Resistance genes against pathogens in Heterodera spp.

Nucleic acid molecules from Beta vulgaris subsp. maritima, integrated via CRISPR and TALE nucleases, address the limitations of existing methods by providing dominant resistance to Heterodera schachtii in sugar beet crops, ensuring effective pest control and stable yield performance.

JP7753203B2Active Publication Date: 2025-10-14KWS SAAT SE & CO KGAA
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Patent Information

Application Number
JP2022527660
Authority / Receiving Office
JP · JP
Patent Type
Patents
Current Assignee / Owner
Filing Date
2019-11-12
Publication Date
2025-10-14
Estimated Expiration
2039-11-12

AI Technical Summary

Technical Problem

Current methods for combating beet cyst nematode infestation in sugar beet crops, such as chemical control and crop rotation, are costly, environmentally harmful, and often ineffective, while genetically resistant cultivars suffer from yield penalties due to linkage drag and genetic instability.

Method used

Introduction of nucleic acid molecules and polypeptides derived from Beta vulgaris subsp. maritima that confer dominant resistance to Heterodera schachtii, utilizing CRISPR and TALE nucleases for targeted gene editing and integration into the Beta vulgaris genome to enhance resistance without undesirable traits.

Benefits of technology

The solution provides sustainable and effective resistance to Heterodera schachtii, maintaining high crop yields and reducing the risk of resistance loss, while avoiding environmental pollution and genetic instability.

✦ Generated by Eureka AI based on patent content.

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Abstract

More efficient breeding against beet cyst nematode infestation or the development of new resistant lines is made possible through the provision of Heterodera resistance-mediating nucleic acid molecules according to the present invention, and in particular, a dominant resistance effect in target plants is caused by the properties of the identified nucleic acid molecules. The Heterodera resistance-mediating nucleic acid molecules and the above-described embodiments of the present invention provide additional applications, such as the use of resistance gene alleles in cis- or trans-genetic approaches, for the purpose of developing new resistant varieties.
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Description

[Technical Field]

[0001] The present invention relates to nucleic acid molecules that, when present in plants, particularly in Beta vulgaris plants, can confer resistance to Heterodera pathogens, particularly the beet cyst nematode Heterodera schachtii, as well as polypeptides encoded by the nucleic acid molecules of the present invention. In particular, the nucleic acid molecules of the present invention are characterized by a dominant effect of resistance to Heterodera pathogens conferred by the presence of the nucleic acid molecule. Furthermore, the present invention relates to Heterodera-resistant plants, plant cells, plant organs, plant tissues, plant parts, or plant seeds or progeny that contain the nucleic acid molecule or a portion thereof as an endogenous gene, an edited gene, or a transgene. Furthermore, the present invention also includes methods for increasing resistance to Heterodera pathogens in plants, particularly in Beta vulgaris plants, as well as methods for producing or identifying and optionally selecting Heterodera-resistant plants. The present invention also includes methods for monitoring infestation by the Heterodera schachtii pathogen, as well as oligonucleotide probes and primers that hybridize with the nucleic acid molecules of the present invention.

[0002] Background technology More than two dozen diverse nematode species have been reported to cause economic losses in commercially grown sugar beets (Hafez, Sugar Beet Nematodes in Idaho and Eastern Oregon (1997), University of Idaho, College of Agriculture). The most serious nematode pest of sugar beets is the beet cyst nematode Heterodera schachtii, which is of greatest economic importance in most beet-growing regions of Germany and Europe (Cooke, Agricultural Zoology Reviews 2 (1987), 132-183). This nematode was first detected in Germany in 1859, and current estimates suggest that 10-25% of sugar beet-producing areas worldwide may be infested with this pest, causing yield losses of up to 80% (Hafez 1997). This yield loss depends on the amount of nematodes in the soil, the timing of sugar beet sowing and infestation, and weather conditions.

[0003] The beet cyst nematode is a plant pathogenic nematode that can cause significant yield losses, especially during the summer, due to severe damage to the root system, not only in sugar beet but also in other beets such as red beet, fodder beet, and Swiss chard, as well as in other plants such as Amaranthaceae such as spinach, rapeseed, cabbage, Chinese cabbage, cauliflower, Brussels sprouts, broccoli, turnip, radish, and swede. The nematode also infects many common weeds such as wild turnip, shepherd's purse, pigweed, and purslane.

[0004] In sugar beet fields, beet cyst nematode infestations initially appear as circular to oval areas on stunted plants. The nematodes feed on the plant's roots, reducing the plant's ability to absorb nutrients and water. Thus, above-ground symptoms appear as nutrient deficiencies, drought, reduced plant growth, stunted growth, drooping, yellowing, and wilting, and these symptoms vary based on the growing conditions at the time of infection. When seedlings are infected, symptoms include drooping and reduced leaf growth, with older outer leaves yellowing and wilting during the heat of the day. Infested crops contain smaller plants of reduced value and quality, and are less competitive with weeds.

[0005] As the disease continues to spread, the pest becomes increasingly difficult for growers to manage. However, controlling the pest is important because high soil nematode populations can make sugar beet production uneconomical. While various methods exist to combat the disease, currently applied practices are unsatisfactory. Chemical control of beet cyst nematodes with nematicides not only imposes costs on farmers and pollutes the environment, but is no longer permitted in many countries, and soil decontamination cannot be applied to relatively large fields. Furthermore, crop rotations in which sugar beets are grown only every four years or less frequently to reduce nematode populations are not always feasible or sufficiently effective. Another common management practice involves growing nematode-resistant intercrops, such as oil radish or mustard. These plants attract the pest but inhibit its development and reproduction, reducing pest populations. It is also possible to cultivate resistant or tolerant sugar beet varieties. To date, the most effective method for reducing soil nematode populations has been the cultivation of resistant sugar beet varieties.

[0006] On the other hand, nematode-resistant and tolerant sugar beet cultivars can be provided by endogenously carrying, for example, a major gene for resistance to the beet cyst nematode, which is derived from Beta procumbens (Heijbroek et al., Euphytica 38 (1988), 121-131; Lange et al., Proceedings of the 53rd IIRB Congress, Brussels (1990), 89-102). The Hs1pro-1 gene was identified by positional cloning as the causative factor within a translocated Beta procumbens segment, i.e., a segment of B. procumbens chromosome 1 integrated at the end of B. vulgaris chromosome 9 (Cai et al., Science 275 (1997), 832-834). However, integration of a Beta procumbens chromosome 1 segment into the Beta vulgaris genome not only introduces the desired resistance to beet cyst nematodes into the plant, but also often introduces undesirable traits, such as reduced yield, due to the inheritance of additional genes associated with the positive trait of heterodela resistance. This phenomenon is known by the term "linkage drag." Therefore, the use of this gene in breeding is limited due to the significant yield penalty caused by linkage drag and the instability of the translocation.

[0007] Another element of nematode resistance was found in wild sea beet B. vulgaris subsp. maritima in material collected in France (Hijner, Meded. Inst. rat. Suikerprod. 21 (1951), 1-13). However, the genetic and functional background of Heterodera resistance and the identity of the resistance genes were previously unknown.

[0008] However, as mentioned above, the drawback of the described resistant cultivars is that their development is very laborious and troublesome due to complex genetics, and that such cultivars have significantly poorer yield performance than normal cultivars in the absence of infestation. Among other things, this is related to epigenetic interactions of some resistance genes with genes responsible for sugar production, which can lead to reduced plant fitness in the absence of the pathogen.

[0009] The use of new breeding techniques based on gene editing, for example by TALE nucleases or CRISPR systems, as well as the use of transgenic approaches, is practically impossible because the genes required for the development of resistance have not been identified and characterized.

[0010] For sustainable breeding against beet cyst nematodes, which counteracts the risk of Heterodera mutants overcoming the resistance, it is necessary to continuously identify new resistance genes and incorporate these resistance genes into the gene pool of cultivated plants such as sugar beet. In particular, the problem is to provide suitable resistance genes which, when present in the plant, already produce a very large, dominant resistance effect against Heterodera schachtii. According to the present invention, this problem is achieved through the embodiments characterized in the claims and in the description.

[0011] Description of the Invention The present invention relates to nucleic acid molecules capable of conferring resistance to Heterodera pathogens, particularly Heterodera schachtii, in plants, particularly Beta vulgaris subsp. vulgaris, which, when present in plants, exhibit a dominant resistance effect against Heterodera schachtii.

[0012] Furthermore, the present invention relates to Heterodera-resistant plants, plant cells, plant organs, plant tissues, plant parts, seeds, seed stocks, or plant progeny that contain this nucleic acid molecule or a portion thereof endogenously or by gene transfer. According to a special optional embodiment, these plants and their components obtained essentially exclusively by biological processes are exempt.

[0013] The present invention also encompasses methods for increasing resistance to Heterodera in plants, particularly in plants of the species Beta vulgaris, as well as methods for producing or identifying and optionally selecting Heterodera-resistant plants. The present invention also encompasses methods for monitoring infestations with the pathogen Heterodera schachtii, and oligonucleotides as probes and primers that hybridize with the nucleic acid molecules of the present invention.

[0014] Accordingly, the present invention relates to the embodiments listed in the following points and shown in the examples and drawings. [1] A nucleic acid molecule that enhances resistance to Heterodera pathogens in a plant expressing the nucleic acid molecule, the nucleic acid molecule comprising: (a) a nucleotide sequence comprising a sequence selected from the group consisting of SEQ ID NOs: 1, 4 and 7, or a functional fragment thereof; (b) a nucleotide sequence comprising a coding sequence selected from the group consisting of SEQ ID NOs: 2, 5, and 8, or a functional fragment thereof; (c) a nucleotide sequence that hybridizes under stringent conditions with the complementary sequence of a nucleotide sequence according to (a), (b), (f) or (g), and that is preferably capable of conferring resistance to a pathogen of the genus Heterodera when present in a plant; (d) a nucleotide sequence comprising a DNA sequence that is at least 70%, at least 75%, at least 80%, at least 85%, at least 90%, at least 92%, at least 94%, at least 96%, at least 97%, at least 98%, or at least 99% identical to the DNA sequence of any one of (a), (b), (f), or (g), preferably a nucleotide sequence that, when present in a plant, is capable of conferring resistance to pathogens of the genus Heterodera; (e) a DNA sequence that is an allele of (a), (b), (f), or (g) or a derivative thereof by deletion, substitution, insertion, transposition, and / or addition of one or more nucleotides, preferably a nucleotide sequence that, when present in a plant, is capable of conferring resistance to pathogens of the genus Heterodera; (f) a nucleotide sequence encoding a polypeptide having an amino acid sequence selected from the group consisting of SEQ ID NOs: 3, 6, and 9, or a functional fragment thereof; (g) a nucleotide sequence encoding a polypeptide having an amino acid sequence that is at least 70%, at least 75%, at least 80%, at least 85%, at least 90%, at least 92%, at least 94%, at least 96%, at least 97%, at least 98%, or at least 99% identical to an amino acid sequence selected from the group consisting of SEQ ID NOs: 3, 6, and 9; (h) A nucleotide sequence that is a variant of any of the DNA sequences (a) to (g) due to the degeneracy of the genetic code, and that is preferably capable of conferring resistance to Heterodera pathogens when present in a plant. The compound is characterized in that it is selected from the group consisting of:

[0015] [2] A nucleic acid molecule according to [1], wherein the nucleic acid molecule confers resistance to a pathogen of the genus Heterodera that is dominant in plants.

[0016] [3] The nucleic acid molecule according to [1] or [2], characterized in that the nucleic acid molecule is derived from Beta vulgaris subsp. maritima.

[0017] [4] A polypeptide encoded by a nucleic acid molecule according to any one of [1] to [3].

[0018] [5] A vector or expression cassette comprising a nucleic acid molecule according to any one of [1] to [3], wherein the nucleic acid molecule is preferably heterologous to the vector or expression cassette, or the nucleic acid molecule is preferably linked to a heterologous regulatory element, preferably a promoter or terminator.

[0019] [6] A cell comprising a nucleic acid molecule according to any one of [1] to [3], a vector or expression cassette according to [5], or a polypeptide according to [4], wherein the nucleic acid molecule or expression cassette is preferably present as an endogenous gene or a transgene.

[0020] [7] A plant or part thereof endogenously or transgenicly contains a nucleic acid molecule according to any one of [1] to [3], or contains a vector or expression cassette according to [5], preferably the plant endogenously containing the nucleic acid molecule is a plant of a Beta species, in particular a Beta vulgaris species, but is not Beta vulgaris subsp. maritima. Preferably, the plant is a plant that is resistant to pathogens of the Heterodera genus.

[0021] [8] The plant is characterized as a hybrid plant according to [7].

[0022] [9] A plant according to [7] or [8], characterized in that the nucleic acid sequence molecule is present in the plant genome in a heterozygous or homozygous state.

