Plant heat resistance or drought resistance improving agent, salt tolerance improving agent, and activity improving agent

JP2024178407A5Active Publication Date: 2025-10-09AC PLANTA INC
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Patent Information

Application Number
JP2024166676
Authority / Receiving Office
JP · JP
Patent Type
Applications
Current Assignee / Owner
Priority Date
2020-02-28
Filing Date
2024-09-25
Publication Date
2025-10-09
Estimated Expiration
2041-03-01

AI Technical Summary

Technical Problem

Existing methods for enhancing plant drought and heat tolerance are inadequate, and there is a need for improved agents that can impart resistance to salt stress and enhance plant activity.

Method used

The application of acetic acid and malic acid, or their salts and solvates, in combination with solvents and at specific pH levels, to improve plant heat resistance, drought resistance, and salt tolerance, and enhance plant activity.

Benefits of technology

The solution significantly enhances plant survival and growth under stress conditions, including increased survival rates, improved root and shoot growth, enhanced flowering, and increased water retention, demonstrating improved tolerance to heat, drought, and salt stress.

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Abstract

To provide means capable of imparting heat tolerance or drying tolerance, salt tolerance, or activity to plants.SOLUTION: The present invention relates to a heat tolerance or drying tolerance improving agent, a salt tolerance improving agent, or an activity improving agent for plants, comprising acetic acid or a salt thereof, or a solvate thereof and malic acid or a salt thereof, or a solvate thereof.SELECTED DRAWING: Figure 1
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Description

[Technical field]

[0001] The present invention relates to an agent for improving the heat tolerance or drought tolerance, an agent for improving salt tolerance, and an agent for improving activity of plants. [Background technology]

[0002] With the current explosive population growth, the production of sufficient quantities of food plants has become a global issue. In addition, desertification due to the reduction in green areas has become an issue, and the rise in earth surface temperatures due to global warming has also become an issue, and environmental problems in growing plants are increasing. In other words, excessive stress in plants due to global environmental factors often causes problems in plant growth.

[0003] One example of stress to plants is drought stress. To combat drought stress, attempts have been made to produce genetically modified plants in which drought-stress-responsive genes have been modified, and to apply chemical or biological regulators that improve drought stress tolerance.

[0004] Patent Document 1 discloses a method for improving drought stress tolerance of a plant, which comprises the steps of applying 10 mM or more acetic acid to the roots of a plant by irrigation and growing the plant under drought stress conditions. Furthermore, Non-Patent Document 1 discloses a drought response network in which plants acquire drought tolerance by stimulating the jasmonic acid signaling pathway and triggering a dynamic shift in metabolic flux from glycolysis to acetate synthesis. [Prior art documents] [Patent documents]

[0005] [Patent Document 1] U.S. Pat. No. 9,258,954 [Non-patent literature]

[0006] [Non-Patent Document 1] Kim, JM et al., Nature Plants, Vol. 3, 17097 (2017) Summary of the Invention [Problem to be solved by the invention]

[0007] However, if the resistance of plants to drought stress could be further improved, this would be advantageous for plant growth. Therefore, the present inventors conducted research with the aim of further improving the drought resistance of plants. In addition, there are stresses other than drought stress that plants may experience during growth, and the present inventors therefore conducted research to determine whether or not it is possible to confer tolerance to plants against stresses that occur during growth in high-temperature environments. The problem to be solved by the present invention is to provide a means capable of imparting heat resistance, drought resistance, salt tolerance, and activity to plants. [Means for solving the problem]

[0008] Means for Solving the Problems The present inventors conducted intensive research to solve the above problems and discovered that application of both acetic acid and malic acid contributes to enabling plants to grow well against heat stress and / or drought stress, thereby completing the present invention.

[0009] That is, the present invention is as follows. (1) 1. An agent for improving the heat tolerance or drought tolerance, salt tolerance or activity of a plant, which comprises acetic acid or a salt thereof, or a solvate thereof, and malic acid or a salt thereof, or a solvate thereof. (2) 1. A plant heat or drought resistance improver, salt tolerance improver, or activity improver, which contains acetic acid or a salt thereof, or a solvate thereof, for use in combination with malic acid or a salt thereof, or a solvate thereof. (3) 1. A plant heat or drought resistance improver, salt tolerance improver, or activity improver, which contains malic acid or a salt thereof, or a solvate thereof, for use in combination with acetic acid or a salt thereof, or a solvate thereof. (4) The heat resistance or desiccation resistance improver, salt tolerance improver, or activity improver according to any one of (1) to (3), further comprising one or more solvents including at least water. (5) The heat resistance or desiccation resistance improver, salt tolerance improver, or activity improver according to (4), which has a pH in the range of 3 to 9. (6) A composition for improving the heat tolerance, drought tolerance, salt tolerance, or activity of a plant, comprising acetic acid or a salt thereof, or a solvate thereof, and malic acid or a salt thereof, or a solvate thereof. (7) A composition for improving the heat tolerance, drought tolerance, salt tolerance, or activity of a plant, comprising acetic acid or a salt thereof, or a solvate thereof, for use in combination with malic acid or a salt thereof, or a solvate thereof. (8) A composition for improving heat tolerance, drought tolerance, salt tolerance, or activity of a plant, comprising malic acid or a salt thereof, or a solvate thereof, for use in combination with acetic acid or a salt thereof, or a solvate thereof. (9) The composition according to any one of (6) to (8), further comprising one or more solvents including at least water. (10) The composition according to (9), having a pH in the range of 3 to 9. (11) A method for improving the heat tolerance, drought tolerance, salt tolerance, or activity of a plant, comprising applying acetic acid or a salt thereof, or a solvate thereof, and malic acid or a salt thereof, or a solvate thereof to a plant, a material for application to a plant, or to the soil, medium, or culture solution in which the plant grows. (12) Obtaining one or more pieces of information regarding plant growth; determining conditions for applying the heat tolerance or drought tolerance improver, salt tolerance improver, or activity improver described in any one of (1) to (5) or the composition described in any one of (6) to (10) to a plant, a material for applying to a plant, or to the soil, medium, or culture solution in which a plant grows, based on one or more pieces of information obtained; A method for managing plant growth, comprising: (13) A method for improving the heat tolerance, drought tolerance, salt tolerance, or activity of a plant, comprising using acetic acid or a salt thereof, or a solvate thereof, and malic acid or a salt thereof, or a solvate thereof in combination. (14) A method for improving heat tolerance, drought tolerance, salt tolerance, or activity of a plant, using acetic acid or a salt thereof, or a solvate thereof, and malic acid or a salt thereof, or a solvate thereof. Effect of the Invention

[0010] The present invention makes it possible to provide a means capable of imparting heat tolerance, drought tolerance, salt tolerance, and / or activity to plants. [Brief description of the drawings]

[0011] [Figure 1] 1A and 1B show the results of heat dehydration resistance test 1 and heat dehydration resistance test 2 using lettuce (Lettuce). [Diagram 2] FIG. 2 shows the results of heat dehydration resistance test 3 using tomato. [Diagram 3] FIG. 3 shows the results of activation test 1 using peperomia (effect on flower bud induction and growth). [Figure 4] FIG. 4 shows the results of activation test 2 (effect on plant growth (post-harvest plant size)) using spinach. [Diagram 5] FIG. 5 shows the results of activation test 2 (effect on plant growth (post-harvest plant size)) using spinach. [Figure 6]FIG. 6 shows the results of activation test 3 using carrot (effect on root growth (post-harvest plant size)). [Figure 7] FIG. 7 shows the results of activation test 3 using carrot (effect on root growth (post-harvest plant size)). [Figure 8] FIG. 8 shows the results of activation test 4 (effect on root induction) using A. aromaticus. [Figure 9] FIG. 9 shows the results of activation test 4 (effect on root induction) using A. aromaticus. [Figure 10] FIG. 10 is a diagram showing the results of activation test 5 (maintenance of freshness and moisture after harvest) using spinach. [Figure 11] FIG. 11 is a diagram showing the results of activation test 5 (maintenance of freshness and moisture after harvest) using spinach. [Figure 12] FIG. 12 shows the results of activation test 6 using North Pole (effect on flower bud induction and growth). DETAILED DESCRIPTION OF THE PREFERRED EMBODIMENTS

[0012] Hereinafter, an embodiment of the present invention will be described in detail, however, the present invention is not limited to the following embodiment and can be practiced with various modifications.

