SNP (Single Nucleotide Polymorphism) marker primer pair related to porcine tolerance mycoplasmal pneumonia character on porcine chromosome 3 and application of SNP marker primer pair
By developing SNP markers and primer pairs on pig chromosome 3, and using PCR amplification and sequencing technology, the problem of slow progress in improving the traits of mycoplasma pneumonia tolerated by pigs in traditional methods was solved, and rapid and accurate trait evaluation and breeding effects were achieved.
Patent Information
- Application Number
- CN202510524045.7
- Authority / Receiving Office
- CN · China
- Patent Type
- Applications(China)
- Current Assignee / Owner
- Filing Date
- 2025-04-24
- Publication Date
- 2025-08-01
- Estimated Expiration
- 2045-04-24
AI Technical Summary
Traditional methods are difficult to efficiently improve the tolerance of mycoplasma pneumonia in pig herds, resulting in slow progress in genetic improvement, and it is difficult for the prior art to quickly and accurately evaluate the traits of mycoplasma pneumonia in pigs.
SNP markers and primer pairs related to porcine tolerated mycoplasma pneumonia on pig chromosome 3 were developed. Through PCR amplification and sequencing technology, the T/C polymorphism of the SNP site in the pig genome was detected, and pig populations with stronger tolerance were screened out.
It has achieved rapid and accurate assessment of the mycoplasma pneumonia traits in the pig herd, improved the tolerance of the pig herd, and improved the breeding efficiency and economic benefits.
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Figure CN120400360A_ABST
Abstract
Description
Technical Field
[0001] The present invention belongs to the technical field of molecular biology and relates to a SNP marker primer pair related to the trait of pigs resistant to Mycoplasma hyopneumoniae and its application. Background Art
[0002] Globally, Mycoplasma hyopneumoniae has caused huge economic losses to the pig industry. Mycoplasma hyopneumoniae seriously affects production indexes such as the feed intake and daily weight gain of pigs. The lungs are easily invaded by environmental pathogens, leading to lung diseases, usually accompanied by lung lesions, and even causing the death of pigs in severe cases. As a complex trait, the trait of resistance to Mycoplasma hyopneumoniae has a low heritability and many influencing factors. Therefore, it is difficult to directly select and breed pigs for the trait of resistance to Mycoplasma hyopneumoniae through traditional methods. Traditional methods are inefficient and the progress of genetic improvement is slow. In recent years, with the development of molecular genetics and genomics, researchers have begun to use the association between single nucleotide polymorphism (SNP) markers and pig traits to solve this problem. SNP markers are a common type of genomic genetic marker, which have the advantages of high polymorphism and wide distribution in the genome, and thus have become an important tool for studying pig genetic traits.
[0003] Based on this background, this patent proposes a SNP marker primer pair related to the trait of resistance to Mycoplasma hyopneumoniae. As a complex trait, it has a low heritability and many influencing factors. By using genotyping technology, the trait of pigs' resistance to Mycoplasma hyopneumoniae can be quickly and accurately evaluated. This technology can not only reduce the production cost and improve the degree of pigs' resistance to Mycoplasma hyopneumoniae, but also provide important molecular genetic basis for the selection and improvement of pigs. Summary of the Invention
[0004] The purpose of the present invention is to provide a breeding molecular marker developed from SNP markers related to pigs' resistance to Mycoplasma hyopneumoniae, aiming at the slow effect and small progress of traditional pig breeding for resistance to Mycoplasma hyopneumoniae.
[0005] Another purpose of the present invention is to provide a primer pair and a detection method for detecting the above SNP markers. Another purpose of the present invention is to provide the uses of the above SNP markers, molecular markers, and primers.
[0006] The purpose of the present invention can be achieved by the following technical solutions:
[0007] Molecular markers on porcine chromosome 3 related to the trait of porcine tolerance to Mycoplasma hyopneumoniae, the sequences of the molecular markers are as shown in SEQ ID NO: 1, which contains an SNP marker locus related to the trait of porcine tolerance to Mycoplasma hyopneumoniae. This locus is the nucleotide locus rs328087548 on porcine chromosome 3 of the reference sequence of the International Pig Genome Version 11.1 (this locus was identified by the research team through genome-wide association analysis). In SEQ ID NO: 1, the SNP marker locus is located at the 229th position, with T / C polymorphism.
