Molecular marker for diagnosing sperm head malformation, kit and application
By screening out mutation sites associated with sperm head deformity, molecular markers and kits for diagnosis are designed, the problem of difficulty in accurately diagnosing sperm head deformity in the prior art is solved, rapid and high-sensitivity detection is achieved, operating steps are simplified, and the damage to the subject is reduced.
Patent Information
- Application Number
- CN202510522021.8
- Authority / Receiving Office
- CN · China
- Patent Type
- Applications(China)
- Current Assignee / Owner
- Filing Date
- 2025-04-24
- Publication Date
- 2025-05-27
- Estimated Expiration
- 2045-04-24
AI Technical Summary
It is difficult to accurately diagnose sperm head deformity in the prior art, and existing genetic screening methods require the collection of peripheral blood samples, which increases the cost and harm to the tester.
By collecting 421 malformed sperm patients and 2,664 healthy male genomic DNA samples, using whole exon sequencing, Sanger sequencing and sperm sample staining, mutation sites significantly associated with sperm head malformation were screened out, and molecular markers and kits were designed for diagnosis.
It realizes rapid and high-sensitivity detection of sperm head deformities, simplifies operational steps, is suitable for batch testing of clinical samples, reduces the risk of birth defects of offspring and avoids damage and pain to the subjects being tested.
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Figure CN120041561A_ABST
Abstract
Description
Technical Field
[0001] The present invention relates to the technical field of gene diagnosis, and in particular to a molecular marker, a kit and an application for diagnosing sperm head deformity. Background Art
[0002] Infertility is a global public health problem of human reproductive health, affecting multiple aspects such as physiological, psychological and social factors.
[0003] Teratozoospermia can cause a decrease in sperm motility and forward motility, or be accompanied by varying degrees of asthenospermia, and is one of the common causes of male infertility. Teratozoospermia has various manifestations, including abnormal development of any one or more parts of the head (giant head, amorphous, double head, etc.), body (thick, cracked, incomplete, etc.), and tail (curled tail, double tail, absent tail, etc.), which poses an obstacle to accurate diagnosis of different parts.
[0004] Currently, patients with teratozoospermia usually receive assisted reproductive technology - intracytoplasmic sperm injection (ICSI) treatment to obtain biological offspring, but the etiology remains unclear in some cases. At the same time, genetic defects are one of the important factors leading to teratozoospermia, which significantly increases the risk of passing the pathogenic gene to the offspring through assisted reproductive technology. Therefore, carrying out systematic genetic screening before ICSI has important clinical value. If it is diagnosed as an irreparable genetic factor, patients can be prevented from receiving ineffective or harmful treatment, and guided to consider assisted reproductive technology and undergo genetic examinations. Through accurate genetic diagnosis, patients can be prevented from receiving ineffective drug treatment (such as antioxidants are ineffective for round-headed spermatozoa), and at the same time, the risk of birth defects in offspring can be reduced.
[0005] Therefore, accurate diagnosis of teratozoospermia is the core link connecting etiology analysis, treatment plan formulation and optimization of fertility outcomes. By integrating morphology, genetics and clinical evaluation, precision medicine can be maximally achieved, the risk of offspring can be reduced, the fertility success rate can be improved, and waste of medical resources can be reduced. Although many genetic screening methods have emerged in the prior art, teratozoospermia often involves abnormal development of multiple parts, and there is often a lack of gene screening sites for a single part, especially for sperm head deformity, in the prior art. Moreover, existing genetic screening methods usually require collecting peripheral blood samples of the subjects to be tested for sequencing, which not only increases the cost of screening, but also causes damage and pain to the subjects to be tested. Summary of the Invention
[0006] To solve the above technical problems, according to the diagnostic criteria for abnormal spermatozoa in the "Laboratory Manual for the Examination and Processing of Human Semen (Sixth Edition)" published by the World Health Organization, genomic DNA samples of 421 patients with abnormal spermatozoa were collected, and at the same time, genomic DNA samples of 2,664 healthy men with offspring were collected as controls. Through whole-exome sequencing, Sanger sequencing, and sperm sample staining, a mutation site significantly associated with sperm head abnormalities was screened out. This site is located in the coding gene GALNTL5 of polypeptide N-acetylgalactosaminyltransferase-like protein 5 on human chromosome 7, at the first base of the intron downstream of exon 5, and the guanine is mutated to adenine.
