Vegetable bacillus X24-3 strain and application thereof

By using Bacillus vegetableis X24-3 strain to degrade multi-component PAEs in farmland soil under normal conditions, the problems of secondary pollution and ecological disturbance caused by traditional remediation methods have been solved, achieving efficient and safe soil remediation results.

CN121780375APending Publication Date: 2026-04-03XIAN UNVERSITY OF ARTS & SCI
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Patent Information

Authority / Receiving Office
CN · China
Patent Type
Applications(China)
Current Assignee / Owner
Filing Date
2025-12-31
Publication Date
2026-04-03

AI Technical Summary

Technical Problem

Existing technologies are insufficient to effectively degrade multi-component phthalic acid ester (PAE) pollution in farmland soils, and traditional remediation methods require artificial adjustment of extreme acidity, alkalinity, or high temperature, which poses risks of secondary pollution and ecological disturbance.

Method used

The strain of Bacillus vegetans X24-3 was obtained through gradient domestication and screening. Under normal conditions, it degrades multi-component PAEs. It is Gram-negative, catalase and oxidase positive, and has starch hydrolysis ability. It is adapted to farmland soil environment and uses enzymatic hydrolysis to break ester bonds and mineralize them into CO2 and H2O.

Benefits of technology

It can simultaneously degrade multiple PAEs in a short time, optimize the soil microbial system, improve soil structure, has a high degradation rate and is ecologically safe, does not damage soil organic matter, adapts to natural soil pH and temperature, and does not require artificial adjustment.

✦ Generated by Eureka AI based on patent content.

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Abstract

The invention belongs to the technical field of remediation of contaminated soil by microbial agents, and particularly relates to a vegetable bacillus X24-3 strain and application thereof. The vegetable bacillus strain X24-3 is classified and named as the vegetable bacillus strain, and is preserved in the China General Microbiological Culture Collection Center (CGMCC), the preservation number is CGMCC No.35229, and the preservation date is July 14, 2025. The invention further discloses a preparation method of the vegetable bacillus strain X24-3. The screened X24-3 bacterial strain can efficiently degrade phthalic acid esters in various environments, so that the X24-3 bacterial strain can be used for bioremediation of polluted soil, and the X24-3 bacterial strain is adaptive to actual farmland multi-component pollution scenes. The X24-3 strain provided by the invention is high in degradation efficiency, the remediation period is remarkably shortened, and a technical support is provided for efficient and green remediation of PAEs pollution of farmland soil.
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Description

Technical Field

[0001] This invention belongs to the technical field of microbial agents for the remediation of contaminated soil, specifically relating to a Bacillus subtilis strain X24-3 and its application. Background Technology

[0002] Phthalate esters (PAEs) are a class of widely used plasticizers. With the massive production and disposal of plastic products, PAEs have become ubiquitous organic pollutants in the environment. Because PAEs are linked to plastic molecules through hydrogen bonds or van der Waals forces rather than forming covalent bonds, they easily leach from products and enter the environment. PAEs have carcinogenic, teratogenic, and mutagenic effects as well as endocrine disrupting effects, posing a serious threat to ecosystems and human health. Soil, as a significant sink and source of PAEs, has become a critical environmental issue that urgently needs to be addressed.

[0003] Currently, remediation technologies for PAE-contaminated soils are mainly divided into three categories: physical, chemical, and ecological remediation. However, physical remediation (such as activated carbon adsorption and excavation and landfill) relies on adsorbent fixation or ex-situ treatment; chemical remediation (such as Fenton oxidation and photolysis) degrades PAEs using chemical reagents; and in ecological remediation, microbial remediation has become a research hotspot due to its low cost and environmental friendliness, and degrading strains such as Pseudomonas and Rhodococcus have been screened, but these are mostly targeted at single PAEs (such as DEHP). In actual farmland soils, PAEs often coexist in multiple components. For example, in typical agricultural areas of Shaanxi Province, the average DBP value in the soil reaches 6750.73 μg / kg, and DEHP reaches 118.26 μg / kg. Moreover, DMP and DEP have similar sources, while DBP has independent sources. Existing remediation technologies are difficult to adapt to such complex pollution scenarios. Therefore, there is a need for a highly efficient PAE-degrading bacterium that can degrade multi-component soil pollution scenarios without artificial adjustment of extreme pH or high temperature, requiring only conventional inoculation with microbial agents. Summary of the Invention

[0004] The purpose of this invention is to overcome the shortcomings of the prior art and provide a Bacillus vegetableis strain X24-3 and its application.