[0023]

[10] A seed or progeny of a plant according to any one of [7] to [9], wherein the seed or progeny contains, by transgenesis or endogenously, a nucleic acid molecule according to any one of [1] to [3], or a vector or expression cassette according to [5].

[0024]

[11] In the seeds according to

[10] , the technological treatment is selected from the group consisting of: (a) Policing (b) Dressing, preferably pelleting (c) Incrustation (d) Coloring.

[0025]

[12] The following: (i) integrating a nucleic acid molecule according to any one of [1] to [3], or a vector or expression cassette according to [5], into the genome of at least one cell of a plant, preferably a plant of the species Beta vulgaris, by homology-directed repair or homologous recombination, preferably facilitated by a site-specific nuclease, and optionally regenerating a plant from the plant cell; or (ii) increasing expression of any one of the nucleic acid molecules [1] to [3] in at least one cell of the plant, particularly during or after Heterodera infection, preferably by modifying the native promoter or by fusing, preferably operably linking, any one of the nucleic acid molecules [1] to [3] to a heterologous promoter having a higher level of activity compared to the native promoter, and optionally regenerating a plant from the at least one plant cell; or (iii) increasing the activity and / or stability of the polypeptide according to [4] in at least one cell of the plant by modifying the nucleotide sequence of the nucleic acid molecule according to any one of [1] to [3], and optionally regenerating a plant from the at least one plant cell; or (iv) transforming a plant cell with the nucleic acid molecule according to any one of [1] to [3], or the vector or expression cassette according to [5], and optionally regenerating a plant from the transformed plant cell. Including, The resistance to Heterodera is preferably resistance to Heterodera schachtii, or the plant is preferably a plant of the Beta vulgaris species, preferably Beta vulgaris subsp. vulgaris, in particular sugar beet; A method for increasing resistance in plants, preferably in plants of the species Beta vulgaris, to pathogens of the genus Heterodera.

[0026]

[13] The following: (a) transforming a plant cell with a nucleic acid molecule according to any one of [1] to [3], or a vector or expression cassette according to [5]; and (b) regenerating a transgenic plant from the transformed plant cell; or (i) introducing into a cell of a plant, preferably a plant of the genus Betta, more preferably a plant of the species Beta vulgaris, a site-specific nuclease and a repair matrix, wherein the site-specific nuclease is capable of generating at least one single-strand break or at least one double-strand break in DNA within the genome of the cell, preferably upstream, downstream or within a target region that is homologous to a nucleic acid molecule according to any one of [1] to [3], and the repair matrix comprises a nucleic acid molecule according to any one of [1] to [3]; (ii) culturing the cells from (i) under conditions that allow for homology-directed repair or homologous recombination, wherein the nucleic acid molecule is integrated from the repair matrix into the genome of the plant; and (iii) regenerating a plant from the cells modified in (ii); or (I) introducing into a cell of a plant, preferably a plant of the genus Betta, more preferably a plant of the species Beta vulgaris, a site-specific nuclease or base editor, wherein the site-specific nuclease generates at least one single-strand break or at least one double-strand break in DNA in the genome of the cell, preferably upstream, downstream, or within a target region that is homologous to a nucleic acid molecule according to any one of [1] to [3]; (II) culturing the cells from (I) under conditions that allow modification of the target region, selected from: (1) substitution of at least one nucleotide; (2) deletion of at least one nucleotide; (3) an insertion of at least one nucleotide; or (4) any combination of (1) to (3), preferably the modification enhances the activity and / or stability of the polypeptide according to [4]; and (III) Regenerating a plant from the cells modified in (II). A method for producing a plant resistant to a Heterodera genus pathogen according to any one of [7] to [9].

[0027]

[14] The target area is a) Located between marker s5e3001s02 and marker s5e4668xxx, or b) adjacent to marker s5e3001s02 and marker s5e4668xxx, or c) a chromosomal interval between marker s5e3001s02 and marker s5e4668xxx, optionally comprising an allelic variant of a nucleic acid molecule according to any one of [1] to [3], wherein the allelic variant, when present in a plant, confers no resistance to Heterodera pathogens or confers only slight resistance to Heterodera; The method according to

[13] , characterized in that

[0028]

[15] The method according to

[13] or

[14] , wherein at least one single-strand break or at least one double-strand break occurs at a position up to 10,000 base pairs upstream and / or downstream of the target region or at a position up to 10,000 base pairs away from the allelic variant defined in

[14] .

[0029]

[16] A plant or part thereof obtained by or obtainable by a process according to any one of

[13] to

[15] .

[0030]

[17] A method for identifying, and optionally providing or selecting, a plant, preferably a plant of the species Beta vulgaris, that is resistant to a pathogen of the genus Heterodera, the method comprising at least (i) or (ii) of the following: (i) detecting the presence and / or expression of a nucleic acid molecule according to any one of [1] to [3], or the presence of a polypeptide according to [4], in a plant or part of the plant; and / or (ii) detecting at least one region that co-segregates in the nucleotide sequence of a nucleic acid molecule according to any one of [1] to [3]; and (iii) optionally selecting plants that are resistant to pathogens of the Heterodera genus, preferably to Heterodera schachtii; 10. A method for identifying and optionally providing or selecting a plant, comprising:

[0031]

[18] A method for identifying a nucleic acid molecule that, when present in a plant, is capable of conferring resistance to a pathogen of the genus Heterodera in a plant, preferably in a plant of the species Beta vulgaris, the method comprising: (i) comparing the amino acid sequence of the polypeptide according to [4] with amino acid sequences from a sequence database or identifying allelic variants encoding the polypeptide according to [4] in a plant genotype; (ii) identifying an amino acid sequence, or an allelic variant encoding an amino acid sequence, which amino acid sequence is at least 70%, at least 75%, at least 80%, at least 85%, at least 90%, at least 92%, at least 94%, at least 96%, at least 97%, at least 98%, or at least 99% identical to the amino acid sequence of a polypeptide according to [4]; (iii) introducing a nucleic acid molecule encoding the identified amino acid sequence, or allelic variant, into a plant, preferably a plant of the species Beta vulgaris, and expressing the nucleic acid molecule in the plant; and (iv) detecting resistance to pathogens of Heterodera spp. A method for identifying a nucleic acid molecule, comprising:

[0032]

[19] The following (i) providing a plant according to any one of [7] to [9], producing a plant according to any one of

[13] to

[16] , or identifying and selecting a plant according to the method according to

[17] ; (ii) cultivating a plant or its progeny from (i). Including, This method prevents the infestation of cultivated plants with Heterodera pathogens. A method for cultivating plants, preferably plants of the species Beta vulgaris.

[0033]

[20] An oligonucleotide having a length of at least 15, 16, 17, 18, 19, or 20, preferably at least 21, 22, 23, 24, or 25, particularly preferably at least 30, 35, 40, 45, or 50, particularly preferably at least 100, 200, 300, or 500 nucleotides, which specifically hybridizes to a nucleotide sequence defined in any one of [1] to [3].

[0034]

[21] An oligonucleotide, preferably a pair of oligonucleotides according to

[20] , or a kit comprising these oligonucleotides, wherein the oligonucleotides are suitable for hybridization as forward and reverse primers to a region in the Beta vulgaris genome that co-segregates in Beta vulgaris that has resistance to pathogens of the genus Heterodera conferred by a nucleic acid molecule according to any one of [1] to [3], preferably wherein the region in the Beta vulgaris genome is located between marker s5e3001s02 and marker s5e4668xxx, or adjacent to marker s5e3001s02 and marker s5e4668xxx, or comprising the chromosomal interval between marker s5e3001s02 and marker s5e4668xxx.

[0035]

[22] Use of a nucleic acid molecule according to any one of [1] to [3] in the production of a heterodera-resistant plant of Beta vulgaris subsp. vulgaris.

[0036]

[23] s5e3001s02 is a single nucleotide polymorphism (SNP), preferably located at 56940072 bp on chromosome 5, referring to the Beta vulgaris genotype EL10, wherein the nucleotide is G or T, preferably a single nucleotide polymorphism (SNP) set forth in SEQ ID NO: 10 or 11, more preferably wherein the nucleotide is T; and / or s5e4668xxx is a single nucleotide polymorphism (SNP), preferably located at 57809807 bp of chromosome 5, referring to the Beta vulgaris genotype EL10, wherein the nucleotide is G or T, preferably a single nucleotide polymorphism (SNP) set forth in SEQ ID NO: 12 or 13, more preferably wherein the nucleotide is T; A method, plant, or plant part or oligonucleotide pair according to any of the preceding items.

[0037]

[24] The plant or pelleted seed of such a plant has a genome that enables the development of beet bodies having a minimum fresh mass of 200g, 250g, 300g, 350g, 400g, 450g or 500g and a maximum mass of 1000g, 1100g, 1200g, 1300g, 1400g, 1500g, 1600g, 1700g, 1800g, 1900g or 2000g.

[0038]

[25] A plant according to [7] or

[24] , which is a sugar beet plant or pelleted seed of such a plant, wherein the genome of the sugar beet plant enables the development of beet bodies having a sucrose concentration of at least 10%, 11%, 12%, 13%, 14%, 15%, 16%, 17%, 18%, 19% or even 20% (percent by mass) in the fresh mass of the beet body.

[0039]

[26] A molecular marker, oligonucleotide or primer having one of the SEQ ID NOs shown in Table 4 or one SEQ ID NO: selected from the group consisting of SEQ ID NOs: 10 to 13.

[0040]

[27] A molecular marker, oligonucleotide, or primer derived from the molecular marker, oligonucleotide, or primer according to

[26] , wherein the molecular marker, oligonucleotide, or primer is suitable for selecting plants containing the nucleic acid molecule according to [1].

[0041]

[28] The following: abasic nucleotides; 8'oxo dA and / or 8'oxo dG nucleotides; reverse bases at their 3' ends; 2'O-methyl nucleotides; 5'-end caps; phosphothioate modifications, methylphosphonate modifications, locked nucleic acid (LNA) modifications, O-(2-methoxyethyl) (MOE) modifications, di A molecular marker, oligonucleotide or primer according to

[26] or

[27] , comprising one or more chemical modifications or additions selected from the group consisting of a backbone modification selected from the group consisting of a PS modification and a peptide nucleic acid (PNA) modification; an intrastrand crosslink; a fluorescent dye attached thereto; a fluorescent dye attached to the 5' or 3' end of the GRON; one or more bases that increase hybridization energy; a 2'O-methyl nucleotide at its 5' end; a 2'O-methyl nucleotide at its 3' end, a fluorescent dye attached at its 5' end, a fluorescent dye attached at its 3' end, a phosphothioate residue at its 5' end, a phosphothioate residue at its 3' end, a 3' blocking substituent, a 5' blocking substituent, or both a 3' and a 5' blocking substituent.

[0042] First, some of the terms used in this application are explained in detail below: The genus Heterodera includes various species such as Heterodera amygdali, Heterodera arenaria, Heterodera aucklandica, Heterodera avenae, Heterodera bergeniae, Heterodera bifenestra, Heterodera cacti, Heterodera cajani, Heterodera canadensis, Heterodera cardiolata, Heterodera carotae, Heterodera cicero, Heterodera cruciferae, Heterodera delvii, Heterodera elachista, Heterodera filipjevi, Heterodera gambiensis, Heterodera glycines, Heterodera goettingiana, Heterodera hordecalis, Heterodera humuli, Heterodera latipons, Heterodera longicaudata, Heterodera medicaginis, Heterodera oryzae, Heterodera oryzicola, Heterodera rosii, Heterodera rostochiensis, Heterodera sacchari, Heterodera schachtii, Heterodera tabacum, Heterodera trifolii, Heterodera ustinovi and Heterodera zeae species.

[0043] In the context of specifying the length of a nucleotide sequence, the term "about" means a deviation of + / - 200 base pairs, preferably + / - 100 base pairs, particularly preferably + / - 50 base pairs.

[0044] "Plants of the genus Beta" belong to the Amaranthaceae (Amaranthaceae) family. Among these plants, the numbering system includes plants of the species Beta macrocarpa, Beta vulgaris, Beta lomatogona, Beta macrorhiza, Beta corolliflora, Beta trigyna, and Beta nana. Plants of the species Beta vulgaris are specifically plants of the subspecies Beta vulgaris subsp. vulgaris. For example, among these, the numbering system includes Beta vulgaris subsp. vulgaris var. altissima (sugar beet stricto), Beta vulgaris ssp. vulgaris var. vulgaris (chard), Beta vulgaris ssp. vulgaris var. conditiva (beetroot / red beet), and Beta vulgaris ssp. vulgaris var. crassa / alba (fodder beet). It should be noted that the nucleic acids according to the present invention do not naturally occur in sugar beets, chard, beetroot, or fodder beets, but can be introduced into them through human action.

