Corn bract width regulation gene RHW1 related SNP site and application thereof
By identifying the SNP sites related to RHW1, the corn bract width regulation gene was developed and haplotype markers were solved, and the problem of corn bract width regulation in the existing technology was achieved, and the corn dehydration efficiency and breeding efficiency were improved.
Patent Information
- Application Number
- CN202510488268.2
- Authority / Receiving Office
- CN · China
- Patent Type
- Applications(China)
- Current Assignee / Owner
- Filing Date
- 2025-04-18
- Publication Date
- 2025-05-30
- Estimated Expiration
- 2045-04-18
AI Technical Summary
The existing corn varieties have high moisture content and slow dehydration rate, which limits the scale and mechanized development of corn planting. The width of corn bracts affects the dehydration efficiency during harvest, but the existing technology is difficult to effectively regulate.
By identifying and utilizing SNP sites associated with RHW1, haplotype markers, including SNP1~SNP8 sites, were developed for prediction of InDel-4337 genotype and measuring corn bract width traits.
Accurate prediction and regulation of corn bract width is achieved, corn dehydration efficiency is improved, and corn breeding efficiency and accuracy are enhanced.
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Figure CN120060554A_ABST
Abstract
Description
Technical Field
[0001] The present invention relates to the technical field of plant molecular breeding, and particularly relates to an SNP locus related to the maize husk width regulation gene RHW1 and its application. Background Art
[0002] The following statements only provide background information related to the present invention and do not necessarily constitute prior art.
[0003] Maize is the largest food crop in China. Along with the adjustment of the planting structure, the mechanized harvesting of crops has become an important link in agricultural development. However, the current main maize cultivars in China have disadvantages such as high grain moisture content and slow dehydration rate in the later stage, which greatly restricts the further development of large-scale and mechanized maize planting. The maize husk is a modified leaf transformed from the leaf sheath attached to the ear stalk node. During ear development, the husk has various physiological and protective functions. In particular, a suitable husk morphological structure can directly affect the dehydration efficiency of maize grains at the harvest stage.
[0004] A haplotype marker is a set of markers screened in the region near a gene through genetic linkage analysis and associated with the gene phenotype. The haplotype marker identifies the function of a gene through a set of markers, rather than a small number of one or a few markers, and will not be unable to identify the gene function due to the failure of a single marker detection. Since the detected markers are distributed inside and upstream and downstream of the gene, it also avoids the problem of inaccurate identification due to recombination occurring near the gene.
[0005] The genome size of maize is approximately 2.3 Gb, which is 18 times that of Arabidopsis thaliana and 5 times that of rice. Based on de novo sequencing and population resequencing of multiple maize varieties, the haplotype map (Hapmap) of maize has been improved from the first generation to the third generation. Hapmap1 was constructed using the whole-genome sequences of 27 maize inbred lines, containing 3.3 million SNP and InDel data; subsequent Hapmap2 included pre-domestication varieties (Tripsacum dactyloides) and domesticated varieties of maize, and more than 50 million SNPs were identified from 103 materials; Hapmap3 covered 1,218 maize lines or varieties from all over the world. By establishing a new computational process to process more than 12 trillion bp of sequencing data, more than 83 million variant sites were finally determined (Robert Bukowski et al, Construction of the third-generation Zea mays haplotype map. GigaScience, 2047-217X). On the other hand, in 2013, Wang Guoying, Yan Jianbing and others collaborated to obtain approximately 3.6 million SNP markers based on transcriptional sequences from 368 widely representative maize inbred lines using mRNA sequencing strategies (Fu et al, RNA sequencing reveals the complex regulatory network in the maize kernel. Nat Commun, 4:2832). Subsequently, the Yan Jianbing team integrated an association panel consisting of 540 inbred lines, including breeding germplasm resources representing tropical, subtropical and temperate regions. Among them, 143 inbred lines were from widely used commercial hybrid parents in China, 95 inbred lines were from Chinese local maize varieties, 54 inbred lines were selected from the GEM (Germplasm Enhancement of Maize) project, and 235 inbred lines were from the International Maize and Wheat Improvement Center. Through RNA sequencing and GBS (Genotyping-by-Sequencing) sequencing technologies, a total of 2.65 M SNP markers were obtained (Yang et al, Characterization of a global germplasm collection and its potential utilization for analysis of complex quantitative traits in maize. Mol Breeding 28, 511-526). Screening out haplotype markers related to the morphological and structural traits of maize bracts is helpful for maize trait evaluation and breeding work.