[0005] The objective of this invention is achieved through the following technical solution:

[0006] The first aspect of this invention provides a strain of Bacillus oleronius X24-3, classified and named as Bacillus oleronius, which is deposited at the China General Microbiological Culture Collection Center (CGMCC) with accession number CGMCC No. 35229, deposit date of July 14, 2025, and address of No. 3, No. 1 Beichen West Road, Chaoyang District, Beijing.

[0007] The second aspect of the present invention provides the application of the above-mentioned Bacillus vegetableis X24-3 strain in the degradation of phthalate contaminants.

[0008] As a preferred technical solution, the phthalate includes dimethyl phthalate (DMP), diethyl phthalate (DEP), dibutyl phthalate (DBP), butyl benzyl phthalate (BBP), di(2-ethylhexyl) phthalate (DEHP), and di-n-octyl phthalate (DNOP).

[0009] The third aspect of this invention provides the application of the above-mentioned Bacillus vegetableis X24-3 strain in the bioremediation of contaminated soil.

[0010] As a preferred technical solution, the contaminated soil contains phthalates.

[0011] As a more preferred technical solution, the inoculation amount of Bacillus vegetans X24-3 in contaminated soil is 20 mL of bacterial solution with an absorbance value of 1.0 at a wavelength of 600 nm per 200 g of contaminated soil.

[0012] As a preferred technical solution, the optimal degradation conditions for the vegetable Bacillus X24-3 are a pH of 8 and a temperature of 30°C.

[0013] The fourth aspect of the present invention provides a soil remediation microbial agent containing at least the above-mentioned Bacillus vegetans X24-3 strain.

[0014] As a preferred technical solution, the effective viable count of the *Bacillus vegetans* X24-3 strain is ≥1.0 × 10⁻⁶. 9 CFU / g.

[0015] The present invention has the following advantages:

[0016] (1) The vegetable Bacillus X24-3 strain provided by the present invention was obtained from farmland soil contaminated with phthalic acid esters (PAEs) after 2, 7 and 8 years of continuous cropping. It was obtained through gradient domestication and screening with 50-1200 mg / LPAEs. Its original growth environment is highly matched with the physicochemical properties of the target soil to be remediated. It also has physiological and biochemical characteristics such as Gram staining negative, catalase and oxidase positive, and starch hydrolysis ability. Therefore, after entering the soil, this bacterium quickly becomes the dominant bacterial group, occupies a certain ecological niche, effectively promotes the degradation of PAEs compounds, optimizes the soil microbial system, improves the soil aggregate structure and repairs the compaction problem, and does not damage the soil organic matter, thus enhancing the biological activity of the soil.

[0017] (2) The *Bacillus vegetans* strain X24-3 provided by this invention uses phthalate (PAE) compounds as its sole carbon source. During its growth and reproduction, this strain can alter the chemical properties of PAEs, causing a directional transformation of their complex ester structures. Through enzymatic hydrolysis, it breaks the ester bonds of PAEs, gradually decomposing previously difficult-to-degrade long-chain or medium-to-short-chain PAEs (such as DBP, DEHP, DMP, etc.) into intermediate products such as phthalic acid, which are ultimately mineralized into CO2 and H2O. Compared to existing remediation technologies, the microbial degradation pathway of X24-3 is more ecologically safe. Compared to chemical methods, it does not produce secondary pollution, and compared to physical methods, it reduces disturbance to the soil ecosystem.

[0018] (3) The vegetable Bacillus X24-3 strain provided by the present invention can degrade PAEs pollutants in the soil in a short time, and can simultaneously degrade 6 common PAEs.

[0019] (4) The optimal degradation conditions of the vegetable Bacillus X24-3 strain provided by the present invention are pH=8, temperature 30℃, and inoculation amount 1.0OD600nm. These conditions are highly consistent with the natural pH (6.5-8.5) and temperature (25-35℃) of farmland soil in northern my country. There is no need to artificially adjust extreme acidity or alkalinity or high temperature. Degradation can be initiated by conventional inoculation with bacterial agents. Detailed Implementation

[0020] The present invention will be further described below with reference to embodiments, but the scope of protection of the present invention is not limited to the following description:

[0021] This invention discloses a Bacillus oleronius strain X24-3, classified and named Bacillus oleronius, which is deposited at the China General Microbiological Culture Collection Center (CGMCC) with accession number CGMCC No. 35229, deposited on July 14, 2025, at No. 3, Courtyard 1, Beichen West Road, Chaoyang District, Beijing.

