Probiotic-bioactive component composite membrane as well as preparation method and application thereof

By loading dandelion polyphenols and Lactobacillus plantarum onto a gelatin and carboxymethyl chitosan composite matrix, a probiotic-bioactive ingredient composite film was prepared. This solved the problems of insufficient environmental protection and preservation effect of food packaging films, improved mechanical properties and antibacterial and antioxidant capabilities, and extended the survival rate of probiotics.

CN121495366AActive Publication Date: 2026-02-10NORTHEAST FORESTRY UNIV
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Patent Information

Application Number
CN202610031532.4
Authority / Receiving Office
CN · China
Patent Type
Applications(China)
Current Assignee / Owner
Filing Date
2026-01-12
Publication Date
2026-02-10
Estimated Expiration
2046-01-12

AI Technical Summary

Technical Problem

Existing food packaging films suffer from poor environmental performance, limited preservation effects, and insufficient mechanical properties due to their single biomolecular substrates, which restricts their practical application.

Method used

Using gelatin and carboxymethyl chitosan as a composite matrix, dandelion polyphenols and Lactobacillus plantarum are loaded and cross-linked by glutamin transferase to form a composite membrane. The plasticizer is a mixture of glycerol and polyethylene glycol, thus preparing a probiotic-bioactive ingredient composite membrane.

Benefits of technology

The mechanical properties and bioactivity of the composite membrane are improved, its antibacterial and antioxidant capabilities are enhanced, it effectively inhibits meat oxidation and spoilage and microbial growth, slows down the spoilage process, and ensures the survival rate of probiotics.

✦ Generated by Eureka AI based on patent content.

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Abstract

The invention belongs to the technical field of packaging materials, and particularly discloses a probiotic-bioactive component composite membrane as well as a preparation method and application thereof, the composite membrane takes gelatin and carboxymethyl chitosan as a composite matrix, dandelion polyphenol and lactobacillus plantarum are loaded on the composite membrane, the composite membrane further comprises a plasticizer, and the plasticizer is a mixture of glycerol and polyethylene glycol. According to the probiotic-bioactive component composite membrane as well as the preparation method and the application thereof, the probiotics and the bioactive components are jointly loaded in a gelatin-carboxymethyl chitosan composite matrix, and a stable probiotic-bioactive component-membrane material system is formed through a hydrogen bond cross-linked network of the matrix; the survival of the lactobacillus plantarum can be effectively guaranteed, and the survival rate of the lactobacillus plantarum is increased.
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Description

TECHNICAL FIELD

[0001] The present application relates to the technical field of packaging materials, in particular to a probiotic-bioactive ingredient composite film and a preparation method and application thereof. BACKGROUND

[0002] The plastic product waste generated by the food packaging industry has become a serious ecological and environmental threat, and plastic packaging materials can also contaminate the food inside the package, causing food safety hazards. Therefore, the development of green, safe and degradable food packaging materials has become a research hotspot in the industry.

[0003] In recent years, active food packaging films prepared from polysaccharides, proteins, lipids and other biological macromolecules as substrates have attracted widespread attention, but single biological macromolecule substrates have defects such as insufficient mechanical properties and poor barrier properties, which limit their practical application. Blending two or more film-forming substrates to prepare composite films can achieve complementary advantages and improve the overall performance of the composite films.

[0004] Dandelion is rich in resources, easy to obtain and safe, and is rich in active ingredients such as phenolic compounds, and has various biological properties such as antibacterial and antioxidant properties; probiotics have a positive effect on human health, and the bioactive substances produced by probiotics can improve food stability and reduce the risk of deterioration. Studies have shown that co-embedding probiotics and bioactive compounds in film-forming substrates can improve the viability of probiotics. Developing a composite food packaging film based on natural biological macromolecule substrates, synergistically loaded with bioactive substances and probiotics, with excellent comprehensive performance and simple preparation, is of great significance for promoting the innovative development and practical application of green food packaging materials. SUMMARY

[0005] The purpose of the present application is to provide a probiotic-bioactive ingredient composite film and a preparation method and application thereof, and the prepared composite film has excellent comprehensive performance, is simple to prepare, is green and environmentally friendly, and solves the problems of poor environmental protection and limited preservation effect of existing food packaging films.

