidotes; growth regulators such as insect molting inhibitors and rooting stimulants, sterilizers, semiochemicals, repellents, attractants, pheromones, feeding stimulants, plant nutrients, other biologically active compounds, or insect pathogenic bacteria, viruses, or fungi, to form a multi-component pesticide that provides an even broader agricultural protection spectrum. Thus, the present invention also relates to a composition comprising a fungicidally effective amount of component (a), or a mixture of component (a) with component (b) and a biologically effective amount of at least one additional biologically active compound or agent, which can further comprise at least one surfactant, solid diluent, or liquid diluent. Other biologically active compounds or agents can also be formulated separately in a composition that includes at least one of a surfactant, a solid diluent, or a liquid diluent. With respect to the compositions of the present invention, one or more other biologically active compounds or agents can be formulated with one or both of components (a) and (b) to form a premix, or one or more other biologically active compounds or agents can be formulated separately from components (a) and (b), and these formulations can be combined together (e.g., in a spray tank) before application, or alternatively, can be applied sequentially.
[0515] Examples of such biologically active compounds or agents with which the compositions of component (a), or component (a) together with component (b), can be formulated include abamectin, acephate, acequinocyl, acetamiprid, acrinathrin, acinonapyr, afidopropene, amidoflumet, amitraz, avermectin, azadirachtin, azinphos-methyl, benfuracarb, bensultap, benzpirimoxan, bifenthrin, kappa-bifenthrin, bifenazate, bistrifluron, borate, broflanilide, buprofezin, cadusafos, Carbaryl, carbofuran, cartap, carsol, chlorantraniliprole, chlorfenapyr, chlorfluzuron, chlorprallethrin, chlorpyrifos, chlorpyrifos-e, chlorpyrifos-methyl, chromafenozide, clofentezine, chlorprallethrin, clothianidin, cyantraniliprole, cyclaniliprole, cycloprothrin, cycloxapride, cyenopyrafen, cyflumetofen, cyfluthrin, beta-cyfluthrin, cyhalodiamide, cyhalothrin, gamma-cyhalothrin, lambda-cyhalothrin, cyper Methrin, alpha-cypermethrin, zeta-cypermethrin, cyromazine, deltamethrin, diafenthiuron, diazinon, dichloromezothiaz, dieldrin, diflubenzuron, dimefluthrin, dimehypo, dimethoate, dimpropyridaz, dinotefuran, diofenolan, emamectin, emamectin benzoate, endosulfan, esfenvalerate, ethiprole, etofenprox, epsilon-metofluthrin, etoxazole, fenbutatin oxide, fenitrothion, fenothiocarb, fenoxazole Sicarb, fenpropathrin, fenvalerate, fipronil, flometoquin, flonicamid, fluazaindolizine, flubendiamide, flucythrinate, flufenerim, flufenoxuron, flufenoxystrobin, fluensulfone, fluhexafon, fluopyram, flupiprole, flupyradifuron, flupirimine, fluvalinate, tau-fluvalinate, fluxamethamide, fonofos, formetanate, fosthiazate, gamma-cyhalothrin, halofenozide, heptafluthrin, hexaflumuron, hexythiazox,Hydramethylnon, Imidacloprid, Indoxacarb, Insecticidal Soap, Isofenphos, Isocycloceram, Kappa-Tefluthrin, Lambda-Cyhalothrin, Lufenuron, Malathion, Meperfluthrin, Metaflumizone, Metaldehyde, Methamidophos, Methidathion, Methiocarb, Methomyl, Methoprene, Methoxychlor, Metofluthrin, Methoxyfenozide, Epsilon-Metofluthrin, Epsilon-Monf Fluorothrin, monocrotophos, monofluorothrin, nicotine, nitenpyram, nithiazine, novaluron, noviflumuron, oxamyl, oxazosulfil, parathion, parathion-methyl, permethrin, phorate, phosalone, phosmet, phosphamidon, pirimicarb, profenofos, profluthrin, propargite, protrifenbute, piflubumid, pymetrozine, pyrafluprole, pyrethrins, pirimicarb ... Ridaben, pyridalyl, pyrifluquinazone, pyriminostrobin, pyriprole, pyriproxyfen, rotenone, ryanodine, silafluofen, spinetoram, spinosad, spirodiclofen, spiromesifen, spiropydione, spirotetramat, sulprofos, sulfoxaflor, tebufenozide, tebufenpyrad, teflubenzuron, tefluthrin, kappa-tefluthrin, terbufos, tetrachlorantraniliprole, tetrachlorvinphos, tetramethrin, tetramethylfluthrin, tetraniliprole, thiacloprid, thiamethoxam, thiodicarb, thiosultap-sodium, thioxazafen, tolfenpyrad, tralomethrin, triazamate, trichlorfon, triflumezopyrim, triflumuron, cyclopyrazoflurane, zeta-cypermethrin, Bacillus thuringiensis (Bacillus thuringiensis) delta-endotoxin, insecticides such as entomopathogenic bacteria, entomopathogenic viruses, or entomopathogenic fungi.
