Molecular marker for regulating and controlling yield of wheat ARF12-2B and application of molecular marker
By detecting specific SNPs and haplotypes in the wheat genome, especially Hap1 and Hap2 haplotypes of the ARF12-2B gene, and using KASP molecular marker technology for genotyping and breeding selection, the problem of difficult to effectively identify and improve wheat yield-related traits in the prior art is solved, and the efficient selection and breeding process of high-yield wheat varieties has been accelerated.
Patent Information
- Application Number
- CN202510472086.6
- Authority / Receiving Office
- CN · China
- Patent Type
- Applications(China)
- Current Assignee / Owner
- Filing Date
- 2025-04-16
- Publication Date
- 2025-05-23
- Estimated Expiration
- 2045-04-16
AI Technical Summary
The prior art is difficult to effectively identify and improve wheat yield-related traits, which affects the efficiency of high-yield wheat breeding.
Genotyping and breeding selection was performed using KASP molecular marker technology by detecting specific SNPs and haplotypes in the wheat genome, especially Hap1 and Hap2 haplotypes of the ARF12-2B gene.
Accurate identification and selection of wheat yield-related traits has been achieved, and the breeding efficiency and breeding process of high-yield wheat varieties have been improved.
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Abstract
Description
Technical Field
[0001] The present invention relates to a molecular marker for regulating wheat ARF12-2B yield in the field of nucleic acid detection and an application thereof. Background Art
[0002] wheat( Triticum aestivum Wheat is the most widely distributed and planted food crop in the world. Increasing yield has always been an important goal of wheat breeding. Wheat yield is composed of three parts: the number of ears per mu, the number of grains per ear, and the thousand-grain weight. Plant type traits, such as plant height, also affect yield stability and potential.
[0003] Gene editing technology has confirmed that the wheat auxin response factor (ARF) gene ARF12-2B Regulating yield-related traits, its knockout can reduce plant height and increase ear length, number of grains per ear, and 1000-grain weight, which indicates ARF12-2B Genes play a key regulatory role in balancing plant type and yield traits. ARF12-2B Haplotypes with low expression activity and the development of efficient molecular markers based on their allelic variation will provide important genetic tools for high-yield wheat breeding. Through marker-assisted selection technology, high-yield wheat varieties with compact plant type, large number of spikelets, and high thousand-grain weight can be accurately bred, thereby significantly improving yield potential. Summary of the invention
[0004] The main problem to be solved by the present invention is how to identify wheat yield.
[0005] In order to solve the above problems, the present invention provides the use of a substance for detecting the polymorphism or genotype of SNP in the wheat genome or a substance for detecting the haplotype in any of the following: (1) Identify or assist in identifying wheat yield; (2) Screening or breeding high-yielding wheat plants, strains, lines or varieties; (3) Wheat breeding; (4) Preparation of products for identification or assistance in identification of wheat yield; (5) Preparing products for screening or breeding high-yield wheat plants, strains, lines or varieties; (6) Preparing wheat breeding products; The SNPs are 10 SNPs in the wheat genome, namely SNP1, InDel2, SNP3, SNP4, SNP5, SNP6, SNP7, SNP8, SNP9 and SNP10, wherein SNP1 is the 766557690th nucleotide in the Chinese spring wheat reference genome sequence RefSeq v1.0, and its nucleotide type is C or G, InDel2 is the 766557721st nucleotide in the Chinese spring wheat reference genome sequence RefSeq v1.0, and its nucleotide type is missing C or containing C, SNP3 is the 766557726th nucleotide in the Chinese spring wheat reference genome sequence RefSeq v1.0, and its nucleotide type is C or G, SNP4 is the 766565798th nucleotide in the Chinese spring wheat reference genome sequence RefSeq v1.0, and its nucleotide type is A or G, and SNP5 is the 766565798th nucleotide in the Chinese spring wheat reference genome sequence RefSeq v1.0, and its nucleotide type is A or G, v1.0, the nucleotide type is T or C, the SNP6 is the nucleotide type 766566233 in the Chinese spring wheat reference genome sequence RefSeq v1.0, the nucleotide type is C or T, the SNP7 is the nucleotide type 766566285 in the Chinese spring wheat reference genome sequence RefSeq v1.0, the nucleotide type is T or C, the SNP8 is the nucleotide type 766566413 in the Chinese spring wheat reference genome sequence RefSeq v1.0, the nucleotide type is T or C, the SNP9 is the nucleotide type 766566434 in the Chinese spring wheat reference genome sequence RefSeq v1.0, the nucleotide type is T or C, and the SNP10 is the nucleotide type 766566458 in the Chinese spring wheat reference genome sequence RefSeq v1.0, the nucleotide type is T or C; The haplotype is a polymorphic combination of 10 SNPs, namely, SNP1, InDel2, SNP3, SNP4, SNP5, SNP6, SNP7, SNP8, SNP9 and SNP10 on a chromosome of wheat.
[0006] The haplotype includes a haplotype ARF12-2B-Hap1, ARF12-2B-Hap2, ARF12-2B-Hap3 .