[0006] To achieve the above-mentioned purpose, the present application provides a probiotic-bioactive ingredient composite film, which uses gelatin and carboxymethyl chitosan as a composite substrate, loads dandelion polyphenol and Lactobacillus plantarum, and further includes a plasticizer, which is a mixture of glycerol and polyethylene glycol.

[0007] Preferably, the mass ratio of the gelatin to the carboxymethyl chitosan is 1:1, and the addition amount of the dandelion polyphenol is 2.5% (w / v).

[0008] Preferably, the mass ratio of the glycerol to the polyethylene glycol is 7:3, and the addition amount is 40% of the total mass of the gelatin and the carboxymethyl chitosan.

[0009] The application further provides a preparation method of the probiotic-bioactive ingredient composite film, comprising the following steps: Step 1, gelatin and carboxymethyl chitosan are added into deionized water according to a mass ratio, and stirred until completely dissolved in a water bath at 60 DEG C to obtain a mixed solution; Step 2, glutamine transaminase is added into the mixed solution cooled to room temperature, and crosslinked at 50 DEG C for 45 minutes, then the solution is treated in a water bath at 80 DEG C for 10 minutes, and after being cooled to room temperature, dandelion polyphenol and a plasticizer are added and fully stirred to obtain a film solution; Step 3, the activated lactobacillus plantarum is inoculated into the film solution, and after being uniformly mixed, the solution is poured into a disposable plastic culture dish and dried in a controlled incubator at 30 DEG C and a relative humidity of 50% for 24 hours to prepare the composite film.

[0010] The application further provides an application of the probiotic-bioactive ingredient composite film, which is applied to the preparation of a meat fresh-keeping packaging film.

[0011] The probiotic-bioactive ingredient composite film, the preparation method and the application thereof have the following advantages and beneficial effects: 1, the application selects gelatin and carboxymethyl chitosan as the film-forming base materials, both of which are natural macromolecules, have the characteristics of non-toxicity, excellent degradation performance and good biocompatibility, and are ideal green food packaging materials.

[0012] 2, the application prepares a food packaging composite film with synergistically loaded probiotics and bioactive ingredients.

[0013] 3, the application provides a method for preparing a polyphenol-probiotic composite film.

[0014] 4. The composite membrane prepared by this invention can effectively protect the survival of *Lactobacillus plantarum*. Compared with the composite membrane without added dandelion polyphenols, the survival rate of *Lactobacillus plantarum* is significantly improved after the membrane solution is dried and during the storage of the composite membrane. The polyphenol-probiotic composite membrane prepared by this invention has a good effect on meat preservation, effectively inhibiting meat oxidation and spoilage and microbial growth, and delaying the spoilage process.

[0015] The technical solution of the present invention will be further described in detail below with reference to the accompanying drawings and embodiments. Attached Figure Description

[0016] Figure 1 The images are SEM images of the composite membranes, where a represents GEL / CMCS, b represents GEL / CMCS / DP, c represents GEL / CMCS / LP, and d represents GEL / CMCS / DP / LP. Figure 2 The image shows the X-ray diffraction pattern of the composite film. Figure 3 The Fourier transform infrared spectra of the composite film are shown. Figure 4 This is the result of the antioxidant properties of the composite membrane; Figure 5 The results show the water vapor transmission rate of the composite membrane; Figure 6 The result is related to the water solubility of the composite membrane; Figure 7 The survival rate of Lactobacillus plantarum during the drying process; Figure 8 The survival rate of *Lactobacillus plantarum* in the composite membrane during storage is given, where A represents storage at 25℃ and B represents storage at 4℃. Figure 9 The effect of composite membrane on the pH value of pork; Figure 10 The effect of composite film on the color of pork; Figure 11 The impact of composite membranes on TBARS; Figure 12 The effect of composite membranes on total bacterial count; Figure 13 This is a flowchart illustrating the preparation process of a probiotic-bioactive ingredient composite membrane. Detailed Implementation

[0017] The technical solution of the present invention will be further described below with reference to the accompanying drawings and embodiments.

[0018] Unless otherwise defined, the technical or scientific terms used in this invention shall have the ordinary meaning as understood by one of ordinary skill in the art to which this invention pertains.