[0013] The present invention relates to an agent for improving heat tolerance or drought tolerance, an agent for improving salt tolerance, or an agent for improving activity of a plant, which comprises acetic acid or a salt thereof, or a solvate thereof, and malic acid or a salt thereof, or a solvate thereof. In the present invention, the heat tolerance and / or drought tolerance, salt tolerance, or activity of a plant can be improved by applying to the plant a plant heat tolerance or drought tolerance improver, a salt tolerance improver, or an activity improver. The heat resistance or desiccation resistance improver for plants of the present invention may be a heat resistance improver, a desiccation resistance improver, or a heat resistance improver and a desiccation resistance improver. In addition, the heat resistance improver or desiccation resistance improver for plants of the present invention may be a heat resistance improver or a desiccation resistance improver for plants. Furthermore, when the heat resistance improver or desiccation resistance improver for plants of the present invention is an agent capable of improving the heat resistance and / or desiccation resistance of a plant, it may be a heat desiccation resistance improver. The plant heat tolerance or drought tolerance improver, salt tolerance improver, or activity improver of the present invention can be used as an agricultural chemical or agricultural chemical formulation. In the present invention, by applying to a plant a heat tolerance or drought tolerance improver, a salt tolerance improver, or an activity improver, it is possible to impart to the plant tolerance to stress during plant growth in an environment such as a high temperature environment or saline soil, which has an unfavorable effect on plant growth. In this specification, imparting to a plant tolerance to stress during plant growth does not mean complete tolerance.

[0014] In the present invention, the plant heat tolerance or drought tolerance improver, salt tolerance improver, or activity improver includes acetic acid or a salt thereof, or a solvate thereof (hereinafter sometimes referred to as "acetic acid, etc." in this specification). In addition, in the present invention, the plant heat tolerance or drought tolerance improver, salt tolerance improver, or activity improver includes malic acid or a salt thereof, or a solvate thereof (hereinafter sometimes referred to as "malic acid, etc." in this specification). Here, acetic acid, etc., together with malic acid, etc., is not particularly limited as long as it exhibits the properties of an agent for improving heat resistance or desiccation resistance, salt tolerance, or activity of a plant; however, the agent for improving heat resistance or desiccation resistance, salt tolerance, or activity of a plant contains acetic acid, etc. as an active ingredient. In the present invention, an active ingredient means a component contained in a plant heat resistance or drought resistance improver, salt tolerance improver, or activity improver, which is capable of improving heat resistance, drought resistance, salt tolerance, or activity as a property of the agent. The acetic acid etc. used in the present invention may be acetic acid etc. for industrial use or acetic acid etc. for food use. As the acetic acid, safe and inexpensive acetic acid such as wood vinegar that is also used for agricultural purposes or brewed vinegar produced by fermentation or the like may be used. The use of acetic acid and the like as an agent for improving the heat resistance or drought resistance, salt tolerance, or activity of the plant of the present invention is preferable because of its high safety and low cost.

[0015] The acetic acid etc. used in the present invention may be not only acetic acid itself but also a salt of acetic acid. The salt of acetic acid is not particularly limited as long as it is a salt that can supply acetate ions, but examples thereof include salts with cations, such as sodium acetate, potassium acetate, calcium acetate, magnesium acetate, zinc acetate ions, and ammonium acetate. In the case of ammonium acetate, the acetate may be a substituted or unsubstituted ammonium salt instead of the ammonium ion. Among them, as the salt of acetic acid, potassium acetate, sodium acetate, ammonium acetate, magnesium acetate, and calcium acetate can be preferably used. In addition, liquid fertilizer obtained by dissolving egg shells in vinegar can be used as acetic acid, etc. In the present invention, acetic acid and an acetate may be used as a mixture. The mixture of acetic acid and an acetate may be a mixture of acetic acid itself and an acetate, or may be a mixture of acetic acid and an acetate produced by neutralization reaction in the form of an aqueous solution by adding a cation source that forms a salt with acetate ions to acetic acid. In this case, acetic acid may be completely neutralized, or the cation source may be added in an amount such that part of the acetic acid is neutralized. An example of an aqueous solution containing an acetate salt is an acetate buffer solution.

[0016] The acetic acid etc. used in the present invention may be a solvate of acetic acid or a solvate of an acetate salt. Solvents capable of forming solvates of acetic acid or a salt thereof include, but are not limited to, water, and organic solvents such as alcohol, dimethyl sulfoxide (DMSO), ethanolamine, and ethyl acetate. The alcohol may be, for example, a lower alcohol or a higher alcohol. The lower alcohol is not particularly limited, but examples thereof include saturated or unsaturated linear or branched alkyl alcohols having 1 to 6 carbon atoms, such as methanol, ethanol, or 2-propanol (isopropyl alcohol), and the higher alcohol is not particularly limited, but examples thereof include saturated or unsaturated linear or branched alkyl alcohols having 7 or more carbon atoms, such as 1-heptanol or 1-octanol. The solvent that forms the solvate may be a single solvent or two or more solvents. Regarding the solvate, for example, when used as an aqueous solution of a solvate, the form of acetic acid or the like in the aqueous solution is not particularly limited, and it does not have to be solvated.

[0017] The acetic acid, etc. used in the present invention is acetic acid, its salt, or a solvate thereof, but may be one or more compounds selected from the group consisting of acetic acid, its salt, or a solvate thereof. Compounds included in the group consisting of acetic acid, its salt, or a solvate thereof can be appropriately selected in any combination from the compounds described above for acetic acid, acetic acid salts, or solvates thereof. In the agent, composition, etc. of the present invention, acetic acid etc. may be present as acetic acid and / or a salt of acetic acid. The salt of acetic acid may be potassium acetate, sodium acetate, ammonium acetate, magnesium acetate, calcium acetate, or may be selected from any combination thereof, but may be potassium acetate, sodium acetate, ammonium acetate, potassium acetate, sodium acetate, magnesium acetate, or calcium acetate.

[0018] In the present invention, the heat tolerance or drought resistance improver, salt tolerance improver, or activity improver for plants contains malic acid, etc., and the malic acid, etc. is not particularly limited as long as it exhibits the properties of a heat tolerance or drought resistance improver, salt tolerance improver, or activity improver for plants, but the heat tolerance or drought resistance improver, salt tolerance improver, or activity improver for plants contains malic acid, etc. as an active ingredient. The malic acid, etc. used in the present invention is not particularly limited, and may be malic acid, etc. that can be used for any purpose, and may be malic acid, etc. for industrial or food purposes. The use of malic acid or the like as an agent for improving the heat tolerance or drought tolerance, salt tolerance, or activity of the plant of the present invention is preferable because of its high safety and low cost.