[0045] A "functional fragment" of a nucleotide sequence refers to a segment of a nucleotide sequence that has a function identical or equivalent to that of the complete nucleotide sequence from which the functional fragment is derived. Thus, a functional fragment may have a nucleotide sequence that is identical or homologous to the entire nucleotide sequence over at least 50%, 55%, 60%, 65%, 70%, 75%, 80%, 85%, 90%, 92%, 94%, 96%, 97%, 98%, or 99% of its length. This also explicitly includes the range of 90-100%. Furthermore, a "functional fragment" of a nucleotide sequence can refer to a segment of a nucleotide sequence that modifies the functionality of the entire nucleotide sequence, for example, during post-transcriptional or transcriptional gene silencing. Thus, a functional fragment of a nucleotide sequence may comprise at least 14, 15, 16, 17, 18, 19, 20, 21, 22, 23, 24, or 25, preferably at least 30, 35, 40, 45, 50, 60, 70, 80, 90, 100, 120, or 140, and particularly preferably at least 160, 180, 200, 250, 300, 350, 400, 450, 500, 600, 700, 800, 900, or 1000 consecutive nucleotides of the entire nucleotide sequence, and this also explicitly includes the range of 21 to 50 nucleotides.

[0046] A "functional portion" of a protein refers to a segment of a protein, or a section of an amino acid sequence that encodes the protein, which may perform the same or an equivalent functionality as the entire protein in a plant cell. A functional portion of a protein has an amino acid sequence that is identical or similar, taking into account conservative and semi-conservative amino acid exchanges, to the protein from which it is derived, over at least 50%, 55%, 60%, 65%, 70%, 75%, 80%, 85%, 90%, 92%, 94%, 96%, 97%, 98%, or 99% of its length.

[0047] The term "heterologous" means that the introduced polynucleotide is derived from a cell or organism having a different genetic background, either of the same species or of a different species, or is homologous to the prokaryotic or eukaryotic host cell but is located in a different genetic environment and is therefore different from the corresponding polynucleotide that may be present in nature. A heterologous polynucleotide may be present in addition to the corresponding endogenous gene.

[0048] In the sense of the present invention, a "homolog" is understood to be a protein of the same phylogenetic origin, an "analog" is understood to be a protein that performs the same function but has a different phylogenetic origin, an "ortholog" is understood to be a protein from different species that performs the same function, and a "paralog" is understood to be a protein that has appeared within a species by duplication, and this copy either retains the same protein function, or its expression template changes but its function remains unchanged, or its protein function is modified, or the original gene function is split between both copies.

[0049] " Hybridization " or " hybridization " is understood to mean the process by which a single-stranded nucleic acid molecule binds to, or forms base pairs with, its complementary nucleic acid strand to the maximum extent possible.Standard methods for hybridization are described, for example, in Sambrook et al., Molecular Cloning: A Laboratory Manual, 3rd ed., Cold Spring Harbor Laboratory Press, Cold Spring Harbor, NY, 2001.Preferably, this means that at least 60%, more preferably 65%, 70%, 75%, 80%, or 85%, particularly preferably 90%, 91%, 92%, 93%, 94%, 95%, 96%, 97%, 98%, or 99% of the bases of the nucleic acid molecule form base pairs with its complementary nucleic acid strand to the maximum extent possible.The possibility of such annealing depends on the stringency of hybridization conditions.The term "stringency" is related to hybridization conditions. High stringency exists when base pairing is more difficult, and low stringency exists when base pairing is more easily performed.For example, the stringency of hybridization conditions depends on salt concentration or ionic strength and temperature.Generally, stringency can be increased by increasing temperature and / or decreasing salt concentration.The term "stringent hybridization conditions" is understood to be conditions under which hybridization occurs mainly between homologous nucleic acid molecules.Therefore, the term "hybridization conditions" not only refers to the conditions that prevail in the current addition of nucleic acid, but also to the conditions that prevail in the subsequent washing step.For example, stringent hybridization conditions are conditions under which mainly only nucleic acid molecules with at least 70%, preferably at least 75%, at least 80%, at least 85%, at least 90%, or at least 95% sequence identity hybridize.Stringent hybridization conditions are, for example: hybridization in 4×SSC at 65° C., followed by repeated washes in 0.1×SSC at 65° C. for a total of about 1 hour. Hybridization preferably occurs under stringent conditions.

[0050] In the context of nucleic acids in the form of double-stranded DNA, a "complementary" nucleotide sequence means that a second DNA strand that is complementary to a first DNA strand has nucleotides that correspond to the bases of the first strand according to the base-pairing rules. A complementary sequence is preferably perfectly complementary to the reverse sequence and therefore preferably has the same length.

[0051] An "isolated nucleic acid molecule" is a nucleic acid molecule that has been removed from its natural or original environment. The term also encompasses synthetically produced nucleic acid molecules. An "isolated polypeptide" is understood to be a polypeptide that has been removed from its natural or original environment. The term also encompasses synthetically produced polypeptides.

[0052] A "molecular marker" is a nucleic acid that is polymorphic in a plant population and is used as a reference or orientation point. Markers for detecting recombination events should be suitable for monitoring differences or polymorphisms in a plant population. Thus, such markers make it possible to detect and distinguish various allelic states (alleles). The term "molecular marker" also relates to a nucleotide sequence that is complementary, or at least sufficiently complementary or homologous, to a genomic sequence, e.g., a nucleic acid used as a probe or primer. These differences at the DNA level can be seen as markers, e.g., differences in polynucleotide sequences, such as SSRs (simple sequence repeats), RFLPs (restriction fragment length polymorphisms), FLPs (fragment length polymorphisms), or SNPs (single nucleotide polymorphisms). Markers may be derived from genomic or expressed nucleic acids, e.g., spliced ​​RNAs, cDNAs, or ESTs, and may also relate to nucleic acids that are used as probes or primer pairs and are suitable for amplifying sequence fragments using PCR-based methods. Markers that explain genetic polymorphisms (between parts of a population) can be detected using methods well established in the prior art (An Introduction to Genetic Analysis, 7th edition, Griffiths, Miller, Suzuki, et al., 2000). For example, among these are DNA sequencing, PCR-based sequence-specific amplification, RFLP verification, allele-specific hybridization (ASH) verification of polynucleotide polymorphisms, detection of amplified variable sequences in plant genomes, detection of 3SR (sustained sequence replication), detection of SSR, SNP, RFLP, or AFLP (amplified fragment length polymorphism). In addition, methods for detecting EST (expressed sequence tag) and SSR markers derived from EST sequences and RAPD (random amplified polymorphic DNA) are also known. Depending on this context, the term "marker" in this description can refer to the specific chromosomal location in the genome of a species where a specific marker (e.g., SNP) can be found.

[0053] Marker also includes synthetic oligonucleotides that can be connected with one or more detection molecules, and detection molecules can be used for detection reaction or for generating signals within verification method.Synthetic oligonucleotides also include labeled primers.Labeled primers are artificial compounds that do not occur in nature and cannot be isolated from nature.The preparation of such compounds will be further described below.

[0054] A "promoter" is a non-translated regulatory DNA sequence, typically upstream of a coding region, that contains a binding site for RNA polymerase and initiates transcription of DNA. Promoters also contain other elements (e.g., cis-regulatory elements) that act as regulators of gene expression. A "core or minimal promoter" is a promoter that has the basic elements required for transcription initiation (e.g., a TATA box and / or initiator).

[0055] "Pathogen" refers to an organism that, in interaction with a plant, causes disease symptoms in one or more organs within the plant. As used herein, pathogen refers to nematodes, particularly nematodes of the genus Heterodera.

[0056] "Pathogenic infection" is understood to be the earliest point at which a pathogen interacts with plant host tissue. In this context, "parasitism" refers to the occurrence of contact between the pathogen and the host. In the case of Heterodera schachtii, cysts are activated in the soil, and upon completion of development into second-stage larvae, the larvae hatch and parasitize the roots of the host plant. The nematode penetrates the growth zone behind the root tip and initiates the transformation of root cells into syncytia (specialized feeding structures). The syncytia increase as the nematode develops into adult nematodes and can cause impaired root function, which limits crop performance and results in yield losses. Without a host plant, Heterodera schachtii can survive for several years in cysts in the soil.

[0057] Plant "organ" refers to, for example, leaves, shoots, stems, roots, hypocotyls, shoots, meristems, embryos, anthers, ovules, seeds, or fruits. "Plant parts" include, but are not limited to, shoots or stalks, leaves, flowers, inflorescences, roots, fruits, seeds, and pollen. The term "plant part" also refers to an association of multiple organs, such as a flower or seed, or a part of an organ, such as a cross-section of a plant shoot. Plant "tissue" refers to, for example, callus tissue, storage tissue, meristem, leaf tissue, shoot tissue, root tissue, plant tumor tissue, or regenerative tissue, as well as cambium, parenchyma tissue, vascular tissue, sclerenchyma, and epidermis. However, tissues are not limited to this list. For example, plant "cell" is understood to be, for example, an isolated cell with a cell wall or an aggregate thereof, or a protoplast.

[0058] In the context of the present invention, the term "regulatory sequence" relates to a nucleotide sequence that influences the specificity and / or intensity of expression, e.g., the regulatory sequence confers a defined tissue specificity. Such regulatory sequences may be located upstream of the transcription start point of the minimal promoter, but may also be located downstream thereof, e.g., within a transcribed but untranslated leader sequence or within an intron. The term "regulatory sequence" may also encompass the entire promoter or cis elements suitable for use within a promoter.

[0059] The term "resistance" should be understood broadly and covers a range of protection from delayed disease progression to complete blockage. One example of an important pathogen is Heterodera schachtii. The resistant plant cells or plants of the present invention preferably achieve resistance to Heterodera schachtii, which is defined as the plant's ability to limit nematode proliferation. For example, improved resistance can be measured by taking soil samples and determining the number of nematodes and / or the amount of cysts formed on the plant's roots.

[0060] "Transgenic plant" refers to a plant whose genome is integrated with at least one polynucleotide. Therefore, it may be a heterologous or exogenous polynucleotide. The polynucleotide is preferably stably integrated, meaning that the integrated polynucleotide can be stably stored and expressed in the plant and stably inherited by its offspring. Stable introduction of a polynucleotide into the genome of a plant also includes integration into the genome of a previous parental plant, and the polynucleotide may be further stably inherited. The term "heterologous" means that the introduced polynucleotide originates from a cell or organism with a different genetic background, which may belong to the same or a different species, or may be homologous to a prokaryotic or eukaryotic host cell, but is located in, for example, a different genetic environment, and thus differs from the corresponding polynucleotide that may exist in nature. A heterologous polynucleotide may exist in addition to a corresponding endogenous gene.

[0061] As used herein, plant means any dicotyledonous or monocotyledonous plant, in particular plants of the Amaranthaceae family, such as Beta vulgaris and Spinacia oleracea, and plants of the Brassicaceae family, such as Brassica napus, Brassica oleracea, Brassica rapa, Raphanus sativus, Brassica juncacea, Brassica nigra, Eruca vesicaria subsp. sativa.

[0062] The concepts and embodiments of the present invention will now be described by way of example with reference to the accompanying sequences and drawings. [Brief explanation of the drawings]

[0063] [Figure 1]Diagram of sequence mapping and assembly within the target region on chromosome 5 (x-axis: physical distance in thousands of base pairs (1k = 1000 bp)): The upper part shows the assembly of nine annotated genes (#1 to #9); the direction of the arrows indicates the 5'-3' direction of each putative gene. The middle part shows a diagram of the diverse introgression of the accessions from B. vulgaris subsp. maritima (BM). Recombination events are indicated according to their localization. The lower part shows the physical mapping of candidate genes LRR1, LRR2, and LRR3 according to SEQ ID NOs: 1, 4, and 7.

[0064] Detailed Description of the Invention The present invention relates to a nucleic acid molecule that, when present in a plant, particularly a plant of the species Beta vulgaris, more preferably Beta vulgaris subsp. vulgaris, can confer resistance to Heterodera pathogens. In particular, the nucleic acid molecule confers resistance to Heterodera pathogens in plants expressing the polypeptide encoded by the nucleic acid molecule. In a preferred embodiment of the present invention, the pathogen is Heterodera schachtii, the most serious pathogenic nematode of sugar beet, which can cause up to 80% yield loss. Heterodera schachtii can cause significant yield loss by severely damaging the root system not only in sugar beet but also in other beets, such as red beet, silver beet, rhubarb, and spinach, as well as in Brassica vegetable crops, such as cabbage, Chinese cabbage, cauliflower, Brussels sprouts, broccoli, turnip, radish, and swede.

[0065] The present invention is based on the genetic fine mapping, identification, isolation, and characterization of genes and loci from the donor Beta vulgaris subsp. maritima whose presence in plants, particularly Beta vulgaris subsp. vulgaris, correlates with or causes plant resistance to infection by Heterodera. The original material was a Beta vulgaris subsp. maritima population collected in France (Hijner 1951).