[0022] This strain has the following properties:

[0023] Morphological characteristics: Colonies are yellow and moist, with a diameter of 1 mm to 2 mm and cell diameter ≤ 2 μm.

[0024] Physiological and biochemical characteristics: Gram-negative bacteria.

[0025] Example 1: Screening of strains

[0026] Step 1: Soil Collection and Pretreatment

[0027] Soil samples were collected from typical mulched farming areas in eleven study regions within Shaanxi Province. The soil samples were placed in sterile bags. After impurity removal and homogenization, the soil samples were divided into two parts. One part was placed in 50mL sterile centrifuge tubes, flash-frozen in liquid nitrogen, temporarily stored in an incubator, and then transported back to the laboratory for storage at -80℃ for determining soil microbial community diversity. The other part of the soil was air-dried, homogenized, ground, and sieved through 1mm and 0.15mm sieves.

[0028] 2. Step Two: Stress Culture

[0029] A gradient pressure acclimatization method was adopted: 100 mL of MSM medium was sterilized in a 250 mL Erlenmeyer flask. After cooling, under aseptic conditions, a mixed sample stock solution of 6 PAEs (DEP, DMP, DBP, BBP, DEHP, DNOP) (ethyl acetate as solvent) was added to achieve a final concentration of 50 mg / L. At the same time, 5 g of the collected treated phthalate-contaminated soil sample was added and cultured in the dark on a shaker at 30℃ and 150 r / min for 7 days. Then, it was inoculated into the same medium at a 5% inoculum, and the concentration of PAEs was gradually increased to acclimatize the sample. This process was repeated 6 times, with concentrations set at 50 mg / L, 150 mg / L, 250 mg / L, 350 mg / L, 450 mg / L, 600 mg / L, and 750 mg / L, and finally the concentration was increased to 1200 mg / L.

[0030] 3. Step Three: Screening and Purification:

[0031] The culture medium for gradient pressure acclimatization was used. 0.2 mL of the basal culture medium fermentation broth was evenly spread onto a nutrient agar plate and repeatedly streaked for separation. The plate was then incubated at 37±1℃ for 48 h. Dominant single colonies of different colors and morphologies were selected and repeatedly streaked on beef extract peptone medium to purify the strains with consistent morphology. The purified strains were then stored on beef extract peptone solid medium for further screening and activation to obtain the strains for later use. The composition of the nutrient agar plate culture medium was as follows: the core components and proportions of the nutrient agar medium were: 1% peptone, 0.3% beef extract, 0.5% sodium chloride, 1.5%-2% agar, and 100% water. All of the above are mass percentages. The pH of the culture medium was 7.0-7.5, and the medium was sterilized at 105 kPa for 20-25 min. The composition of the beef extract peptone plate medium is as follows: 0.5% beef extract, 1% peptone, 0.5% sodium chloride, 1.5%-2% agar (for solid culture medium), and 100% water. All of the above are mass percentages. The pH value is usually adjusted to 7.2-7.4, and sterilized at 105 kPa for 20-25 minutes.

[0032] 4. Step Four: Secondary Screening

[0033] (1) The purified bacterial strains were inoculated into beef extract peptone medium. The culture flasks containing the strains were placed in a constant temperature shaking incubator and cultured for 1 day at a suitable temperature and a rotation speed of 150 r / min. After 1 day of culture, the culture was centrifuged to precipitate the bacterial cells. The bacterial solution was diluted with sterile water, and the absorbance of the bacterial solution was measured at OD600 nm using a UV spectrophotometer. The concentration of the bacterial solution was adjusted to OD600 = 1 to ensure that the effective viable count of Bacillus vegetans X24-3 strain in the bacterial solution was ≥1.0 × 10⁻⁶. 9 CFU / mL. Then, the adjusted bacterial culture was inoculated into a culture flask containing 50 mL of liquid culture medium. Phthalate esters (PAEs) were added to the culture medium in each flask to a mass concentration of 200 mg / L. The culture was continued under the same conditions as above, and the degradation time was set to 48 hours for this determination.