[0006] In view of this, the present invention is specifically proposed. Summary of the Invention
[0007] The object of the present invention is to provide an SNP locus related to the corn husk width regulation gene RHW1 and its application to predict or assist in predicting the genotype of the functional locus InDel-4337 related to the corn husk width gene and measure the corn husk width trait. RHW1 To solve the above technical problems, the present invention adopts the following technical solutions:
[0008] In this article, if there is no special description, all the embodiments and preferred implementation methods mentioned in this article can be combined with each other to form a new technical solution. All the technical features and preferred features mentioned in this article can be combined with each other to form a new technical solution. The various components or their preferred components involved can be combined with each other to form a new technical solution. In this article, unless otherwise specified, any numbering is used to distinguish one entity or behavior from another entity or behavior, rather than necessarily requiring or implying any actual such relationship, order or importance between these entities or behaviors. For example, the numbers ⅰ, ⅱ......ⅳ, and SNP1, SNP2......SNP8.
[0009] In this article, unless otherwise specified, "optionally", "optional", "optional" or "optional" means that the subsequent described event or circumstance can but does not have to occur, and this description includes the occasion where the event or circumstance occurs or does not occur.
[0010] In this article, unless otherwise specified, the term "comprising" or "including" means including the stated elements, integers or steps, but does not exclude any other elements, integers or steps.
[0011] In this article, the "haplotype marker" refers to a linear combination of multiple molecular markers that are tightly linked on the same chromosome.
[0012] In this article, "InDel-4337" refers to the corn husk width gene
[0013] In this article, "InDel-4337" refers to the corn husk width gene RHW1An insertion / deletion (InDel) molecular marker in the 3’UTR region, and this InDel-4337 is described in the prior art document Xia, A., Zheng, L., Wang, Z., Wang, Q., Lu, M., Cui, Z., & He, Y. (2023). The RHW1-ZCN4 regulatory pathway confers natural variation of husk leaf width in maize. New Phytologist, 239(6), 2367-2381. https: / / doi.org / 10.1111 / nph.19116. The entire content is incorporated into the application document by reference. RHW The gene encodes a MYB-like transcription factor suppressor that regulates cell proliferation and then affects the development of husk leaf width. InDel-4337 affects husk leaf traits by increasing the translation efficiency or stability of the RHW1 protein. In a genome-wide association study (GWAS), it was confirmed that InDel4337 was significantly associated with the diversity of maize husk leaf width (P = 2.97×10 -7 ). Maize lines carrying the InDel-4337Ref allele of the RHW gene showed narrower husk leaves than those carrying the InDel-4337Del allele. In this article, "InDel-4337Ref" represents the genotype with the InDel-4337 insertion, and "InDel-4337Del" represents the genotype with the InDel-4337 deletion.
[0014] In this article, "husk leaf width" refers to the width of the outer husk leaves of a maize ear, which can be obtained by conventional methods known in the art. Usually, the width of the middle part of the third husk leaf (counting from the outside to the inside) is measured. Wide husk leaves refer to husk leaves with a width higher than the average width of maize husk leaves; narrow husk leaves refer to husk leaves with a width lower than the average width of maize husk leaves. In an alternative embodiment, wide husk leaves refer to the measurement and statistical results of the representative husk leaf width of maize varieties with the InDel-4337Del RHW1 genotype; narrow husk leaves refer to those with the InDel-4337Ref RHW1Measurement and statistical results of the representative husk leaf width of 3-genotype maize varieties. The measurement and statistical results of the representative husk leaf width of the above two-genotype maize varieties were significantly different through the Wilcoxon rank sum test. In an alternative embodiment, the above two genotypes are genotypes within a selected range of maize varieties, such as the maize varieties involved in the prior art literature Xia, A., Zheng, L., Wang, Z., Wang, Q., Lu, M., Cui, Z., & He, Y. (2023). The RHW1-ZCN4 regulatory pathway confers natural variation of husk leaf width in maize. New Phytologist, 239(6), 2367-2381. https: / / doi.org / 10.1111 / nph.19116, or the maize varieties shown in Tables 2 and 3.