[0066] Through intensive fine-mapping and map-based cloning, the resistance locus was identified and sequenced, allowing sequence comparison between the resistant genotype and the susceptible reference genotype (Figure 1). The resistance locus contained large sequence overlaps, and the target region was shown to have a high degree of complexity, particularly in the susceptible genotype, as several retrotransposons were embedded within the target region. This resistance locus contained seven annotated genes, including three tandem-repeat LRR genes (LRR1, LRR2, and LRR3) that were identified as candidate genes conferring resistance to Heterodera. The three LRR genes were found to show sequence similarity.

[0067] Thus, the present invention relates to nucleic acid molecules and polypeptides encoded by said nucleic acid molecules, respectively, that confer resistance to pathogens, preferably of the Heterodera genus, in particular Heterodera schachtii. The nucleic acid molecules of the present invention confer resistance to this pathogen, particularly in plants of the Beta genus. The nucleic acid molecules according to the present invention may be isolated nucleic acid molecules. They are preferably DNA, particularly preferably cDNA (coding DNA). The plants are preferably plants of the species Beta vulgaris, particularly preferably plants of the subspecies Beta vulgaris subsp. vulgaris, including cultivars of sugar beet, beetroot, fodder beet, Swiss chard, and Swiss chard.

[0068] In one embodiment of the present invention, the nucleic acid molecule according to the invention comprises a nucleotide sequence comprising the DNA sequence set forth in any one of SEQ ID NOs: 1, 4 and 7 and / or a coding sequence according to any one of SEQ ID NOs: 2, 5 and 8. Furthermore, the present invention provides a nucleotide sequence encoding a polypeptide having an amino acid sequence according to one of SEQ ID NOs: 3, 6 and 9.

[0069] As mentioned above, the genes identified by the present invention are resistance genes / proteins of the NBS-LRR type, characterized by specific structural motifs. The general structure of such resistance proteins in plants has already been thoroughly investigated (Martin et al., Annual Review Plant Biology 54 (2003), 23-61). However, the principles of structural implementation, particularly their application as potential detection domains for largely unknown pathogenic effectors known as LRR domains, are unpredictable, and the functional background of resistance genes, i.e., gene structure, is generally largely unknown. Therefore, it is impossible to identify genes or proteins conferring Heterodera resistance solely based on known structural motifs. Furthermore, because the resistance locus contains large sequence duplications and several retrotransposons are embedded within the target region in susceptible genotypes, this sequence region has been shown to have a high degree of complexity, making the development of diagnostic markers and the assembly of sequence data particularly challenging.

[0070] Furthermore, substitutions, deletions, insertions, additions, and / or any other changes, alone or in combination, may be introduced into the DNA sequence of a nucleotide sequence according to the present invention, thereby actually altering the nucleotide sequence, provided that the modified nucleotide sequence performs the same function as the original sequence. This case encompasses nucleic acid sequences that are alleles or derivatives of the unmodified nucleic acid sequences of the present invention and contain DNA sequences that, when present in a plant, confer resistance to Heterodera pathogens, particularly Heterodera schachtii. Furthermore, this case deals with coding for amino acid sequences that confer resistance to Heterodera pathogens, particularly Heterodera schachtii. Thus, in another embodiment, the present invention encompasses nucleotide sequences encoding polypeptides that represent derivatives of polypeptides encoded by nucleotide sequences according to the present invention or that contain amino acid sequences according to the present invention. Derived amino acid sequences that contain at least one substitution, deletion, insertion, or addition of one or more amino acids, while preserving the function of the encoded polypeptide / protein, represent derivatives of the polypeptide. Substitutions, deletions, insertions, additions, and / or other modifications, either alone or in combination, which actually alter the nucleotide sequence but perform the same function as the original sequence, may therefore be introduced into the nucleotide sequence using conventional methods known in the prior art, such as site-directed mutagenesis, TILLING, PCR-mediated mutagenesis, chemically induced mutagenesis, genome editing, etc.

[0071] The replacement of one amino acid with a different amino acid having the same or equivalent or similar chemical / physical properties is called a "conservative substitution" or "semi-conservative substitution". Examples of the physical / chemical properties of amino acids are, for example, hydrophobicity or charge. Those skilled in the art know which amino acid substitutions represent conservative or semi-conservative substitutions. Furthermore, with general expertise, those skilled in the art can recognize, distinguish, and detect which amino acid deletions and additions are harmless to the function of the resistance protein and at which positions. Those skilled in the art know that in the case of the present NBS-LRR proteins, for amino acid sequence modifications (substitution, deletion, insertion, or addition of one or more amino acids), functionality, especially the functionality of the conserved domain, must be protected, and therefore only the above-mentioned limited modifications are possible in this domain.

[0072] Therefore, the present invention includes functional fragments of the nucleotide sequences of the present invention. Thus, the term "fragment" includes genes having nucleotide sequences sufficiently similar to the above-mentioned nucleotide sequences. The term "sufficiently similar" means that a first nucleotide sequence or a first amino acid sequence has a sufficient or a minimum number of identical or equivalent nucleotides or amino acid groups with respect to a second nucleotide sequence or a second nucleotide sequence.

[0073] With respect to amino acid sequences, after modification, for example, by the methods described below, they also share common structural domains and / or common functional activities. Nucleotide or amino acid sequences having at least 70%, at least 75%, at least 80%, at least 85%, at least 90%, at least 91%, at least 92%, at least 93%, at least 94%, at least 95%, at least 96%, at least 97%, at least 98%, at least 99%, or at least 100% identity to a nucleotide or amino acid sequence according to the present invention are defined herein as being sufficiently similar. This also explicitly encompasses the 90%-100% range. With respect to functional fragments, sufficient similarity is generally established if the nucleotide or amino acid sequence has the same properties as the previously listed nucleotide or amino acid sequences of the present invention. These nucleotide sequences encoding derivatives or derived amino acid sequences are generated directly or indirectly (e.g., via an amplification or replication step) from an original nucleotide sequence corresponding, in full length or at least in part, to a nucleotide sequence according to the present invention.

[0074] Thus, the present invention comprises nucleotide sequences that are capable of hybridizing under stringent conditions to a nucleotide sequence according to the invention or to a nucleotide sequence complementary to a nucleotide sequence encoding an amino acid sequence according to the invention, said nucleotide sequence preferably being capable of conferring resistance to pathogens of the Heterodera genus when present and / or expressed in a plant.

[0075] Furthermore, it is generally known that the genetic code is redundant, thereby exhibiting a large number of three-base pair codon combinations that define amino acid sequences. Thus, the present invention encompasses variant DNA sequences due to the degeneracy of the genetic code, which variant DNA sequences, when present and / or expressed in plants, are nevertheless preferably capable of conferring resistance to Heterodera pathogens.

[0076] In one embodiment of the invention, the nucleic acid molecules of the invention, alone or in combination, preferably when present and / or expressed in a plant, confer resistance to a pathogen of the genus Heterodera, more preferably the resistance to a pathogen of the genus Heterodera is resistance to Heterodera schachtii and / or the plant is a plant of the subspecies Beta vulgaris subsp. vulgaris.

[0077] The nucleic acid molecules according to the invention or the described combinations of resistance loci according to the invention are preferably characterized in that, when present in a plant and / or expressed in a plant, they confer a dominant resistance effect against pathogens of the Heterodera genus, preferably against Heterodera schachtii, or they encode a polypeptide that is capable of conferring a dominant resistance effect against pathogens of the Heterodera genus, preferably against Heterodera schachtii.

[0078] Thus, in one embodiment of the present invention, a combination of at least two or three nucleic acid molecules, when present and / or expressed preferably in a plant, preferably in a plant of the subspecies Beta vulgaris subsp. vulgaris, confers resistance to pathogens of the Heterodera genus, in particular to Heterodera schachtii, wherein the at least two or three nucleic acid molecules are selected from the group consisting of: (a) a nucleic acid molecule comprising a nucleotide sequence of the invention, which comprises the DNA sequence set forth in SEQ ID NO: 1, the cDNA sequence set forth in SEQ ID NO: 2, which hybridizes with the complementary sequence of the nucleotide sequence according to SEQ ID NO: 1 or 2, which encodes a polypeptide having the amino acid sequence set forth in SEQ ID NO: 3, and / or which is one of the above-mentioned alleles, derivatives or variants of the nucleic acid and amino acid sequences; (b) a nucleic acid molecule comprising a nucleotide sequence of the invention, which comprises the DNA sequence set forth in SEQ ID NO: 4, the cDNA sequence set forth in SEQ ID NO: 5, which hybridizes with the complementary sequence of the nucleotide sequence according to SEQ ID NO: 4 or 5, which encodes a polypeptide having the amino acid sequence set forth in SEQ ID NO: 6, and / or which is one of the above-mentioned alleles, derivatives or variants of the nucleic acid and amino acid sequences; (c) A nucleic acid molecule comprising a nucleotide sequence of the invention, which comprises the DNA sequence set forth in SEQ ID NO: 7, the cDNA sequence set forth in SEQ ID NO: 8, which hybridizes to the complementary sequence of the nucleotide sequence according to SEQ ID NO: 7 or 8, which encodes a polypeptide having the amino acid sequence set forth in SEQ ID NO: 9, and / or which is one of the above-mentioned alleles, derivatives or variants of the nucleic acid and amino acid sequences.

[0079] In a particular embodiment of the invention, the combination of two nucleic acid molecules described in (a) and (b) confers resistance to Heterodera, in particular Heterodera schachtii, when present in a plant, preferably in a plant of the species Beta vulgaris.

[0080] In another particular embodiment of the invention, the combination of two nucleic acid molecules described in (a) and (c) confers resistance to Heterodera, in particular Heterodera schachtii, when present in a plant, preferably in a plant of the species Beta vulgaris.

[0081] In another particular embodiment of the invention, the combination of two nucleic acid molecules described in (b) and (c) confers resistance to Heterodera, in particular Heterodera schachtii, when present in a plant, preferably in a plant of the species Beta vulgaris.

[0082] This combination may be one or more nucleic acid molecules. However, this combination can also be included in a kit. When this combination is included in a kit, the nucleic acids (a), (b) and / or (c) of the above combination can be the entire part of one nucleic acid molecule or can be part of separate nucleic acid molecules.

[0083] In this context, the polypeptides / proteins encoded by the combinations defined above are also part of the present invention. The protein combinations can be contained in kits, which are also part of the present invention.

[0084] Furthermore, a plant containing a combination of the above-mentioned nucleic acid molecules is also part of the present invention. This combination can be part of the plant by transgenesis or endogenous. Furthermore, one or two of these sequences can be part of the plant as transgene material, and the other one or two sequences can be part of the plant as endogenous material.

[0085] In another embodiment, the nucleic acid molecule according to the invention is preferably characterized in that when present in the plant or expressed in the plant, it already confers a dominant resistance effect against pathogens of the Heterodera genus, preferably against Heterodera schachtii, or encodes a polypeptide that can confer a dominant resistance effect against pathogens of the Heterodera genus.

[0086] Thus, in one embodiment, in the context of a combination of nucleic acid molecules of the invention, a nucleic acid molecule according to (b) preferably confers resistance to pathogens of the Heterodera genus, in particular Heterodera schachtii, when present and / or expressed in a plant, in particular in a plant of the subspecies Beta vulgaris subsp. vulgaris.

[0087] In another embodiment, in the context of a combination of nucleic acid molecules of the invention, a nucleic acid molecule according to (c) preferably confers resistance to pathogens of the Heterodera genus, in particular Heterodera schachtii, when present and / or expressed in a plant, in particular in a plant of the species Beta vulgaris.

[0088] In a preferred embodiment, in the context of the combination of nucleic acid molecules of the invention, the nucleic acid molecule described in (a) confers resistance to pathogens of the Heterodera genus, in particular Heterodera schachtii, when present and / or expressed in a plant, in particular in a plant of the subspecies Beta vulgaris subsp. vulgaris.

[0089] As already mentioned above, until now, it has not been possible to create Heterodera-resistant Beta vulgaris subsp. vulgaris plants without introducing undesirable traits, such as reduced yield, through the inheritance of additional genes associated with the positive trait of Heterodera resistance. Therefore, the drawback of the described resistant cultivars is that their development is extremely laborious and tedious due to complex genetics, and that such cultivars exhibit significantly poorer yield performance than normal cultivars in the absence of infestation. This is especially true because some resistance genes may be associated with epigenetic interactions with genes responsible for sugar production, which leads to reduced plant fitness in the absence of the pathogen.

[0090] Furthermore, there is a need to continually identify new resistance genes and incorporate these into the gene pool of cultivated plants such as sugar beet for sustained breeding against the beet cyst nematode, which will negate the risk of Heterodera schachtii mutants overcoming resistance.