[0007] The haplotype ARF12-2B-Hap1 The genotype of SNP1 is CC (the homozygous type of the 92nd nucleotide of SEQ ID No: 7 in the sequence list is C) and the genotype of SNP8 is TT (the homozygous type of the 37th nucleotide of SEQ ID No: 8 in the sequence list is T); The haplotype ARF12-2B-Hap2The genotype of SNP1 is CC (the 92nd nucleotide of SEQ ID No: 7 in the sequence list is a homozygous type of C) and the genotype of SNP8 is CC (the 37th nucleotide of SEQ ID No: 8 in the sequence list is a homozygous type of C) haplotype; The haplotype ARF12-2B-Hap3 The genotype of SNP1 is GG (the homozygous type in which the 92nd nucleotide of SEQ ID No: 7 in the sequence list is G) and the genotype of SNP8 is CC (the homozygous type in which the 37th nucleotide of SEQ ID No: 8 in the sequence list is C).
[0008] The present invention also provides a method for identifying or assisting in identifying wheat yield, wherein the method is method A or method B: The method A is a method for identifying or assisting in identifying wheat yield, comprising detecting the genotypes of the SNP1 and SNP8 mentioned above in the wheat to be tested, and identifying or assisting in identifying the wheat yield according to the genotype of the wheat to be tested: the yield of wheat with the genotype CCTT or CCCC is higher or is a candidate to be higher than that of wheat with the genotype GGCC; The genotype CCTT is a combined genotype in which the genotype of SNP1 is CC (the homozygous type in which the 92nd nucleotide of SEQ ID No: 7 in the sequence list is C) and the genotype of SNP8 is TT (the homozygous type in which the 37th nucleotide of SEQ ID No: 8 in the sequence list is T); The genotype CCCC is a combined genotype in which the genotype of SNP1 is CC (the 92nd nucleotide of SEQ ID No: 7 in the sequence list is a homozygous type of C) and the genotype of SNP8 is CC (the 37th nucleotide of SEQ ID No: 8 in the sequence list is a homozygous type of C); The genotype GGCC is a combined genotype in which the genotype of SNP1 is GG (the homozygous type in which the 92nd nucleotide of SEQ ID No: 7 in the sequence list is G) and the genotype of SNP8 is CC (the homozygous type in which the 37th nucleotide of SEQ ID No: 8 in the sequence list is C); The method B is a method for identifying or assisting in identifying wheat yield, comprising detecting the haplotypes described above in the wheat to be tested, and identifying or assisting in identifying wheat yield based on the haplotypes of the wheat to be tested: haplotype ARF12-2B-Hap3 The corresponding homozygous genotype wheat yield is lower than or candidate lower than the haplotype ARF12-2B-Hap1 Corresponding homozygous wheat genotypes and haplotypes ARF12-2B-Hap2 The corresponding homozygous genotype of wheat; The haplotype ARF12-2B-Hap3The genotype of SNP1 is GG (the homozygous type of the 92nd nucleotide of SEQ ID No: 7 in the sequence list is G) and the genotype of SNP8 is CC (the homozygous type of the 37th nucleotide of SEQ ID No: 8 in the sequence list is C); The haplotype ARF12-2B-Hap1 The genotype of SNP1 is CC (the homozygous type of the 92nd nucleotide of SEQ ID No: 7 in the sequence list is C) and the genotype of SNP8 is TT (the homozygous type of the 37th nucleotide of SEQ ID No: 8 in the sequence list is T); The haplotype ARF12-2B-Hap2 The genotype of SNP1 is CC (the 92nd nucleotide of SEQ ID No: 7 in the sequence list is a homozygous type of C) and the genotype of SNP8 is CC (the 37th nucleotide of SEQ ID No: 8 in the sequence list is a homozygous type of C) haplotype.
[0009] In the above method or application, the wheat is a wheat variety or strain.
[0010] The application of the above-mentioned method in wheat breeding also falls within the scope of protection claimed by the present invention.
[0011] The present invention also provides a method for wheat breeding, which can be M1 and M2: M1. The method comprises detecting the genotype of the aforementioned SNP in the wheat genome, selecting wheat with the genotype of CCTT or CCCC as a parent for breeding, the genotype of SNP1 is CC (the 92nd nucleotide of SEQ ID No:7 in the sequence list is a homozygous type of C) and the genotype of SNP8 is a combined genotype of TT or CC (the 37th nucleotide of SEQ ID No:8 in the sequence list is a homozygous type of T, or the 37th nucleotide of SEQ ID No:8 in the sequence list is a homozygous type of C), and the breeding purpose of the method comprises breeding wheat with high wheat yield; M2. The method comprises detecting the type of haplotype described above in the wheat genome, and selecting wheat of haplotype ARF12-2B-Hap1 or ARF12-2B-Hap2 as a parent for breeding, wherein the ARF12-2B-Hap1 is a haplotype in which the genotype of the SNP1 is CC (the 92nd nucleotide of SEQ ID No: 7 in the sequence list is a homozygous type of C) and the genotype of the SNP8 is TT (the 37th nucleotide of SEQ ID No: 8 in the sequence list is a homozygous type of T); and the ARF12-2B-Hap2 is a haplotype in which the genotype of the SNP1 is CC (the 92nd nucleotide of SEQ ID No: 7 in the sequence list is a homozygous type of C) and the genotype of the SNP8 is CC (the 37th nucleotide of SEQ ID No: 8 in the sequence list is a homozygous type of C).