[0015] Based on the information of 540 maize inbred lines and 2.65M SNP loci provided by the website MaizeGDB (http: / / www.maizego.org / Programs.html), the present invention distinguishes the varieties containing the target gene by comparing the published gene sequences or functional gene loci, and then develops a set of molecular markers tightly linked to the maize husk leaf width regulatory gene RHW1 The molecular marker is a haplotype marker, including one or more loci among SNP1-SNP8 located on the same chromosome. The genomic positions of each locus are as follows: The genomic position of SNP1 is Chr5: 221649717 bp; The genomic position of SNP2 is Chr5: 221649776 bp; The genomic position of SNP3 is Chr5: 221649809 bp; The genomic position of SNP4 is Chr5: 221649857 bp; The genomic position of SNP5 is Chr5: 221649904 bp; The genomic position of SNP6 is Chr5: 221649929 bp; The genomic position of SNP7 is Chr5: 221649957 bp; The genomic position of SNP8 is Chr5: 221650023 bp; The physical positions of the SNP loci are determined based on the V4 version of the whole-genome sequence of B73.
[0016] In a first aspect, there is provided the use of a substance for detecting the above-mentioned maize haplotype markers in any one of (i) to (iv): (i) predicting the genotype of the functional locus InDel-4337 related to the maize husk width gene RHW1 ; (ii) preparing a product for predicting the genotype of the functional locus InDel-4337 related to the maize husk width gene RHW1 ; (iii) for predicting the maize husk width trait: (iv) preparing a product for predicting the maize husk width trait.
[0017] In an optional embodiment, the maize haplotype markers include SNP1, SNP2, SNP3, SNP4, SNP5, SNP6, SNP7, and SNP8 located on the same chromosome.
[0018] In an optional embodiment, the substance for detecting the maize haplotype markers includes one or more of a probe for SNP detection, an SNP chip, a reagent for nucleic acid amplification, a reagent for detecting a nucleic acid amplification product, a reagent for constructing a sequencing library, and a reagent for sequencing. More specifically, the substance for detecting the maize haplotype markers includes, but is not limited to, primers, probes, enzymes for nucleic acid amplification reactions, fluorescent labels, buffer reagents, dNTPs, salts, etc. According to different specific detection methods, those skilled in the art can select the above-mentioned reagents for nucleic acid amplification, reagents for detecting nucleic acid amplification products, reagents for constructing sequencing libraries, and reagents for sequencing according to the methods described in general and more specific textbooks, reference documents, process manuals, product descriptions, and standard documents. The present invention does not limit this.
[0019] In an optional embodiment, the substance for detecting the maize haplotype markers includes an SNP chip. SNP chip technology mainly forms a dense oligonucleotide probe array by immobilizing SNP markers on a carrier, and then performs an allele-specific reaction with the target DNA. The polymorphism of the SNP locus is determined according to the presence or absence and intensity of the signal after the reaction. This technology can achieve rapid and high-density scanning of the entire genome of crops. Especially when performing throughput genotype identification on population samples in breeding work, the cost of a single detection site is very low. It is a highly integrated, high-throughput, miniaturized, and automated means for detecting SNPs. In an optional embodiment, the SNP chip includes a Maize 10K low-density gene chip.
[0020] In an optional embodiment, the substance for detecting the maize haplotype markers includes reagents for KASP (Kompetitive Allele Specific PCR) reaction.
[0021] In a second aspect, a kit is provided, which comprises the substance for detecting maize haplotype markers described in the first aspect.