[0091] In this context, the present inventors have isolated and identified for the first time a novel Heterodera resistance gene that can be used for significantly simplified breeding. Targeted and accelerated incorporation of this gene into elite seed lines allows for the rapid development of extremely high-yield mutants with high Heterodera resistance, providing an additional resistance gene that can be used in countermeasures against Heterodera mutants that overcome conventional resistance. Possible access for introgression of one or more resistance-conferring sequences according to the present invention can be obtained, for example, by screening populations of B. vulgaris subsp. maritima. This screening can rely on the identification of plants containing one or more resistance-conferring sequences according to the present invention. This identification can be carried out as described elsewhere herein. Preferably, the screening or identification involves the use of molecular markers that diagnose the resistance locus. Furthermore, plants containing resistance-conferring sequences can be obtained from CPO Wageningen, Postbus 18, 6700 AA Wageningen / NL, for example, through accession BMH.

[0092] Thus, within the framework of the present invention, for the first time, Beta vulgaris subsp. vulgaris plants, such as sugar beet plants, chard plants, red beet or beetroot plants, and fodder beet plants, are provided that have resistance according to the present invention to Heterodera pathogens, particularly Heterodera schachtii, and are therefore encompassed by the present invention. Since all of the listed plants are cultivated, crops or plants suitable for agricultural cultivation that have resistance according to the present invention are part of the present invention. In particular, such crops that have underground storage organs that can be used as food, raw materials, or industrial sources of sugar or other compounds and that have resistance according to the present invention are part of the present invention and represent another aspect of the present invention. The storage organ can be, for example, the sucrose-containing beet core of sugar beet, the consumable beet core of red beet, or the feed-able beet core of fodder beet. The underground storage organ can represent more than 50% of the total biomass of the mature plant, and even more than 70% in the case of sugar beet. Furthermore, seeds or seed material of these plants are also part of the present invention. The seeds or seed material can be technically processed as further described below.

[0093] In this context, the present invention also includes nucleic acids encoding proteins according to any one of SEQ ID NOs: 3, 6 and 9, and in particular embodiments excludes naturally occurring nucleic acids according to any one of SEQ ID NOs: 1, 4 and 7.

[0094] The present invention further relates to recombinant and / or heterologous DNA molecules comprising the sequence of a nucleic acid molecule according to the present invention. The DNA molecule preferably further comprises a regulatory sequence. Thus, the DNA molecule may be operably linked to or under the influence of the regulatory sequence. The regulatory sequence is preferably a promoter sequence and / or a transcriptional or translational control element, such as a cis-element. The regulatory sequence controlling the expression of a gene comprising the nucleic acid molecule according to the present invention is preferably a sequence capable of conferring or regulating expression as a result of pathogenic infection. The promoter is preferably capable of specifically controlling the expression of the DNA sequence in plant roots. The regulatory sequence may be heterologous to the expression sequence. This approach has the advantage that a person skilled in the art may better control the expression rate, tissue in which expression occurs, and time point in which expression occurs of the sequence to be expressed, and may select the regulatory sequence optimal for each use situation. The heterologous DNA sequence preferably comprises a nucleotide sequence encoding a component of the plant pathogen defense (e.g., a resistance gene (R gene) or a gene encoding an enzyme involved in signal transduction, such as a kinase or phosphatase, and a G protein, or a gene encoding a pathogenicity effector (so-called avirulence gene (avr))). The heterologous DNA sequence may be one of the DNA sequences according to the invention. The heterologous DNA sequence may also additionally encode another component of the plant pathogen defense. The heterologous DNA sequence may therefore be designed such that a polycistronic mRNA is produced after its transcription.

[0095] The present invention also relates to polypeptides capable of encoding the nucleic acid molecules of the present invention and functional and / or immunologically active fragments thereof, as well as antibodies specifically binding to the polypeptides or fragments thereof. The polypeptides particularly preferably have an amino acid sequence according to any one of SEQ ID NOs: 3, 6, or 9. Recombinant production of proteins, polypeptides, and fragments is well known to those skilled in the art (Sambrook et al., Molecular Cloning: A Laboratory Manual, 3rd ed., Cold Spring Harbor Laboratory Press, Cold Spring Harbor, NY, 2001, or Wingfield, PT, 2008, Production of Recombinant Proteins, Current Protocols in Protein Science, 52:5.0:5.0.1-5.0.4). Polyclonal or monoclonal antibodies against the proteins of the present invention may be produced by methods known to those skilled in the art (E. Harlow et al., editor, Antibodies: A Laboratory Manual (1988)). The production of monoclonal antibodies, as well as the generation of Fab and F(ab')2 fragments, which are also useful in protein detection methods, may be carried out by a variety of conventional methods (Goding, Monoclonal Antibodies: Principles and Practice, pp. 98-118, New York: Academic Press (1983)).This antibody may then be used to screen an expression cDNA library to identify identical, homologous, or heterologous genes by immunological screening (Sambrook et al., Molecular Cloning: A Laboratory Manual, Cold Spring Harbor Laboratory Press, Cold Spring Harbor, NY, 1989, or Ausubel et al., 1994, "Current Protocols in Molecular Biology," John Wiley & Sons) or for Western blot analysis. In particular, the present invention relates to antibodies that selectively detect polypeptides encoded by Heterodera resistance-conferring alleles according to the present invention and essentially not detect polypeptides encoded by the corresponding susceptibility alleles, i.e., antibodies that detect 2-fold, preferably 5-fold, more preferably 10-fold or more less of the polypeptides encoded by the corresponding susceptibility alleles than the polypeptides encoded by Heterodera resistance-conferring alleles according to the present invention.

[0096] In a preferred embodiment, the antibody according to the invention is characterized in that it is a synthetic polypeptide that does not occur in nature.

[0097] Furthermore, the antibodies according to the invention may be linked to fluorescent dyes, e.g., to cause staining of the antibodies, to enable their use in immunohistochemical methods. The fluorescent dyes may be fluorochromes. The antibodies according to the invention may also be linked to other signaling molecules, such as biotin, radioisotopes, reporter enzymes, e.g., alkaline phosphatase, or oligonucleotides.

[0098] An additional subject of the present invention is a vector or expression cassette containing a nucleic acid molecule or recombinant DNA molecule according to the present invention, optionally under the control of regulatory elements, particularly functional regulatory elements in plants, and under the control of negative and / or positive selection markers. The vector backbone is heterologous to the nucleic acid molecule according to the present invention, meaning that such a vector does not exist in nature and cannot be isolated from nature. The vector may be a plasmid, cosmid, phage, or expression vector, transformation vector, shuttle vector, or cloning vector, which may be double-stranded or single-stranded, linear or circular, or may transform a prokaryote or eukaryote by genomic or extrachromosomal integration. The nucleic acid molecule or DNA molecule according to the present invention in the expression vector or expression cassette is preferably operably linked to one or more regulatory sequences that allow transcription and, optionally, expression in prokaryotic or eukaryotic cells (Sambrook et al., Molecular Cloning: A Laboratory Manual, 3rd ed., Cold Spring Harbor Laboratory Press, Cold Spring Harbor, NY, 2001). These regulatory sequences are preferably promoters or terminators, in particular transcription initiation sites, ribosome binding sites, RNA processing signals, transcription termination sites, and / or polyadenylation signals. For example, the nucleic acid molecule is under the control of a suitable promoter and / or terminator. Suitable promoters may be constitutive promoters, such as the 35S promoter from the cauliflower mosaic virus (Odell et al., Nature 313 (1985), 810-812), although pathogen-inducible promoters are particularly suitable, such as the PR1 promoter from parsley (Rushton et al., EMBO J. 15 (1996), 5,690-5,700).Particularly suitable pathogen-inducible promoters are synthetic promoters or chimeric promoters that do not occur in nature, and are composed of multiple elements, including a minimal promoter, with at least one cis-regulatory element downstream of the minimal promoter, where the at least one cis-regulatory element functions as a binding site for a specific transcription factor. Chimeric promoters are designed according to desired requirements and can be induced or repressed by various factors. Examples of such promoters can be found in International Publication Nos. 00 / 29592, International Publication No. 2007 / 147395, and International Publication No. 2013 / 091612. For example, a suitable terminator is the nos terminator (Depicker et al., J. Mol. Appl. Genet. 1 (1982), 561-573). Suitable promoters and terminators may also be natural promoters and natural terminators. Since direct detection via gene expression is difficult in most cases, the vector or expression cassette additionally contains a conventional indicator gene / reporter gene or resistance gene for detecting transfer of the desired vector or DNA molecule / nucleic acid molecule and for selecting individuals containing them. Since the nucleic acid molecule according to the present invention itself here encodes a polypeptide that confers resistance to beet cyst nematodes, providing an additional resistance gene is not essential for expression in plants, but is recommended to enable rapid selection.

[0099] Examples of indicator / reporter genes are, for example, luciferase genes and genes encoding green fluorescent protein (GFP). Furthermore, they also allow testing of the activity and / or regulation of gene promoters. Examples of resistance genes, particularly for plant transformation, are genes encoding neomycin phosphotransferase, hygromycin phosphotransferase, or phosphinothricin acetyltransferase. Additional positive selection markers may be enzymes, such as mannose-6-phosphate isomerase or xylose isomerase, that provide transformed plants with a selection advantage, particularly a nutritional advantage, over untransformed plants. However, this does not exclude additional indicator / reporter genes or resistance genes known to those skilled in the art. In a preferred embodiment, the vector is a plant vector. Furthermore, the expression cassette may be present integrated within the plant genome.

[0100] In another aspect, the present invention relates to a cell comprising a vector, recombinant DNA molecule, and / or nucleic acid molecule according to the present invention. A cell in the sense of the present invention may be a prokaryotic (e.g., bacterial) or eukaryotic cell (e.g., a plant cell or yeast cell). The cell is preferably an Agrobacterium, such as Agrobacterium tumefaciens or Agrobacterium rhizogenes, an Escherichia coli cell, or a plant cell, the latter being particularly preferably a cell of a plant of the genus Beta, the species Beta vulgaris, or the subspecies Beta vulgaris subsp. vulgaris. The cell may be present in culture. Thus, the present invention also covers a cell culture comprising such cells. The cell culture is preferably a pure culture or an isolate free of other types of cells.

[0101] Both the many methods, such as conjugation or electroporation, by which the nucleic acid molecules, recombinant DNA molecules, and / or vectors or expression cassettes of the present invention can be introduced into Agrobacterium, and the various transformation methods (biological transformation, Agrobacterium-mediated transformation) by which the nucleic acid molecules, DNA molecules, and / or vectors of the present invention can be introduced into plant cells, are known to those skilled in the art (Sambrook et al., Molecular Cloning: A Laboratory Manual, 3rd ed., Cold Spring Harbor Laboratory Press, Cold Spring Harbor, NY, 2001).

[0102] Furthermore, the present invention preferably relates to Heterodera-resistant plants, preferably plants of the species Beta vulgaris subsp. vulgaris or parts thereof, which contain a nucleic acid molecule according to the present invention that confers Heterodera resistance. Heterodera-resistant plants may contain a nucleic acid molecule according to the present invention as a transgene or as an endogenous gene. Within the scope of the present invention, plants of the subspecies Beta vulgaris subsp. vulgaris containing a nucleic acid molecule according to the present invention have been produced for the first time. The present invention also includes plants of Beta vulgaris subsp. vulgaris that contain a nucleic acid molecule according to the present invention as an endogenous gene.

[0103] Thus, a part may be a cell, tissue, organ, or a combination of multiple cells, tissues, or organs. A combination of multiple organs may be, for example, a flower or a seed. The Heterodera-resistant plants of the present invention preferably exhibit enhanced resistance to Heterodera, particularly Heterodera schachtii, compared to corresponding plants (control plants) that do not contain the nucleic acid molecule of the present invention. Ideally, the control plants have the same genotype and are grown under the same conditions as the plants of the present invention, but do not contain the resistance-conferring nucleic acid molecule. For example, the level of resistance to Heterodera pathogens, particularly Heterodera schachtii, can be qualitatively established in Betta plants by determining a rating score (see, for example, Example 1). Higher resistance is indicated by a rating score of at least 1, a rating score of at least 2, and preferably a rating score of 3 or higher.

[0104] Plant cells or plants or parts thereof of the present invention, particularly Betta plants, containing a nucleic acid molecule of the present invention preferably exhibit increased resistance to Heterodera pathogens, particularly Heterodera schachtii, compared to corresponding plant cells or plants or parts thereof that do not contain a nucleic acid molecule of the present invention or that may contain a susceptible allelic variant of the nucleic acid molecule. The level of resistance to Heterodera pathogens, for example Heterodera schachtii, can be qualitatively established in Betta plants by determining a rating score. Higher resistance is indicated by a rating score of at least 1, a rating score of at least 2, and preferably a best rating score of 3 or higher, indicating an improvement in resistance.