[0019] The following examples are not intended to limit the invention, but are only for illustration. Unless otherwise specified, the experimental methods used in the following examples are generally performed under conventional conditions. Unless otherwise specified, the materials and reagents used in the following examples are commercially available.

[0020] Example 1 A probiotic-bioactive ingredient composite membrane, using gelatin and carboxymethyl chitosan as the composite matrix, is loaded with dandelion polyphenols and *Lactobacillus plantarum* ATCC8014. The composite membrane also includes a plasticizer, which is a mixture of glycerol and polyethylene glycol. The mass ratio of glycerol to polyethylene glycol is 7:3, and the amount added is 40% of the total mass of gelatin and carboxymethyl chitosan. The mass ratio of gelatin to carboxymethyl chitosan is 1:1, and the amount of dandelion polyphenols added is 2.5% (w / v).

[0021] Preparation methods of probiotic-bioactive ingredient composite membranes, such as... Figure 13 As shown, it includes the following steps: Step 1: Add gelatin (GEL) and carboxymethyl chitosan (CMCS) to deionized water at a mass ratio of 1:1, and stir in a 60°C water bath until completely dissolved to obtain an 8% (w / v) GEL / CMCS mixture.

[0022] Step 2: Add 8 U / g of glutamin transferase (TG) to the mixed solution cooled to room temperature, and react and crosslink at 50°C for 45 min. Then, place the solution in an 80°C water bath for 10 min, cool to room temperature, and add 2.5% (w / v) of dandelion polyphenol (DP) and 40% (based on the total mass of gelatin and carboxymethyl chitosan) of glycerol and polyethylene glycol (mass ratio 7:3). Stir thoroughly to prepare the GEL / CMCS / DP membrane solution.

[0023] Step 3, the activated Lactobacillus plantarum (LP) ATCC8014 ( L Pctobacillus p LPntarum The solution was inoculated at approximately 9.5 log CFU / mL into the membrane solution, mixed thoroughly, and then poured into a disposable plastic culture dish with a diameter of 9 cm. The dish was then placed in a controlled incubator at 30°C and 50% relative humidity to dry for 24 hours to prepare the membrane (GEL / CMCS / DP / LP).

[0024] Example 2 The performance of the composite membrane prepared in Example 1 was tested.

[0025] 1. Performance characterization.

[0026] The surface of the GEL / CMCS / DP / LP (gelatin / carboxymethyl chitosan / dandelion polyphenol / Lactobacillus plantarum composite membrane) was observed using scanning electron microscopy to evaluate its structure.Figure 1 As shown in Figure 1, the surface structures of all membranes are smooth, uniform, non-porous, and crack-free, indicating that dandelion polyphenols and Lactobacillus plantarum have good compatibility in the GEL / CMCS (gelatin / carboxymethyl chitosan) composite membrane.

[0027] The GEL / CMCS / LP (gelatin / carboxymethyl chitosan / Lactobacillus plantarum composite membrane) and GEL / CMCS / DP / LP (gelatin / carboxymethyl chitosan / dandelion polyphenol / Lactobacillus plantarum composite membrane) have small protrusions on their surface due to the addition of Lactobacillus plantarum, resulting in a relatively rough surface structure. When dandelion polyphenol and Lactobacillus plantarum are added to the GEL / CMCS composite membrane, a small amount of aggregates and agglomeration occur, increasing the density of the composite membrane network structure.

[0028] 2. Analysis of X-ray diffraction results of the composite membrane.

[0029] Depend on Figure 2 As can be seen, the XRD patterns of the four composite membranes did not show significant changes, indicating that neither DP nor LP formed new crystals with gelatin or carboxymethyl chitosan, demonstrating good compatibility. All films exhibited a broad peak near 20° 2θ, indicating that the films were in an amorphous state. The results show that the addition of DP and LP affects the structure of the GEL / CMCS composite membrane. LP is inserted between the biopolymer chains, weakening the interactions between molecular chains. Comparison shows that the GEL / CMCS / DP / LP composite membrane has the narrowest half-width at half-maximum and the highest crystallinity.

[0030] 3. Analysis of Fourier transform infrared spectroscopy results of composite membrane.