[0516] One embodiment of a biological agent for mixing with the compounds of the present disclosure includes entomopathogenic bacteria, such as Bacillus thuringiensis, and encapsulated delta-endotoxin of Bacillus thuringiensis, such as MVP® and MVPII® bioinsecticides prepared by the CellCap® process (CellCap®, MVP®, and MVPII® are trademarks of Mycogen Corporation, Indianapolis, Indiana, USA); entomopathogenic fungi, such as black rot fungus; and entomopathogenic viruses (both naturally occurring and genetically engineered), such as baculovirus, Helicoverpa zea nucleopolyhedrovirus (HzNPV), Anagrapha falcifera (Anagrapha falcifera), and entomopathogenic fungi (both naturally occurring and genetically engineered). nuclear polyhedrosis viruses (NPVs), such as Antibacterial and Antimicrobial Agents (AfNPV); and granulosis viruses (GVs), such as Cydia pomonella granulosis virus (CpGV).
[0517] General references for these agricultural protection agents (i.e., insecticides, fungicides, nematicides, acaricides, herbicides, and biological agents) include The Pesticide Manual, 13th Edition, CDS Tomlin, Ed., British Crop Protection Council, Farnham, Surrey, UK, 2003 and The BioPesticide Manual, 2004. nd Edition, L. G. Copping, Ed., British Crop Protection Council, Farnham, Surrey, UK, 2001.
[0518] In embodiments employing one or more invertebrate pest control compounds, the weight ratio of these compounds (combined) to the component (a) compound is typically between about 1:3000 and about 3000:1. Of note are weight ratios between about 1:300 and about 300:1 (e.g., ratios between about 1:30 and about 30:1). Those skilled in the art can readily determine by simple experimentation the biologically effective amount of active ingredient required to achieve the desired spectrum of biological activity.
[0519] Component (a) compounds and / or combinations thereof with component (b) compounds and / or one or more other biologically active compounds or agents can be applied to plants genetically transformed to express a protein toxic to invertebrate pests (e.g., Bacillus thuringiensis delta-endotoxin). The effects of exogenously applied component (a) of the present invention, alone or in combination with component (b), can be synergistic with the expressed toxin protein.
[0520] Of note are combinations or compositions comprising component (a), or components (a) and (b), as described in the Summary of the Invention, which further comprise at least one invertebrate pest control compound or agent (e.g., insecticide, acaricide). Of particular note are compositions comprising component (a) and at least one (i.e., one or more) invertebrate pest control compound or agent, which can then be combined with component (b) to provide a composition comprising components (a) and (b) and one or more invertebrate pest control compounds or agents. Alternatively, a biologically effective amount of a composition comprising component (a) together with at least one invertebrate pest control agent, without first mixing with component (b), can be applied to a plant or plant seed (directly or via the environment of the plant or plant seed) to protect the plant or plant seed from disease caused by fungal pathogens and damage caused by invertebrate pests.
