Frog meat protein source active peptide with immunomodulatory and anti-inflammatory functions and applications thereof
By extracting Ile-Ala-Asp-Arg-Met-Gln-Lys-Glu active peptides from spiny-breasted frog meat, the problems of high resource utilization of spiny-breasted frog and high cost of immunomodulatory drugs have been solved, achieving highly efficient immunomodulatory and anti-inflammatory effects.
Patent Information
- Authority / Receiving Office
- CN · China
- Patent Type
- Patents(China)
- Current Assignee / Owner
- SOUTH CHINA AGRICULTURAL UNIVERSITY
- Filing Date
- 2024-04-02
- Publication Date
- 2026-05-19
AI Technical Summary
Existing technologies make it difficult to effectively utilize spiny-breasted frog resources for intensive processing and increase their added value. Furthermore, existing immunomodulatory drugs suffer from high costs and adverse reactions.
An active peptide with the amino acid sequence Ile-Ala-Asp-Arg-Met-Gln-Lys-Glu was extracted from the meat of the spiny-breasted frog and prepared by enzymatic hydrolysis, solid-phase synthesis or genetic engineering techniques for the preparation of formulations with immunomodulatory and anti-inflammatory functions.
This bioactive peptide significantly enhances the proliferation activity of macrophages, promotes the production of NO and cytokines, alleviates inflammatory responses, and exhibits good safety and stability, making it suitable for the preparation of immunomodulators and anti-inflammatory agents.
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Figure CN118290522B_ABST
Abstract
Description
Technical Field
[0001] This invention belongs to the field of bioactive peptide technology, specifically relating to bioactive peptides derived from frog meat protein that have immunomodulatory and anti-inflammatory functions and their applications. Background Technology
[0002] The spiny-breasted frog (Quasipaa spinosa), also known as the giant spiny frog or stone frog, is a valuable resource in traditional Chinese medicine and food due to its high protein content. According to the *Compendium of Materia Medica* and *Chinese Materia Medica of Medicinal Animals*, it has nourishing and strengthening effects, enhancing immunity, memory, and preventing cardiovascular diseases (Li Jian et al. 2023, Zheng Chaoce 2011). Widely distributed in Jiangsu and Zhejiang provinces of China, its farming scale has expanded significantly in recent years (Hu Wenfang et al. 2017, Chen Dunxue et al. 2019, Mei Yiyun et al. 2015). Therefore, how to deeply process the spiny-breasted frog and increase its added value has become an urgent problem to be solved.
[0003] Immunity is one of the important mechanisms for the human body to resist disease and maintain health, and weakened immunity is closely related to many diseases. Weakened immunity makes one more susceptible to infection by various pathogens such as bacteria, viruses, fungi, and parasites, increasing the risk of influenza, colds, pneumonia, and sexually transmitted diseases. Natural bioactive peptides that enhance immunity have become a research hotspot for immunomodulators. For example, hydrolysates or peptides of immunomodulatory proteins obtained from natural sources have been widely reported (Chalamaiah et al. 2018, Rivero-Pino et al. 2023). For instance, enzymatically prepared coix gluten hydrolysate can promote the proliferation of mouse spleen cells and stimulate RAW264.7 cells to secrete NO at low concentrations (Li Ling-Ling et al. 2017a). Defatted wheat germ globulin hydrolysate can promote the proliferation, phagocytic function, and secretion of TNF-α, IL-6, and NO by immune cells (Wu et al. 2016). An immunomodulatory peptide with the sequence DHAV was identified from silkworm pupa protein hydrolysate. This peptide exhibited good splenocyte proliferation activity and stimulated the expression of immune-related genes (IL-6, IL-12, NF-κB, etc.) (Li Zhiyong et al. 2020). The peptides DNSIAMESMK and LLQLGSGR identified from oyster hydrolysate increased macrophage proliferation rate and phagocytic capacity, and promoted cytokine and NO production (Li W. et al. 2019a). These findings indicate that protein hydrolysates are an important source of immunomodulatory peptides, and further research on these peptides is of great significance.