[0007] The first object of the present invention is to provide a molecular marker for diagnosing sperm head abnormalities. The molecular marker includes a mutant of polypeptide N-acetylgalactosaminyltransferase-like protein 5. The mutation occurs at the first base of the intron downstream of exon 5 of the coding gene GALNTL5 of polypeptide N-acetylgalactosaminyltransferase-like protein 5, and the mutation is from guanine to adenine.
[0008] The GALNTL5 gene is located on human chromosome 7, with a gene length of 63,484 base pairs, containing 9 exons, and is highly specifically expressed in the testis. The above mutation site is at the first base of the intron downstream of exon 5 of the GALNTL5 gene, and the guanine is mutated to adenine, corresponding to position 658 of the coding sequence (cDNA sequence). According to the Human Genome Variation Society (HGVS) nomenclature, it is named GALNTL5-c.658+1G>A. This alternative splicing mutation leads to the occurrence of abnormal exon 5 skipping events.
[0009] The second object of the present invention is to provide the application of the coding gene GALNTL5 of polypeptide N-acetylgalactosaminyltransferase-like protein 5 in the preparation of a diagnostic kit for sperm head abnormalities. The diagnostic kit for sperm head abnormalities detects the mutation of the first base in the intron downstream of exon 5 of the coding gene GALNTL5 of polypeptide N-acetylgalactosaminyltransferase-like protein 5, and the mutation is from guanine to adenine.
[0010] Furthermore, the detection method of the diagnostic kit for sperm head abnormalities includes extracting genomic DNA of the test sample, amplifying the DNA, sequencing the amplification product, and judging whether the base has mutated according to the sequencing result. When the base is mutated from guanine to adenine, it is judged that the test sample is from a patient with sperm head abnormalities.
[0011] Furthermore, the test sample is semen.
[0012] Furthermore, the sequencing uses the Sanger sequencing method.
[0013] In one embodiment of the present invention, genomic DNA of the subject to be tested is extracted from semen and subsequent amplification and sequencing are performed. The steps for DNA extraction are as follows: (1) Aspirate the sperm sample to be tested and transfer it into a centrifuge tube containing the first buffer, and vortex; (2) Centrifuge to remove most of the supernatant, leaving a part of the first buffer and the precipitate; (3) After vortexing, add the first buffer again and vortex at full speed to collect the sample adhering to the tube wall; (4) Centrifuge to remove the supernatant, taking care not to aspirate the sperm precipitate during this process; (5) Add the second buffer and resuspend; (6) Add proteinase K, incubate, then add proteinase K and dithiothreitol again and continue incubating; (7) Extract DNA according to the steps of the DNA extraction kit.
[0014] Among them, the addition of dithiothreitol cuts the disulfide bond, opens the protein structure, facilitates subsequent DNA extraction, and increases the amount of genomic DNA extracted.
[0015] The third object of the present invention is to provide a sperm head malformation diagnosis kit. The sperm head malformation diagnosis kit detects a mutation in the first base of the intron downstream of exon 5 of the polypeptide N-acetylgalactosaminyltransferase-like protein 5 encoding gene GALNTL5, and the mutation is a change from guanine to adenine.
[0016] Furthermore, the kit contains primers for gene amplification.
[0017] Furthermore, the primers include a forward primer and a reverse primer. The forward primer is as shown in SEQ ID NO.1, and the reverse primer is as shown in SEQ ID NO.2.
[0018] Specifically, the sequence of the forward primer is 5’-AGAACTTCTGTGGAATAGCATGGA-3’ (SEQ ID NO.1).