[0105] In the case of a transgenic plant cell, or a plant or part thereof, it comprises a nucleic acid molecule or DNA molecule according to the present invention as a transgene, vector, or expression cassette of the present invention. Such a transgenic plant cell, plant, or part thereof is, for example, preferably stably transformed with a nucleic acid molecule, DNA molecule, or vector or expression cassette according to the present invention. In a preferred embodiment, the nucleic acid molecule is operably linked to one or more regulatory sequences that enable transcription and, optionally, expression in the plant cell. Thus, the entire structure formed by the nucleic acid molecule and regulatory sequences according to the present invention represents a transgene. Such regulatory sequences are, for example, promoters or terminators. Numerous functional promoters and terminators applicable in plants are known to those skilled in the art.

[0106] The present invention also includes vacuoles of cells according to the present invention and the contents stored therein (such as sucrose).

[0107] Furthermore, the present invention also relates to cell extracts from cells, preferably from plant cells, particularly preferably from cells of Beta vulgaris, and especially preferably from cells of one of the following crops: sugar beet, chard, or beetroot. Plants cannot be regenerated from cell extracts. Similarly, plant genomes containing nucleic acids according to the present invention are included in the present invention. Plants cannot be regenerated from such plant genomes.

[0108] This allows the sugar or sucrose concentration from the cell extract to be increased relative to cells not according to the invention but belonging to the same species or the same crop, particularly under conditions of infestation by Heterodera pathogens.

[0109] The use of the cell extract for the production of sugar (sucrose) or for the production of (raw) juice, preferably for the production of beetroot (raw) juice, is also included in the present invention.

[0110] Likewise, the sugars, in particular sucrose, contained within the cells according to the invention and their vacuoles are also included in the invention.

[0111] An additional aspect of the present invention is a seed stock comprising seeds containing a nucleic acid molecule according to the present invention. The nucleic acid molecule according to the present invention may be present by genetic modification or endogenously. The seed stock and seeds may be technologically processed. Thus, the present invention also includes technologically processed seed stocks and technologically processed seeds. Various embodiments of technologically processed seed stocks are described in detail below, where the term seed stock also includes seeds: technologically processed seed stocks may be present in a polished form, whereby the outermost layer of the seed is removed, resulting in a more rounded seed. This is useful for sowing, as the optimal uniform shape causes a uniform distribution of seed stock particles. Technologically processed seed stocks also include pilled seed stocks. Thus, since the seed stock is placed on a pilling material, the seed stock contained therein is protected and formed into larger clusters, the pilled seed stock exhibits greater resistance to wind drift, is less susceptible to being blown away by the wind, and at the same time, allows for more accurate positioning during sowing. In a preferred embodiment of the present invention, all pelleted seed stock grains in a batch or unit offered for sale have essentially the same shape and mass. A 5% deviation in diameter and mass is possible. However, this deviation preferably does not exceed 1%. As one of the main components, the pelleted material may contain mineral compounds such as clay and / or peat. Additional possible ingredients are cited in U.S. Pat. No. 4,067,141. Furthermore, the pelleted material may contain additional chemicals that positively influence the actual cultivation. These may be substances that are considered fertilizers. Furthermore, these may be fungicides, insecticides, and / or antifeedants. The fungicide may be thiram and / or hymexazole and / or other fungicides. The insecticide may be a substance from the neonicotinide group. The substances from the group of neonicotinides are preferably imidacloprid (ATC code: QP53AX17) and / or clothianidin (CAS number 210880-92-5).Additionally, the insecticide may also be cyfluthrin (CAS number 68359-37-5) or beta-cyfluthrin.

[0112] Pilled seed stock is a special embodiment of dressed seed stock. In this context, technically processed seed stock also includes dressed seed stock. However, the present invention is not limited to pilled seed stock, but may be applied to any form of dressed seed stock. Thus, the present invention also relates to dressed seed stock, including, but not limited to, pilled seed stock. Dry dressing, wet dressing, and suspension dressing are also included. Thus, the dressing may contain at least one dye, so that the dressed seed stock can be quickly distinguished from undressed seed stock and further ensure good visibility in the environment after sowing. This dressing may also contain a pesticide, as described in the context of pilled material. Thus, the present invention includes such dressed seed stock, in which the dressing contains at least one antifeedant, such as an insecticide and / or at least one fungicide. Optionally, so-called electronic dressing (dressing by the supply of electrical energy) may be applied. However, electronic dressing is not dressing in the strict sense.

[0113] An additional form of technically processed seed stock is incrustation seed stock. In this context, what is known as coating is also referred to as coated seed stock. The difference with pelleted seed stock is that the seed grains retain their original shape, making this method particularly economical. This method is described, for example, in EP 0 334 258 A1. An additional form of technically processed seed stock is sprout seed stock or primed seed stock. Sprout seed stock is pretreated by pregermination, while primed seed stock is pretreated by priming (germination). Pregerminated and primed seed stock have the advantage of a short emergence time. The time of emergence after sowing is synchronized more closely. This improves the agronomic process during cultivation, especially during harvesting, and also increases the yield. In pregermination, the seed stock germinates until the radicle emerges from the seed stock husk, after which this process is stopped. In priming, the process is stopped before the radicle emerges from the seed stock husk. Compared to pre-germinated seed stock, primed seed stock is less susceptible to the stress of redrying and has a longer shelf life after such redrying compared to pre-germinated seed stock, which is usually not recommended to be redryed. In this context, technically pre-treated seed stock also includes primed seed stock and redried seed stock. The pre-germination process is described in U.S. Patent No. 4,905,411. Various embodiments of priming are described in European Patent Application Publication No. 0,686,340. In addition, it is also possible to simultaneously produce pelleted seed stock and primed seed stock in one process. This method is described in European Patent Application Publication No. 2,002,702. Furthermore, pelleted primed seed stock is encompassed by the present invention.

[0114] The technically treated seed stock may additionally be provided with one or more herbicide resistances as described above, which allows for further improved agronomic cultivation, since the technically treated seed stock may be deployed in fields previously treated with herbicides, thus completely eliminating weeds.

[0115] In addition, the present invention also encompasses a mixture comprising the seed stock according to the invention or the seeds according to the invention and a dressing material as defined above, whereby this dressing material is preferably embodied as a pilling material as defined above.

[0116] When storing seed stocks according to the invention, it is preferable to select storage conditions that do not adversely affect the stability or shelf life of the seed stock. Humidity fluctuations can have a particularly adverse effect in this case. A method for storing seed stocks in containers that are simultaneously water-repellent and breathable is part of the present invention. Such containers may be designed as cartons. Such cartons may optionally have an internal vapor barrier. If the carton is designed as a double carton, its stability is improved. Seed stocks according to the invention, including such containers and such cartons, or technically processed seed stocks according to the invention, are also part of the present invention. Placing seed stocks according to the invention or technically processed seed stocks according to the invention in such cartons is also part of the present invention.

[0117] According to one embodiment, the plant according to the present invention is a hybrid plant or a doubled haploid plant. Hybrid plants and doubled haploid plants do not occur in nature and cannot be isolated from nature. In another embodiment of the plant according to the present invention, the nucleic acid according to the present invention is present in heterozygous or homozygous form. In the case of a hybrid plant, the nucleic acid molecule may be present in hemizygous form. The present invention also encompasses hybrid seeds and doubled haploid seeds comprising the nucleic acid according to the present invention or the polypeptide according to the present invention.

[0118] Another embodiment of the present invention includes plants, preferably plants of the species Beta vulgaris, characterized in that the plant exhibits further enhanced resistance to Heterodera pathogens. For example, this may be achieved by "gene stacking," i.e., the resistance may be enhanced using the dosage effect. To this end, plants according to the present invention containing a Heterodera resistance-conferring allele are hypertransformed with the resistance allele to increase the amount of transcription of the gene in the plant. Another approach involves gene editing / site-directed mutagenesis or TILLING-mediated modification of the native promoter of the resistance-conferring allele to increase its expression rate, or modification of the resistance-conferring LRR gene allele itself to increase its activity or stability. Such methods of modifying resistance genes to increase activity are described, for example, in WO 2006 / 128444 and may be performed by techniques known to those skilled in the art. An additional approach may involve fusing a nucleic acid molecule according to the present invention with a heterologous promoter that exhibits higher activity compared to the native promoter, particularly upon Heterodera infection.

[0119] In another embodiment, the plant of the present invention further comprises a second nucleic acid encoding a polypeptide capable of conferring resistance to Heterodera in plants expressing the polypeptide, either transgenic or endogenously, at a different site in the genome. For example, one or more of the resistance genes or loci described in the prior art can be introduced into the plant by in plant hybridization, transformation, homology-directed repair, or homologous recombination, as long as they are not present in the original genotype. These include, for example, the Hs1pro-1 gene of B. procumbens (Cai et al., Science 275 (1997), 832-834).

[0120] The improved resistance may be achieved by incorporating a nucleic acid molecule according to the invention into a gene in at least one cell of a plant of the species Beta vulgaris and optionally regenerating a plant from this plant cell. This integration may be achieved by both sexual mating with, for example, one of the aforementioned Beta vulgaris subsp. maritima strains followed by selection, or by homology-directed repair or homologous recombination. The latter two methods cited are preferably facilitated by a site-specific nuclease, which may be selected from, but is not limited to, the following: CRISPR nucleases, including Cas9, CasX, CasY, or Cpf1 nucleases; TALE nucleases; zinc finger nucleases; meganucleases; Argonaute nucleases; restriction endonucleases, including Fokl or variants thereof; recombinases; or two site-specific nicking endonucleases.

[0121] Another approach involves improving the expression of the nucleic acid molecule of the present invention in plants.This can be achieved by modifying native promoters, and this modification is preferably achieved by gene editing or site-specific nuclease-mediated site-specific mutagenesis, and optionally by repair model.Examples of such nucleases have already been mentioned above.The expression of the nucleic acid molecule of the present invention can also be improved by fusing the nucleic acid molecule with a heterologous promoter that shows higher activity than the native promoter, especially after Heterodera infection.This fusion can also be achieved by site-specific nuclease and repair model, but can also be achieved by direct insertion after double-strand break.

[0122] As already mentioned above, a method for increasing resistance to Heterodera may involve modifying the nucleotide sequence of the nucleic acid molecule according to the invention, resulting in an increase in the activity and / or stability of the polypeptide according to the invention. Such a method for increasing activity by modifying the resistance gene is described, for example, in WO 2006 / 128444 and may be carried out by techniques known to those skilled in the art. This approach is described in detail below.

[0123] As used herein, a "site-specific nuclease" (SDN) is an enzyme capable of introducing double-stranded DNA breaks at specific nucleotide sequences, referred to as "recognition sites." The SDN can be selected from the group consisting of meganucleases, TAL effector nucleases, zinc finger nucleases, and CRISPR systems such as CRISPR / Cas9, CRISPR / Cpf1, CRISPR / CasX, or CRISPR / CasY. Rare-cutting endonucleases preferably have recognition sites of approximately 14 to 70 contiguous nucleotides and therefore have extremely low cleavage frequencies, even in long genomes such as most plant genomes. Homing endonucleases, also known as meganucleases, constitute a family of such rare-cutting endonucleases. They may be encoded by introns, independent genes, or intervening sequences and exhibit distinctive structural and functional properties that distinguish them from more classical restriction enzymes, typically bacterial restriction-modification type II systems. The recognition sites have a general asymmetry that differs from the characteristic dyad symmetry of most restriction enzyme recognition sites. Several homing endonucleases encoded by introns or inteins have been shown to promote the homing of their respective genetic elements into intron- or intein-free sites in alleles. By making site-specific double-stranded breaks within intron- or intein-free alleles, these nucleases participate in the gene conversion process, creating recombinogenic ends and duplicating coding sequences, leading to the insertion of introns or intervening sequences at the DNA level. A list of other rare-cutting meganucleases and their respective recognition sites is provided in Table I (pages 17-20) of WO 03 / 004659 (incorporated herein by reference).

[0124] Furthermore, methods are available for designing custom-made rare-cutting endonucleases that can recognize essentially any target nucleotide sequence of choice. Briefly, chimeric restriction enzymes can be prepared using hybrids between zinc finger domains designed to recognize specific nucleotide sequences and nonspecific DNA cleavage domains from natural restriction enzymes such as Fokl. Such methods are described, for example, in International Publication Nos. WO 03 / 080809, WO 94 / 18313, or WO 95 / 09233, and Isalan et al., 2001, Nature Biotechnology 19, 656-660; Liu et al., 1997, Proc. Natl. Acad. Sci. USA 94, 5525-5530.