[0004] The innate immune system is the host's first line of defense against pathogens (Akar-Ghibril 2022). It activates host defense signaling pathways through pattern recognition receptors (PAMPs) to control the expression of various immune response genes (Medzhitov and Janeway 2000). Toll-like receptors (TLRs) are members of the pattern recognition receptor family, mediating the recognition of pathogen-associated molecular patterns and playing a crucial role in the innate immune system (McCusker et al. 2018). The TLR4 receptor is one of the most studied receptors in the toll-like receptor family, exhibiting high selectivity and sensitivity to invading pathogens. The TLR4 receptor can recognize PAMPs from fungi, viruses, and mycoplasma, such as those mediated by lipopolysaccharide (LPS) or bacterial endotoxins, thus mediating inflammatory responses (Ain et al. 2020, Zhang Yongsheng et al. 2022a). Immunomodulatory substances play an indispensable role in resisting pathogen invasion and participating in inflammatory responses.
[0005] To combat autoimmune diseases, immunodeficiency, malignant tumors, and weakened immunity, drugs that regulate human immune function are used clinically. However, their cost and adverse reactions (such as abdominal pain, vomiting, and decreased appetite) hinder prevention and long-term use (del Palacio et al. 2016, Zhang P. et al. 2023b). Naturally derived peptides have the advantages of strong biological activity and high safety (Feng et al. 2022), and naturally derived immunomodulatory peptides for enhancing immunity and inhibiting excessive inflammatory responses hold promise as new sources for related foods and medicines (Kim Jae Hwan et al. 2022). Summary of the Invention
[0006] To address these issues, the primary objective of this invention is to provide active peptides derived from frog meat protein that possess immunomodulatory and anti-inflammatory functions.
[0007] Another object of the present invention is to provide the application of the above-mentioned frog meat protein source active peptide with immunomodulatory and anti-inflammatory functions.
[0008] To achieve the above-mentioned objectives, the present invention adopts the following technical solution:
[0009] An active peptide derived from frog meat protein with immunomodulatory and anti-inflammatory functions has the following amino acid sequence: Ile-Ala-Asp-Arg-Met-Gln-Lys-Glu (IADRMQKE).
[0010] Furthermore, the active peptides are prepared by enzymatic hydrolysis of frog meat, solid-phase synthesis, or genetic engineering techniques.
[0011] Frog meat enzymatic hydrolysate containing the above-mentioned active peptides.
[0012] Solid-phase synthetic products containing the above-mentioned active peptides.
[0013] A nucleic acid that encodes the aforementioned active peptide.
[0014] A biomaterial comprising the aforementioned nucleic acid, wherein the biomaterial is recombinant DNA, an expression cassette, a transposon, a vector, or a host cell.
[0015] The application of the above-mentioned active peptides, frog meat enzymatic hydrolysates, solid-phase synthetic products, nucleic acids or biological materials in the preparation of immunomodulators and / or anti-inflammatory agents.
[0016] The application of the above-mentioned active peptides, frog meat enzymatic hydrolysate, solid-phase synthetic products, nucleic acids or biological materials in the preparation of antibacterial and / or anti-infective agents.
[0017] The application of the above-mentioned active peptides, frog meat enzymatic hydrolysate, solid-phase synthetic products, nucleic acids or biological materials in the preparation of macrophage proliferation promoters.
[0018] Furthermore, the active peptide is one of an oral preparation or a topical preparation.
[0019] The present invention has the following advantages and effects compared with the prior art:
[0020] This invention purifies and identifies hydrolysate of spiny-breasted frog meat to obtain novel bioactive peptides and explores their activity and mechanism of action. Results show that a novel immunomodulatory peptide, IADRMQKE (989.4964 Da), was identified from the spiny-breasted frog meat hydrolysate. This bioactive peptide significantly enhances the proliferation activity of RAW264.7 macrophages and accelerates the cell cycle, promotes the production of NO and cytokines (IL-6, TNF-α), and increases reactive oxygen species (ROS) levels. Inflammatory response experiments indicate that the bioactive peptide can alleviate inflammatory responses. Molecular docking results show that the bioactive peptide binds to the key region of TLR4 / MD-2 via hydrogen bonds and hydrophobic interactions. Furthermore, bioinformatics analysis indicates that the bioactive peptide exhibits good safety and stability. In conclusion, this bioactive peptide holds promise as a new raw material for natural immunomodulators and anti-inflammatory agents, promoting the high-value utilization of spiny-breasted frogs. Attached Figure Description
[0021] Figure 1Figure 1 shows the results of a study on the effects of frog meat protein-derived bioactive peptides on the proliferation activity and cell cycle distribution of RAW264.7 cells. In the figure, A represents cell proliferation activity, B represents the percentage of cell cycle distribution in G0 / G1, S, and G2 / M phases, and C represents the flow cytometry cell cycle distribution.