[0019] Specifically, the sequence of the reverse primer is 5’-GTGTCGGGTCAGAAGCATCA-3’ (SEQ ID NO.2).
[0020] Specifically, the expected product size is 716 base pairs.
[0021] Furthermore, the kit includes reagents for gene amplification and gene sequencing.
[0022] Furthermore, the kit includes reagents for extracting DNA from the sample to be tested.
[0023] In one embodiment of the present invention, the amplified product is sequenced using the Sanger sequencing method.
[0024] The fourth object of the present invention is to provide the use of a primer composition in the preparation of a sperm head deformity diagnostic kit, wherein the primer composition is used to detect the first base mutation in the intron downstream of exon 5 of the polypeptide N-acetylgalactosaminyltransferase-like protein 5 encoding gene GALNTL5, and the mutation is a change from guanine to adenine.
[0025] Furthermore, the primer composition includes a forward primer and a reverse primer, the forward primer is as shown in SEQ ID NO.1, and the reverse primer is as shown in SEQ ID NO.2.
[0026] The fifth object of the present invention is to provide a kit for detecting the deletion of exon 5 of the polypeptide N-acetylgalactosaminyltransferase-like protein 5 encoding gene GALNTL5, wherein the kit detects the first base mutation in the intron downstream of exon 5 of GALNTL5, and the mutation is a change from guanine to adenine.
[0027] Advantages of the present invention: The present invention first reveals the direct association between the mutation of the first base from adenine to guanine in the intron downstream of exon 5 of the GALNTL5 gene and sperm head deformity, providing a key molecular marker for the etiological diagnosis of male infertility. By designing specific primers and combining with sequencing technology, the mutation site can be quickly and highly sensitively identified, and the detection process is standardized and the results are reliable. The kit integrates DNA extraction, amplification and sequencing modules, simplifies the operation steps, is suitable for batch detection of clinical samples, improves the diagnostic efficiency, and provides a scientific basis for gene screening, genetic counseling and personalized treatment of infertile patients. The method provided by the present invention extracts and sequences from semen DNA. Compared with peripheral blood commonly used in the prior art, semen DNA can reflect the status and functional information of the male reproductive system, is more beneficial for accurately identifying the GALNTL5 genotype, and also avoids causing damage and pain to the tested person. BRIEF DESCRIPTION OF THE DRAWINGS
[0028] In order to make the content of the present invention easier to be clearly understood, the following further details the present invention according to specific embodiments of the present invention in combination with the drawings, wherein: Figure 1 It is a result diagram of Sanger sequencing of peripheral blood DNA samples of 10 sperm head deformity cases in Example 1 of the present invention; Figure 2 It is a partial result diagram of periodic acid Schiff PAS staining of semen samples of sperm head deformity cases in Example 1 of the present invention; Figure 3 This is the result diagram of Sanger sequencing for semen DNA samples of 8 sperm head malformation cases and 2 fertile controls in Example 2 of the present invention; Figure 4 This is the process diagram of in vitro verification experiment for abnormal mRNA splicing of sperm head malformation cases and control groups in Example 3 of the present invention; Figure 5 This is the result diagram of in vitro verification experiment for abnormal mRNA splicing of sperm head malformation cases and control groups in Example 3 of the present invention; Figure 6 This is the result of digital PCR for quantifying abnormal transcripts of sperm head malformation cases and control groups in Example 3 of the present invention. Detailed implementation manners
[0029] The present invention will be further described below in conjunction with the accompanying drawings and specific embodiments, so that those skilled in the art can better understand the present invention and be able to implement it, but the exemplified embodiments are not used as a limitation to the present invention.
[0030] Example 1: Screening of sperm head malformation mutant genes 421 cases of teratozoospermia were collected, and at the same time, 2664 fertile men with at least one healthy offspring were collected as the control group. 5 mL of peripheral blood samples of 421 cases and 2664 control groups were respectively collected, DNA in the samples was extracted, and whole exome sequencing was performed.