[0012] The present invention also provides a product for detecting the polymorphism or genotype of the SNP mentioned above, wherein the product contains the substance mentioned above, and the product is any one of: C1) Products for detecting single nucleotide polymorphisms or genotypes related to wheat yield; C2) Products that identify or assist in identifying wheat yield; C3) Products used for wheat breeding; C4) Products that screen or breed wheat plants, strains, lines or varieties for high wheat yield.
[0013] In the above applications or products, the substances are as follows: D1), D2) or D3): D1) the substance is a primer composition for amplifying a wheat genomic DNA fragment including the SNP1 and a primer composition for amplifying a wheat genomic DNA fragment including the SNP8; D2) the substance is a PCR reagent containing the primer combination described in D1); D3) The substance is a kit containing the primer composition described in D1) or the PCR reagent described in D2).
[0014] In the above application or product, the primer composition for amplifying the wheat genomic DNA fragment including the SNP1, InDel2, SNP3, SNP4, SNP5, SNP6, SNP7, SNP8, SNP9 or SNP10 consists of the following primer set 1 or primer set 2; 1) The primer set 1 consists of primer F1, primer F2 and primer R1, and amplifies the wheat genomic DNA fragment including the SNP1; 2) The primer set 2 consists of primer F3, primer F4 and primer R2, and amplifies the wheat genomic DNA fragment including the SNP8; The primer F1 is a single-stranded DNA molecule whose nucleotide sequence is sequence 1 in the sequence list or a single-stranded DNA whose nucleotide sequence is the 22nd to 39th position of sequence 1 in the sequence list; The primer F2 is a single-stranded DNA molecule whose nucleotide sequence is sequence 2 in the sequence list or a single-stranded DNA whose nucleotide sequence is the 22nd to 39th position of sequence 2 in the sequence list; The primer R1 is a single-stranded DNA molecule whose nucleotide sequence is sequence 3 in the sequence list; The primer F3 is a single-stranded DNA molecule whose nucleotide sequence is sequence 4 in the sequence list or a single-stranded DNA whose nucleotide sequence is the 22nd to 40th position of sequence 4 in the sequence list; The primer F4 is a single-stranded DNA molecule whose nucleotide sequence is sequence 5 in the sequence list or a single-stranded DNA whose nucleotide sequence is the 22nd to 40th position of sequence 5 in the sequence list; The nucleotide sequence of the primer R2 is a single-stranded DNA molecule of sequence 6 in the sequence list.
[0015] In a specific embodiment, the wheat genomic DNA to be tested is used as a template, and KASP primer set 1 and primer set 2 are used for PCR amplification.
[0016] The PCR reaction system: 2.0 μL KASP 2×Master Mix (LGC, catalog number: 13448166), 0.048 μL KASP primer set (3 primers mixed, total concentration of 50 μM, wherein the molar ratio of two forward primers to one reverse primer is 2:2:5), 2.0 μL template DNA (50 ng / μL).
[0017] The PCR reaction program is as follows: pre-denaturation at 94°C for 15 min; denaturation at 94°C for 20 s, 61°C-55°C (touchdown program is selected, reducing 0.6°C per cycle) for 1 min, amplification for 10 cycles; denaturation at 94°C for 20 s, 55°C for 1 min, and continued amplification for 31 cycles.
[0018] The present invention also provides a DNA molecule, the nucleotide sequence of the DNA molecule is sequence 7 or sequence 8 in the sequence list.
[0019] The present invention also provides the use of the DNA molecule described above in any of the following: (1) Identify or assist in identifying wheat yield; (2) Screening or breeding high-yielding wheat plants, strains, lines or varieties; (3) Wheat breeding; (4) Preparation of products for identification or assistance in identification of wheat yield; (5) Preparing products for screening or breeding high-yield wheat plants, strains, lines or varieties; (6) Preparing wheat breeding products.
[0020] Using two groups of wheat ARF12-2B Molecular markers of genes K-2B-SNP1 and K-2B-SNP8 A population consisting of 165 lines from the Huanghuai wheat region of my country was genotyped, and genetic effect analysis found ARF12-2B-Hap1 and ARF12-2B-Hap2 Haplotype compared to ARF12-2B-Hap3 The haplotype has lower plant height and number of ears per mu, but higher yield and 1000-grain weight, which provides a molecular tool for wheat marker-assisted breeding.
[0021] By applying the KASP molecular marker developed by the present invention, efficient screening ARF12-2B The superior alleles of the gene can predict the yield-related traits of wheat, which not only saves costs but also greatly improves the selection efficiency and accelerates the breeding process. BRIEF DESCRIPTION OF THE DRAWINGS
[0022] Figure 1 It's wheat ARF12-2B Gene mutation sites and haplotype typing results.
[0023] Figure 2 It is the result of ELISA typing test of KASP product. DETAILED DESCRIPTION
[0024] The present invention is further described in detail below in conjunction with specific embodiments, and the examples provided are only for illustrating the present invention, rather than for limiting the scope of the present invention. The examples provided below can be used as a guide for further improvements by those of ordinary skill in the art, and do not constitute a limitation of the present invention in any way.