[0022] Figure 2 Figure 1 shows the results of a study on the effects of frog meat protein-derived bioactive peptides on NO and cytokine release in RAW264.7 cells; where A represents cellular NO, B represents cytokine IL-6, and C represents cytokine TNF-α.
[0023] Figure 3 The effect of frog meat protein-derived bioactive peptides on ROS levels in RAW264.7 cells is shown in the flow cytometry diagram, where A represents the ROS content equivalent to DCF and B represents the ROS content equivalent to the fluorescence intensity of DCF.
[0024] Figure 4 The study investigated the effects of active peptides derived from frog meat protein on NO release induced by LPS in RAW264.7 cells. In Figure A, the effect of active peptides on NO release in RAW264.7 cells was observed 12 h after LPS induction, and in Figure B, the effect of active peptides on NO release in RAW264.7 cells was observed 24 h after LPS induction.
[0025] Figure 5 The image shows the docking results of the frog meat protein source active peptide IADRMQKE with TLR4 / MD-2 molecules; where A is a 3D image of the complex after docking, B is a 3D image of the interaction between the peptide and TLR4 / MD-2, and C is a 2D image of the interaction site between the peptide and TLR4 / MD-2. Detailed Implementation
[0026] The present invention will be further described in detail below with reference to the embodiments and accompanying drawings, but the implementation of the present invention is not limited thereto.
[0027] Example 1: Synthesis of bioactive peptides derived from frog meat protein
[0028] The bioactive peptides screened from the hydrolysate of spiny-breasted frog meat have the amino acid sequence IADRMQKE. They were synthesized by Nanjing Jietai Biotechnology Co., Ltd. HPLC analysis showed that the purity of the synthesized peptides was ≥98%.
[0029] Example 2: Immunomodulatory Activity Analysis of Frog Meat Protein-Derived Bioactive Peptides
[0030] 2.1 Cell Culture
[0031] RAW264.7 macrophages were cultured in DMEM containing 20% FBS and incubated in an incubator at 37°C and 5% CO2. When the cells reached nearly 80% growth, they were passaged by repeated pipetting. Cells in the logarithmic growth phase were selected for experiments.
[0032] 2.2 Cell proliferation activity
[0033] RAW264.7 macrophages were used at a concentration of 5 × 10⁻⁶. 4 Cells were seeded at a density of 10 cells / well in 96-well plates and cultured for 24 h. Then, a peptide solution or positive control LPS (10 μg / mL) was added for 24 h of intervention. The blank control group received only culture medium. The supernatant was discarded, and 20 μL of 5 mg / mL MTT solution was added to each well. The plates were incubated at 37°C in a 5% CO2 cell culture incubator for 4 h. The supernatant was discarded, and 100 μL of DMSO was added to each well. The plates were incubated at room temperature for 20 min, and the absorbance was measured at OD490 nm using a microplate reader (Perkin Elmer, USA) after shaking for 5 s. Cell proliferation activity was determined based on the absorbance value.