[0022] In an optional embodiment, the kit comprises one or more of a probe for SNP detection, an SNP chip, reagents for nucleic acid amplification, reagents for detecting nucleic acid amplification products, reagents for constructing a sequencing library, and reagents for sequencing. More specifically, the substance for detecting maize haplotype markers includes, but is not limited to, primers, probes, enzymes for nucleic acid amplification reactions, fluorescent labels, buffer reagents, dNTPs, salts, etc. Depending on the specific detection means, those skilled in the art can select the composition of the kit according to the methods described in general and more specific textbooks, reference documents, process manuals, product descriptions, and standard documents, etc. The present invention does not limit this.
[0023] In an optional embodiment, the kit comprises an SNP chip, preferably including a Maize 10K low-density gene chip.
[0024] In an optional embodiment, the kit comprises reagents for KASP (Kompetitive Allele Specific PCR) reaction.
[0025] In a third aspect, a method for predicting the genotype of the functional site InDel-4337 related to the maize husk width gene RHW1 is provided, the method comprising detecting the maize haplotype markers described in the first aspect.
[0026] If the sample to be tested meets one or more of SNP1 being A, SNP2 being A, SNP3 being C, SNP4 being T or C, SNP5 being C, SNP6 being G, SNP7 being A, and SNP8 being A, then it is predicted that the 3'UTR region of the maize husk width gene RHW1 inserts InDel-4337.
[0027] In an optional embodiment, the maize haplotype markers include SNP1, SNP2, SNP3, SNP4, SNP5, SNP6, SNP7, and SNP8 located on the same chromosome; if the sample to be tested meets SNP1 being A, SNP2 being A, SNP3 being C, SNP4 being T or C, SNP5 being C, SNP6 being G, SNP7 being A, and SNP8 being A, then it is predicted that the 3'UTR region of the maize husk width gene RHW1 inserts InDel-4337.
[0028] In a fourth aspect, a method for predicting the maize husk width trait is provided, the method comprising detecting the maize haplotype markers described in the first aspect.
[0029] If the sample to be tested meets one or more of SNP1 is A, SNP2 is A, SNP3 is C, SNP4 is T or C, SNP5 is C, SNP6 is G, SNP7 is A and SNP8 is A, then the corn husk width trait is predicted to be narrow husk.
[0030] In an optional embodiment, the corn haplotype markers include SNP1, SNP2, SNP3, SNP4, SNP5, SNP6, SNP7 and SNP8 located on the same chromosome; if the sample to be tested meets the conditions that SNP1 is A, SNP2 is A, SNP3 is C, SNP4 is T or C, SNP5 is C, SNP6 is G, SNP7 is A and SNP8 is A, then the corn bract width trait is predicted to be narrow bracts.
[0031] In an optional embodiment, the method is used to assist in predicting that corn has narrow husks, and also includes detecting other molecular markers related to the husk width trait, such as but not limited to one or more other SNP molecular markers, SSR molecular markers, STR molecular markers and InDel molecular markers, or combining other prediction methods known in the art to predict the husk width trait.
[0032] In a fifth aspect, a method for predicting corn husk width described in the first aspect or a method for predicting corn husk width described in the third aspect is provided. RHW1 The method for determining the genotype of the relevant functional site InDel-4337, or the method for predicting the corn husk width trait described in the fourth aspect is used in predicting the dehydration efficiency of corn kernels at harvest time, or in corn breeding.
[0033] In an optional embodiment, the corn breeding includes but is not limited to corn flowering period marker-assisted selection breeding, gene aggregation breeding or whole genome selection breeding.
[0034] In a sixth aspect, a method for regulating corn husk width is provided, the method comprising adjusting the genotype of the corn haplotype marker described in the first aspect.
[0035] In an optional embodiment, the method includes making at least one of the SNP1~SNP8 sites in the corn genome conform to the following: SNP1 is A, SNP2 is A, SNP3 is C, SNP4 is T or C, SNP5 is C, SNP6 is G, SNP7 is A and SNP8, so that the corn obtains the narrow bract trait.
[0036] In an alternative embodiment, the method includes making SNPs SNP1, SNP2, SNP3, SNP4, SNP5, SNP6, SNP7, and SNP8 in the maize genome conform to the following: SNP1 is A, SNP2 is A, SNP3 is C, SNP4 is T or C, SNP5 is C, SNP6 is G, SNP7 is A, and SNP8 is A, so that maize obtains the narrow bract trait.