[0025] The experimental methods in the following examples, unless otherwise specified, are all conventional methods, and are performed according to the techniques or conditions described in the literature in the field or according to the product instructions. The materials, reagents, etc. used in the following examples, unless otherwise specified, can all be obtained from commercial channels.
[0026] Unless otherwise specified, the quantitative tests in the following examples were performed three times and the results were averaged.
[0027] The phenotypic data of the 165 natural populations and yield-related traits in the Huanghuai wheat region in the following examples have been recorded in: Li F, Wen W, Liu J, Zhang Y, Cao S, He Z, Rasheed A, Jin H, Zhang C, Yan J, Zhang P, Wan Y, Xia X (2019) Genetic architecture of grain yield in breadwheat based on genome-wide association studies. BMC Plant Biology 19(1):168. The public can obtain the biological material from the applicant, and the biological material is only used for repeating the experiments of the present invention and cannot be used for other purposes.
[0028] The following examples were processed using SPSS statistical software, and the experimental results were expressed as mean ± standard deviation, using one-way analysis of variance and Duncan multiple comparisons. Different lowercase letters indicate significant differences at the 0.05 level.
[0029] Embodiment 1, wheat ARF12-2B Identification of gene polymorphic sites and haplotypes ARF transcription factor encoding gene ARF12-2B Wheat genome ID ( TraesCS2B02G578500 ) was input into the wheat genome variation database (Wheat-SnpHub-Portal, http: / / wheat.cau.edu.cn / Wheat_SnpHub_Portal / ), 183 varieties (MP group and NC-CC group) in the database were selected, and the variation information of 1 Kb upstream and downstream of the gene and the gene open reading frame was retrieved. A total of 10 variation sites were found, which were recorded as SNP1, Indel 2, SNP3, SNP4, SNP5, SNP6, SNP7, SNP8, SNP9 and SNP10 ( Figure 1 ), the physical positions of these 10 variant sites in the Chinese spring wheat reference genome sequence RefSeq v1.0 are 766557690, 766557721, 766557726, 766565798, 766565957, 766566233, 766566285, 766566413, 766566434 and 766566458. These variant information form three haplotypes ( Figure 1 ),in, ARF12-2B-Hap1The allelic variant bases at positions 766557690, 766557721, 766557726, 766565798, 766565957, 766566233, 766566285, 766566413, 766566434, and 766566458 in the Chinese spring wheat reference genome sequence RefSeq v1.0 are C, C deletion, C, A, T, C, T, T, T, and T, respectively. ARF12-2B-Hap2 The allelic variant bases at positions 766557690, 766557721, 766557726, 766565798, 766565957, 766566233, 766566285, 766566413, 766566434, and 766566458 in the Chinese spring wheat reference genome sequence RefSeq v1.0 are C, T deletion C, G, G, C, T, C, C, T, and C, respectively. ARF12-2B-Hap3 The allelic variant bases at positions 766557690, 766557721, 766557726, 766565798, 766565957, 766566233, 766566285, 766566413, 766566434 and 766566458 in the Chinese spring wheat reference genome sequence RefSeq v1.0 are G, C, C, A, T, C, T, C, C and T, respectively.
[0030] Example 2, Identification ARF12-2B Development of haplotype molecular markers and their specific primer sets 1. KASP primer set design The present invention uses Polymarker (https: / / www.polymarker.info / ) to design two sets of KASPs for wheat identification at SNP1 (position 766557690 in the Chinese spring wheat reference genome sequence RefSeq v1.0) and SNP8 (position 766566413 in the Chinese spring wheat reference genome sequence RefSeq v1.0) on wheat chromosome 2B. ARF12-2B Haplotype primer set K-2B-SNP1 and K-2B-SNP8 The primer sequence specificity was evaluated using WheatOmics (http: / / 202.194.139.32 / ). The KASP primer set consisted of forward primers F1 and F2 and reverse primer R.
[0031] The following KASP primer set 1 was designed for SNP1 (position 766557690 in the Chinese spring wheat reference genome sequence RefSeq v1.0): Forward primer F1: 5'- GAAGGTGACCAAGTTCATGCT CTCTCACAAATCCGCCCG-3' (SEQ ID No: 1, the underlined part is the specific recognition sequence of the FAM fluorescent probe); Forward primer F2: 5'- GAAGGTCGGAGTCAACGGATT CTCTCACAAATCCGCCCC-3' (SEQ ID No: 2, the underlined part is the specific recognition sequence of the HEX fluorescent probe); Reverse primer R1: 5'-GTCTCGTTGGCCGGCTTG-3' (SEQ ID No: 3).
[0032] K-2B-SNP1 The marker is the 92nd nucleotide from the 5' end of SEQ ID No:7 in the wheat genome (corresponding to the last base at the 3' end of the two forward primers), which is G or C. In SEQ ID No:7, s represents G or C. If the wheat to be tested is based on K-2B-SNP1 The marker shows a blue fluorescent signal, which means that the wheat SNP1 The genotype of the locus is CC homozygous; if the wheat to be tested is based on K-2B-SNP1 The marker shows a red fluorescent signal, then the wheat SNP1 The genotype of the locus is homozygous GG.