[0034] (2) Add 30 mL of ethyl acetate extract to the supernatant, shake at a constant temperature for 30 min, then transfer to a separatory funnel. After standing for 10 min, collect the lower organic phase (ethyl acetate) and pour the upper aqueous phase back into the original culture flask. Extract the aqueous phase twice more with ethyl acetate in the same manner. Combine the three collections of organic phase (ethyl acetate). Dry the final organic phase (ethyl acetate) by passing it through a 15 cm column of anhydrous Na2SO4 (dried at 400 °C) to remove residual water. Transfer all the filtrate to a pistol flask and evaporate it to near dryness using a rotary evaporator. Transfer all the concentrate to a 10 mL volumetric flask and wash the pistol flask three times with 6 mL of chromatographically pure methanol. Make up the final volume to 25 mL, filter 2 mL through a 0.45 μm microporous membrane, collect the filtrate in a sample vial, and determine the residual amount using gas chromatography (GC). Analyze the PAEs standard curve obtained in the previous experiment to calculate the degradation rate. GC detection conditions: Column: HP-50.25μm×0.25mm×30m; Carrier gas: High-purity helium, initial pressure: 33.6kPa, flow rate: 1.0mL·min -1 Splitless injection was used, with an injection volume of 1.0 μL. Temperature program: initial temperature 100℃, held for 2 min; then increased at 15℃ / min. -1 The temperature rose to 129°C at a rate of 40°C / min; thereafter, it increased at a rate of 40°C / min. -1 The temperature was increased to 280℃ and maintained for 5 minutes. The injection port temperature was 250℃, and the ion source temperature was 220℃. The solvent delay time was 1 minute, and the run time was 11.0 minutes.

[0035] Example 2: Identification of the strain

[0036] Step 1: Extract total DNA.

[0037] (1) Extract bacterial genomic DNA using the Omega Genomic DNA Extraction Kit. Take 1-5 ml of bacterial culture medium, centrifuge at 10,000 rpm (~11,500 x g) for 1 min, and aspirate the supernatant as thoroughly as possible. Add 200 μl of buffer GA to the bacterial pellet and vortex until the bacterial cells are completely resuspended. Add 20 μl of proteinase K solution to the tube and mix well. Add 220 μl of buffer GB, vortex for 15 sec, incubate at 70°C for 10 min, and the solution should become clear. Briefly centrifuge to remove water droplets from the inner wall of the tube cap. Add 220 μl of anhydrous ethanol, vortex thoroughly for 15 sec, at which point flocculent precipitate may appear; briefly centrifuge to remove water droplets from the inner wall of the tube cap.

[0038] (2) Add the solution and flocculent precipitate obtained in the previous step to an adsorption column CB3, centrifuge at 12,000 rpm (~13,400 x g) for 30 seconds, discard the waste liquid, and place the adsorption column CB3 into a collection tube. Add 500 μl of buffer GD to the adsorption column CB3, centrifuge at 12,000 rpm (~13,400 x g) for 30 seconds, discard the waste liquid, and place the adsorption column CB3 into a collection tube. Add 600 μl of wash buffer PW to the adsorption column CB3, centrifuge at 12,000 rpm (~13,400 x g) for 30 seconds, discard the waste liquid, and place the adsorption column CB3 into a collection tube. Repeat the above steps. Place the adsorption column CB3 back into the collection tube, centrifuge at 12,000 rpm (~13,400 x g) for 2 minutes, and discard the waste liquid. Place the adsorption column CB3 at room temperature for several minutes to thoroughly dry any remaining wash liquid in the adsorption material.

[0039] (3) Transfer the adsorption column CB3 into a clean centrifuge tube, add 50-200pl of elution buffer TE to the middle of the adsorption membrane, place at room temperature for 2-5 min, centrifuge at 12,000 rpm (~13,400xg) for 2 min, and collect the solution into the centrifuge tube.