[0037] The specific means for obtaining a specific genotype in the maize genome can be achieved by known and conventional methods in the art, and the present invention does not limit this. For example, maize with the target genotype can be obtained through gene editing methods.
[0038] Compared with the prior art, the present invention has the following beneficial effects: Based on the information of 540 maize inbred lines and 2.65M single nucleotide polymorphism (SNP) sites, the present invention obtains the genotype information of a total of 1,612 SNPs in the regions 100Kb upstream and downstream of the functional locus InDel-4337 of the maize bract width gene RHW1. Through haplotype analysis, 8 SNP loci associated with the RHW1 functional genotype are found. These 8 haplotype markers can be used for the functional identification of the maize flowering gene RHW1, effectively avoiding the problem of identification accuracy caused by the failure of a few marker detections and the problem of gene function loss caused by recombination near the gene, and improving the accuracy of functional gene identification.
[0039] This haplotype marker can be used to be converted into individual SNP markers (such as KASP markers) based on basic PCR and applied to SNP chip design, and applied to maize breeding, gene pyramiding breeding, and genome-wide selection breeding, further improving the efficiency and accuracy of molecular breeding and accelerating maize genetic improvement. BRIEF DESCRIPTION OF THE DRAWINGS
[0040] In order to more clearly illustrate the specific embodiments of the present invention or the technical solutions in the prior art, the following will briefly introduce the drawings required for the description of the specific embodiments or the prior art. Obviously, the drawings in the following description are some embodiments of the present invention. For those of ordinary skill in the art, without creative efforts, other drawings can also be obtained based on these drawings.
[0041] Figure 1 The linkage disequilibrium analysis results of the 200kb interval of the haplotype analysis generated by Haploview in Example 1 (including 100kb upstream and downstream of the functional locus InDel-4337); Figure 2The three haplotypes and frequency results of the adjacent sequence of the functional site InDel-4337 in the haplotype analysis generated by Haploview provided for Example 1. Detailed implementation manners
[0042] The technical solutions of the present invention will be clearly and completely described below in conjunction with the embodiments. Obviously, the described embodiments are some, but not all, of the embodiments of the present invention. All other embodiments obtained by those of ordinary skill in the art based on the embodiments of the present invention without creative efforts shall fall within the protection scope of the present invention.
[0043] Example 1 According to the website MaizeGDB (http: / / www.maizego.org / Programs.html), 2.65M SNP site information of 540 maize inbred lines was obtained, and the haplotype markers associated with the functional site InDel-4337 of the maize husk leaf width regulatory gene RHW1 were screened.
[0044] 1. The article "The - RHW1 regulatory pathway confers natural variation of husk leaf width in maize" published by Professor He Yan of China Agricultural University in "New Phytologist" ZCN4 clarified that the sequence variation of the functional site InDel-4337 of the gene RHW1 (Regulator of Husk leaf Width) regulates the diversity of husk leaf width at the population level by affecting its protein abundance. RHW1 encodes a MYB-like transcriptional repressor, which regulates the expression of ZCN4 positively, regulates cell proliferation and then affects the development of husk leaf width. It was found that the chromosomal position of the gene RHW1 corresponding to the reference genome B73 is (Chr5, 221642735 bp - 221651646 bp), and the gene number is Zm00001d018482; InDel-4337 is an 18bp insertion / deletion polymorphism in the RHW1 3'UTR region, which is significantly correlated with the diversity of husk leaf width. Maize lines carrying the InDel-4337Ref allele show narrower husk leaves than maize lines carrying the InDel-4337Del allele. The above-mentioned physical positions are based on the V4 version of the whole genome sequence of B73.
[0045] 2. Upload the 2.65M SNP locus information of 540 maize inbred lines to the server, and extract the SNP information in the regions 100 kb upstream and downstream of the functional locus InDel-4337 of the maize husk width gene. A total of 1,612 SNP variant locus information was extracted.