[0034] 2.3 NO release, cytokine secretion, and cell cycle
[0035] NO and cytokines were measured with slight modifications according to the method of Yu and Yang et al. (Yang Q. et al. 2020a, Yu Y. et al. 2021), with RAW264.7 macrophages sampled at 5 × 10⁻⁶. 4 Cells were seeded at a density of 10 cells / well in 24-well plates and cultured for 48 h. The supernatant was discarded, and the cells were treated with either a peptide solution (50-300 μg / mL) or a positive control LPS (10 μg / mL) for 24 h. The blank control group received only culture medium. The supernatant was used to determine the NO release, IL-6 secretion, and TNF-α secretion levels of RAW264.7 cells using NO assay kits and IL-6 and TNF-α ELISA kits, following the kit instructions. After discarding the supernatant, each well was washed with pre-chilled PBS and centrifuged (800 rpm, 3 min) to collect the cells. After discarding the supernatant, 70% pre-chilled ethanol was added, and the cells were fixed at 4°C for 24 h. Subsequently, cell cycle analysis was performed using a cell cycle assay kit (Beckman, USA) (Yang Q. et al. 2020a).
[0036] 2.4 Determination of Reactive Oxygen Species (ROS) Content
[0037] The determination of reactive oxygen species was based on a slight modification of the method described by Zhang et al. (Zhang Z. et al. 2022b). The cell density was adjusted to 1 × 10⁻⁶. 5Cells were seeded per well in 24-well plates and incubated for 24 hours. The culture medium was then discarded, and cells were treated with different concentrations of peptide solution (50-300 μg / mL) or positive control LPS (10 μg / mL) for 24 hours. The blank control group received only culture medium. The supernatant was discarded, and the cells were washed three times with PBS. Subsequently, the cells were analyzed using a reactive oxygen species (ROS) detection kit, and fluorescence intensity was measured by flow cytometry.
[0038] 2.5 Statistical Analysis
[0039] Data processing and graphing were performed using GraphPad Prism 8 (GraphPad Software, Inc., San Diego, California, USA), and data analysis was conducted using IBM SPSS Statistic 21 (Version 21.0, IBM Co., New York, USA). Different letters indicate significant differences (p < 0.05).
[0040] 2.6 Results and Analysis
[0041] (1) Effects of immunologically active peptides on the proliferation activity and cell cycle of RAW264.7 cells
[0042] like Figure 1 As shown in Figure A, within the concentration range of 50-300 μg / mL, cell proliferation activity was significantly enhanced after treatment with IADRMQKE (p<0.05). IADRMQKE also exhibited good cell proliferation activity (117.67%) at a very low concentration (50 μg / mL), significantly increasing by 17.67% compared to the blank control group (p<0.05). Similar macrophage proliferation-promoting activities have been previously reported, such as tilapia peptide (1.250 mg / mL, proliferation rate 112.51%) (Liu Kuan-Yu et al. 2023b), and our results show superiority over tilapia peptide at low concentrations.
[0043] The preparation for cell division between two consecutive cell divisions is called the cell cycle. Key phases of the cell cycle include G1, S, G2, and M phases. Cell cycle regulation plays a crucial role in cell proliferation, growth, and repair; therefore, we investigated the cell cycle distribution in RAW264.7 cells. Figure 1Figures B and C show the cell cycle distribution after IADRMQKE treatment. Compared with the blank control group, the proportion of RAW264.7 cells in G0 / G1 phase decreased, while the proportion in S phase increased to varying degrees. Specifically, LPS treatment reduced G0 / G1 phase by 21.6% and increased S phase by 18.7%, respectively. At the same concentration (300 μg / mL), IADRMQKE reduced G0 / G1 phase by 15.36% and increased S phase by 27.26% compared to the blank control group. This indicates that treatment with immunomodulatory peptides shortened the DNA synthesis preparation period of RAW264.7 cells and accelerated the DNA synthesis process, thereby accelerating the cell cycle and promoting RAW264.7 cell proliferation. This result is also consistent with... Figure 1 The result for A is consistent.
[0044] (2) Effects of bioactive peptides on NO and cytokine secretion in RAW264.7 cells
[0045] Nitric oxide (NO) is a key regulator of immune cell function, participating in the body's inflammatory and immune regulatory processes, and has the function of killing bacteria, viruses, and tumor cells. Figure 2 As observed in Figure A, after IADRMKE treatment, the release of NO from RAW264.7 cells showed a concentration-dependent increase, rising from a minimum of 9.86 pg / mL to 18.96 pg / mL, reaching a maximum at 300 μg / mL. NO plays an important role in immune regulation. It has been reported that Atlantic cod peptides and soybean peptides can significantly upregulate the expression of the NO precursor iNOS mRNA in RAW264.7 cells and induce NO production (Yuan et al. 2023). This indicates that IADRMKE can significantly promote NO production in RAW264.7 cells. Furthermore, NO not only has a cytotoxic effect on pathogens but can also induce cytokine production. Therefore, we further measured cytokine secretion.