[0019] The malic acid or the like used in the present invention may be not only malic acid itself but also a salt of malic acid. The salt of malic acid is not particularly limited as long as it is a salt that can supply malic acid ions, but examples thereof include salts with cations, such as sodium malate, potassium malate, calcium malate, magnesium malate, zinc malate ions, and ammonium acetate. In the case of ammonium malate, the ammonium ion may be replaced by a substituted or unsubstituted ammonium malate. Among them, as the salt of malic acid, potassium malate, sodium malate, ammonium malate, magnesium malate, and calcium malate can be preferably used. Also, liquid fertilizer obtained by dissolving egg shells in apple cider vinegar can be used as malic acid, etc. In the present invention, malic acid and a malate may be used as a mixture. The mixture of malic acid and a malate may be a mixture of malic acid itself and a malate, or may be a mixture of malic acid and a malate produced by neutralization reaction as an aqueous solution by adding a cation source that forms a salt with malate ions to malic acid. In this case, malic acid may be completely neutralized, or the cation source may be added in an amount that neutralizes a part of malic acid. An example of an aqueous solution containing a malate is a malic acid buffer solution.

[0020] The malic acid etc. used in the present invention may be a solvate of malic acid or a solvate of a malate. Solvents capable of forming solvates of malic acid or its salts include, but are not limited to, water, and organic solvents such as alcohol, dimethyl sulfoxide (DMSO), ethanolamine, and ethyl acetate. The alcohol may be, for example, a lower alcohol or a higher alcohol. The lower alcohol is not particularly limited, but examples thereof include saturated or unsaturated linear or branched alkyl alcohols having 1 to 6 carbon atoms, such as methanol, ethanol, or 2-propanol (isopropyl alcohol), and the higher alcohol is not particularly limited, but examples thereof include saturated or unsaturated linear or branched alkyl alcohols having 7 or more carbon atoms, such as 1-heptanol or 1-octanol. The solvent that forms the solvate may be a single solvent or two or more solvents. Regarding the solvate, for example, when used as an aqueous solution of a solvate, the form of malic acid or the like in the aqueous solution is not particularly limited, and it does not have to be solvated.

[0021] The malic acid, etc. used in the present invention is malic acid, its salt, or a solvate thereof, but may be one or more compounds selected from the group consisting of malic acid, its salt, or a solvate thereof. Compounds included in the group consisting of malic acid, its salt, or a solvate thereof can be appropriately selected in any combination from the compounds described above for malic acid, malic acid salts, or solvates thereof. In the agent, composition, etc. of the present invention, malic acid etc. may be present as malic acid and / or a salt of malic acid. The salt of malic acid may be potassium malate, sodium malate, ammonium malate, magnesium malate, calcium malate, or may be selected from any combination thereof, and may be potassium malate, sodium malate, ammonium malate, potassium malate, sodium malate, magnesium malate, or calcium malate.

[0022] The salt of acetic acid and the salt of malic acid may be the same cation source, or when salts of different cation sources are used, for example, in a solution (preferably an aqueous solution), the cation sources may exist as salt forms (however, if dissociated, they are not recognized as specific salts) with acetic acid or malic acid in respective ratios depending on the properties of the cation sources.

[0023] In the present invention, the heat resistance improver, desiccation resistance improver, salt tolerance improver, or activity improver may contain acetic acid or the like in order to be used in combination with malic acid or the like, and may contain malic acid or the like in order to be used in combination with acetic acid or the like. The combined use of acetic acid etc. and malic acid etc. may mean that acetic acid etc. and malic acid etc. are applied to the plant as a single mixture, that a composition containing acetic acid etc. and a composition containing malic acid etc. are applied to the plant simultaneously or at different times, that acetic acid etc. is applied to the plant and then used in combination with the malic acid etc. contained in the plant in an attempt to achieve the desired effect, or that malic acid etc. is applied to the plant and then used in combination with the acetic acid etc. contained in the plant in an attempt to achieve the desired effect.

[0024] In the present invention, "heat resistance improver" and "improving heat resistance" mean that by applying the plant heat resistance improver of the present invention to a population of plants, heat stress, which is an unfavorable effect on plant growth, such as inability to grow (death), poor growth (for example, whitening or yellowing of the whole plant or parts thereof (for example, leaves or flowers), reduced root length or reduced number of leaves, or lodging), reduced growth rate, or reduced plant weight or crop yield, can be substantially alleviated. The fact that the plant is a "heat tolerance improver" or that it "improves heat tolerance" can be confirmed by comparing the plant with a population of control plants to which the heat tolerance improver of the present invention has not been applied, and can also be confirmed by an improvement in survival rate of typically 30% or more, preferably 50% or more, 60% or more, 70% or more, more preferably 80% or more, even more preferably 85% or more, and particularly preferably 90% or more.

[0025] As used herein, "heat stress" means being placed in an environment with a temperature of 60°C or less, and may be an environment with a temperature of 50°C or less, or 45°C or less. Furthermore, if a constant temperature is usually considered to be around 25°C, then "heat stress" is preferably an environment of 30°C or higher, and more preferably an environment of 35°C or higher. In the present invention, confirmation of being a "heat resistance improver" or "improving heat resistance" is not particularly limited, but may be evaluated by the following means, and more specifically, may be evaluated by the method described in the examples. For example, a target plant is grown in a certain amount of test solution (containing water and, optionally, normal nutrients) under normal growth conditions, i.e., under non-heat stress conditions. After growing for a certain period of time, a heat tolerance improving agent is applied, and the target plant is then grown under heat stress conditions, and then grown under normal growth conditions, i.e., under non-heat stress conditions, and the survival rate of the target plant is measured for evaluation. The heat stress conditions may be such that the sample is allowed to stand for 30 minutes or more under the temperature conditions of the above-mentioned "heat stress," and the time for which the sample is allowed to stand may be set depending on the temperature conditions. The heat stress conditions are preferably constant humidity conditions, in particular conditions where the plant is left standing without water supply.

[0026] In the present invention, "drought tolerance improver" and "improving drought tolerance" mean that by applying the plant drought tolerance improver of the present invention to a population of plants, drought stress, which is an unfavorable effect on plant growth, such as inability to grow (death), poor growth (e.g., whitening or yellowing of the whole plant or parts thereof (e.g., leaves or flowers), reduced root length or reduced number of leaves, or lodging), reduced growth rate, or reduced plant weight or crop yield, can be substantially alleviated. The fact that the plant is a "drought tolerance improver" or that it "improves drought tolerance" can be confirmed by comparing it with a population of control plants to which the drought tolerance improver of the present invention has not been applied, and can also be confirmed by an improvement in survival rate of typically 30% or more, preferably 50% or more, 60% or more, 70% or more, more preferably 80% or more, even more preferably 85% or more, and particularly preferably 90% or more.