[0031] Depend on Figure 3It can be seen that no significant peak shift was observed in this region for any of the four samples, indicating that the addition of polyphenols or probiotics did not significantly alter the chemical environment of CN. All four samples exhibited a broad absorption peak at 3540, corresponding to the stretching vibrations of -OH and -NH. After the addition of dandelion polyphenols, the peak of the GEL / CMCS / DP (gelatin / carboxymethyl chitosan / dandelion polyphenol composite membrane) broadened, indicating that the abundant phenolic hydroxyl groups in the polyphenol molecules increased the total amount of free hydroxyl groups in the system, thus deepening the absorption. The peak in the GEL / CMCS / DP / LP samples further intensified, indicating that polyphenols and proteins jointly participated in forming a hydrogen bond network, making the superposition of -OH / -NH absorption more pronounced. The peak at 1430 corresponds to the NH bending vibration, and the peak intensity of GEL / CMCS / DP / LP significantly increased, indicating that the co-existence of polyphenols and probiotics further enhanced the hydrogen bonding in the membrane system. In summary, dandelion polyphenols significantly enhance the hydrogen bond network and provide aromatic ring structural features. Lactobacillus plantarum mainly introduces protein / carbohydrate structures, making the hydrogen bond environment more complex. The GEL / CMCS / DP / LP hydrogen bond network structure is the most stable and stronger, and the interactions between components are the most complete.

[0032] 4. Analysis of the color results of the composite membrane.

[0033] The specific parameters of the four composite films were measured using a colorimeter. The color difference parameter of the white standard calibration plate was L0. =0, a0 =0, b0 =0, the color parameters of the four composite films change as shown in Table 1. The results show that the addition of DP and LP both decrease L. a and b However, the L-type GEL / CMCS composite membrane with both DP and LP added... a and b Both are superior to the GEL / CMCS composite membrane with only dandelion polyphenols added, proving that the addition of Lactobacillus plantarum may offset the adverse effects of adding dandelion polyphenols on the GEL / CMCS composite membrane.

[0034] The opacity of the GEL / CMCS composite membrane was 0.57 ± 0.17 mm. With the addition of DP and LP, the opacity of the GEL / CMCS composite membrane increased. Therefore, although the addition of DP and LP can improve the bioactivity of the GEL / CMCS composite membrane, it negatively affects the membrane's transparency.

[0035] Table 1 Color Change Parameters and Opacity

[0036] 5. Analysis of the antioxidant properties of the composite membrane.

[0037] The results are as follows Figure 4 As shown, the GEL / CMCS composite membrane exhibits certain antioxidant properties. The addition of dandelion polyphenols and *Lactobacillus plantarum* enhances the DPPH free radical scavenging ability of the GEL / CMCS composite membrane. Among the four composite membranes, the GEL / CMCS / DP / LP composite membrane demonstrates the strongest DPPH free radical scavenging ability, reaching 41.73 ± 0.92%. This may be because *Lactobacillus plantarum* enhances the antioxidant activity of dandelion polyphenols through biotransformation and also participates in DPPH free radical scavenging. This demonstrates that the combined use of dandelion polyphenols and *Lactobacillus plantarum* in the GEL / CMCS composite membrane provides synergistic antioxidant effects.

[0038] 6. Analysis of the mechanical properties of the composite membrane.

[0039] Films used in food packaging need to have certain tensile strength and ductility. The mechanical properties of the four composite films are shown in Table 2. The GEL / CMCS / DP / LP composite film is thicker than the other three films because the addition of *Lactobacillus plantarum* increases the solids content of the composite film. The addition of dandelion polyphenols improves both the total saturation (TS) and elasticity (EAB) of the GEL / CMCS composite film, possibly because the phenolic hydroxyl groups (-OH) in dandelion polyphenols form hydrogen bonds with the amino groups (-NH2) in gelatin, increasing the crosslinking degree and density in the polymer matrix. The addition of *Lactobacillus plantarum* slightly decreases the TS and EAB of the GEL / CMCS composite film, possibly because the increased *Lactobacillus plantarum* aggregates in the matrix, reducing the film's density.

[0040] The GEL / CMCS / DP / LP composite membrane also exhibited excellent tensile strength and elongation at break, at 38.61±1.48MPa and 76.81±1.63%, respectively.