[0008] A primer pair for detecting the SNP marker on porcine chromosome 3 related to the trait of porcine tolerance to Mycoplasma hyopneumoniae, the upstream primer is: SEQ ID NO: 2, and the downstream primer is: SEQ ID NO: 3.
[0009] The application of the molecular markers and the primer pair of the present invention in detecting the trait of porcine tolerance to Mycoplasma hyopneumoniae and pig breeding.
[0010] A method for detecting the SNP marker on porcine chromosome 3 related to the trait of porcine tolerance to Mycoplasma hyopneumoniae, which includes PCR amplifying a segment of the nucleotide locus rs328087548 on porcine chromosome 3 of the reference sequence of the International Pig Genome Version 11.1, sequencing the amplification product, and judging the T / C polymorphism of this locus.
[0011] As a preference of the present invention, the pig is Danish Large White pig or its crossbred pig breeds.
[0012] As a preference of the present invention, the genomic DNA of Danish Large White pig or its crossbred pig breeds is subjected to PCR amplification using the primer pair of the present invention.
[0013] As a further preference of the present invention, the method includes the following steps:
[0014] (1) Taking a porcine ear tissue sample to extract DNA;
[0015] (2) Using the extracted porcine genomic DNA as a template and performing PCR amplification using the primer pair of the present invention;
[0016] (3) Sequencing the amplification product, analyzing the sequencing results, and judging the T / C polymorphism at the 229th position of SEQ ID NO: 1.
[0017] The application of the molecular markers of the present invention in screening pig populations or new strains with stronger ability to tolerate Mycoplasma hyopneumoniae.
[0018] The application of the primer pair of the present invention in screening pig populations or new strains with stronger ability to tolerate Mycoplasma hyopneumoniae.
[0019] A method for screening a pig population with stronger ability to tolerate Mycoplasma pneumoniae, including detecting the genotype of the nucleotide site rs328087548 on chromosome 3 of pigs in the reference sequence of the international pig genome version 11.1, and preferentially selecting individuals with the CC genotype at the rs328087548 nucleotide site as reserve breeding pigs for breeding.
[0020] As a preference of the present invention, the pig breed used is Danish Large White pigs or their crossbred pig breeds.
[0021] As a preference of the present invention, the method for detecting the genotype of the nucleotide site rs328087548 on chromosome 3 of pigs in the reference sequence of the international pig genome version 11.1 is selected from PCR or gene sequencing.
[0022] Beneficial effects
[0023] The present invention has developed an SNP marker related to pigs' tolerance to Mycoplasma pneumoniae on chromosome 3 of pigs, and provided a primer pair and method for detecting this marker. The SNP marker provided by the present invention can be applied to marker-assisted selection of pigs' tolerance to Mycoplasma pneumoniae traits, and a pig population or strain with the trait of tolerating Mycoplasma pneumoniae can be screened by identifying the genotype of this SNP marker. The establishment of this population or strain can improve the ability to tolerate Mycoplasma pneumoniae in pigs, and generate more social and economic benefits. Description of the drawings
[0024] Figure 1 It is the PCR amplification gel diagram of the rs328087548 site on chromosome 3 of Danish Large White pigs and their crossbred pig breeds.
[0025] Figure 2 It is an example of the genotyping diagram of the rs328087548 site on chromosome 3 of Danish Large White pigs and their crossbred pig breeds.
[0026] Note: The genotype of A is TT type, the genotype of B is TC type, and the genotype of C is CC type. Specific implementation examples
[0027] The following examples are used to illustrate the present invention, but are not used to limit the scope of the present invention. Without departing from the spirit and essence of the present invention, any modification or replacement of the methods, steps or conditions of the present invention belongs to the scope of the present invention.
[0028] Example 1
[0029] 1 Data source
[0030] The data used were from the slaughter data records of Guangxi Haihe Swine Co., Ltd., and the proportion of the lung lesion area was statistically analyzed after slaughter. The 28-point method, namely the Madec method, is to evaluate according to the proportion of the lung area with specific lesions of Mycoplasma hyopneumoniae in 7 lung lobes (only the ventral side of the accessory lobe is observed, and both the ventral and dorsal sides of the other 6 lung lobes need to be observed) in the surface area of the lung lobe. The maximum score for each lung lobe is 4 points. Among them, no damage is 0, the damaged area accounting for 1%-25% of the lung lobe area is 1 point, 26%-50% is 2 points, 51%-75%
[0031] is 3 points, and greater than 75% is 4 points.