[0031] Quality control, alignment, annotation and other processes were performed on the obtained whole exome sequencing results to obtain the variant information carried by the case-control. Then, according to the evaluation criteria of the American College of Medical Genetics and Genomics (ACMG), pathogenic / possibly pathogenic loss-of-function variants were included for association analysis. The analysis results are shown in Table 1, where OR is the risk score (odds ratio, OR), CI is the confidence interval (Confidence Interval), and Inf represents infinity. It can be seen from the results in Table 1 that the mutant site GALNTL5-c.658+1G>A is the most significant variant, carried by 10 teratozoospermia cases and 0 fertile control samples.
[0032] The GALNTL5 gene is located on human chromosome 7, encodes polypeptide N-acetylgalactosaminyltransferase 5, and is highly specifically expressed in the testis. The mutation site is located in exon 5 of the GALNTL5 gene, and the first base of the downstream intron is mutated from guanine to adenine, corresponding to position 658 of the coding sequence (cDNA sequence), and is named GALNTL5-c.658+1G>A according to the Human Genome Variation Society (HGVS) nomenclature.
[0033] Table 1 Results of Mutation Association Analysis
[0034] Peripheral blood samples of 10 involved cases were collected, and genomic DNA in the samples was extracted. Amplification primers were designed for the mutant GALNTL5-c.658+1G>A with reference to the human genome sequence database hg19 (Genome Reference Consortium human genome build 37, GRCh37). The forward primer sequence is 5’-AGAACTTCTGTGGAATAGCATGGA-3’ (shown as SEQ ID NO.1), and the reverse primer sequence is 5’-GTGTCGGGTCAGAAGCATCA-3’ (shown as SEQ ID NO.2), which were synthesized by Sangon Biotech (Shanghai) Co., Ltd., and the expected product size is 716 base pairs.
[0035] The extracted peripheral blood DNA was loaded according to the reaction system shown in Table 2, gently mixed, centrifuged instantaneously, and then placed in a PCR instrument to react according to the amplification reaction program shown in Table 3.
[0036] Table 2 PCR Reaction System (25 μL)
[0037] Table 3 PCR Amplification Reaction Program
[0038] After obtaining the amplification primers, Sanger sequencing was performed, and the sequencing results are as Figure 1 shown. Mutations exist at the GALNTL5-c.658+1G locus in the genomic DNA of 10 cases of teratospermia, which proves the authenticity of this variant site.
[0039] Semen samples of 10 cases were collected for PAS staining (periodic acid Schiff reaction), and the staining results of semen samples of some cases are as Figure 2 shown, indicating that the case samples are large-headed sperm with acrosome abnormalities, which further suggests that this variant may have potential application value in the typing of teratospermia.
[0040] Example 2: Verification of the detection effect of actual samples To further verify the authenticity of this mutation, 360 cases of teratozoospermia and 1400 fertile control samples were further included using the same criteria as in Example 1, and Sanger sequencing of the GALNTL5-c.658+1G>A mutation site was performed on them. Considering that the process of collecting the peripheral blood of the subjects to be tested will cause damage to the subjects' bodies, and semen DNA can reflect the status and functional information of the male reproductive system, an attempt was made to collect semen samples from the subjects to be tested and extract genomic DNA from them for sequencing. The specific process includes the following steps: I. Somatic cell lysis: (1) Pipette 500 μL of the semen sample to be tested into a centrifuge tube containing 9.5 mL of the first buffer (composition shown in Table 4), and vortex at full speed for 10 seconds; (2) Centrifuge at 4000 r / min for 10 minutes; (3) Carefully remove most of the supernatant, leaving about 1 mL of the first buffer and the precipitate; (4) Vortex at full speed for 10 seconds, and then transfer to a 2 mL centrifuge tube; (5) Add 0.5 mL of the first buffer to a 15 mL centrifuge tube, and vortex at full speed for 10 seconds to collect the sample adhering to the tube wall and then incorporate it into the 2 mL EP tube; (6) Centrifuge the centrifuge at full speed (20,000 x g) for 2 minutes; (7) Carefully remove the supernatant, taking care not to aspirate the sperm precipitate during the process.