[0521] Of note, in addition to the compounds of component (a), alone or in combination with component (b), include abamectin, acetamiprid, acrinathrin, acequinocyl, afidopropene, amitraz, avermectin, azadirachtin, benfuracarb, bensultap, bifenthrin, buprofezin, brofuranilide, cadusafos, carbaryl, cartap, chlorantraniliprole, chlorprallethrin, chlorfenapyr, chlorpyrifos, clothianidin, cyantraniliprole, cyclaniliprole, cycloprothrin, cyfluthrin, beta-sif Luthrin, cyhalothrin, gamma-cyhalothrin, lambda-cyhalothrin, cypermethrin, alpha-cypermethrin, zeta-cypermethrin, cyromazine, deltamethrin, dieldrin, dinotefuran, diofenolan, emamectin, endosulfan, epsilon-metofluthrin, esfenvalerate, ethiprole, etofenprox, etoxazole, fenitrothion, fenothiocarb, fenoxycarb, fenvalerate, fipronil, flometoquin, fluxamethamide, flonicamid, flubendiamide, flubendiamide Ensulfone, flufenoxuron, flufenoxystrobin, flufensulfon, flupiprole, flupirimine, flupyradifurone, fluvalinate, formetanate, fosthiazate, gamma-cyhalothrin, heptafluthrin, hexaflumuron, hydramethylnon, imidacloprid, indoxacarb, isocycloceram, kappa-tefluthrin, lambda-cyhalothrin, lufenuron, meperfluthrin, metaflumizone, methiodicarb, methomyl, methoprene, methoxyfenozide, metofluthrin, monofluorothrin, nitenpi Ram, nithiazine, novaluron, oxamyl, piflubumid, pymetrozine, pyrethrins, pyridaben, pyridalyl, pyriminostrobin, pyriproxyfen, ryanodine, spinetoram, spinosad, spirodiclofen, spiromesifen, spirotetramat, sulfoxaflor, tebufenozide, tetramethrin, tetramethylfluthrin, thiacloprid, thiamethoxam, thiodicarb, thiosultap-sodium, tralomethrin, triazamate, triflumezopyrim, triflumuron, cyclopyrazofluran, zeta-cypermethrin,The composition of the present invention comprises at least one invertebrate pest control compound or agent selected from the group consisting of Bacillus thuringiensis delta-endotoxin, all strains of Bacillus thuringiensis, and all strains of nuclear polyhedrosis virus.
[0522] In certain cases, the combination of the component (a) compound of the present invention with other biologically active (especially fungicidal) compounds or agents (i.e., active ingredients), alone or mixed with component (b), can produce a more-than-additive (i.e., synergistic) effect. It is always desirable to reduce the amount of active ingredient released into the environment while ensuring effective pest control. If the enhanced effect of the fungicidal active ingredient is manifested at an application rate that provides an agriculturally satisfactory level of fungal control, such a combination can be advantageous for reducing crop production costs and reducing environmental burdens.
[0523] Table D1 lists specific combinations of invertebrate pest control agents and Compound 3 as component (a) compounds (compound numbers refer to compounds in Index Tables A-F), illustrating mixtures or compositions containing these active ingredients, as well as methods of using them in accordance with the present invention. Column 2 of Table D1 lists specific invertebrate pest control agents (e.g., "Abamectin" in the first row). Column 3 of Table D1 lists the mode of action (if known) or chemical class of the invertebrate pest control agent. Column 4 of Table D1 lists weight ratio range embodiments (e.g., "50:1 to 1:50" abamectin to compound 32 by weight) for the rate at which the invertebrate pest control agent is typically applied relative to Compound 32, alone or in combination with component (b). Thus, for example, row 1 of Table D1 specifically discloses that the combination of Compound 3 and Abamectin is typically applied in a weight ratio of 50:1 to 1:50. The remaining rows of Table D1 should be interpreted similarly. Thus, for example, the first row of Table D1 specifically discloses that a combination of Compound 3 and abamectin is typically applied in a weight ratio of 50:1 to 1:50. The remaining rows of Table D1 should be interpreted similarly.
[0524] [Table 30]
[0525] [Table 31]
[0526] [Table 32]
[0527] Tables D2-D27 are each structured the same as Table D1 above, except that the entries under the "Component (a)" column heading are replaced with the respective component (a) column entries shown below. Thus, for example, in Table D2, the entries under the "Component (a)" column heading all list "Compound 4," and the first row under that column heading in Table D2 specifically discloses a mixture of Compound 4 and abamectin. Tables D3-D27 are similarly structured.