[0041] Table 2 Mechanical strength of composite membranes

[0042] 7. Analysis of the antibacterial properties of the composite membrane.

[0043] As shown in Table 3, the GEL / CMCS composite membrane had almost no inhibitory effect on Escherichia coli and Staphylococcus aureus. However, the GEL / CMCS composite membrane with added dandelion polyphenols and Lactobacillus plantarum showed inhibitory effects on both Escherichia coli and Staphylococcus aureus. The GEL / CMCS / DP / LP composite membrane exhibited the best inhibitory effect on both Escherichia coli and Staphylococcus aureus, with inhibition zone diameters of 14.87±0.24 mm and 15.63±0.19 mm, respectively.

[0044] Table 3. Diameter of the inhibition zone

[0045] 8. Analysis of water vapor transmission rate of composite membrane.

[0046] from Figure 5 As can be seen, the WVP value of the GEL / CMCS composite membrane decreased significantly after the addition of DP and LP. The lowest WVP value for GEL / CMCS / DP / LP was 0.68 ± 0.43 g·mm·m. -2 ·Kpa -1 ·h -1 This is because adding DP and LP can effectively increase the density of the GEL / CMCS composite membrane structure, which can effectively reduce the permeation of water. The WVP of the composite membrane is also related to the integrity of the matrix, hydrophilicity, and the interaction between the components.

[0047] 9. Analysis of the water solubility of the composite membrane.

[0048] Figure 6 The results showed that the GEL / CMCS composite membrane had the highest water solubility, which is attributed to the good solubility of the hydrophilic groups in GEL and CMCS. The addition of DP enhanced the network structure density of the GEL / CMCS composite membrane, thus reducing its water volatile protein (WVP). The addition of LP altered the membrane's pH and hydrophobicity by producing lactic acid, leading to a decrease in water volatile protein (WS).

[0049] 10. Survival rate of Lactobacillus plantarum during the drying process.

[0050] Figure 7 The results showed that the addition of DP to the GEL / CMCS composite membrane improved the survival rate of polyphenols (LPs). This is because DP and the membrane can form a denser structure, which restricts the diffusion of moisture, etc., and the functional groups of polyphenols can also adsorb moisture, slowing down the dehydration rate during drying. All of these factors are beneficial for protecting and embedding LPs, thus improving their survival rate during the drying process.

[0051] 11. Survival rate of Lactobacillus plantarum in composite membranes during storage.

[0052] Depend on Figure 8 China A Figure 8 As shown in Figure B, the survival rate of LP in the composite membrane decreased throughout the entire storage period. Adding DP improved the survival rate of LP in the GEL / CMCS composite membrane because DP's probiotic ability promotes LP growth, thus increasing its survival rate. After 24 days of storage at 4°C, the viable cell count of GEL / CMCS / DP / LP was 6.53 logCFU / g (initially 8.68 logCFU / g), higher than that after 24 days of storage at 25°C, demonstrating that low temperature effectively delays LP inactivation.

[0053] Example 3 Application of composite films in meat preservation.

[0054] 1. The effect of composite membrane on the pH value of pork.

[0055] Changes in pH value are mainly caused by the activity of putrefactive bacteria. For example... Figure 9 As shown, the pH value of each group of pork samples showed a trend of first increasing and then decreasing with the extension of storage time. The decrease in pH was due to the production of lactic acid from anaerobic glycolysis of muscle glycogen. However, with further extension of storage time, the various enzymes and microorganisms in the pork produced alkaline nitrogenous compounds, leading to an increase in pH value. The pH value of the control group on day 9 was 7.01±0.03, exceeding the limit of 6.7 in the hygiene standards for livestock and poultry meat. Except for day 0, the pH value of the GEL / CMCS / DP / LP composite membrane was consistently the lowest among all groups. This was mainly attributed to the antibacterial activity of the GEL / CMCS / DP / LP composite membrane, which inhibited the microbial growth of pork.

[0056] 2. The effect of composite film on the color of pork.

[0057] L measured by colorimeter a b In the value, a The value reflects the degree of oxidation of myoglobin in meat, a The higher the value, the more the sample's color shifts towards red, and the lower the degree of oxidation.