[0027] As used herein, "drought stress" means being placed in an environment of low humidity. The cause of drought stress is not particularly limited, but in the present invention, it may be drought stress based on temperature conditions, and examples of the cause include drought stress accompanied by high temperature without the addition of water. Changes in humidity affect changes in the water content of individual plants and soil. Therefore, when humidity is high, the effect of improving heat resistance and desiccation resistance is more pronounced. Also, when humidity is high and heat or desiccation stress is gradually applied, the effect of mixing malic acid, etc. is more pronounced. In other words, the effect is more pronounced at humidity levels where heat and / or desiccation stress is likely to occur. In the present invention, confirmation of a "drought resistance improver" or "improving dry resistance" is not particularly limited, but may be evaluated by the following means, and more specifically, may be evaluated by the method described in the examples. For example, a target plant is grown under normal growth conditions, i.e., under non-drought stress conditions, in a test solution containing a certain amount of water and, optionally, normal nutrients. After growing for a certain period of time, a drought tolerance enhancer is applied, and the plant is then grown under drought stress conditions, and then grown under normal growth conditions, i.e., under non-drought stress conditions, and the survival rate of the target plant is measured for evaluation. The drought stress conditions may be such that the plant is allowed to stand for 30 minutes or more under the humidity conditions for "drought stress" described above, and the time for which the plant is allowed to stand may be set depending on the type and concentration of the drought resistance improver. The drought stress conditions are preferably low humidity conditions, in particular conditions in which the plant is allowed to stand without watering.

[0028] In the present invention, the agent for improving the heat resistance or drought resistance of a plant may be an agent for improving the heat resistance of a plant, or an agent for improving the drought resistance of a plant, or an agent for improving both the heat resistance of a plant and the drought resistance of a plant. In the present invention, the plant heat tolerance or desiccation tolerance improver, salt tolerance improver, or activity improver may be a composition containing acetic acid, etc. and malic acid, etc., which improves the heat tolerance, desiccation tolerance, salt tolerance, or activity of a plant. In other words, in this specification, "an agent for improving the heat resistance or drought resistance, salt tolerance, or activity of a plant" can also be understood to have the same meaning as "a composition that improves the heat resistance, drought resistance, salt tolerance, or activity of a plant."

[0029] In each aspect of the present invention, the effect of the plant heat tolerance or drought tolerance improver, salt tolerance improver, or activity improver may include an effect on the growth of the plant itself, for example, a growth-promoting effect such as elongation of stems, leaves, or roots, an increase in the number of leaves, promotion of flowering or fruiting, an increase in the number of flowers or fruits, an increase in plant weight or crop yield, greening, or promotion of tillering.

[0030] The agent for improving the heat resistance or drought resistance of a plant of the present invention may be used for activating a plant as described below, with or without utilizing the properties of heat resistance or drought resistance. In addition, in the present invention, the plant activity enhancer may contain acetic acid or the like and malic acid or the like and exhibit the following effects. 1) Root elongation and improved root survival rate 2) Increased efficiency of nutrient absorption 3) Induction of flower buds, promotion of flowering, and increase in fruit production 4) Accumulation of sugar and other substances 5) Increased water saving effect 6) Callus induction effect 7) Increase in plant size, especially elongation or thickening of above-ground and below-ground parts 8) Repairing scratches In the present invention, the plant activity enhancer may exhibit the actions 1) to 8) above, or may have a growth-promoting effect such as elongation of stems, leaves or roots, an increase in the number of leaves, promotion of flowering or fruiting, an increase in the number of flowers or fruits, an increase in plant weight or crop yield, greening, or promotion of tillering. That is, in the present invention, acetic acid and the like and malic acid and the like can be applied to plants and used as a plant activator or vitality enhancer. A plant activator or vitality enhancer means that it has an advantage in plant growth. In the present invention, acetic acid, etc. and malic acid, etc. can be applied to a plant to energize the plant. In addition, in the present invention, acetic acid, etc. and malic acid, etc. can be applied to a plant to promote the growth of the plant, and may be used as a growth promoter. In the present invention, the compound may also be used as an agent for improving the salt tolerance of plants, which contains acetic acid and malic acid.

[0031] In the present invention, by applying acetic acid etc. and malic acid etc. to a plant, it is possible to improve the heat tolerance and / or drought tolerance against heat stress and / or drought stress. Furthermore, in the present invention, by applying acetic acid, etc. and malic acid, etc. to a plant, it is possible to improve salt tolerance against salt stress. Furthermore, in the present invention, acetic acid and the like and malic acid and the like can be applied to plants to improve the activity of the plants. The plant heat resistance or drought resistance improver, salt tolerance improver, or activity improver of the present invention, and the composition that improves the plant heat resistance, drought resistance, salt tolerance, or activity, can be used as an agricultural chemical formulation or pesticide to promote plant growth.

[0032] In the present invention, the plant heat tolerance or drought tolerance enhancer, salt tolerance enhancer, or activity enhancer may be in any form, such as, for example, a solid (e.g., a powder or granules), a liquid (e.g., a solution or suspension), or a gas. In the present invention, the agent for improving heat tolerance or drought tolerance, the agent for improving salt tolerance, or the activity improver of a plant is preferably used in the form of a liquid such as a solution or suspension. In the present invention, when the plant heat tolerance or drought tolerance improver, salt tolerance improver, or activity improver is used as a solution, it may be in a liquid state, and may be used as a liquid prepared just before application. In the present invention, when the compound is used as an agent for improving heat and desiccation resistance of plants, the contents described in the present invention for improving heat and desiccation resistance of plants are similarly applicable, as are the contents described in the present invention for improving salt tolerance of plants and for improving plant vitality.

[0033] In the plant heat tolerance or drought tolerance improver, salt tolerance improver, or activity improver of the present invention, acetic acid and the like and malic acid and the like, preferably acetic acid and malic acid, may be used alone as active ingredients or may be used in combination with one or more agriculturally acceptable ingredients. Acetic acid and malic acid may be used, or acetic acid and malic acid may be used. One or more types of acetic acid and the like may be used, or one or more types of malic acid and the like may be used. That is, two or more types of acetic acid and the like may be used, or two or more types of malic acid and the like may be used, or acetic acid and one or more types of acetic acid and malic acid and one or more types of malic acid and the like other than malic acid may be used, or acetic acid and malic acid and one or more types of malic acid and the like other than malic acid may be used, or acetic acid and malic acid may be used. Furthermore, one or more types of acetic acid and the like other than acetic acid and one or more types of malic acid and the like other than malic acid may be used. The plant heat tolerance or drought tolerance improver, salt tolerance improver, or activity improver of the present invention can be formulated as a pesticide or agricultural chemical preparation into various formulations commonly used in the art depending on the desired application method. The plant heat tolerance or drought tolerance improver, salt tolerance improver, or activity improver of the present invention may further contain one or more agriculturally acceptable ingredients in addition to acetic acid etc. and malic acid etc. Agriculturally acceptable ingredients include solvents or carriers, excipients, binders, solubilizers, stabilizers, thickeners, swelling agents, lubricants, surfactants, oily liquids, buffers, bactericides, antifreeze agents, antifoaming agents, colorants, antioxidants, additives, fertilizers, and further agents. The agriculturally acceptable solvent or carrier is preferably an agriculturally acceptable solvent or liquid carrier such as water, a mineral oil fraction such as kerosene or diesel oil, an oil of vegetable or animal origin, a cyclic or aromatic hydrocarbon (e.g. paraffin, tetrahydronaphthalene, alkylated naphthalenes or derivatives thereof, or alkylated benzenes or derivatives thereof), an alcohol (e.g. methanol, ethanol, propanol, butanol, ethylene glycol, glycerol or cyclohexanol), a ketone (e.g. cyclohexanone), or an amine (e.g. N-methylpyrrolidone), or a mixture thereof, more preferably one or more solvents comprising at least water. As the fertilizer, organic fertilizers such as oil cake or cow dung, or inorganic fertilizers such as ammonium sulfate, lime nitrogen or fused phosphorus are preferred.