[0040] 2. Step Two: PCR Amplification of 16S rDNA:

[0041] Using the total DNA extracted in step one as a template, PCR amplification was performed. The PCR reaction system was prepared as follows: 25 μl Mixture, 1 μl 27F primer, 1 μl 1492R primer, 1 μl extracted genomic DNA, and 22 μl dd H2O were added sequentially to a centrifuge tube, for a total volume of 50 μl. The prepared reaction system was placed in a PCR instrument and amplified under the following conditions: 95℃ for 5 min (pre-denaturation), followed by 32 cycles, each cycle consisting of 94℃ for 45 s (denaturation), 55℃ for 45 s (annealing), 72℃ for 1 min 15 s (extension), and finally 72℃ for 10 min (extension). The primer sequences for the PCR amplification were:

[0042] Upstream primer (27F): 5'-AGAGTTTGATCMTGGCTCAG-3'; SEQ ID NO.1

[0043] Downstream primer (1492R): 5'-GGTTACCTTGTTACGACTT-3'; SEQ ID NO.2.

[0044] 3. Step Three: 16S rDNA sequence analysis and alignment of the strain:

[0045] The PCR amplification product (fragment size approximately 1.4kb) from step two was sequenced (assisted by Sangon Biotech (Shanghai) Co., Ltd.). The obtained 16S rDNA partial gene sequence was compared with the 16S rDNA sequence of Bacillus oleronius (NR_043325.1) published in GenBank, and the similarity reached 100.0%.

[0046] The 16S rDNA sequence of the strain is shown in SEQ ID NO.3:

[0047]

[0048] Based on the combined physiological and biochemical identification and 16S rDNA sequence analysis results, the strain of this invention was identified as Bacillus oleronius.

[0049] Example 3: Optimal Degradation Conditions Test

[0050] Step 1: Pick the isolated and purified X24-3 colonies and inoculate them into LB medium and culture for 16 hours. After centrifuging the resulting bacterial solution at 4600× for 5 minutes, discard the supernatant.

[0051] Step 2: Setting Degradation Conditions: pH Gradient Setting: Use a pH meter to adjust the pH of 50 mL of sterile culture medium in a 250 mL culture flask to 5, 6, 7, 8, 9, and 10 respectively. Simultaneously add six types of PAEs as growth substrates, bringing the final concentration to 200 mg / L. Inoculate at a rate of 0.6 (OD200). 600 Inoculation was performed using nm), with the uninoculated treatment serving as a control.

[0052] Temperature gradient setup: In a 250 mL Erlenmeyer flask containing 50 mL of sterile culture medium (pH 7.0), PAEs were added as the growth substrate to achieve a final concentration of 200 mg / L and an inoculum size of 0.6 (OD). 600 The Erlenmeyer flasks were then placed in shakers at 20℃, 25℃, 30℃, 35℃, and 40℃ and continuously shaken (150 r / min) for 3 days, with the uninoculated treatment serving as a control.

[0053] Microbial inoculum gradient settings: Inoculum amounts were set at 0.2, 0.4, 0.6, 0.8, and 1.0 (OD) respectively. 600 (nm) was inoculated into a 250mL culture flask containing 50mL of sterile culture medium (pH 7.0). PAEs were added simultaneously as a growth substrate to a final concentration of 200mg / L. The culture was continuously shaken at 30℃ and 150r / min for 3 days, with the uninoculated treatment serving as a control.

[0054] Step 3: Determination of the supernatant after centrifugation of the culture medium: Add 30 mL of ethyl acetate extract to the supernatant, shake at a constant temperature for 30 min, then transfer to a separatory funnel. Shake thoroughly and allow to stand for separation. Wash with the extract and transfer all the solution to a flat-bottomed flask. Add anhydrous sodium sulfate, Florisil, and anhydrous sodium sulfate in a 2:4:2 (mass ratio) sequentially to the purification column. Prewash and elute the purification column with 10 mL and 50 mL of extract, respectively. Collect all the eluent in a pistol flask, concentrate by rotary evaporation to dryness, and dilute to 25 mL with chromatographic grade ethyl acetate for gas chromatography analysis.

[0055] GC detection conditions: Column: HP-50.25μm×0.25mm×30m; Carrier gas: High-purity helium, initial pressure: 33.6kPa, flow rate: 1.0mL·min -1 Splitless injection was used, with an injection volume of 1.0 μL. Temperature program: initial temperature 100℃, held for 2 min; then increased at 15℃ / min. -1 The temperature rose to 129°C at a rate of 40°C / min; thereafter, it increased at a rate of 40°C / min. -1 The temperature is increased to 280℃ and maintained for 5 minutes.