[0033] The sequence information of SEQ ID No: 7 is as follows: 5'-GTCTCGTTGGCCGGCTTGCGGGAGTGGCCGGCGGCTGACGCGGTGGCTTTGGTTGTTGCAGAATGCGGCGGATTTGAGGATGGGGTTCCGCsGGGCGGATTTGTGAGAGGGGTGCTTGGTTTTTGGTC-3'.
[0034] (The bold bases are the sequences submitted to Polymarker for designing KASP primers, and the underlined bases are the KASP primer sequences) The above-mentioned SEQ ID No: 1, SEQ ID No: 2 and SEQ ID No: 3 nucleic acid sequences are antisense DNA sequences, and SEQ ID No: 7 nucleic acid sequence is a sense DNA sequence.
[0035] The following KASP primer set 2 was designed for SNP8 (position 766566413 in the Chinese spring wheat reference genome sequence RefSeq v1.0): Forward primer F3: 5'-GAAGGTGACCAAGTTCATGCT GGGCTCGGGTTTGCTTAAT-3' (SEQ ID No: 4, the underlined part is the specific recognition sequence of the FAM fluorescent probe); Forward primer F4: 5'- GAAGGTCGGAGTCAACGGATT GGGCTCGGGTTTGCTTAAC-3' (SEQ ID No: 5, the underlined part is the specific recognition sequence of the HEX fluorescent probe); Reverse primer R2: 5'-CAATTTTGCTCTCAAGAGAACCA-3' (SEQ ID No: 6).
[0036] K-2B-SNP8 The marker is the 37th nucleotide from the 5' end of SEQ ID No:8 in the wheat genome (corresponding to the last base at the 3' end of the two forward primers), which is T or C. In SEQ ID No:8, y represents T or C. If the wheat to be tested is based on K-2B-SNP8 The marker shows a blue fluorescent signal, then the wheat to be tested is based on SNP8 The genotype of the locus is TT homozygous; if the wheat to be tested is based on K-2B-SNP8 The marker shows a red fluorescent signal, then the wheat SNP8 The genotype of the locus is CC homozygous.
[0037] The sequence information of SEQ ID No: 8 is as follows: 5'-ACAGTCACTGTCTTTTGGGGGCTCGGGTTTGCTTAAyTCACCCACAAGTAAAGATGGTTCTCTTGAGAGCAAAATTG-3'.
[0038] 2. Identification of wheat haplotypes (1) Using the molecular markers and primers in step 1, identify the haplotype of wheat to be tested. The specific steps are as follows: Using the wheat genomic DNA to be tested as a template, the detection method in step 1 was used. K-2B-SNP1 Mark and K-2B-SNP8 PCR amplification was performed using the labeled primer sets.
[0039] KASP reaction system: 2.0 μL KASP 2×Master Mix (LGC, Catalog No.: 13448166), 0.048 μL KASP primer set (3 primers mixed, total concentration of 50 μM, of which the molar ratio of two forward primers and one reverse primer is 2:2:5), 2.0 μL template DNA (50 ng / μL).
[0040] The KASP reaction program was as follows: pre-denaturation at 94°C for 15 min; denaturation at 94°C for 20 s, 61°C-55°C (touch down program was used, reducing 0.6°C per cycle) for 1 min, and amplification for 10 cycles; denaturation at 94°C for 20 s, 55°C for 1 min, and continued amplification for 31 cycles.
[0041] Two blank control groups (NTC) were set up for each reaction.
[0042] (2) The fluorescence signal was detected on a PHERAstar Plus autofocus fluorescence multifunctional microplate reader (BMG Labtech GmbH, Ortenberg, Germany), and typing was performed using KlusterCaller software (LGC, Hoddesdon, UK). When the temperature of the PCR amplification product dropped below 40°C, the fluorescence value was read by scanning the FAM and HEX beams of the microplate reader (the FAM fluorescent label was observed at an excitation light wavelength of 485 nm and an emission light wavelength of 520 nm, and the HEX fluorescent label was observed at an excitation light wavelength of 528 nm and an emission light wavelength of 560 nm). The color of the fluorescent signal was used to determine whether the wheat to be tested was based on SNP1 and SNP8 Genotype of the locus.
[0043] The specific judgment principles are as follows: a. If the wheat to be tested is based on K-2B-SNP1 The marker shows a blue fluorescent signal, which means that the wheat SNP1 The genotype of the locus is CC homozygous; if the wheat to be tested is based on K-2B-SNP1 The marker shows a red fluorescent signal, then the wheat SNP1 The genotype of the locus is homozygous GG; b. If the wheat to be tested is based on K-2B-SNP8 The marker shows a blue fluorescent signal, then the wheat to be tested is based on SNP8 The genotype of the locus is TT homozygous; if the wheat to be tested is based on K-2B-SNP8 The marker shows a red fluorescent signal, then the wheat SNP8 The genotype of the locus is CC homozygous.
[0044] ARF12-2B Haplotypes include the following three types: ARF12-2B-Hap1 , ARF12-2B-Hap2 , ARF12-2B- Hap3 .