[0046] Cytokines are regulatory proteins that modulate the immune system and inflammation. Among them, interleukin-6 (IL-6) and tumor necrosis factor-α (TNF-α) can enhance macrophage activation and antigen presentation in the immune response and regulate immunity through different mechanisms. Figure 2As shown in B and C, compared with the blank control group, LPS significantly stimulated RAW264.7 cells to secrete IL-6 (383.01 pg / mL) and TNF-α (879.96 pg / mL) (p<0.05). Treatment with IADRMQKE (300 μg / mL) resulted in the highest IL-6 secretion (160.52 pg / mL), which was 3.08 times that of the blank control group. Some reports indicate that soybean extract and low molecular weight peptides from the thick-shelled mussel (Mytilus coruscus) can significantly stimulate RAW264.7 cells to secrete factors such as IL-6, IL-10, and IL-1β. These peptides also exhibit characteristics that promote NO production. This suggests that cytokines, similar to NO, are important mediators of the immunomodulatory effects of peptides.
[0047] (3) Effects of bioactive peptides on reactive oxygen species levels in RAW264.7 cells
[0048] Reactive oxygen species (ROS) are oxidizing reactive substances produced by living cells. ROS are key components in the host's fight against invading viruses and important messengers of innate and adaptive immunity. ROS may participate in immune responses through different signaling pathways, thereby inducing changes in cytokines such as IL-1β, TNF-α, and IFN-β. Therefore, we measured the production of ROS in RAW264.7 cells to explore its impact on immune regulation. DCFH-DA itself does not show any fluorescence but can penetrate the cell membrane, while intracellular ROS can oxidize DCFH-DA to DCF, which then exhibits fluorescence. Therefore, the DCFH-DA method can quantitatively detect changes in intracellular ROS. Figure 3 As shown, the intracellular ROS levels in RAW264.7 cells were significantly higher than those in the control group after treatment with IADRMKE and LPS (p<0.05), with the highest ROS levels observed at 200 μg / mL IADRMKE treatment. ROS may act as signaling molecules in RAW264.7 cells, activating some immune signaling pathways and triggering immune responses. The NF-κB pathway is one of the most frequently reported ROS-induced pathways. NF-κB is also an important pathway related to immune regulation; it can be activated by both classical and non-classical pathways, participating in and regulating immune and inflammatory responses. Currently, the NF-κB pathway is involved in the reported mechanisms of action of various immunomodulators, suggesting a close relationship between ROS and immune regulation. Our results indicate that IADRMKE can significantly stimulate the production of reactive oxygen species in RAW24.7 cells, thereby participating in the immune response.
[0049] Example 3: Molecular docking and visualization analysis
[0050] 3.1 Immunomodulatory molecular mechanisms of bioactive peptides
[0051] In this invention, IADRMQKE exhibits favorable cellular immunomodulatory effects, but its molecular mechanism remains unclear. Therefore, we explored the molecular mechanism of the immunomodulatory peptide by predicting the interaction between the peptide and the TLR4 / MD-2 receptor through molecular docking. Figure 5 As shown, the peptide enters the hydrophobic cavity of TLR4 / MD-2 in a specific conformation and interacts with specific amino acid residues of TLR4 / MD-2. The large hydrophobic cavity of the TLR4 / MD-2 receptor allows the peptide to bind stably within it. IADRMQKE forms covalent and non-covalent interactions with TLR4 / MD-2, including hydrogen bonds, hydrophobic interactions, electrostatic interactions, and van der Waals forces. Among these, hydrogen bonds are the dominant interaction force, primarily binding to the -OH, -C=O, -NH2, -NH, and -CO groups of the peptide. Hydrogen bonds significantly contribute to the stability of the docking complex, promoting the formation of a stable structure between the peptide and the receptor.