[0528] [Table 33]
[0529] Compositions containing a compound of Formula 1 useful for seed treatment may further include bacteria and fungi capable of protecting against the harmful effects of plant pathogenic fungi or bacteria and / or soil-borne animals, such as nematodes. Bacteria that exhibit nematicidal properties include, but are not limited to, Bacillus firmus, Bacillus cereus, Bacillus subtilis, and Pasteuria penetrans. Suitable Bacillus firmus strains include strain CNCM I-1582 (GB-126), available from BioNem. TMIt is commercially available as a Bacillus cereus strain. A suitable Bacillus cereus strain is strain NCMM I-1592. Both Bacillus strains are disclosed in U.S. Patent No. 6,406,690. Other suitable bacteria that exhibit nematicidal activity are B. amyloliquefaciens IN937a and B. subtilis strain GB03. Bacteria that exhibit fungicidal properties include, but are not limited to, B. pumilus strain GB34. Fungal species that exhibit nematicidal properties include, but are not limited to, Myrotheciium verrucaria, Paecilomyces lilacinus, and Purpureocillium lilacinum.
[0530] Seed treatments may also include one or more nematicides of natural origin, such as an inducer protein called a harpin, which is isolated from certain bacterial plant pathogens, such as Erwinia amylovora. Examples include N-Hibit TM and Harpin-N-Tek seed treatment technology available as Gold CST.
[0531] Seed treatments can also include one or more species of legume-root nodulating bacteria, such as the microsymbiotic nitrogen-fixing bacterium Bradyrhizobium japonicum. These inoculants can optionally include one or more lipochitooligosaccharides (LCOs), which are nodulation (Nod) factors produced by Rhizobia bacteria during the initiation of nodulation on legume roots. For example, Optimize® brand seed treatment technology uses LCO Promoter Technology in combination with an inoculant. TM It incorporates the following.
[0532] Seed treatments can also include one or more isoflavones, which can increase the level of root colonization by mycorrhizal fungi. Mycorrhizal fungi improve plant growth by increasing root uptake of nutrients such as water, sulfate, nitrate, phosphate, and metals. Examples of isoflavones include, but are not limited to, genistein, biochanin A, formononetin, daidzein, glycitein, hesperetin, naringenin, and pratensein. Formononetin is available as an active ingredient in mycorrhizal inoculant products such as PHC Colonize® AG.
[0533] The seed treatment may also include one or more plant activators that induce systemic acquired resistance in the plant after contact with the pathogen. An example of a plant activator that induces such a protective mechanism is acibenzolar-S-methyl.
[0534] In the present fungicidal compositions, the Formula 1 compound of component (a) can function synergistically with the additional fungicidal compounds of component (b) to provide beneficial results such as broadening the spectrum of plant diseases controlled, extending the duration of preventative and curative protection, and suppressing the growth of resistant fungal pathogens. In certain embodiments, provided according to the present invention are compositions comprising ratios of component (a) and component (b) that are particularly useful for controlling certain fungal diseases (e.g., Alternaria solani, Blumeria graminis f.sp. tritici, Botrytis cinerea, Puccinia recondita f.sp. tritici, Rhizoctonia solani, Septoria nodorum, Septoria tritici).
[0535] Mixtures of fungicides may also provide significantly better disease control than would be expected based on the activity of the individual components. This synergy has been described as "the combined action of two components of a mixture such that the combined effect is greater or more prolonged than the sum of the effects of the two (or more) components taken independently" (see PM L Tames, Neth. J. Plant Pathology 1964, 70, 73-80). In methods of providing plant disease control that exhibit synergy from combinations of active ingredients (e.g., fungicidal compounds) applied to plants or seeds, the active ingredients are applied in synergistic weight ratios and synergistic (i.e., synergistically effective) amounts. Measures of disease control, inhibition, and prevention cannot exceed 100%. Thus, expression of substantial synergy typically requires the use of application amounts of the active ingredients where the active ingredients individually provide much less than 100% efficacy, such that their additive effect is substantially less than 100%, allowing for the possibility of increased efficacy as a result of synergy. On the other hand, too low an application rate of the active ingredients may not result in a mixture with significant activity even with the benefit of synergy. Those skilled in the art can easily identify and optimize, by simple experimentation, the weight ratio and application rate (i.e., amount) of the fungicidal compounds that provide a synergistic effect.
[0536] The existence of a synergistic effect between two active ingredients was established with the help of the Colby equation (see Colby, SR "Calculating Synergistic and Antagonistic Responses of Herbicide Combinations", Weeds, (1967), 15, 20-22):
number
[0537] Using Colby's method, the existence of a synergistic interaction between two active ingredients is established by first calculating the predicted activity, p, of the mixture based on the activity of the two ingredients applied alone. If p is lower than the experimentally established effect, synergy is manifested. In the above equation, A is the fungicidal activity in percentage control units of one ingredient applied alone at rate x. The B term is the fungicidal activity in percentage control units of the second ingredient applied at rate y. This equation estimates p, the expected fungicidal activity of a mixture of A at rate x and B at rate y, if their effects were strictly additive and no interaction was manifested.