[0046] 3. Save the above 1,612 SNP locus information from 540 maize inbred lines in hapmap format, convert it to plink format using Tassel5, and then import the plink format SNP locus information into Haploview software for haplotype analysis. According to the physical position of the functional locus, 183 LD BLOCKs ( Figure 1 ), obtaining 3 groups of haplotypes Hap1-3, which consist of 8 SNP molecular markers. Among them, Hap1 and 2 are tightly linked to InDel-4337Ref (narrow husk) ( Figure 2 and Tables 1 and 2). The physical positions of the SNP loci are determined based on the V4 version of the whole genome sequence of B73.
[0047] The chromosomal positions corresponding to the 8 SNP markers are: The genomic position of SNP1 is Chr5: 221649717 bp; The genomic position of SNP2 is Chr5: 221649776 bp; The genomic position of SNP3 is Chr5: 221649809 bp; The genomic position of SNP4 is Chr5: 221649857 bp; The genomic position of SNP5 is Chr5: 221649904 bp; The genomic position of SNP6 is Chr5: 221649929 bp; The genomic position of SNP7 is Chr5: 221649957 bp; The genomic position of SNP8 is Chr5: 221650023 bp; When the haplotypes composed of the above SNP markers in ascending order of position are AACTCGAA or AACCCGAA, they show the functional genotype containing narrow husk.
[0048] 4. Further comparative analysis of the haplotypes of narrow husk and wide husk found that the genotypes of 7 SNP loci of the two haplotypes Hap1 and Hap2 with narrow husk are exactly the same (Table 1).
[0049] Table 1 The genes related to maize husk width composed of 7 SNP loci RHW1Closely linked haplotype markers
[0050] In summary, in this embodiment, a set of haplotype molecular markers consisting of 8 SNPs was developed. When the haplotypes formed by these 8 SNP markers in ascending order of position are AACTCGAA or AACCCGAA, the genotype of the functional locus InDel-4337 of the maize husk leaf width gene RHW1 is InDel-4337Ref, showing narrow husk leaves. The physical positions of the SNP loci are determined based on the V4 version of the whole genome sequence of B73.
[0051] Example 2 1. According to the article "The RHW1 - ZCN4 regulatory pathway confers natural variation of husk leaf width in maize" published by Professor He Yan of China Agricultural University in *New Phytologist*, the polymorphism of 220 maize inbred lines at the InDel-4337 locus was published. Among them, 193 maize inbred lines contain the narrow leaf allele InDel-4337Ref at the InDel-4337 locus. Querying the SNP sequences of these 193 maize inbred lines near the InDel-4337 functional locus, it was found that 69 varieties such as 04K5686, 04K5702, 05W002, 07KS4, 1323, 150, 238, 384-2, 81162, etc. have genotypes at the 8 SNP loci in Example 1 that are exactly the same as those shown by Hap1 in Example 1 (Table 1, only showing the results of some inbred lines). 114 varieties such as BGY, BS16, C8605, CF3, CHANG3, CHANG7-2, CIMBL101, CIMBL105, CIMBL106, CIMBL111, CIMBL124, CIMBL129, etc. have genotypes at the 8 SNP loci in Example 1 that are exactly the same as those shown by Hap2 in Example 1 (Table 2, only showing the results of some inbred lines).
[0052] Table 2 Genotypes of some maize inbred lines consistent with Hap1
[0053] Table 3 Genotypes of some maize inbred lines consistent with Hap2
[0054] 2. In practical applications, the haplotype of the test sample is compared with Figure 2For genotype comparison, if the haplotype is consistent with Hap1 or Hap2, it is considered to contain RHW1 The narrow bract genotype InDel-4337Ref of the gene, which is characterized by relatively narrow bracts.
[0055] Finally, it should be noted that the above embodiments are only used to illustrate the technical solutions of the present invention, rather than to limit them; although the present invention has been described in detail with reference to the foregoing embodiments, those of ordinary skill in the art should understand that they can still modify the technical solutions described in the foregoing embodiments, or perform equivalent replacements on some or all of the technical features; and these modifications or replacements do not cause the essence of the corresponding technical solutions to deviate from the scope of the technical solutions of the embodiments of the present invention.