[0045] Haplotype ARF12-2B-Hap1The genotype of SNP1 is CCTT, that is, the genotype of SNP1 is CC (the 92nd nucleotide of SEQ ID No:7 in the sequence list is the homozygous type of C) and the genotype of SNP8 is TT (the 37th nucleotide of SEQ ID No:1 in the sequence list is the homozygous type of T).
[0046] Haplotype ARF12-2B-Hap2 The genotype of SNP1 is CCCC, that is, the genotype of SNP1 is CC (the 92nd nucleotide of SEQ ID No: 7 in the sequence list is the homozygous type of C) and the genotype of SNP8 is CC (the 37th nucleotide of SEQ ID No: 8 in the sequence list is the homozygous type of C).
[0047] Haplotype ARF12-2B-Hap3 The genotype of SNP1 is GGCC, that is, the genotype of SNP1 is GG (the 92nd nucleotide of SEQ ID No: 7 in the sequence list is the homozygous type of G) and the genotype of SNP8 is CC (the 37th nucleotide of SEQ ID No: 8 in the sequence list is the homozygous type of C).
[0048] Example 3: Molecular markers K-2B-SNP1 and K-2B-SNP8 Application of specific primers in identification of natural populations of wheat ARF12-2B Application in haplotype and phenotype identification 1. Field phenotypic identification and data analysis of 165 natural populations in the Huanghuai wheat region 165 natural wheat varieties from the Huanghuai wheat region were planted in Anyang, Henan and Suixi, Anhui in 2012-2013 and 2013-2014, and in Anyang, Henan and Gaoyi, Hebei in 2014-2015. A completely randomized block design was used with three replications, single-row plots, 1.5 m long, 0.2 m wide, and 50 grains per row. Field management measures were carried out in accordance with local wheat field management regulations.
[0049] The phenotypic data of yield-related traits were provided by Li F, Wen W, Liu J, Zhang Y, Cao S, He Z, Rasheed A, Jin H, Zhang C, Yan J, Zhang P, Wan Y, Xia X. Genetic architecture of grain yield in bread wheat based on genome-wide association studies. BMC Plant Biol. 2019 Apr 29;19(1):168. doi:10.1186 / s12870-019-1781-3. The BLUE values of the phenotypic data of yield components in multiple environments are shown in Table 1.
[0050] 2. Molecular markers K-2B-SNP1 and K-2B-SNP8 Detection of genotypes of wheat lines in the Huanghuai region 165 natural varieties of wheat from the Huanghuai wheat region were used as the wheat to be tested, and genotyping was performed according to the method in Example 2 to determine the haplotype of each wheat variety. The genotype identification results of SNP1 and SNP8 are shown in Tables 1 and Figure 2 .
[0051] 3. Wheat ARF12-2B Association analysis between gene haplotypes and yield-related traits SPSS statistical software was used to analyze the variance and Duncan multiple comparisons according to the typing results and phenotypic data. ARF12-2B Genetic effect of gene haplotype on yield-related traits. The results of genetic analysis on yield-related traits are shown in Table 2. The same lowercase letters indicate no significant difference at the 0.05 level, and different lowercase letters indicate significant difference at the 0.05 level.
[0052]
[0053]
[0054]
[0055]
[0056]
[0057]
[0058] Note: Statistical analysis was performed using one-way ANOVA. ARF12-2BThe same lowercase letters after the phenotypic values of different haplotypes of the gene indicate no significant difference at the 0.05 level, and different lowercase letters indicate significant difference at the 0.05 level.
[0059] In summary, the results of haplotype analysis showed that: (1) Compared with haplotype ARF12-2B-Hap3 , ARF12-2B-Hap1 and ARF12-2B-Hap2 The production volume increased significantly by 11.1% and 13.6%; (2) Compared with haplotype ARF12-2B-Hap3 , ARF12-2B-Hap1 and ARF12-2B-Hap2 Thousand-grain weight increased significantly by 8.8% and 6.4%; (3) Compared with haplotype ARF12-2B-Hap3 , ARF12-2B-Hap1 and ARF12-2B-Hap2 The number of ears per mu decreased significantly by 9.0% and 8.9%; (4) Compared with haplotype ARF12-2B-Hap3 , ARF12-2B-Hap1 and ARF12-2B-Hap2 The number of grains per ear increased by 4.8% and 6.7%; (5) Compared with haplotype ARF12-2B-Hap3 , ARF12-2B-Hap1 and ARF12-2B-Hap2 Plant height decreased significantly by 12.8% and 15.8%; If you want to breed high-yield wheat varieties, you can use haploid ARF12-2B-Hap1 or / and <h2 style=";text-align:left;direction:ltr">ARF12-2B-Hap2 Wheat varieties are used as parents for breeding to improve breeding efficiency, accelerate the breeding process, and provide new possibilities for efficient screening and breeding of high-yield wheat varieties.