[0538] The following tests demonstrate the control efficacy of the compounds of the present invention against specific pathogens. However, the pathogen control protection provided by the compounds is not limited to these species. See Index Tables A-F below for compound descriptions. The following abbreviations are used in Index Tables A-F: Me means methyl, n-Pr means n-propyl, i-Pr means isopropyl, c-Pr means cyclopropyl, i-Bu means isobutyl, c-Bu means cyclobutyl, t-Bu means tert-butyl, and NO2 means nitro. The abbreviation "Cmpd." stands for "Compound," and the abbreviation "Ex." stands for "Example," followed by a number indicating which example compound is being prepared. The abbreviation "mp" stands for melting point. The number reported in the "MS(M+1)" column is the value obtained by adding H to the molecule with the highest isotopic abundance (i.e., M). + is the molecular weight of the observed molecular ion formed by adding (molecular weight 1) to one or more lower abundance higher atomic mass isotopes (e.g., 37 Cl, 81 The presence of molecular ions containing Br) is not reported. The reported MS peaks were observed by mass spectrometry using electrospray ionization (ESI) or atmospheric pressure chemical ionization (PCI).
[0539] [Table 34]
[0540] Table 35
[0541] Table 36
[0542] Table 37
[0543] Table 38
[0544] Table 39
[0545] Table 40
[0546] Table 41
[0547] Table 42
[0548] Table 43
[0549] Table 44
[0550] Biological Examples of the Invention General protocol for preparing test suspensions for Tests A-F: Test compounds were first dissolved in acetone in an amount equal to 3% of the final volume, then suspended at the desired concentration (ppm) in acetone and purified water containing 250 ppm of the surfactant PEG400 (polyhydric alcohol ester) (50 / 50 mix by volume). The resulting test suspensions were then used in Tests A-F.
[0551] Test A The test solution was sprayed onto wheat seedlings until runoff. The next day, the seedlings were inoculated with a spore suspension of Zymoseptoria tritici (the causative agent of wheat leaf blight) and incubated for 48 hours at 24°C in a saturated atmosphere, then transferred to a growth chamber at 20°C for 17 days, after which time-course disease assessments were performed.
[0552] Test B The test solution was sprayed onto wheat seedlings until runoff. The next day, the seedlings were inoculated with a spore suspension of Puccinia recondita f.sp. tritici (cause of wheat leaf rust) and incubated for 24 hours at 20°C in a saturated atmosphere, then transferred to a growth chamber at 20°C for 7 days, after which time-course disease assessments were performed.
[0553] Test C The test suspension was sprayed onto wheat seedlings until runoff. The next day, the seedlings were inoculated with spore dust of Blumeria graminis f.sp. tritici (the pathogen of wheat powdery mildew, also known as Erysiphe graminis f.sp. tritici) and incubated in a growth chamber at 20°C for 8 days, after which time-dependent visual disease assessments were made.
[0554] Test D The test solution was sprayed onto soybean seedlings until runoff. The next day, the seedlings were inoculated with a spore suspension of Phakopsora pachyrhizi (the causal agent of soybean rust) and incubated for 24 hours at 22°C in a saturated atmosphere, then transferred to a growth chamber at 22°C for 8 days, after which time-dependent visual disease assessments were made.
[0555] Test E The test suspension was sprayed onto tomato seedlings until runoff. The next day, the seedlings were inoculated with a spore suspension of Botrytis cinerea (the causal agent of tomato botrytis disease) and incubated for 48 hours at 20°C in a saturated atmosphere, then transferred to a growth chamber at 24°C for 3 days, after which time-dependent visual disease assessments were made.
[0556] Test F The test suspension was sprayed onto tomato seedlings until runoff. The next day, the seedlings were inoculated with a spore suspension of Alternaria solani (the causal agent of tomato leaf blight) and incubated for 48 hours at 27°C in a saturated atmosphere, then transferred to a growth chamber at 20°C for 3 days, after which time-course disease assessments were performed.
[0557] The results of tests A-F are shown in Table A below. A rating of 100 indicates 100% disease control, a rating of 0 indicates no disease control (compared to the control). A dash (-) indicates that the compound was not tested.