[0032] 2 Extraction of porcine genomic DNA
[0033] Collect 1 ear tissue sample from 378 Danish Large White pigs and their hybrid pig breeds for individual DNA extraction;
[0034] Refer to the instruction manual of the tissue DNA extraction kit of Tiangen Biotech Co., Ltd. The extraction steps are as follows:
[0035] ① First, add 68 mL and 200 mL of absolute ethanol to buffer GD and wash buffer PW respectively, and mix well.
[0036] ② Collect about 100 mg of ear tissue sample and place it in a 2 mL EP tube. After completely cutting it into pieces, add 200 μL of buffer GA and shake until it is completely suspended.
[0037] ③ Add 20 μL of proteinase K solution, mix well and digest overnight in a 56°C water bath until the tissue sample is dissolved. Briefly centrifuge to remove the water droplets on the inner wall of the tube cap.
[0038] ④ Add 200 μL of buffer GB, mix well by inverting thoroughly, and place it in a 70°C metal bath for 10 min. The solution should become clear. Briefly centrifuge to remove the water droplets on the inner wall of the tube cap.
[0039] ⑤ Add 200 μL of absolute ethanol, mix well by shaking thoroughly for 15 sec. At this time, flocculent precipitates may appear. Briefly centrifuge to remove the water droplets on the inner wall of the tube cap.
[0040] ⑥ Add the solution and flocculent precipitates obtained in the previous step into an adsorption column CB3. Place the adsorption column in a collection tube, then centrifuge at 12,000 rpm for 30 sec, pour out the waste liquid, and put the adsorption column CB3 back into the collection tube.
[0041] ⑦ Add 500 μL of buffer GD to the adsorption column CB3, centrifuge at 12,000 rpm for 30 sec, pour out the waste liquid, and place the adsorption column CB3 in the collection tube
[0042] ⑧ Add 600 μL of wash buffer PW to adsorption column CB3, centrifuge at 12,000 rpm for 30 sec, pour off the waste liquid, and place adsorption column CB3 into the collection tube.
[0043] ⑨ Repeat step ⑧.
[0044] ⑩ Place adsorption column CB3 back into the collection tube, centrifuge at 12,000 rpm for 2 min, pour off the waste liquid. Place adsorption column CB3 at room temperature for several minutes to thoroughly dry the residual wash buffer in the adsorption material.
[0045] Transfer adsorption column CB3 into a clean centrifuge tube, suspend and add 100 μL of elution buffer TE to the middle part of the adsorption membrane, place at room temperature for 2 - 5 min, centrifuge at 12,000 rpm for 2 min, collect the solution into the centrifuge tube, add the centrifuged solution back into adsorption column CB3, place at room temperature for 2 min, and centrifuge at 12,000 rpm for 2 min to collect the solution into the centrifuge tube.
[0046] Use a Nanodrop - 2000 spectrophotometer to detect the quality and concentration of DNA. Dilute the DNA concentration to 50 ng / μL and store it at - 20 °C for later use.
[0047] 3 PCR amplification and sequencing of target fragments
[0048] Use the genomic DNA of Danish Large White pigs and their crossbred pig breeds as templates for PCR amplification. The reaction system includes 1 μL of DNA template, 1 μL each of the primers shown in SEQ ID NO: 2 and SEQ ID NO: 3, and 22 μL of PCR mix; the amplification program is as follows:
[0049]
[0050] Perform agarose gel electrophoresis on the amplification products. The size of the product fragments is approximately 705 bp, and the electrophoresis results are as Figure 1 shown. Sequence the remaining amplification products, use DNAman software to compare and verify the accuracy of the sequences, and use Chromas software to genotype the rs328087548 locus (i.e., the 299th bp locus in SEQ ID NO.1).