[0060] The present invention has been described in detail above. For those skilled in the art, without departing from the purpose and scope of the present invention, and without the need to carry out unnecessary experimental conditions, the present invention can be implemented in a wide range under equivalent parameters, concentrations and conditions. Although the present invention provides specific embodiments, it should be understood that the present invention can be further improved. In a word, according to the principles of the present invention, the application is intended to include any changes, uses or improvements to the present invention, including departure from the disclosed scope in the application, and changes made with conventional techniques known in the art.
Claims
1. Use of a substance for detecting polymorphism or genotype of SNP in wheat genome or a substance for detecting haplotype in any of the following: (1) Identify or assist in identifying wheat yield; (2) Screening or breeding high-yielding wheat plants, strains, lines or varieties; (3) Wheat breeding; (4) Preparation of products for identification or assistance in identification of wheat yield; (5) Preparing products for screening or breeding high-yield wheat plants, strains, lines or varieties; (6) Preparing wheat breeding products; The SNPs are 10 SNPs in the wheat genome, namely SNP1, InDel2, SNP3, SNP4, SNP5, SNP6, SNP7, SNP8, SNP9 and SNP10, wherein SNP1 is the 766557690th nucleotide in the Chinese spring wheat reference genome sequence RefSeq v1.0, and its nucleotide type is C or G, InDel2 is the 766557721st nucleotide in the Chinese spring wheat reference genome sequence RefSeq v1.0, and its nucleotide type is missing C or containing C, SNP3 is the 766557726th nucleotide in the Chinese spring wheat reference genome sequence RefSeq v1.0, and its nucleotide type is C or G, SNP4 is the 766565798th nucleotide in the Chinese spring wheat reference genome sequence RefSeq v1.0, and its nucleotide type is A or G, and SNP5 is the 766565798th nucleotide in the Chinese spring wheat reference genome sequence RefSeq v1.0, and its nucleotide type is A or G, v1.0, the nucleotide type is T or C, the SNP6 is the nucleotide type 766566233 in the Chinese spring wheat reference genome sequence RefSeq v1.0, the nucleotide type is C or T, the SNP7 is the nucleotide type 766566285 in the Chinese spring wheat reference genome sequence RefSeq v1.0, the nucleotide type is T or C, the SNP8 is the nucleotide type 766566413 in the Chinese spring wheat reference genome sequence RefSeq v1.0, the nucleotide type is T or C, the SNP9 is the nucleotide type 766566434 in the Chinese spring wheat reference genome sequence RefSeq v1.0, the nucleotide type is T or C, and the SNP10 is the nucleotide type 766566458 in the Chinese spring wheat reference genome sequence RefSeq v1.0, the nucleotide type is T or C; The haplotype is a polymorphic combination of 10 variations, namely, SNP1, InDel2, SNP3, SNP4, SNP5, SNP6, SNP7, SNP8, SNP9 and SNP10 on a chromosome of wheat.
2. The use according to claim 1, characterized in that: The wheat is a wheat variety or strain.
3. A method for identifying or assisting in identifying wheat yield, characterized in that: The method is method A or method B: The method A is a method for identifying or assisting in identifying wheat yield, comprising detecting the genotypes of SNP1 and SNP8 in claim 1 in the wheat to be tested, and identifying or assisting in identifying the wheat yield according to the genotype of the wheat to be tested: the yield of wheat with a genotype of CCTT or CCCC is higher or is a candidate to be higher than that of wheat with a genotype of GGCC; The genotype CCTT is a combined genotype in which the genotype of SNP1 is CC, i.e., the homozygous type of the 92nd nucleotide of SEQ ID No: 7 in the sequence list is C, and the genotype of SNP8 is TT, i.e., the homozygous type of the 37th nucleotide of SEQ ID No: 8 in the sequence list is T; The genotype CCCC is a genotype in which the genotype of SNP1 is CC, i.e., the homozygous type of the 92nd nucleotide of SEQ ID No: 7 in the sequence list is C, and the genotype of SNP8 is CC, i.e., the homozygous type of the 37th nucleotide of SEQ ID No: 8 in the sequence list is C; The genotype GGCC is a genotype in which the genotype of SNP1 is GG, i.e., the homozygous type in which the nucleotide at position 37 of SEQ ID No: 7 in the sequence list is G, and the genotype of SNP8 is CC, i.e., the homozygous type in which the nucleotide at position 37 of SEQ ID No: 8 in the sequence list is C; The method B is a method for identifying or assisting in identifying wheat yield, comprising detecting the haplotype of claim 1 in the wheat to be tested, and identifying or assisting in identifying wheat yield according to the haplotype of the wheat to be tested: haplotype ARF12-2B-Hap3 The corresponding homozygous genotype wheat yield is lower than or candidate lower than the haplotype ARF12-2B-Hap1 Corresponding homozygous wheat genotypes and haplotypes ARF12-2B-Hap2 The corresponding homozygous genotype of wheat; The haplotype ARF12-2B-Hap1 The genotype of the SNP1 is CC, i.e., the 92nd nucleotide of SEQ ID No: 7 in the sequence list is a homozygous type of C, and the genotype of the SNP8 is TT, i.e., the 37th nucleotide of SEQ ID No: 8 in the sequence list is a homozygous haplotype of T; The haplotype ARF12-2B-Hap2 The genotype of SNP1 is CC, i.e., the 92nd nucleotide of SEQ ID No: 7 in the sequence list is a homozygous type of C, and the genotype of SNP8 is CC, i.e., the 37th nucleotide of SEQ ID No: 8 in the sequence list is a homozygous haplotype of C; The haplotype ARF12-2B-Hap3 The genotype of SNP1 is GG, that is, the 92nd nucleotide of SEQ ID No: 7 in the sequence list is a homozygous G, and the genotype of SNP8 is CC, that is, the 37th nucleotide of SEQ ID No: 8 in the sequence list is a homozygous haplotype of C.