[0558] [Table 45]
[0559] [Table 46]
[0560] [Table 47]
[0561] [Table 48]
[0562] [Table 49]
[0563] [Table 50]
[0564] The test results for Tests A-F presented above in Table A for compounds of Formula 1 illustrate the fungicidal activity of component (a) which contributes to the plant disease control utility of compositions comprising component (a) in combination with component (b) and, optionally, at least one additional fungicidal compound according to the present invention.
[0565] Test G below demonstrates the control efficacy of compositions of the present invention against Asian soybean rust. The general protocol for preparing the test compositions for Test G was as follows: Compound 41, Compound 63, N-(2,2,2-trifluoroethyl)-2-[[4-[5-(trifluoromethyl)-1,2,4-oxadiazol-3-yl]phenyl]methyl]-4-oxazolecarboxamide (b54.11a), ethyl 1-[[4-[[(1Z)-2-ethoxy-3,3,3-trifluoro-1-propen-1-yl]oxy]phenyl]methyl]-1H-pyrazole-4-carboxylate (b54.11c), ethyl 1-[[4-[[2-(trifluoromethyl)-1,3-dioxolan-2-yl]methoxy]phenyl]methyl]-1H-pyrazole-4-carboxylate (b54.11d), azoxystrobin, benzovindiflupyr, bixafen, chlorothalonil, cyproconazole, epoxiconazole, fenpropidin, fenpropimorph, fluindapyr, flutriafol, fluxapyroxad, inpirfluxam, picoxystrobin, prothioconazole, pydiflumetofen, tebuconazole, and trifloxystrobin were obtained as unformulated, technical-grade materials. Copper hydroxide and mancozeb were obtained as formulated products marketed under the trademarks KOCIDE 3000 and MANZATE, respectively. The unformulated material was first dissolved in acetone and then suspended at the desired concentration (in ppm) in acetone and purified water (50 / 50 mix by volume) containing 250 ppm of the surfactant Trem® 014 (a polyhydric alcohol ester). The formulated material was dispersed in enough water to obtain the desired concentration; no organic alcohol or surfactant was added to the suspension. The resulting test mixture was then used for Test G. Tests were performed on four individual plants, and results were reported as the average of the four plants.
[0566] The existence of a synergistic effect between two active ingredients was established with the help of Colby's equation (see Colby, SR "Calculating Synergistic and Antagonistic Responses of Herbicide Combinations", Weeds, (1967), 15, 20-22):
number
[0567] Using Colby's method, the existence of a synergistic interaction between two active ingredients is established by first calculating the predicted activity, p, of the mixture based on the activity of the two ingredients applied alone. If p is lower than the experimentally established effect, synergy is manifested. In the above equation, A is the fungicidal activity in percentage control units of one ingredient applied alone at rate x. The B term is the fungicidal activity in percentage control units of the second ingredient applied at rate y. This equation estimates p, the expected fungicidal activity of a mixture of A at rate x and B at rate y, if their effects were strictly additive and no interaction was manifested.
[0568] Test G The test mixture was sprayed onto soybean seedlings until runoff. The next day, the seedlings were inoculated with a spore suspension of Phakopsora pachyrhizi (the causal agent of Asian soybean rust), incubated for 24 hours at 22°C in a saturated atmosphere, and then transferred to a growth chamber at 22°C for 8 days, after which time-course disease evaluations were conducted.
[0569] The results of Test G are shown below in Tables B-1 through J-1 for compound 41 and Tables B-2 through J-2 for compound 63. Each table corresponds to a series of evaluations performed together at the same time. In each table, a rating of 100 indicates 100% disease control, and a rating of 0 indicates no disease control (compared to the control). The column labeled "Obsd" indicates the average of the observed results from the tests performed on four individual plants. The column labeled "Exp" indicates the expected value for each treatment mixture using the Colby equation.