[0041] Table 4 Composition of the first buffer
[0042] II. DNA extraction (using QIAamp DNA Micro Kit(50) kit for extraction) (1) Add 300 µL of the second buffer (composition shown in Table 5) in a fume hood and resuspend; (2) Add 100 µL of proteinase K, and incubate at 55°C and 250 r / min for 2 hours; (3) Add 20 µL of proteinase K and 34 µL of 2M dithiothreitol (DTT), and incubate at 55°C and 250 r / min for another 2 hours; (4) Add 400 µL of lysis buffer (Buffer AL) and 400 µL of absolute ethanol to the sample, and vortex and centrifuge briefly; (5) Use a pipette to transfer the entire mixture to a silica membrane column (Qiaamp Mini) (placed in a 2 mL collection tube), centrifuge at 6000 x g for 1 min, and discard the filtrate.
[0043] (6) Add 500 µL of deproteinization buffer (Buffer AW1). Centrifuge at 6000 x g for 1 minute and discard the filtrate.
[0044] (7) Add 500 µL of deionized water (Buffer AW2). Centrifuge at full speed (20,000 x g) for 3 minutes and discard the filtrate.
[0045] (8) Centrifuge at full speed (20,000 x g) for 1 min to completely remove Buffer AW2.
[0046] (9) Place the QIAamp Mini column in a new 1.5 mL EP tube, add 200 µL of sterile enzyme-free water, and incubate at room temperature for 1 minute. Centrifuge at 6000 x g for 1 minute to elute the DNA.
[0047] (10) The elution step can be repeated once to increase DNA yield.
[0048] Table 5 Composition of the second buffer
[0049] 3. Measure DNA concentration and quality DNA concentration and quality were measured using a Thermo Scientific NanoDrop spectrophotometer, where the absorbance ratio of nucleic acids was OD 260 / OD 280 It was between 1.8-2.0, the concentration was greater than 30 ng / μL, and the volume was 200 μL for further testing.
[0050] 4. Polymerase Chain Reaction (PCR) See the steps and process described in Example 1.
[0051] 5. Sanger sequencing and result analysis We commissioned Sangon Biotech (Shanghai) Co., Ltd. to perform Sanger sequencing of the PCR products, obtain base peaks, and use SnapGene and other biological software to read and analyze the peaks. The test results are shown in Table 6. Among the 1760 samples to be tested, there were 8 samples to be tested that carried the GALNTL5-c.658+1G>A mutation. All 8 samples were from the teratozoospermia group. The results of the semen sample sequencing are shown in Table 6. Figure 3As shown. PAS staining was performed on these 8 samples, and the results were all macrocephalic sperm with abnormal acrosomes. The remaining 352 samples of teratozoospermia did not carry the GALNTL5-c.658+1G>A mutation by Sanger sequencing. PAS staining was performed on these 352 semen samples, and the results were not macrocephalic sperm with abnormal acrosomes. No mutation carriers were found in the 1400 fertile control group. The true negative number was 1400, the false positive number was 0, and the detection specificity was 100%, verifying the great potential of this mutation site for diagnosing teratozoospermia. At the same time, it also showed that DNA extracted from semen samples could also be used to detect the GALNTL5-c.658+1G>A mutation, thereby further judging whether the tested person had sperm head deformities.
[0052] Table 6 Detection Results of 1760 Test Samples
[0053] Example 3: In Vitro Verification of Mutant Genes for Sperm Head Deformities The sperm head deformity cases and the control group were verified through in vitro mRNA abnormal splicing verification experiments. In vitro mRNA abnormal splicing verification was carried out by cloning the target genomic fragment with the variant site GALNTL5-c.658+1G>A, constructing a recombinant expression vector, transfecting the cell line, extracting RNA and reverse transcribing cDNA, and then using electrophoresis and sequencing techniques to verify the effect of this mutation on mRNA splicing. The verification process is as Figure 4 shown, and the verification results are as Figure 5 shown, proving that the GALNTL5-c.658+1G>A variant can lead to the occurrence of abnormal exon 5 skipping events.