[0051] 4 Statistical analysis
[0052] Use the editor of SAS 9.4 software to run the code for association analysis of genotypes and phenotypes. The code is as follows:
[0053]
[0054] 5 Results
[0055] Table 1 shows the results of the influence of different genotypes at the rs328087548 locus on the ability of Danish Large White pigs and their crossbreds to tolerate Mycoplasma pneumonia. The results indicate that the genotype at the rs328087548 locus is significantly associated with the total score of the proportion of lung lobe lesion area (P<0.05). Among them, the total score of the proportion of lung lobe lesion area of individuals with the CC genotype is significantly lower than that of individuals with the TT genotype (P<0.05), indicating that the ability of individuals with the CC genotype to tolerate Mycoplasma pneumonia is significantly greater than that of individuals with the TT genotype (P<0.05); the total score of the proportion of lung lobe lesion area is significant among CC, TC, and TT individuals (P<0.05), showing that there are significant differences in the ability to tolerate Mycoplasma pneumonia among TT, TC, and CC individuals (P<0.05). Therefore, successive selection of the CC genotype at the rs328087548 locus in Danish Large White pigs and their crossbreds is beneficial to increasing the ability of Danish Large White pigs and their crossbreds to tolerate Mycoplasma pneumonia, thereby improving the economic benefits and disease tolerance of Danish Large White pigs and their crossbreds.
[0056] Table 1 Association analysis of the rs328087548 locus on porcine chromosome 3 and the lesion area of the lungs after slaughter
[0057]
[0058] Note: Different superscript letters for numbers in the same row indicate significant differences (P<0.05).
Claims
1. A method for developing molecular markers related to the trait of pigs tolerant to Mycoplasma hyopneumoniae, characterized in that, Based on the nucleotide sequence of the nucleotide site rs328087548 on chromosome 3 of the pig in the 11.1 version of the international pig genome reference sequence, a primer pair was designed, and PCR amplification was carried out using pig genomic DNA as a template, so that the nucleotide site rs328087548 on chromosome 3 of the pig in the 11.1 version of the international pig genome reference sequence was converted into a molecular marker. The genotype of the rs328087548 nucleotide site was significantly associated with the phenotype of the ability to tolerate Mycoplasma, and among them, the ability of CC-type individuals to tolerate Mycoplasma pneumoniae was significantly higher than that of TT-type individuals.
2. The method according to claim 1, characterized in that, The primer pair sequence is as follows: upstream primer: SEQ ID NO: 2, downstream primer: SEQ ID NO:
3.
3. The molecular marker obtained by the method according to claim 1 or 2.
4. The molecular marker according to claim 3, wherein The molecular marker sequence is as shown in SEQ ID NO:
1. The nucleotide site rs328087548 on chromosome 3 of the pig in the 11.1 version of the international pig genome reference sequence is located at the 229th position in SEQ ID NO: 1, and there is T / C polymorphism. The ability of CC-type individuals to tolerate Mycoplasma pneumoniae is significantly higher than that of TT-type individuals.
5. A primer pair for detecting SNP markers related to the trait of porcine tolerance to Mycoplasma hyopneumoniae, characterized in that, The upstream primer is: SEQ ID NO: 2, and the downstream primer is: SEQ ID NO: 3; the SNP marker related to the trait of pigs' tolerance to Mycoplasma pneumoniae is the molecular marker of the nucleotide site rs328087548 on chromosome 3 of the pig in the 11.1 version of the international pig genome reference sequence, and has T / C polymorphism. The genotype of the SNP marker is significantly related to the trait of pigs' tolerance to Mycoplasma pneumoniae.
6. A method for detecting the SNP markers related to the porcine trait of tolerance to Mycoplasma hyopneumoniae as described in claim 5, characterized in that, It includes amplifying a sequence of the nucleotide site rs328087548 on chromosome 3 of the pig in the 11.1 version of the international pig genome reference sequence by PCR, sequencing the amplification product, and judging the T / C polymorphism of this site.
7. The method according to claim 6, wherein It includes the following steps: (1) Take a pig tissue sample to extract total DNA; (2) Using the extracted pig genomic DNA as a template, carry out PCR amplification using the primer pair described in claim 5; (3) Sequence the amplification product, analyze the sequencing results, and judge the T / C polymorphism at the 229th position of SEQ ID NO:
1.
8. The application of the molecular marker described in claim 3 or 4 and the primer pair described in claim 5 in screening a pig population tolerant to Mycoplasma pneumoniae.
9. A method for a pig population resistant to Mycoplasma pneumoniae, characterized in that, It includes detecting the genotype of the nucleotide site rs328087548 on chromosome 3 of the pig in the 11.1 version of the international pig genome reference sequence, and preferentially selecting CC-type individuals of the rs328087548 nucleotide site as breeding pigs.
10. The method according to claim 9, wherein The pig is a Danish Large White pig or its crossbred variety.
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