[0570] [Table 51]
[0571] [Table 52]
[0572] [Table 53]
[0573] [Table 54]
[0574] [Table 55]
[0575] [Table 56]
[0576] [Table 57]
[0577] [Table 58]
[0578] Table 59
[0579] Table 60
[0580] Table 61
[0581] Table 62
[0582] Table 63
[0583] Table 64
[0584] Table 65
[0585] Table 66
[0586] Table 67
[0587] Table 68
[0588] Table 69
Claims
1. (a) Formula 1 【Chemistry 1】 and salts thereof; (b) at least one additional fungicidal compound selected from the group consisting of: (b3) azaconazole, bitertanol, bromuconazole, buthiobate, cyproconazole, difenoconazole, diniconazole (including diniconazole-M), econazole, epoxiconazole, etaconazole, fenarimol, fenbuconazole, fluquinconazole, flusilazole, flutriafol, hexaconazole, imazalil, imibenconazole, ipconazole, ipfentrifluconazole, mefentrifluconazole, metconazole a demethylation inhibitor (DMI) fungicide selected from azole, myclobutanil, nuarimol, oxpoconazole, pefurazoate, penconazole, prochloraz, propiconazole, prothioconazole, pyrifenox, pyrisoxazole, quinconazole, simeconazole, tebuconazole, tetraconazole, triadimefon, triadimenol, triarimol, triflumizole, triforine, triticonazole, uniconazole, and uniconazole-P; (b5) an amine / morpholine fungicide selected from aldimorph, dodemorph, fenpropidin, fenpropimorph, piperalin, spiroxamine, tridemorph, and trimorphamide; (b7) succinate dehydrogenase inhibitor (SDHI) fungicides selected from benodanil, benzovindiflupyr, bixafen, boscalid, carboxin, fenfuram, fluveneteram, fluindapyr, fluopyram, flutolanil, fluxapyroxad, furametpyr, inpirfluxam, isofetamide, isoflucipram, isopyrazam, mepronil, oxycarboxin, penflufen, penthiopyrad, pydiflumetofen, pyrapropine, pyraziflumid, sedaxane, and thifluzamide; (b9) an anilinopyrimidine (AP) fungicide selected from cyprodinil, mepanipyrim, and pyrimethanil; (b11) a quinone external inhibitor (QoI) fungicide selected from azoxystrobin, cumoxystrobin, dimoxystrobin, enoxastrobin, famoxadone, fenamidone, phenaminestrobin, flufenoxystrobin, fluoxastrobin, kresoxim-methyl, mandestrobin, metominostrobin, orysastrobin, picoxystrobin, pyraclostrobin, pyrametostrobin, pyroxystrobin, pyribencarb, triclopyricarb, and trifloxystrobin; (b16b) a melanin biosynthesis inhibitor-polyketide synthase (MBI-P) fungicide selected from tolprocarb; (b17) a ketoreductase inhibitor (KRI) fungicide selected from fenhexamid, fenpyrazamine, ipflufenoquin, and quinofumelin; (b21) a quinone internal inhibitor (QiI) fungicide selected from amisulbrom, cyazofamid and fenpicoxamid; (b43) a benzamide fungicide selected from fluopicolide and fluopimomide; (b49) an oxysterol binding protein inhibitor (OSBPI) fungicide selected from oxathiapiprolin and fluoxapiprolin; (b52) multi-site active fungicides such as copper oxychloride, copper sulfate, copper hydroxide, Bordeaux composition (tribasic copper sulfide), elemental sulfur, ferbam, mancozeb, maneb, metiram, propineb, thiram, zinc thiazole, zineb, ziram, folpet, captan, captafol, chlorothalonil, dichlofluanid, trifluanid, guazatine, iminoctadine albesilate, iminoctadine triacetate, anilazine, dithianon, quinomethionate, and fluoroimides; and (b54) a fungicide selected from aminopyrifen, bethoxadin, cyflufenamid, diclobenthiazox, dipimetitron, dodine, ferimzone, flometoquin, florylpicoxamide, fluthianil, methyltetraprole, neo-asodine, picarbutrazox, pyrrolnitrin, tebufloquine, tolnifanide, and N-(2,2,2-trifluoroethyl)-2-[[4-[5-(trifluoromethyl)-1,2,4-oxadiazol-3-yl]phenyl]methyl]-4-oxazolecarboxamide; 1. A fungicidal composition comprising:
2. 10. The composition of claim 1, wherein component (b) comprises at least one fungicidal compound selected from two different (b) groups.
3. 10. The composition of claim 1, wherein component (b) comprises at least one compound selected from azoxystrobin, benzovindiflupyr, bixafen, chlorothalonil, cyproconazole, difenoconazole, epoxiconazole, fenpropimorph, fluindapyr, flutriafol, fluxapyroxad, mancozeb (manzate), picoxystrobin, prothioconazole, pydiflumetofen, pyraclostrobin, tebuconazole, and trifloxystrobin.