4. The method according to claim 3, characterized in that The wheat is a wheat variety or strain.
5. A method for wheat breeding, characterized in that: The methods are M1 and M2: M1. The method comprises detecting the genotype of the SNP in claim 1 in the wheat genome, selecting wheat with a genotype of CCTT or CCCC as a parent for breeding, the genotype of SNP1 is CC, i.e., the 92nd nucleotide of SEQ ID No:7 in the sequence list is a homozygous type of C, and the genotype of SNP8 is TT or CC, i.e., the 37th nucleotide of SEQ ID No:8 in the sequence list is a homozygous type of T, or a combined genotype of the 37th nucleotide of SEQ ID No:8 in the sequence list is a homozygous type of C, and the breeding purpose of the method comprises breeding wheat with high wheat yield; M2. The method comprises detecting the type of haplotype described in claim 1 in the wheat genome, selecting the haplotype ARF12-2B-Hap1 or ARF12-2B-Hap2 Wheat is used as a parent for breeding, ARF12-2B-Hap1 The genotype of SNP1 is CC, i.e., the 92nd nucleotide of SEQ ID No: 7 in the sequence list is a homozygous C, and the genotype of SNP8 is TT, i.e., the 37th nucleotide of SEQ ID No: 8 in the sequence list is a homozygous haplotype of T; ARF12-2B-Hap2 The genotype of SNP1 is CC, that is, the 92nd nucleotide of SEQ ID No: 7 in the sequence list is a homozygous C, and the genotype of SNP8 is CC, that is, the 37th nucleotide of SEQ ID No: 8 in the sequence list is a homozygous haplotype of C.
6. A product for detecting the polymorphism or genotype of the SNP described in claim 1, wherein the product contains the substance described in claim 1, and the product is any one of: C1) Products for detecting single nucleotide polymorphisms or genotypes related to wheat yield; C2) Products that identify or assist in identifying wheat yield; C3) Products used for wheat breeding; C4) Products that screen or breed wheat plants, strains, lines or varieties for high wheat yield.
7. The product according to claim 6, characterized in that: The substance is as follows (D1), (D2) or (D3): D1) the substance is a primer composition for amplifying a wheat genomic DNA fragment including the SNP1 and a primer composition for amplifying a wheat genomic DNA fragment including the SNP8; D2) the substance is a PCR reagent containing the primer combination described in D1); D3) The substance is a kit containing the primer composition described in D1) or the PCR reagent described in D2).
8. The product according to claim 7, characterized in that The primer composition for amplifying a wheat genomic DNA fragment including the SNP1, InDel2, SNP3, SNP4, SNP5, SNP6, SNP7, SNP8, SNP9 or SNP10 consists of the following primer set 1 or primer set 2; 1) The primer set 1 consists of primer F1, primer F2 and primer R1, and amplifies the wheat genomic DNA fragment including the SNP1; 2) The primer set 2 consists of primer F3, primer F4 and primer R2, and amplifies the wheat genomic DNA fragment including the SNP8; The primer F1 is a single-stranded DNA molecule whose nucleotide sequence is sequence 1 in the sequence list or a single-stranded DNA whose nucleotide sequence is the 22nd to 39th position of sequence 1 in the sequence list; The primer F2 is a single-stranded DNA molecule whose nucleotide sequence is sequence 2 in the sequence list or a single-stranded DNA whose nucleotide sequence is the 22nd to 39th position of sequence 2 in the sequence list; The primer R1 is a single-stranded DNA molecule whose nucleotide sequence is sequence 3 in the sequence list; The primer F3 is a single-stranded DNA molecule whose nucleotide sequence is sequence 4 in the sequence list or a single-stranded DNA whose nucleotide sequence is the 22nd to 40th position of sequence 4 in the sequence list; The primer F4 is a single-stranded DNA molecule whose nucleotide sequence is sequence 5 in the sequence list or a single-stranded DNA whose nucleotide sequence is the 22nd to 40th position of sequence 5 in the sequence list; The nucleotide sequence of the primer R2 is a single-stranded DNA molecule of sequence 6 in the sequence list.
9. A DNA molecule, characterized in that The nucleotide sequence of the DNA molecule is sequence 7 or sequence 8 in the sequence list.
10. Use of the DNA molecule according to claim 9 in any of the following: (1) Identify or assist in identifying wheat yield; (2) Screening or breeding wheat plants, strains, lines or varieties with high wheat yield; (3) Wheat breeding; (4) Preparation of products for identification or assistance in identification of wheat yield; (5) Preparing products for screening or breeding wheat plants, strains, lines or varieties with high wheat yield; (6) Preparing wheat breeding products.
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