[0052] IADRMQKE forms 18 hydrogen bonds with TLR4 / MD-2, especially 14 conventional hydrogen bonds. The main interaction sites include ASN B:456, LYS A:458, GLY B:361, LYS B:360, ARG D:90, ARG A:434, ARG B:380, and LEU A:432. ARG A:434 exhibits a strong interaction with IADRMQKE, forming four conventional hydrogen bonds with -C=O on IADRMQKE and one electrostatic interaction with -CO. Simultaneously, amino acid residues on TLR4 / MD-2 also form hydrophobic or electrostatic interactions with carbons or ions on the peptide. For example, LYSD:91 forms an alkyl hydrophobic interaction with C5, and LYS A:433, in addition to forming conventional hydrogen bonds, also forms interactions with O. - Ions form an electrostatic interaction.
[0053] Hydrogen bonding and hydrophobic interactions are the key interactions in coordination compounds. We statistically... Figure 5 The hydrogen bonds and hydrophobic interactions, along with their binding sites, are shown in Table 1. This indicates that the immunomodulatory peptides are located in important regions of the TLR4 / MD-2 receptor and exhibit good affinity, which may be key sites for the activity of the immunomodulatory peptides. Previous reports have shown that immunomodulatory peptides from gelatin hydrolysates and Litopenaeus vannamei bind to TLR4 / MD-2 via hydrogen bonds and hydrophobic interactions, consistent with our results. This suggests that hydrogen bonds and hydrophobic interactions enhance the binding stability of peptides to TLR4 / MD-2, thereby improving the immunomodulatory effect.
[0054] Table 1. Interaction sites between immunomodulatory peptides and TLR4 / MD-2
[0055]
[0056] Generally, the activity of immunomodulatory peptides is related to various properties, such as molecular weight, amino acid composition, and hydrophobicity. Peptides containing amino acid residues such as leucine, lysine, histidine, and glycine have been reported to exhibit good immunomodulatory activity. Furthermore, the presence of basic or hydrophobic amino acids at the terminal ligase is also an indicator of immunomodulatory activity. For example, immunomodulatory peptides derived from barley contain 42.20% hydrophobic amino acids and 10.86% basic amino acids. The presence of these amino acids was also observed in the novel peptides we identified. These amino acids all formed hydrogen bonds or hydrophobic interactions with the TLR4 / MD-2 receptor. For instance, in IADRMQKE, arginine forms hydrogen bonds with ARG B:380, GLY:361, and LYS B:360, while methionine forms hydrophobic interactions with LYSD:91 and ARG A:434. This suggests that the presence of these amino acids may lead to a tighter binding of immunomodulatory peptides to the TLR4 / MD-2 receptor, providing some data support for the structure-activity relationship of immunomodulatory peptides.
[0057] Example 4: Anti-inflammatory activity analysis of frog meat protein-derived bioactive peptides
[0058] 4.1 Establishment of LPS-induced inflammation model in RAW264.7 cells
[0059] Adjust the RAW264.7 cell concentration to 2×10⁻⁶. 5 Cells were seeded per well in 24-well plates. After incubation for 24 hours, the culture medium was discarded, and different concentrations of peptide solutions were added. The blank control group and the model group were incubated with culture medium only. After incubation for 12 hours, 50 μL of 10 μg / mL LPS solution (final concentration 1 μg / mL) was added to the model group and the sample group, while the blank control group was incubated with culture medium only. Incubation continued for 12 hours and 24 hours. The cell culture supernatant was collected and relevant indicators were measured.
[0060] 4.2 Determination of NO release in LPS-induced RAW264.7 cells under inflammation
[0061] The supernatant was used to measure the NO release of RAW264.7 cells after LPS induction for 12 h and 24 h, respectively, to investigate the effect of peptides on inflammatory response.