[0054] After that, semen samples of sperm head deformity patients and control group subjects were collected respectively. Somatic cell lysis was performed according to the method provided in Example 2, RNA was extracted therefrom, and digital PCR (dPCR) technology was used to analyze the transcripts (mature mRNAs that can be used to encode proteins formed by transcription) of sperm head deformity patients and the control group. The results are as Figure 6 shown. The number of abnormal transcripts with exon 5 skipping in the transcripts of sperm head deformity patient cases was significantly more than that in the transcripts of control group subjects.
[0055] Obviously, the above examples are merely illustrations for clear explanation and are not limitations on the implementation methods. For those of ordinary skill in the art, other different forms of changes or alterations can be made based on the above description. It is not necessary and impossible to enumerate all implementation methods here. And the obvious changes or alterations derived therefrom are still within the protection scope of this invention.
Claims
1. A molecular marker for diagnosing sperm head deformity, characterized in that: The molecular marker includes a polypeptide N-acetylgalactosamine transferase-like protein 5 mutant, which occurs at the first base of the downstream intron of the 5th exon of the polypeptide N-acetylgalactosamine transferase-like protein 5 encoding gene GALNTL5, and the mutation is from guanine to adenine.
2. Use of polypeptide N-acetylgalactosaminyltransferase-like protein 5 encoding gene GALNTL5 in the preparation of a sperm head deformity diagnostic kit, characterized in that: The sperm head deformity diagnostic kit detects a mutation of the first base in the downstream intron of the 5th exon of the polypeptide N-acetylgalactosaminyltransferase-like protein 5 encoding gene GALNTL5, wherein the mutation is from guanine to adenine.
3. The use according to claim 2, characterized in that: The detection method of the sperm head deformity diagnosis kit includes extracting genomic DNA of the sample to be tested, amplifying the DNA, sequencing the amplified product, and judging whether the base has mutated according to the sequencing result. When the base mutates from guanine to adenine, it is judged that the sample to be tested comes from a patient with sperm head deformity.
4. The use according to claim 3, characterized in that: The sample to be tested is semen.
5. The use according to claim 3, characterized in that: The sequencing was performed using the Sanger sequencing method.
6. A sperm head deformity diagnosis kit, characterized in that: The sperm head deformity diagnostic kit detects a mutation of the first base in the downstream intron of the 5th exon of the polypeptide N-acetylgalactosaminyltransferase-like protein 5 encoding gene GALNTL5, wherein the mutation is from guanine to adenine.
7. The sperm head deformity diagnosis kit according to claim 6, characterized in that: The kit contains primers for gene amplification.
8. The sperm head deformity diagnosis kit according to claim 7, characterized in that: The primers include a forward primer and a reverse primer, the forward primer is shown as SEQ ID NO.1, and the reverse primer is shown as SEQ ID NO.
2.
9. Use of a primer combination in preparing a sperm head deformity diagnosis kit, characterized in that: The primer composition is used to amplify a target sequence including the first base in the downstream intron of exon 5 of the polypeptide N-acetylgalactosaminyltransferase-like protein 5 encoding gene GALNTL5, and the primer composition includes a forward primer and a reverse primer, the forward primer is shown in SEQ ID NO.1, and the reverse primer is shown in SEQ ID NO.
2.
10. A kit for detecting deletion of exon 5 of the gene GALNTL5 encoding polypeptide N-acetylgalactosaminyltransferase-like protein 5, characterized in that: The kit detects the first base mutation of the downstream intron of exon 5 of GALNTL5, and the mutation is from guanine to adenine.
Citation Information
Patent Citations
Construction method of gene library for detecting male infertility and kit
CN114958967A
Method for detecting causitive factor in male infertility, and male infertility model animal
WO2013122265A1