[0058] from Figure 10 The data shows that the a content of pork in the control group and the treatment group is different. The values ​​generally showed a downward trend, with the blank group and the plastic wrap group showing the lowest values. The value decreased the fastest. This indicates that the GEL / CMCS composite film with added dandelion polyphenols and Lactobacillus plantarum can, to some extent, slow down the oxidation of oxymyoglobin by inhibiting the growth of microorganisms, thereby delaying the color change of pork during storage and maintaining the good color of pork.

[0059] 3. The impact of composite membranes on TBARS.

[0060] The TBARS value of fresh pork should be less than 0.5 mg MDA / kg. Figure 11The results showed that the TBARS values ​​of all pork samples gradually increased with prolonged storage time. The pork samples wrapped in the GEL / CMCS / DP / LP composite film exhibited the lowest growth rate among all sample groups, but still exceeded the freshness standard on day 9. The control group and the preservation film group both exceeded the freshness standard on day 6. This indicates that the GEL / CMCS composite film containing DP and LP effectively prevented the oxidation of pork fat. The addition of DP and LP improved the antioxidant and oxygen barrier properties of the GEL / CMCS composite film.

[0061] 4. The effect of composite membrane on total bacterial count.

[0062] The total bacterial count in fresh pork should be less than 6 log CFU / g. Figure 12 The results showed that the total bacterial count in all pork samples increased with prolonged storage time. The control group and the plastic wrap group exceeded the standard value on day 6, while the GEL / CMCS / DP / LP group exceeded the standard value on day 9. This indicates that the GEL / CMCS composite film, combined with the natural antibacterial activity of DP and the antibacterial compounds produced by Lactobacillus plantarum, can effectively inhibit the growth of the total bacterial count in pork.

[0063] Therefore, this invention utilizes the aforementioned probiotic-bioactive ingredient composite membrane, its preparation method, and its application. Probiotics and bioactive ingredients are co-loaded into a gelatin-carboxymethyl chitosan composite matrix, forming a stable "probiotic-bioactive ingredient-membrane material" system through the hydrogen-bonded cross-linking network of the matrix. This effectively ensures the survival of *Lactobacillus plantarum* and improves its survival rate.

[0064] Finally, it should be noted that the above embodiments are only used to illustrate the technical solutions of the present invention and not to limit them. Although the present invention has been described in detail with reference to preferred embodiments, those skilled in the art should understand that modifications or equivalent substitutions can still be made to the technical solutions of the present invention, and these modifications or equivalent substitutions cannot cause the modified technical solutions to deviate from the spirit and scope of the technical solutions of the present invention.

Claims

1. A probiotic-bioactive ingredient composite membrane, characterized in that: The composite film uses gelatin and carboxymethyl chitosan as a composite matrix, loaded with dandelion polyphenols and Lactobacillus plantarum. The composite film also includes a plasticizer, which is a mixture of glycerol and polyethylene glycol.

2. The probiotic-bioactive ingredient composite membrane according to claim 1, characterized in that: The mass ratio of gelatin to carboxymethyl chitosan is 1:1, and the amount of dandelion polyphenols added is 2.5% (w / v).

3. The probiotic-bioactive ingredient composite membrane according to claim 1, characterized in that: The mass ratio of glycerol to polyethylene glycol is 7:3, and the amount added is 40% of the total mass of gelatin and carboxymethyl chitosan.

4. The method for preparing the probiotic-bioactive ingredient composite membrane according to any one of claims 1-3, characterized in that, Includes the following steps: Step 1: Add gelatin and carboxymethyl chitosan to deionized water in a certain mass ratio, and stir in a 60°C water bath until completely dissolved to obtain a mixture; Step 2: Add glutamin transferase to the mixed solution cooled to room temperature, react and crosslink at 50°C for 45 min, then place the solution in an 80°C water bath for 10 min, cool to room temperature, add dandelion polyphenols and plasticizer, stir thoroughly to prepare the membrane solution. Step 3: Inoculate the activated Lactobacillus plantarum into the membrane solution, mix evenly, pour the solution into a disposable plastic petri dish, and dry it in a controlled incubator at 30°C and 50% relative humidity for 24 hours to prepare a composite membrane.

5. The application of the probiotic-bioactive ingredient composite membrane according to any one of claims 1-3, characterized in that: It is used in the preparation of meat preservation packaging films.

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