[0125] Another example of a custom-designed endonuclease includes the so-called TALE nucleases (TALENs), which are based on transcription activator-like effectors (TALEs) from bacteria of the genus Xanthomonas fused to the catalytic domain of a nuclease (e.g., Fokl or its variants). The DNA-binding specificity of this TALE is defined by a tandem array of 34 / 35 amino acid repeat units, the repeat variable domains (RVDs), each of which specifically recognizes a single nucleotide in the target DNA. These repeat units can be assembled to recognize essentially any target sequence and fused to the catalytic domain of a nuclease to create a sequence-specific endonuclease (see, e.g., Boch et al., 2009, Science 326:p1509-1512; Moscou and Bogdanove, 2009, Science 326:p1501; WO 2010 / 079430; WO 2011 / 072246; WO 2011 / 154393; WO 2011 / 146121; WO 2012 / 001527; WO 2012 / 093833; WO 2012 / 104729; WO 2012 / 138927; WO 2012 / 138939). WO 2012 / 138927 further describes monomeric (compact) TALENs and TALENs with various catalytic domains and combinations thereof.

[0126] Recently, a new type of customizable endonuclease system has been described: the so-called CRISPR / Cas system. In their natural environment, CRISPR systems represent molecular complexes containing at least one small, discrete non-coding RNA combined with another CRISPR nuclease, such as Cas or Cpf1 (Zetsche et al., "Cpf1 Is a Single RNA-Guides Endonuclease of a Class 2 CRISPR-Cas System," Cell, 163, pp. 1-13, October 2015), which can create specific double-strand breaks in DNA. Currently, CRISPR systems are classified into two classes, including five types of CRISPR systems: Type II systems, which use Cas9 as an effector, and Type V systems, which use Cpf1 as an effector molecule (Makarova et al., Nature Rev. Microbiol., 2015). In artificial CRISPR systems, synthetic non-coding RNAs and CRISPR nucleases and / or modified CRISPR nucleases, optionally modified to function as nickases or lacking any nuclease function, can be used in combination with at least one synthetic or artificial guide RNA or gRNA that combines the functions of crRNA and / or tracrRNA (Makarova et al., 2015, supra). CRISPR / Cas-mediated immune responses in natural systems require CRISPR-RNA (crRNA), and the maturation of the guide RNA that controls the specific activation of CRISPR nucleases varies considerably among the various CRISPR systems characterized to date. First, an invading DNA, also known as a spacer, is integrated between two adjacent repeat regions at the proximal end of the CRISPR locus. Type II CRISPR systems encode the Cas9 nuclease as the key enzyme for the interference step, and these systems contain both crRNA and transactivating RNA (tracrRNA) as guide motifs.These hybridize to form a double-stranded (ds)RNA region that is recognized by RNAse III and can be cleaved to form mature crRNA. These are then associated with Cas molecules to direct the target nucleic acid region to a nuclease specific for that region. Because recombinant gRNA molecules can contain both a variable DNA recognition region and a CAS-interacting region, they can be specifically designed regardless of the particular target nucleic acid and desired Cas nuclease. As an additional safety mechanism, a PAM (protospacer adjacent motif) must be present within the target nucleic acid region; these are DNA sequences that directly follow the DNA recognized by the Cas9 / RNA complex. The PAM sequence for Cas9 from Streptococcus pyogenes has been described as "NGG" or "NAG" (standard IUPAC nucleotide code) (Jinek et al., "A programmable dual-RNA-guided DNA endonuclease in adaptive bacterial immunity," Science 2012, 337: 816-821). The PAM sequence for Staphylococcus aureus Cas9 is "NNGRRT" or "NNGRR(N)." Further mutant CRISPR / Cas9 systems are known. Thus, Neisseria meningitidis Cas9 cleaves at the PAM sequence NNNNGATT. Streptococcus thermophilus Cas9 cleaves at the PAM sequence NNAGAAW. Recently, an additional PAM motif, NNNNRYAC, has been described for the Campylobacter CRISPR system (WO 2016 / 021973). It has been described that the Cpf1 nuclease, Cpf1-crRNA complex, is efficiently recognized without tracrRNA and cleaves target DNA generated by short T-rich PAMs, in contrast to the common G-rich PAMs recognized by the Cas9 system (Zetsche et al., supra). Furthermore, specific single-strand breaks can be obtained using modified CRISPR polypeptides.The combined use of Cas nickases and various recombinant gRNAs can also induce highly specific DNA double-strand breaks by double DNA nicking. The use of two gRNAs can further optimize the specificity of DNA binding and subsequent DNA cleavage. Other CRISPR effectors, such as the CasX and CasY effectors originally described in bacteria, have become available in the meantime and represent other effectors that can be used for genome engineering purposes (Burstein et al., "New CRISPR-Cas systems from uncultivated microbes," Nature, 2017, 542, 237-241).

[0127] The cleavage site of an SDN refers to the exact location in DNA where double-stranded DNA breaks are induced. The cleavage site may or may not be contained within (overlapping) the recognition site of the SDN; therefore, the cleavage site of an SDN can be said to be located at or near the recognition site. The recognition site of an SDN enzyme, often referred to as the binding site, is a nucleotide sequence that is (specifically) recognized by the SDN enzyme and determines its binding specificity. For example, a TALEN or ZNF monomer has a recognition site determined by RVD or ZF repeats, respectively, and its cleavage site, determined by its nuclease domain (e.g., Fokl), is usually located outside the recognition site. In the case of a dimeric TALEN or ZFN, the cleavage site is located between the two recognition / binding sites of each monomer; this intervening DNA region where cleavage occurs is also referred to as the spacer region. In one embodiment of the present invention, the recognition site is located within the target region.

[0128] One skilled in the art would be able to select or engineer an SDN that recognizes a predetermined recognition site and causes strand cleavage at or near a preselected site. Alternatively, the SDN recognition site may be introduced into a target gene using any conventional transformation method or by mating with an organism that has the SDN recognition site in its genome, and any desired DNA may then be introduced at or near the cleavage site of the SDN.

[0129] In a particularly preferred aspect of this embodiment, a repair nucleic acid molecule is additionally introduced into the plant cell.

[0130] As used herein, " repair matrix " refers to a single-stranded or double-stranded DNA molecule or RNA molecule that is used as a template for modifying genomic DNA at a preselected site near or at the cleavage site.As used herein, " used as a template for modifying genomic DNA " means that the repair matrix is ​​replicated or integrated at a preselected site in the target genome flanking the preselected site by homologous recombination between the flanking region and the corresponding homologous region, optionally (for example, when there is only one flanking region) combined with non-homologous end joining (NHEJ) at one of the two ends of the repair matrix.Integration by homologous recombination allows the repair matrix to be accurately joined to the target genome down to the nucleotide level, and NHEJ can cause small insertions / deletions at the junction between the repair matrix and genomic DNA.

[0131] The term "base editor," as used herein, refers to a protein or fragment thereof capable of mediating targeted base modification, i.e., the conversion of a target base to cause a target point mutation. Preferably, in the context of the present invention, at least one base editor is temporarily or permanently fused to at least one SDN, preferably to at least one non-functional SDN, or optionally to a component of at least one (non-functional) SDN. This fusion can be covalently and / or non-covalently linked. Several publications have demonstrated the targeted base conversion of a first cytidine (C) to thymine (T) using a CRISPR / Cas9 nickase or functional nuclease linked to a cytidine deaminase domain, such as the APO lipoprotein B mRNA editing catalytic polypeptide (APOBEC1), e.g., an APOBEC derived from rats. The deamination of cytosine (C) is catalyzed by cytidine deaminase to produce uracil (U), which has the base-pairing properties of thymine (T). Most known cytidine deaminases act on RNA, and the few known examples that accept DNA require single-stranded (ss) DNA. Studies on dCas9-target DNA complexes have revealed that upon formation of the Cas9-guide RNA-DNA "R-loop" complex, at least nine nucleotides (nt) of the displaced DNA strand are unpaired (Jore et al., Nat. Struct. Mol. Biol., 18, 529-536 (2011)). Indeed, in the structure of the Cas9R-loop complex, the first 11 nt of the protospacer on the displaced DNA strand are disordered, suggesting that their movement is not highly restricted. It has also been speculated that Cas9 nickase-induced mutations at cytosines in the non-template strand may result from their accessibility to cellular cytosine deaminase enzymes. It was speculated that a subset of this stretch of ssDNA within the R-loop might serve as an efficient substrate for the dCas9-tethered cytidine deaminase to effect the direct, programmable conversion of C to U in the DNA (Komor et al., supra).Recently, Goudelli et al. ((2017). Programmable base editing of A·T to G·C in genomic DNA without DNA cleavage. Nature, 551(7681), 464.) described an adenine base editor (ABE) that mediates the conversion of A·T to G·C within genomic DNA.

[0132] As used herein, modification of a genome means that the genome is changed by at least one nucleotide, which can occur by substitution of at least one nucleotide and / or deletion of at least one nucleotide and / or insertion of at least one nucleotide, as long as it results in an overall change of at least one nucleotide compared to the nucleotide sequence of the preselected genome target site before modification, thereby allowing identification of the modification by techniques such as sequencing or PCR analysis, which are well known to those skilled in the art.

[0133] As used herein, a "preselected site" or "predefined site" refers to a particular nucleic acid sequence within a genome (e.g., a nuclear genome) at a location where it is desired to insert, replace, and / or delete one or more nucleotides. This can be, for example, an endogenous locus or a particular nucleotide sequence within or linked to previously introduced foreign DNA or a transgene. The preselected site can be a particular nucleotide position (after) the intended location for insertion of one or more nucleotides. The preselected site can also include the sequence of one or more nucleotides to be exchanged (substituted) or deleted.

[0134] As used herein, a "flanking region" is a region of a repair nucleic acid molecule that has a nucleotide sequence that is homologous to the nucleotide sequence of the DNA region adjacent to the preselected site (i.e., upstream or downstream). It is clear that the length and percentage sequence identity of the flanking region should be selected to allow homologous recombination between the flanking region and its corresponding DNA region upstream or downstream of the preselected site. One or more DNA regions adjacent to the preselected site that have homology with one or more flanking DNA regions of the repair nucleic acid molecule are also referred to as one or more homologous regions in genomic DNA.

[0135] To have sufficient homology for recombination, the flanking DNA regions of the repair nucleic acid molecule may vary in length, but should be at least about 10 nt, about 15 nt, or about 20 nt in length. However, the flanking regions may be as long as practical (e.g., up to about 100-150 kb, such as a complete bacterial artificial chromosome (BAC)). Preferably, the flanking regions are about 50 nt to about 2000 nt, e.g., about 100 nt, 200 nt, 500 nt, or 1000 nt. Furthermore, the regions flanking the target DNA need not be identical to the homologous region (the DNA region adjacent to the preselected site) but may have about 80% to about 100% sequence identity, preferably about 95% to about 100% sequence identity, to the DNA region adjacent to the preselected site. The longer the flanking region, the less stringent the requirements for homology. Furthermore, to achieve exchange of the target DNA sequence at the preselected site without altering the DNA sequence of the flanking DNA sequences, the flanking DNA sequences should preferably be identical to the upstream or downstream DNA regions adjacent to the preselected site.

[0136] As used herein, "upstream" refers to a position on a nucleic acid molecule that is closer to the 5' end of said nucleic acid molecule. Similarly, the term "downstream" relates to a position on a nucleic acid molecule that is closer to the 3' end of said nucleic acid molecule. For the avoidance of doubt, nucleic acid molecules and their sequences are usually represented in a 5' to 3' direction (left to right).

[0137] An additional embodiment of the present invention is a method for producing a Heterodera-resistant plant, which may be carried out by transforming a plant cell with a nucleic acid molecule, recombinant DNA molecule, or vector or expression cassette according to the present invention and regenerating a transgenic plant from the transformed plant cell (see Example 3), or by crossing and selecting with, for example, a Beta vulgaris subsp. Maritima plant as described above. The vector or expression cassette, as well as the method for transforming plants, have already been described above.

[0138] Alternatively, a method for producing a Heterodera-resistant plant includes introducing a site-specific nuclease and a repair matrix into a plant cell, preferably a Beta vulgaris plant, as described above, wherein the site-specific nuclease is capable of generating at least one single-strand break or at least one double-strand break in DNA, preferably upstream and / or downstream of the target region, within the genome of the cell, and the repair matrix comprises a nucleic acid molecule according to the present invention. The method further includes culturing the cell under conditions that allow homology-directed repair or homologous recombination, and the nucleic acid molecule is integrated from the repair matrix into the plant genome. Regeneration of a plant from the modified plant cell is also encompassed.

[0139] In a preferred embodiment, the target region is an allelic variant of a nucleic acid molecule according to the present invention, which allelic variant does not confer resistance to Heterodera when present in a plant, and which allelic variant has been identified as containing a retrotransposon.