[0034] When the plant heat tolerance or drought tolerance improver, salt tolerance improver, or activity improver of the present invention further contains one or more solvents including at least water, the pH of a solution of the plant heat tolerance or drought tolerance improver, salt tolerance improver, or activity improver of the present invention is preferably in the range of 3 to 9, and within that range, the lower pH limit may be 4 or more, 5 or more, or 6 or more, and the upper pH limit may be 8.5 or less, 8 or less, 7.5 or less, or 7 or less. The pH range is more preferably from 4 to 8, further preferably from 5 to 7.5, and even more preferably from 5 to 7. The pH range may be from 5 to 6, or may be from 6 to 7. The pH of the plant heat tolerance or drought tolerance improver, salt tolerance improver, or activity improver is preferably within the above range at the time of application to the target plant. The pH of the plant heat tolerance or drought tolerance improver, salt tolerance improver, or activity improver of the present invention may be adjusted with an acid or alkali, for example, with an acid, alkali, or buffer such as hydrochloric acid, nitric acid, sulfuric acid, sodium hydroxide, potassium hydroxide, aqueous ammonia, or ammonium acetate. In the plant heat tolerance or drought tolerance improver, salt tolerance improver, or activity improver of the present invention, it is preferable that the pH is within the above-mentioned range at the time of application to the target plant. However, even if the pH is not within the above-mentioned range at the time of application to the target plant, the pH may be adjusted to be within the above-mentioned range by utilizing the pH buffering action of the soil, culture medium, or culture solution to which the agent is applied.

[0035] When the plant heat tolerance or drought tolerance improver or salt tolerance improver of the present invention further contains one or more solvents including at least water, the ratio of acetic acid etc. to the total volume of the plant heat tolerance or drought tolerance improver or salt tolerance improver of the present invention is preferably in the range of 0.01 to 0.5 volume %, and within that range, the lower limit of the ratio may be 0.05 volume % or more, 0.075 volume % or more, 0.09 volume % or more, or 0.1 volume % or more, and the upper limit of the ratio may be 0.25 volume % or less, 0.2 volume % or less. The proportion of acetic acid etc. is more preferably in the range of 0.05 to 0.5 volume %, even more preferably in the range of 0.075 to 0.25 volume %, still more preferably in the range of 0.09 to 0.2 volume %, and particularly preferably in the range of 0.1 to 0.2 volume %.

[0036] When the plant heat tolerance or drought tolerance improver or salt tolerance improver of the present invention further contains one or more solvents including at least water, the concentration of acetic acid, etc. in the plant heat tolerance or drought tolerance improver or salt tolerance improver of the present invention is preferably in the range of 1 to 100 mM, and within that range, the lower limit of the concentration may be 2 mM or more, 5 mM or more, 7.5 mM or more, 9 mM or more, or 10 mM or more, and the upper limit of the concentration may be 50 mM or less, 40 mM or less, or 30 mM or less. The proportion of acetic acid or the like is more preferably in the range of 1 to 50 mM, even more preferably in the range of 7.5 to 50 mM, even more preferably in the range of 9 to 40 mM, and particularly preferably in the range of 10 to 40 mM.

[0037] When the plant heat tolerance or drought tolerance improver or salt tolerance improver of the present invention further contains one or more solvents including at least water, the concentration of malic acid, etc. in the plant heat tolerance or drought tolerance improver or salt tolerance improver of the present invention is preferably in the range of 1 to 100 mM, and within that range, the lower limit of the concentration may be 2 mM or more, 5 mM or more, 7.5 mM or more, 9 mM or more, or 10 mM or more, and the upper limit of the concentration may be 50 mM or less, 40 mM or less, or 30 mM or less. The proportion of malic acid etc. is more preferably in the range of 1 to 50 mM, even more preferably in the range of 7.5 to 50 mM, even more preferably in the range of 9 to 40 mM, and particularly preferably in the range of 10 to 40 mM.

[0038] When acetic acid, etc. and malic acid, etc. in the present invention are used in combination or as a mixture for plant activation, in addition to the contents described for the concentrations (volume % or mM) of acetic acid, etc. and malic acid, etc. when used as a heat tolerance or drought tolerance improver or salt tolerance improver for plants, the concentration of malic acid, etc. may be in the range of 1 to 100 mM, but may also be a concentration of 1 mM or less. When used for plant activation, the concentration of malic acid, etc. may be in the range of more than 0 mM to 100 mM, and the lower limit may be set from a range of more than 0 mM to 1 mM or less, or the above-mentioned lower limit may be set as a range of 1 mM or more. When the lower limit of the concentration is set from a range of 1 mM or less, the mM is 10 -5 Concentrations on the order of 10 -4 Concentrations on the order of 10 -3 Concentrations on the order of 10 -2 Concentrations on the order of 10 -1 The lower limit of the concentration may be on the order of .

[0039] When the plant heat tolerance or drought tolerance improver, salt tolerance improver, or activity improver of the present invention further contains one or more solvents including at least water, it is preferable that the pH is within the above-mentioned range and that the concentrations of acetic acid, etc. and malic acid, etc. are within the above-mentioned range. The pH and concentration can be appropriately selected within the above ranges.

[0040] The plant heat tolerance or drought tolerance improver, salt tolerance improver, or activity improver of the present invention may contain one or more additional agents. The agent is not particularly limited, but examples thereof include auxin, gibberellin, cytokinin, 2-chloroethylphosphonic acid (trade name: Ethrel (registered trademark)), carbide, benzyladenine, brassinosteroid, strigolactone, jasmonic acid, etc. In addition, the agent may be a plant hormone, a plant chemical regulator, an agricultural chemical, etc. that are commonly used in the technical field.

[0041] In the present invention, the target plant is not particularly limited, and is selected from, for example, angiosperms and gymnosperms. Target plants include, but are not limited to, Asteraceae plants such as chrysanthemums and gerberas, Solanaceae plants such as potatoes, tomatoes, and eggplants, Cruciferae plants such as rapeseed and rapeseed, Gramineae plants such as rice, corn, wheat, sugarcane, and barley, Legumes such as soybeans, Apiaceae plants such as carrots, Lamiaceae plants such as basil, mint, and rosemary, Convolvulaceae plants such as morning glory, Salicaceae plants such as poplar, and Tobacco plants such as castor beans, cassava, and jatropha. Examples of the plant include plants of the Dictyostelium family, plants of the Convolvulaceae family such as sweet potato, plants of the Rutaceae family such as oranges and lemons, plants of the Rosaceae family such as cherry blossoms and roses, plants of the Orchidaceae family such as Phalaenopsis, plants of the Gentianaceae family such as bellflowers, plants of the Primula family such as cyclamen, plants of the Violaceae family such as pansies, plants of the Liliaceae family such as lilies, plants of the Amaranthaceae family such as sugar beets, plants of the Vitaceae family such as grapes, plants of the Cupressaceae family such as cedars and cypresses, plants of the Oleaceae family such as olives and sweet osmanthus, and plants of the Pinaceae family such as red pine. Plants used in the examples may also be used. The target plant may be not only the whole plant (i.e., the complete plant body), but also parts of the plant, such as plant tissues or organs (e.g., cut flowers, or vegetative propagation organs such as rhizomes, tubers, corms or runners), cultured cells and / or callus. The plant heat tolerance or drought tolerance improver, salt tolerance improver, or activity improver of the present invention can be applied to the whole plant or a part thereof at any growth stage, including before or after the plant germinates (e.g., the whole plant, a seed, a seedling, or a mature plant, or a part thereof).