[0056] The experimental results are shown in Tables 1, 2, and 3:

[0057] Table 1. Gas chromatographic determination results of PAEs in liquid culture medium at different pH values.

[0058]

[0059]

[0060] Table 2. Gas chromatography determination results of PAEs in liquid culture medium at different temperatures.

[0061]

[0062]

[0063] Table 3. Gas chromatographic determination results of PAEs in liquid culture medium under different inoculum amounts.

[0064]

[0065] Analysis of experimental results:

[0066] ① Effect of pH on degradation efficiency: Comparing the degradation rates of PAEs under different pH conditions, the degradation rate of each PAE was relatively high at pH 8. Taking DMP as an example, the degradation rate reached 49.1% (sample X24-3). This indicates that this specific strain has a better degradation effect on PAEs in a weakly alkaline environment, while excessively acidic or alkaline environments may inhibit strain activity and affect degradation.

[0067] ② Effect of temperature on degradation efficiency: In the temperature gradient experiment of 20℃-40℃, the degradation rate of each PAE was better at 30℃. For example, the degradation rate of DMP in sample X24-3 was 48.5% at 30℃. This indicates that around 30℃ is the more suitable temperature for this strain to degrade PAEs. Temperatures that are too high or too low will affect the metabolic activity of the strain and thus affect the degradation efficiency.

[0068] ③ Effect of inoculum size on degradation efficiency: 0.2-1.0 OD 600Under an inoculum size gradient of nm, the overall degradation rate increases with increasing inoculum size. Taking DMP as an example, when the inoculum size is 1.0 OD600nm (i.e., 20 mL of bacterial solution with an absorbance of 1.0 at 600nm is added to every 200 g of artificially contaminated phthalate soil), it is ensured that the effective viable count of Bacillus vegetans X24-3 strain in the bacterial solution is ≥1.0 × 10⁻⁶. 9 The degradation rate of the X24-3 sample was 51.9% (CFU / mL). This indicates that within a certain range, increasing the inoculum size is beneficial to improving the degradation rate of PAEs. At higher inoculum sizes, the lag period can be shortened, accelerating the decomposition of PAEs.

[0069] Example 4: Application Effect Test

[0070] Step 1: Place 200g of soil in a 500mL Erlenmeyer flask, add six PAE solutions (DEP, DMP, DBP, BBP, DEHP, DNOP), and adjust the final concentration of each phthalic acid ester component to approximately 200mg / kg to prepare artificially contaminated soil. Inoculate the soil with the seed culture of the dominant bacterial strain at a mass concentration of 10%, using uninoculated soil as a blank control group. Ensure the moisture content reaches 20%. Place the Erlenmeyer flask in a 30℃ constant temperature incubator in the dark. Samples are taken at 0, 3, and 7 days to determine the remaining PAE content.

[0071] Step 2: Extraction: Accurately weigh 2.0 g of the soil sample into a 50 mL glass centrifuge tube, add 4 mL of ultrapure water, vortex for 30 s, add 5 mL of chromatographically pure dichloromethane, vortex vigorously for 10 min in a multi-tube vortex mixer, then sonicate at 40 Hz for 15 min, centrifuge at 3500 pm for 5 min, take 1 mL of the upper organic phase, vortex, and filter through a 0.22 μm organic filter membrane. Determination of PAEs content: Measure and calculate the PAEs content in the extract using gas chromatography, calculate the degradation rate, and retain strains with high degradation rates.

[0072] Step 3, Degradation rate calculation formula:

[0073] Degradation rate (%) = (1 - A / A0) * 100

[0074] In the formula: A is the residual concentration of PAEs after treatment with degrading bacteria, and A0 is the residual concentration of PAEs in the control treatment.

[0075] The raw data for the degradation rate of PAEs-contaminated soil after 3 days and 7 days are shown in Table 4, and the degradation rate is shown in Table 5.

[0076] Table 4. Peak area results (fA*s) of PAEs in contaminated soil determined by gas chromatography.

[0077]

[0078]

[0079] Table 5. Degradation rate of PAEs in contaminated soil by degrading bacteria after 3 days and 7 days.