[0062] Immune cell proliferation is a crucial manifestation of the immune response; macrophages can respond to infection or inflammation through proliferation. Therefore, we further constructed an inflammation model to investigate the effect of IADRMQKE on NO secretion. Figure 4As shown, after IADRMKE treatment, the NO release of RAW264.7 cells showed a decreasing trend and was higher than that of the blank control group. Even after 12 and 24 hours of LPS-induced inflammation, the NO release was still lower than that of the model group. After 24 hours of LPS induction, the NO release in the 1 μg / mL and 1.25 μg / mL groups was reduced by 27.35% and 26.75% compared to the model group, respectively. Our results indicate that IADRMKE can significantly alleviate inflammatory states at low concentrations, thereby participating in the immune response.
[0063] Example 5: Physicochemical properties of frog meat protein-derived bioactive peptides
[0064] Small molecule peptides possess a variety of functional active groups and exhibit superior biological activity compared to whole proteins; however, their safety and stability remain significant concerns in food processing. Therefore, we further analyzed the physicochemical properties of immunomodulatory peptides using bioinformatics. As shown in Table 2, these immunomodulatory peptides are non-toxic, indicating high safety and suitability for food applications. They also exhibit good hydrophobicity, with a hydrophobic force between +19.26 kcal / mol, consistent with molecular docking results. Furthermore, the peptide's instability coefficient is less than 40, and its pI is 6.07, indicating stability and preservation of biological activity during processing and digestion. This provides some reference for the application of peptides in food processing.
[0065] Table 2 Physicochemical properties of immunomodulatory peptides analyzed by bioinformatics
[0066]
[0067] This study obtained a novel immunomodulatory peptide, IADRMKE, from hydrolysate of spiny-breasted frog meat. This peptide promoted the proliferation of RAW264.7 cells and accelerated the cell cycle, promoted the production of NO and cytokines (IL-6, TNF-α), and increased ROS levels, exhibiting good cellular immune activity. Inflammation experiments showed that IADRMKE could alleviate LPS-induced inflammatory responses in RAW264.7 cells and reduce NO release. Molecular docking results indicated that this peptide could bind to the key region of TLR4 / MD-2, thereby exerting immunomodulatory activity. Bioinformatics analysis revealed that these peptides possess safety and stability. These results suggest that the spiny-breasted frog meat immunomodulatory peptide IADRMKE can serve as a good source of natural immunomodulators and anti-inflammatory agents.
[0068] The above embodiments are preferred embodiments of the present invention, but the embodiments of the present invention are not limited to the embodiments described above. Any changes, modifications, substitutions, combinations, or simplifications made without departing from the spirit and principle of the present invention shall be considered equivalent substitutions and shall be included within the protection scope of the present invention.
Claims
1. The application of a frog meat protein-derived bioactive peptide with immunomodulatory and anti-inflammatory functions in the preparation of anti-inflammatory agents, characterized in that: The amino acid sequence of the frog meat protein source active peptide is as follows: Ile-Ala-Asp-Arg-Met-Gln-Lys-Glu.
2. The application according to claim 1, characterized in that: The active peptide is one of an oral preparation or a topical preparation.
3. The application of a solid-phase synthesized product in the preparation of anti-inflammatory agents, characterized in that: The solid-phase synthesis product is a frog meat protein-derived bioactive peptide with immunomodulatory and anti-inflammatory functions; the amino acid sequence of the frog meat protein-derived bioactive peptide is as follows: Ile-Ala-Asp-Arg-Met-Gln-Lys-Glu.
4. The application of a nucleic acid in the preparation of an anti-inflammatory agent, characterized in that: The nucleic acid encoded by the substance is a frog meat protein source bioactive peptide with immunomodulatory and anti-inflammatory functions; the amino acid sequence of the frog meat protein source bioactive peptide is as follows: Ile-Ala-Asp-Arg-Met-Gln-Lys-Glu.
5. The application of a biomaterial in the preparation of an anti-inflammatory agent, characterized in that: The biomaterial is an expression cassette, transposon, vector, or host cell containing nucleic acid encoding an active peptide derived from frog meat protein that has immunomodulatory and anti-inflammatory functions; the amino acid sequence of the active peptide derived from frog meat protein is as follows: Ile-Ala-Asp-Arg-Met-Gln-Lys-Glu.