[0042] The plant heat tolerance or drought tolerance improver, salt tolerance improver, or activity improver of the present invention may be applied not only to the plant itself, but also to materials for application to the plant, or to the soil, medium, or culture solution in which the plant grows. The present invention also relates to a method for improving the heat tolerance, drought tolerance, salt tolerance, or activity of a plant, which comprises applying acetic acid, etc. and malic acid, etc., preferably agriculturally effective amounts of acetic acid and malic acid, to a plant, a material for applying to a plant, or the soil, medium, or culture solution in which the plant is grown. In this case, acetic acid, etc. and malic acid, etc., preferably agriculturally effective amounts of acetic acid and malic acid, may be applied as a mixed solution. In the method of the present invention, the acetic acid, malic acid, etc., and other embodiments to be applied are as described herein as the plant heat tolerance or drought tolerance improver, salt tolerance improver, or activity improver. Materials to be applied to plants are not particularly limited, but examples thereof include various materials commonly used in the art, such as water and fertilizer.

[0043] The formulation of the plant heat resistance or drought resistance improver, salt tolerance improver, or activity improver of the present invention is not particularly limited, and may be in the form of an emulsion, wettable powder, liquid, water-soluble agent, dust, powder, paste, granules, or the like that is commonly used in the art. In each embodiment of the present invention, acetic acid etc. is contained or applied in an agriculturally effective amount. In each embodiment of the present invention, the agriculturally effective amount of acetic acid etc. is, for example, in the range of 0.01 to 0.5% by mass relative to the total mass at the time of application, usually in the range of 0.05 to 0.5% by mass relative to the total mass at the time of application, typically in the range of 0.075 to 0.25% by mass relative to the total mass at the time of application, more typically in the range of 0.09 to 0.2% by mass relative to the total mass at the time of application, and particularly in the range of 0.1 to 0.2% by mass relative to the total mass at the time of application. For example, when the plant heat tolerance or drought tolerance improver, salt tolerance improver, or activity improver of the present invention is in a liquid formulation, an agriculturally effective amount of acetic acid etc. is, for example, in the range of 0.01 to 0.5 volume % relative to the total volume at the time of application, usually in the range of 0.05 to 0.5 volume % relative to the total volume at the time of application, typically in the range of 0.075 to 0.25 volume % relative to the total volume at the time of application, more typically in the range of 0.09 to 0.2 volume % relative to the total mass at the time of application, and particularly in the range of 0.1 to 0.2 volume % relative to the total mass at the time of application.

[0044] In each embodiment of the present invention, malic acid etc. is contained or applied in an agriculturally effective amount. In each embodiment of the present invention, the agriculturally effective amount of malic acid etc. is, for example, in the range of 0.01 to 0.5% by mass relative to the total mass at the time of application, usually in the range of 0.05 to 0.5% by mass relative to the total mass at the time of application, typically in the range of 0.075 to 0.25% by mass relative to the total mass at the time of application, more typically in the range of 0.09 to 0.2% by mass relative to the total mass at the time of application, and particularly in the range of 0.1 to 0.2% by mass relative to the total mass at the time of application. For example, when the plant heat tolerance or drought tolerance improver, salt tolerance improver, or activity improver of the present invention is in a liquid formulation, an agriculturally effective amount of malic acid etc. is, for example, in the range of 0.01 to 0.5 volume % relative to the total volume at the time of application, usually in the range of 0.05 to 0.5 volume % relative to the total volume at the time of application, typically in the range of 0.075 to 0.25 volume % relative to the total volume at the time of application, more typically in the range of 0.09 to 0.2 volume % relative to the total mass at the time of application, and particularly in the range of 0.1 to 0.2 volume % relative to the total mass at the time of application.

[0045] In plant cultivation, by appropriately setting the conditions for applying the plant heat tolerance or drought tolerance improver, salt tolerance improver, or activity improver of the present invention to the plant, materials for applying to the plant, or the soil, medium, or culture solution in which the plant grows, based on the state of plant growth, it is possible to stably manage the growth of the plant while improving the heat tolerance, drought tolerance, salt tolerance, and activity of the plant. The present invention relates to Obtaining one or more pieces of information regarding plant growth (hereinafter also referred to as "information acquisition step"); determining conditions for applying the plant heat tolerance or drought tolerance improver, salt tolerance improver, or activity improver of the present invention to a plant, a material for applying the plant, or to the soil, medium, or culture solution in which the plant grows, based on one or more pieces of information obtained (hereinafter also referred to as "application condition determining step"); The present invention also relates to a method for controlling plant growth, comprising:

[0046] The one or more pieces of information regarding plant growth acquired in the information acquisition process are not particularly limited, and examples thereof include various information regarding growth promotion effects such as elongation of stems, leaves or roots, increased leaf number, promoted flowering or fruiting, increased number of flowers or fruits, increased plant weight or crop yield, greening, or promoted tillering under heat stress, drought stress, or salt stress conditions, or even in the absence of these conditions, as well as various information regarding unfavorable effects on plant growth such as inability to grow (death), poor growth (for example, whitening or yellowing of the entire plant or parts thereof (e.g., leaves or flowers), reduced root length or reduced leaf number, or lodging), reduced growth rate, or reduced plant weight or crop yield. By acquiring one or more pieces of information exemplified above, the state of plant growth can be evaluated.

[0047] The conditions for applying the plant heat tolerance or drought tolerance improver, salt tolerance improver, or activity improver of the present invention, which are determined in the application condition determination step, are appropriately set so that the application can improve the plant's heat tolerance, drought tolerance, salt tolerance, or activity. The conditions determined in this step are not particularly limited, and examples thereof include one or more conditions selected from the group consisting of the composition, pH, application amount, and application time of the plant heat tolerance or drought tolerance improver, salt tolerance improver, or activity improver of the present invention, and the content of acetic acid, etc., malic acid, etc. contained as an active ingredient. The specific values ​​of these conditions may be appropriately set from the ranges exemplified in this specification.

[0048] In the present invention, in the method for managing plant growth, the number and order of the information acquisition step and the application condition determination step are not particularly limited. For example, the information acquisition step and the application condition determination step may be performed once each in this order, or the information acquisition step, the application condition determination step, and then the further information acquisition step may be performed in this order, or a combination of the information acquisition step and the application condition determination step may be repeatedly performed multiple times, such as the first information acquisition step, the first application condition determination step, the second information acquisition step, and the second application condition determination step. In this specification, application of the plant heat tolerance or drought tolerance improver, salt tolerance improver, or activity improver of the present invention can be understood as application of acetic acid, etc. and malic acid, etc. Application of acetic acid, etc. and malic acid, etc. may be carried out by the method described in this specification as "combined use of acetic acid, etc. and malic acid, etc."

[0049] The present invention may also relate to a method for improving the heat tolerance, drought tolerance, salt tolerance, or activity of a plant by applying acetic acid or the like and malic acid or the like. Furthermore, the present invention may relate to acetic acid and malic acid for improving heat tolerance, drought tolerance, salt tolerance, or activity of plants. EXAMPLES

[0050] The present invention will be described in more detail below with reference to examples, although the technical scope of the present invention is not limited to these examples.