Claims
1. Use of a substance for detecting a maize haplotype marker in any one of (i) to (iv): (i) Prediction of maize husk width genes RHW1 the genotype of the relevant functional site InDel-4337; (ii) Preparation of a gene for predicting maize husk width RHW1 The product of the genotype of the relevant functional site InDel-4337; (iii) For predicting corn husk width: (iv) preparing a product for predicting the trait of corn husk width; The maize haplotype markers include one or more sites among SNP1 to SNP8 located on the same chromosome; The genomic position of SNP1 is Chr5: 221649717 bp; The genomic position of SNP2 is Chr5: 221649776 bp; The genomic position of SNP3 is Chr5: 221649809 bp; The genomic position of SNP4 is Chr5: 221649857 bp; The genomic position of SNP5 is Chr5: 221649904 bp; The genomic position of SNP6 is Chr5: 221649929 bp; The genomic position of SNP7 is Chr5: 221649957 bp; The genomic position of SNP8 is Chr5: 221650023 bp; The physical location of the SNP loci was determined based on the V4 version of the whole genome sequence of B73.
2. The use according to claim 1, characterized in that: The material for detecting maize haplotype markers includes one or more of a probe for SNP detection, a SNP chip, a reagent for nucleic acid amplification, a reagent for detecting nucleic acid amplification products, a reagent for constructing a sequencing library, and a reagent for sequencing.
3. The use according to claim 2, characterized in that: The material for detecting maize haplotype markers includes reagents for KASP reaction.
4. A kit, characterized in that A substance for detecting a maize haplotype marker comprising any one of claims 1 to 3.
5. Prediction of maize husk width gene RHW1 A method for genotyping the relevant functional site InDel-4337, characterized in that Comprising detecting the maize haplotype marker described in any one of claims 1 to 3; If the sample to be tested meets one or more of the following conditions: SNP1 is A, SNP2 is A, SNP3 is C, SNP4 is T or C, SNP5 is C, SNP6 is G, SNP7 is A, and SNP8 is A, then the maize husk width gene is predicted to be RHW1 The 3'UTR region of InDel-4337 was inserted.
6. The method according to claim 5, characterized in that The maize haplotype markers include SNP1, SNP2, SNP3, SNP4, SNP5, SNP6, SNP7 and SNP8 located on the same chromosome; if the sample to be tested meets the conditions that SNP1 is A, SNP2 is A, SNP3 is C, SNP4 is T or C, SNP5 is C, SNP6 is G, SNP7 is A and SNP8 is A, then the maize husk width gene is predicted. RHW1 The 3'UTR region of InDel-4337 was inserted.
7. A method for predicting corn husk width, characterized in that: Comprising detecting the maize haplotype marker described in any one of claims 1 to 3; If the sample to be tested meets one or more of SNP1 is A, SNP2 is A, SNP3 is C, SNP4 is T or C, SNP5 is C, SNP6 is G, SNP7 is A and SNP8 is A, then the corn husk width trait is predicted to be narrow husk.
8. The method according to claim 7, characterized in that The corn haplotype markers include SNP1, SNP2, SNP3, SNP4, SNP5, SNP6, SNP7 and SNP8 located on the same chromosome; if the sample to be tested meets the conditions that SNP1 is A, SNP2 is A, SNP3 is C, SNP4 is T or C, SNP5 is C, SNP6 is G, SNP7 is A and SNP8 is A, then the corn bract width trait is predicted to be narrow bracts.
9. The maize haplotype marker according to any one of claims 1 to 3, or the kit according to claim 4, or the gene for predicting maize husk width according to claim 5 or 6 RHW1 The invention relates to a method for determining the genotype of the relevant functional site InDel-4337, or the method for predicting the corn husk width trait as described in claim 7 or 8, and its application in predicting the dehydration efficiency of corn kernels at harvest time, or in corn breeding.
10. A method for regulating corn husk width, characterized in that: Comprising the genotype of regulating the maize haplotype marker described in any one of claims 1 to 3.
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