[0080]

[0081] As shown in Tables 4 and 5, under the 7-day degradation conditions, the degradation rate data indicates that x24-3 has superior degradation ability for the six PAEs (DEP, DMP, DBP, BBP, DEHP, DNOP).

[0082] In summary, the Bacillus strain X24-3 of the present invention has the following advantages:

[0083] 1. The X24-3 strain (Bacillus sp. CL332.1.1) of this invention was obtained from phthalic acid ester (PAE) contaminated farmland soils that had been continuously cropped for 2, 7, and 8 years. It was obtained through gradient acclimatization and screening with 50-1200 mg / L PAEs. Its native growth environment is highly matched with the physicochemical properties of the target soil to be remediated. It also has physiological and biochemical characteristics such as Gram-negative staining, positive catalase and oxidase, and starch hydrolysis ability. Therefore, after entering the soil, this bacterium quickly becomes the dominant bacterial group, occupies a certain ecological niche, effectively promotes the degradation of PAEs compounds, optimizes the soil microbial system, improves soil aggregate structure and repairs compaction problems, and does not damage soil organic matter, thereby enhancing the biological activity of the soil.

[0084] 2. The X24-3 strain of this invention uses phthalate (PAE) compounds as its sole carbon source. During its growth and reproduction, this strain can alter the chemical properties of PAEs, causing a directional transformation of their complex ester structures. Through enzymatic hydrolysis, it breaks the ester bonds of PAEs, gradually decomposing previously recalcitrant long-chain or medium-to-short-chain PAEs (such as DBP, DEHP, DMP, etc.) into intermediate products such as phthalic acid, which are ultimately mineralized into CO2 and H2O. Compared to existing remediation technologies, the microbial degradation pathway of X24-3 is more ecologically safe. Compared to chemical methods, it does not produce secondary pollution, and compared to physical methods, it reduces disturbance to the soil ecosystem.

[0085] 3. The X24-3 strain of the present invention can simultaneously degrade 6 common PAEs.

[0086] 4. The X24-3 strain of the present invention can degrade PAEs pollutants in soil in a short time.

[0087] 5. The optimal degradation conditions for the X24-3 strain of the present invention are pH=8, temperature 30℃, and inoculum amount 1.0OD600nm. These conditions are highly consistent with the natural pH (6.5-8.5) and temperature (25-35℃) of farmland soil in northern my country. There is no need to artificially adjust extreme acidity or alkalinity or high temperature. Degradation can be initiated by conventional inoculum inoculation.

[0088] The above description is only a preferred embodiment of the present invention, but the scope of protection of the present invention is not limited thereto. Any equivalent substitutions or modifications made by those skilled in the art within the scope of the technology disclosed in the present invention, based on the technical solution and inventive concept of the present invention, are covered within the scope of protection of the present invention.

Claims

1. A Bacillus vegetableis strain X24-3, characterized in that, The strain is classified and named Bacillus oleronius, and is deposited at the China General Microbiological Culture Collection Center (CGMCC) with accession number CGMCC No. 35229 on July 14, 2025.

2. The application of the Bacillus vegetableis X24-3 strain according to claim 1 in the degradation of phthalate contaminants.

3. The application according to claim 2, characterized in that, The phthalates include dimethyl phthalate, diethyl phthalate, dibutyl phthalate, butyl benzyl phthalate, di(2-ethylhexyl) phthalate, and di-n-octyl phthalate.

4. The application of the Bacillus vegetableis X24-3 strain according to claim 1 in the bioremediation of contaminated soil.

5. The application according to claim 4, characterized in that, The contaminated soil contains phthalates.

6. The application according to claim 5, characterized in that, The inoculation amount of Bacillus vegetans X24-3 in contaminated soil was 20 mL of bacterial solution with an absorbance of 1.0 at a wavelength of 600 nm per 200 g of contaminated soil.

7. The application according to claim 5, characterized in that, The optimal degradation conditions for the vegetable Bacillus X24-3 are pH 8 and temperature 30℃.

8. A soil remediation microbial agent, characterized in that, It contains at least the Bacillus vegetableis X24-3 strain as described in claim 1.

9. The soil remediation microbial agent according to claim 8, characterized in that, The effective viable count of the *Bacillus vegetans* X24-3 strain is ≥1.0 × 10⁻⁶. 9 CFU / g.