[0051] <Heat and dry resistance test 1> Lettuce (Lactuca sativa L.) was grown in a vinyl pot in a simple incubator at a temperature of 22°C and humidity of 40-50% for three weeks after germination. During the cultivation period, water was provided by irrigating each plant with 100mL of water per three days. Water treatment group 1 consisted of 50 mL of water being poured around the base of the plant and allowed to absorb for 24 hours, while acetic acid treatment group 1 consisted of 50 mL of 10 mM acetic acid being poured around the base of the plant and allowed to absorb for 24 hours. Thereafter, the vinyl pots were transferred to separate trays and left to stand in an incubator without watering under conditions of continuous light, temperature of 42°C and humidity of 40%. The plastic pots were removed from the incubator, the condition of the lettuce was observed, and the survival rate of the lettuce was measured. The survival rate was calculated by counting the number of lettuce seedlings that were not dead. The results after leaving the pots for 5 days are shown in Figure 1A. After being left standing for 5 days, the survival rates of both water-treated area 1 and acetic acid-treated area 1 were 100%, but as shown in Figure 1A, the plants in water-treated area 1 did not die but were clearly more wilted than those in acetic acid-treated area 1. After being left standing for 7 days, the survival rates were 100% in acetic acid-treated area 1 and 0% in water-treated area 1.

[0052] <Heat and dry resistance test 2> The survival rate of lettuce was measured in the same manner as in heat and desiccation resistance test 1. In this test, the conditions were a temperature of 50°C and a humidity of 10%. In addition, 50 mL of water was poured around the base of the plant and allowed to be absorbed over 24 hours, which was designated water treatment area 2, and 50 mL of an aqueous solution containing 10 mM acetic acid and 10 mM malic acid was poured around the base of the plant and allowed to be absorbed over 24 hours, which was designated treatment area 2. After leaving the pots for 3 days, the plastic pots were removed from the incubator, the condition of the lettuce was observed, and the survival rate of the lettuce was measured. The survival rate was 100% in treatment area 2 and 0% in water treatment area 2. The results are shown in Figure 1B. In the following tests, lettuce and tomatoes were grown under continuous light, except that the illuminance in the incubator at 42°C was set to about 3300 lux, and the other conditions were about 5000 lux.

[0053] Comparing the results for water treatment area 1 and water treatment area 2, it can be seen that the conditions in water treatment area 2 were more severe for the plants, as the plants in water treatment area 2 had completely died (see Figures 1A and B). The results of acetic acid treatment area 1 show that the high-temperature, drought resistance of the plant body is enhanced by the acetic acid treatment, but the results of treatment area 2, where the plants were grown under even harsher environmental conditions, show that the high-temperature, drought resistance of acetic acid is further enhanced by the addition and application of malic acid in addition to acetic acid.

[0054] <Heat and dry resistance test 3> Tomatoes (variety: Momotaro, Solanum lycopersicum) were grown in vinyl pots in a simple incubator at a temperature of 22°C and humidity of 40-50% for three weeks after germination. During the cultivation period, water was provided by irrigating each plant with 100 mL of water per three days. Water treatment group 3 was prepared by irrigating the base of the plant with 50 mL of water and allowing it to be absorbed for 24 hours, and acetic acid treatment group 3 was prepared by irrigating the base of the plant with 50 mL of 20 mM acetic acid and allowing it to be absorbed for 24 hours. Treatment group 3 was also prepared by irrigating the base of the plant with 50 mL of an aqueous solution containing 10 mM acetic acid and 10 mM malic acid and allowing it to be absorbed for 24 hours. Thereafter, the vinyl pots were transferred to separate trays and left to stand in an incubator without watering under conditions of continuous light, temperature of 50°C and humidity of 10%. After leaving the pots for 3 and 4 days, the plastic pots were removed from the incubator, the condition of the tomatoes was observed, and the survival rate of the tomatoes was measured. The survival rate was calculated by counting the number of lettuce seedlings that were not dead. The results after leaving the pots for 3 days are shown in Figure 2. After being left standing for 3 days, the survival rate of water-treated area 3 was 0%, and the survival rates of acetic acid-treated area 3 and treatment area 3 were both 100%, but after being left standing for 4 days, the survival rates of water-treated area 3 and acetic acid-treated area 3 were 0%, and the survival rate of treatment area 3 was 100%. It was found that the ability to resist high temperatures and drought was strengthened in the following order: water treatment area 3, acetic acid treatment area 3, and acetic acid and malic acid treatment area 3.

[0055] <Activation test 1> After purchasing peperomia (Peperomia albovittata) that had been divided at the same time, they were grown in a simple incubator at a temperature of 22°C and humidity of 40-50% for two days. During the cultivation period, water was provided by irrigating each plant with 50 mL of water per day. 50 mL of water was poured at the base of the plant and allowed to be absorbed over 24 hours, which was designated water treatment area 1; 50 mL of a 20 mM aqueous acetic acid solution was poured at the base of the plant and allowed to be absorbed over 24 hours, which was designated acetic acid treatment area 1; and 50 mL of an aqueous solution containing 20 mM acetic acid + 0.075 μM malic acid was poured at the base of the plant and allowed to be absorbed over 24 hours, which was designated treatment area 1. Thereafter, the vinyl pots were transferred to separate trays and left to stand in an incubator under conditions of continuous light, temperature of 22°C, and humidity of 40%. After leaving the pots for three weeks, the condition of the tomatoes was observed by removing them from the incubator. The number of flower buds formed at the early stage of flowering and the number of flower buds that had grown to 3 cm or more in length were counted for each Peperomia individual. The results after leaving the pots for three days are shown in Figure 3. After three weeks of standing, the number of flower buds formed before flowering in water treatment area 1 was 3, and the number of flower buds formed before flowering in acetic acid treatment area 1 was 5. The number of flower buds after flowering that grew to 3 cm or more in both water treatment area 1 and acetic acid treatment area 1 was 0, but in treatment area 1 the number of flower buds formed before flowering was 12, and the number of flower buds after flowering that grew to 3 cm or more was 6. It was found that the acetic acid and malic acid treatment area 1 had enhanced flower bud induction and growth compared to the acetic acid treatment area 1 and the water treatment area 1, respectively.

[0056] <Activation test 2> Spinach (Spinacia oleracea, Amaranthaceae) germinated from seeds directly sown in a field inside a vinyl greenhouse was used. During the test period, the plants were watered twice a day, at 6 am and 4 pm, using an automatically controlled irrigation system. Two weeks after germination, seedlings (with 3-5 true leaves) were irrigated at the base with 50 mL of the test solution shown below. Two and four weeks after the first irrigation, 50 mL of the test solution was irrigated again (a total of three irrigations were performed). The plants were harvested 45 days after the first irrigation treatment, and the wet weight of 20 plants was measured for each test plot. The average weight and standard deviation of the plants in each test plot were calculated. Significant differences in wet weight between test plots were detected using Welch's T-test (Welch test). The results are shown in Figures 4 and 5. The results of the Welch test in the figures, including the following ones, indicate *: p<0.05, **: p<0.01. The test solutions used are as follows: Test solutions prepared in the same manner were used in the following activation tests 3 to 6. Water treatment area 2: Sterile distilled water Malic acid treatment group 2: 0.24% (w / w) malic acid aqueous solution Acetic acid treatment area 2: 0.06% (w / w) acetic acid aqueous solution Treatment area 2: 0.24% (w / w) malic acid and 0.06% (w / w) acetic acid aqueous solution Each was adjusted to pH 6.0 with KOH. No significant difference in wet weight was observed between water treatment 2 and malic acid treatment 2, but a significant increase in wet weight of 122% (p<0.05) was observed between water treatment 2 and acetic acid treatment 2. An even more significant increase in wet weight of 165% (p<0.01) was observed between water treatment 2 and acetic acid and malic acid treatment 2.