4. The component (b) is azoxystrobin, benzovindiflupyr, bixafen, chlorothalonil, copper sulfate, cyproconazole, difenoconazole, epoxiconazole, fenpropimorph, florylpicoxamide, fluindapyr, flutriafol, fluxapyroxad, inpirfluxam, isoflucipram, mancozeb, mefentrifluconazole 3. The composition of claim 2, comprising at least two fungicidal compounds selected from the group consisting of benzophenone, metominostrobin, picoxystrobin, prothioconazole, pydiflumetofen, pyraclostrobin, tebuconazole, and trifloxystrobin.
5. The component (b) is azoxystrobin, benzovindiflupyr, boscalid, bixafen, bromuconazole, chlorothalonil, copper sulfate, cyflufenamid, cyproconazole, difenoconazole, dimoxystrobin, epoxiconazole, famoxadone, fenbuconazole, fenpropidin, fenpropimorph, florylpicoxamide, fluindapyr, flusilazole, flutriafol, fluxapyroxad, hexaconazole, inpirfluxam, ipconazole , isoflucipram, kresoxim-methyl, mancozeb, mefentrifluconazole, metconazole, metominostrobin, myclobutanil, penconazole, penthiopyrad, picoxystrobin, prochloraz, propiconazole, prothioconazole, pydiflumetofen, pyraclostrobin, pyrametostrobin, pyroxystrobin, tebuconazole, trifloxystrobin, and triticonazole.
6. 2. The composition of claim 1, wherein component (b) comprises one compound selected from azoxystrobin, benzovindiflupyr, bixafen, chlorothalonil, cyazofamid, cyproconazole, cyprodinil, difenoconazole, epoxiconazole, fenhexamid, fenpropidin, fenpropimorph, fluindapyr, fluopyram, flutriafol, fluxapyroxad, inpirfluxam, mancozeb, picoxystrobin, prothioconazole, pydiflumetofen, tebuconazole, and trifloxystrobin.
7. 7. The composition of claim 6, wherein component (b) comprises one compound selected from benzovindiflupyr, bixafen, difenoconazole, fenpropimorph, fluopyram, flutriafol, fluxapyroxad, prothioconazole, pydiflumetofen, and tebuconazole.
8. 7. The composition of claim 6, wherein component (b) comprises one compound selected from fenpropimorph, fluindapyr, prothioconazole, and tebuconazole.
9. 8. The composition of claim 7, wherein component (b) comprises difenoconazole.
10. 8. The composition of claim 7, wherein component (b) comprises fenpropimorph.
11. 8. The composition of claim 7, wherein component (b) comprises prothioconazole.
12. 8. The composition of claim 7, wherein component (b) comprises tebuconazole.
13. 2. The composition of claim 1, wherein component (b) comprises N-(2,2,2-trifluoroethyl)-2-[[4-[5-(trifluoromethyl)-1,2,4-oxadiazol-3-yl]phenyl]methyl]-4-oxazolecarboxamide.
14. A composition comprising the composition of any one of claims 1 to 13 and at least one additional component selected from the group consisting of surfactants, solid diluents, and liquid diluents.
15. A method for protecting a plant or plant seed from disease caused by a fungal pathogen, comprising applying to said plant or plant seed a fungicidally effective amount of a composition according to any one of claims 1 to 13.
16. 10. A method for protecting a plant from rust diseases, comprising applying a fungicidally effective amount of the composition of claim 1 to the plant or plant seed, wherein component (b) comprises at least one fungicidal compound selected from (b3) demethylation inhibitor fungicides, (b5) amine / morpholine fungicides, (b7) succinate dehydrogenase inhibitor fungicides, (b11) quinone external inhibitor (Qol) fungicides, and (b52) multi-site active fungicides.
17. The composition of any one of claims 1 to 13, wherein the weight ratio of component (a) to component (b) is from 125:1 to about 1:
125.
18. 18. The composition of claim 17, wherein the weight ratio of component (a) to component (b) is from 25:1 to about 1:
25.
19. 19. The composition of claim 18, wherein the weight ratio of component (a) to component (b) is from 5:1 to about 1:
5.
20. 16. The method of claim 15, wherein the fungal pathogen is Phakopsora pachyrhizi.
Citation Information
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