[0057] <Activation test 3> Carrots (Daucus carota subsp. sativus, Apiaceae family, carrot genus) germinated from direct-sown seeds in the field were used. Plants were watered by natural rainfall during the test period. Two weeks after germination, seedlings (with 4-5 true leaves) were irrigated at the base with 50 mL of each test solution. Three and six weeks after the first irrigation, the seedlings were irrigated again with 50 mL of the test solution (a total of three irrigations were performed). The plants were harvested 90 days after the first irrigation treatment, and the above-ground parts (leaves) were removed to leave the edible root parts. The wet weight of 100 plants was then measured for each test plot. The top and bottom 10% of the data were removed, and the average plant weight and standard deviation for 80 plants in each test plot were calculated. The Welch test was used to detect significant differences in wet weight for each test plot. No significant difference in wet weight was observed among water treatment area 3, acetic acid treatment area 3, and malic acid treatment area 3, but a significant difference (p<0.01) was observed in wet weight of the roots after harvest between water treatment area 3 and acetic acid and malic acid treatment area 3, and between acetic acid treatment area 3 and acetic acid and malic acid treatment area 3.

[0058] <Activation Test 4> From aromaticus (Plectranthus amboinicus, family Lamiaceae) grown in 20 cm pot culture soil, 20 branches were collected for each test plot, and approximately 10 leaves were removed from the shoot apex. The lower part (stem part) of each plant was immersed in 200 mL of each test solution and grown in a greenhouse under natural light for two weeks. After two weeks, the plant bodies were removed and the number of roots, root elongation, and root branching were measured. The average values ​​and standard deviations were calculated, and the significant differences between each test section were calculated using the Welch test. No new root formation was observed in water treatment area 4 and acetic acid treatment area 4, but new root formation was observed in acetic acid treatment area 4 and acetic acid and malic acid treatment area 4 due to each solution treatment. Significant differences were observed in the number of roots, root length, and number of branches between water treatment area 4 and acetic acid and malic acid treatment area 4, and between acetic acid treatment area 4 and acetic acid and malic acid treatment area 4. Furthermore, significant new root formation, elongation, and branching were observed in acetic acid and malic acid treatment area 4 compared to acetic acid treatment area 4.

[0059] <Activation Test 5> The day before harvest, spinach plants were planted in a vinyl greenhouse and irrigated at the base of the plants with a watering can, with 100 mL of each test solution per plant applied to the ground surface. After 18 hours, the above-ground parts were harvested by cutting them off from the roots with a cutter and wrapped in newspaper of the same area (30cm x 45cm) in groups of five. One of each test plot (total of 20 plants) was placed in a plastic bag (25cm x 30m), left open and placed upright in a refrigerator at 4℃ and 40% humidity, and the weight change of each plant was measured over time using a weighing scale. The weight of each plant at the start of the test was set as 100%, and the weight change of each plant in each treatment plot was calculated for each plant. The average and standard deviation of the weight change over time of the 20 plants was calculated. No significant difference was observed in the rate of wet weight loss between water-treated group 5 and malic acid-treated group 5, but acetic acid-treated group 5 and acetic acid and malic acid-treated group 5 showed a significant water-retention effect from 12 hours after the start of refrigerated storage, compared to water-treated group 5 and malic acid-treated group 5. After the 96-hour experiment, an average water loss prevention effect of 7.1% was detected in acetic acid treatment area 5, and 22% in acetic acid and malic acid treatment area 5, compared to water treatment area 5. It was shown that acetic acid treatment area 5 and acetic acid and malic acid treatment area 5 were effective in maintaining the freshness of plants after harvest.

[0060] <Activation Test 6> North Pole (Leucanthemum paludosum, Asteraceae family, French Oxeye daisy) grown in a 9 cm pot was used. Seeds were sown and germinated at the same time, and the grown North Pole seedlings were watered with 100 mL of water every 3 days for 2 weeks. Five seedlings were prepared for each test plot, and each was immersed in 200 mL of each test solution and left for 24 hours to allow the solution to be absorbed through the bottom of the pot. After solution treatment, all apical buds were cut off (pinched) with scissors. After the terminal bud was excised, the plants were grown in an outdoor greenhouse while being watered with 200 mL of tap water every four days, and the number of newly formed terminal buds (flower buds) was counted after three weeks. No significant difference was observed in the number of newly formed flower buds between water treatment area 6 and malic acid treatment area 6, but an increase in the number of flower buds was confirmed in acetic acid treatment area 6 and acetic acid and malic acid treatment area 6 compared to water treatment area 6. A significant difference was also observed between acetic acid treatment area 6 and acetic acid and malic acid treatment area 6. It was revealed that acetic acid can promote the development and formation of new terminal buds and flower buds, and furthermore, the combined use of acetic acid and malic acid strongly promotes the development and formation of new terminal buds and flower buds.

Claims

1. A composition for improving the heat tolerance or salt tolerance of a plant, comprising acetic acid or a salt thereof, or a solvate thereof, and malic acid or a salt thereof, or a solvate thereof.

2. The composition described in claim 1, containing one or more solvents including at least water.

3. The composition described in claim 2, having a pH in the range of 3 to 9.

4. A method for improving the heat tolerance or salt tolerance of a plant, comprising applying acetic acid or a salt thereof, or a solvate thereof and malic acid or a salt thereof, or a solvate thereof to a plant, a material for application to a plant, or the soil, culture medium, or culture solution in which the plant grows.

5. Obtaining one or more pieces of information regarding plant growth; A method for managing plant growth, comprising determining, based on one or more pieces of acquired information, conditions for applying acetic acid or a salt thereof, or a solvate thereof and malic acid or a salt thereof, or a solvate thereof to a plant, a material for applying to a plant, or the soil, medium, or culture solution in which the plant grows.

6. A method for improving the heat tolerance or salt tolerance of a plant, comprising the combined use of acetic acid or a salt thereof, or a solvate thereof, and malic acid or a salt thereof, or a solvate thereof.

7. A method for improving the heat tolerance or salt tolerance of a plant, which comprises using acetic acid or a salt thereof, or a solvate thereof, and malic acid or a salt thereof, or a solvate thereof.

8. A method according to any one of claims 5 to 7, wherein acetic acid or a salt thereof, or a solvate thereof and malic acid or a salt thereof, or a solvate thereof are applied simultaneously or at different times.

9. A method for improving the heat tolerance or salt tolerance of a plant, comprising applying acetic acid or a salt thereof, or a solvate thereof to a plant, a material for application to a plant, or the soil, culture medium, or culture solution in which the plant grows, in combination with malic acid or a salt thereof, or a solvate thereof.

10. A method for improving the heat tolerance or salt tolerance of a plant, comprising applying malic acid or a salt thereof, or a solvate thereof to a plant, a material for application to a plant, or the soil, culture medium, or culture solution in which the plant grows, in combination with acetic acid or a salt thereof, or a solvate thereof.