[0140] When referring to nucleic acid molecules of the present invention, substitutions, deletions, insertions, additions, and / or any other modifications may be introduced, alone or in combination, to actually alter the nucleotide sequence but perform the same function as the original sequence, here, the nucleotide sequence of an allelic variant of a nucleic acid molecule of the present invention. Thus, in another embodiment, the present invention encompasses nucleotide sequences that represent derivatives of the nucleotide sequence of an allelic variant of a nucleic acid molecule of the present invention, or amino acid sequences that represent derivatives of the amino acid sequence of an allelic variant of a nucleic acid molecule of the present invention. A derived nucleotide sequence or amino acid sequence that contains at least one substitution, deletion, insertion, or addition of one or more nucleic acids or amino acids but preserves the function of the gene represents a derivative of the nucleotide sequence or amino acid sequence. Thus, substitutions, deletions, insertions, additions, and / or any other modifications may be introduced, alone or in combination, into a nucleotide sequence using conventional methods known in the art, such as site-directed mutagenesis, TILLING, PCR-mediated mutagenesis, chemically induced mutagenesis, genome editing, base editing, etc., to actually alter the nucleotide sequence but perform the same function as the original sequence.

[0141] With respect to amino acid sequences, after modification by the methods described above, they may share common structural domains and / or common functional activities. A nucleotide sequence or amino acid sequence that is at least 80%, at least 85%, at least 90%, at least 91%, at least 92%, at least 93%, at least 94%, at least 95%, at least 96%, at least 97%, at least 98%, at least 99%, or at least 100% identical to the nucleotide sequence or amino acid sequence of a recited allelic variant of a nucleic acid molecule according to the invention is defined as being sufficiently similar. Thus, the present invention includes nucleotide sequences that can hybridize under stringent conditions to a nucleotide sequence that is complementary to the nucleotide sequence of an allelic variant of a nucleic acid molecule according to the invention or that is complementary to a nucleotide sequence encoding the corresponding amino acid sequence.

[0142] In another preferred embodiment, the method according to the invention is characterized in that it causes at least one double-strand break at a position up to 10000 base pairs, preferably at least 5000 base pairs, more preferably at least 1000 base pairs upstream and / or downstream of the target region or at a position up to 10000 base pairs, preferably at least 5000 base pairs, more preferably at least 1000 base pairs away from the allelic variant according to the invention.

[0143] It may be clear to those skilled in the art that many different susceptibility sequences may arise that are derived from the nucleic acid molecules according to the invention but do not confer resistance to Heterodera, and consequently the sequences listed above should be considered as exemplary sequences, and the invention is not limited to the above-mentioned allelic variants of the nucleic acid molecules according to the invention. Of course, susceptibility variants of the nucleic acid molecules of the invention may not only comprise retrotransposons as described above, but any type of mutation known to those skilled in the art and described above in the DNA or cDNA sequence or in the promoter region may lead to susceptibility alleles.

[0144] As mentioned above, quantitative inheritance of QTLs often not only introduces the desired resistance to Heterodera pathogens into plants, but also often introduces undesirable traits, such as reduced yield, that do not result in a positive resistance trait due to the inheritance of additional genes. Thus, in a preferred embodiment, the introduction of a nucleic acid molecule according to the present invention or the above-mentioned combination of nucleic acid molecules according to the present invention, or a vector or expression cassette, which already exhibits a dominant resistance effect by itself, does not result in the introduction of undesirable traits, and the yield is preferably not adversely affected. Furthermore, plants obtained via such methods are also encompassed by the present invention.

[0145] Although QTL analysis already known from the prior art can detect actual QTLs, the underlying genomic regions showing QTL effects also mediate the aforementioned drawbacks, and are therefore also referred to as "linkage drag," and are discussed in this context. At the same time, because QTLs and their associated effects are not uniformly described in the respective prior art and only mediate weak effects, the use of these results in breeding Heterodera-resistant plants has only been possible to a limited extent and has often been uncertain. Targeted breeding and controlled integration of resistance genes into the sugar beet gene pool has become possible through the identification of the resistance genes described herein. This ensures the breeding and production of completely new Heterodera-resistant cultivars that exhibit high resistance to the pathogen without adversely affecting sugar yield.

[0146] The present invention also relates to a method for identifying, and optionally providing, a plant of the species Beta vulgaris that is resistant to the Heterodera pathogen, characterized in that it comprises a step of detecting the presence and / or expression of a nucleic acid molecule according to the invention or a polypeptide according to the invention in the plant or a sample / part thereof. The presence and / or expression of a nucleic acid molecule according to the invention or a polypeptide according to the invention may be tested by standard methods known to those skilled in the art, for example by PCR, RT-PCR or Western blot.

[0147] Furthermore, the identification method according to the present invention also includes the detection of a nucleic acid molecule according to the present invention by detecting at least one resistance-conferring sequence, i.e., at least one polymorphism in the sequence of the nucleic acid molecule according to the present invention. As already mentioned above, it may be clear to those skilled in the art that there are many susceptible sequences, i.e., many sequences encoding allelic variants of the nucleic acid molecule according to the present invention. Therefore, a preferred embodiment of the method according to the present invention includes the detection of at least one polymorphism, in particular a diagnostic polymorphism, using a molecular marker that detects the polymorphism. This detection is preferably carried out using at least one molecular marker for each polymorphism, in particular for each diagnostic polymorphism. Those skilled in the art know which markers to apply to detect the corresponding polymorphism and how to construct molecular markers for this purpose (see Advances in Seed Science and Technology Vol. I, Vanangamudi et al., 2008). Furthermore, the present invention encompasses molecular markers that describe or detect polymorphisms in the sequence of the nucleic acid molecule according to the present invention. Thus, markers can be used that are capable of detecting such polymorphisms occurring in the nucleic acid molecule according to the present invention, but do not distinguish between various polymorphisms as long as they do not contain susceptibility alleles.

[0148] Alternatively or additionally, the identification method of the present invention comprises detecting at least one marker locus within the nucleotide sequence of the nucleic acid molecule of the present invention. This results in the generation of a signal, such as a fluorescent signal or sequence amplification. Furthermore, the above-described identification method also represents a method of selecting plants that exhibit resistance to Heterodera according to the present invention. This selection method includes a final step of selecting resistant plants.

[0149] In this context, the present invention also includes the development or production of molecular markers suitable for detecting the above-mentioned polymorphisms of resistance alleles or the construction of hybridization probes that specifically bind to the nucleotide sequences of the nucleic acid molecules according to the invention, or the production of pairs of nucleic acid molecules suitable for amplifying, in PCR, regions specific for the nucleic acid molecules according to the invention and for detecting them in plants or plant cells.

[0150] The present invention also encompasses a method for producing a pair of nucleic acid molecules in the form of oligonucleotides, preferably at least 15, 16, 17, 18, 19 or 20, preferably at least 21, 22, 23, 24 or 25, particularly preferably at least 30, 35, 40, 45 or 50, and especially preferably at least 100, 200, 300, 500 or 1000 nucleotides in length, which specifically hybridize with the nucleotide sequence of a nucleic acid molecule according to the invention or a nucleic acid molecule complementary thereto, or preferably suitable as forward and reverse primers for attaching to a region specific for a nucleic acid molecule according to the invention and amplifying it in a polymerase ligation reaction (PCR), or suitable as forward or reverse primers for hybridization with a region in the Beta vulgaris genome which co-segregates in Beta vulgaris with Heterodera resistance conferred by a polypeptide according to the invention or by a nucleic acid molecule according to the invention.

[0151] The method for producing oligonucleotides first involves: comparing the nucleotide sequence of a nucleic acid molecule according to the invention with the nucleotide sequence of a corresponding nucleic acid molecule that does not confer resistance; identifying the sequence differences between these two nucleotide sequences; and generating a nucleic acid molecule (referred to herein as an oligonucleotide) that specifically binds to a nucleic acid molecule according to the invention but not to a nucleic acid molecule that does not mediate resistance.

[0152] Furthermore, the oligonucleotides according to the present invention may be linked to a fluorescent dye, for example, for generating a fluorescent signal upon excitation with light of a corresponding wavelength. The fluorescent dye may be a fluorescent dye. The oligonucleotides according to the present invention may be linked to other compounds suitable for generating a signal. Such oligonucleotides do not occur naturally and cannot be isolated from nature. To produce such labeled oligonucleotides, the following can be performed: DNA may be bioorthogonally labeled. For this purpose, DNA may be labeled in vivo or in vitro with a nucleoside analog, which may then be linked to a fluorophore, for example, via the Staudinger reaction. In addition, DNA may be chemically provided with a fluorophore. Oligonucleotides may be labeled with fluorophores via phosphoramidite synthesis, for example, as used in QPCR, DNA sequencing, and in situ hybridization. Furthermore, DNA may be enzymatically generated during the polymerase chain reaction using fluorescent nucleotides, or may be labeled using ligase or terminal deoxynucleotidyl transferase. DNA can be indirectly detected via biotinylation and fluorescent avidin. For linkage, fluorescein, fluorescent lanthanides, gold nanoparticles, carbon nanotubes, or quantum dots are used as fluorophores. One of the most commonly used fluorescent substances is FAM (carboxyfluorescein). Therefore, oligonucleotides, and in particular primers, with FAM labels are encompassed by the present invention. FAM is preferably present as 6-FAM, but other FAM variants, such as 5-FAM, can also be used depending on the desired wavelength of emission and excitation. Examples of additional fluorescent markers are AlexaFluor, ATTO, Dabcyl, HEX, Rox, TET, Texas Red, and Yakima Yellow. Depending on the field of use, oligonucleotides can be equipped with modifications of the base or sugar phosphate backbone.Among these are amino-dT, azido-dT, 2-aminopurine, 5-Br-dC, 2'-deoxyinosine (INO), 3'-deoxy-A, C, G, 5-Met-dC, 5-OH-Met-dCN6-Met-dA, and the like.

[0153] Furthermore, the present invention also relates to a marker chip ("DNA chip" or microarray) comprising at least one oligonucleotide according to the present invention suitable for detection, which marker chip is suitable for application in one or more detection methods according to the present invention.

[0154] Similarly, the present invention includes a method for producing a protein according to the present invention, which method comprises providing or culturing a cell culture comprising any one of SEQ ID NOs: 2, 5 and 8, and subsequent expression of a protein encoded by any one of SEQ ID NOs: 2, 5 and 8.

[0155] Furthermore, the present invention also relates to Heterodera-resistant plants or parts thereof identified, and, if applicable, selected, by the methods described above. In particular, the present invention relates to a plant population obtainable by one of the methods according to the present invention described above, which preferably comprises plants that are resistant to beet cyst nematodes and characterized by the presence of a nucleic acid molecule according to the present invention. This population preferably comprises at least 10, preferably at least 50, more preferably at least 100, particularly preferably at least 500, and, especially in agricultural cultivation, preferably at least 1,000 plants. The proportion of plants in the population that do not comprise a nucleic acid molecule according to the present invention and / or are susceptible to infestation by Heterodera, particularly Heterodera schachtii, is preferably less than 25%, preferably less than 20%, more preferably less than 15%, even more preferably less than 10%, and particularly preferably less than 5%, if any.

[0156] The fine mapping described above allowed the identification of Heterodera resistance-conferring genes within the genome, which then represents the basis for the development of DNA hybridization probes or genetic markers within the targeted regions that can be used to detect Heterodera resistance-mediating genes or to distinguish them from genes that do not confer resistance.

[0157] A DNA hybridization probe may be derived from the sequence of the Heterodera resistance-conferring gene and used to screen genome and / or cDNA banks of the desired organism. This probe may be used to amplify the identified homologous gene through the well-known process of polymerase chain reaction (PCR) to confirm whether the Heterodera resistance-conferring gene is present endogenously in the organism or has been successfully introduced heterologously.

[0158] Those skilled in the art may rely here on conventional hybridization, cloning, and sequencing methods, for example, as listed in Sambrook et al., Molecular Cloning: A Laboratory Manual, 3rd ed., Cold Spring Harbor Laboratory Press, Cold Spring Harbor, NY, 2001. Those skilled in the art may also synthesize and use oligonucleotide primers to amplify the sequence of the Heterodera resistance-conferring gene. To achieve specific hybridization, such probes should be specific and have a length of at least 15 nucleotides, preferably at least 20 nucleotides. Detailed guides to nucleic acid hybridization can be found in Tijssen, Laboratory Techniques in Biochemistry and Molecular Biology - Hybridization with Nucleic Acid Probes, Part 1, Chapter 2, "Overview of principles of hybridization and the strategy of nucleic acid probe assays." Elsevier, New York (1993); and Current Protocols in Molecular Biology, Chapter 2, Ausubel et al., eds., Greene Publishing and Wiley Interscience, New York (1995).

[0159] Thus, nucleic acid molecules of at least 15, 16, 17, 18, 19, or 20, preferably at least 21, 22, 23, 24, or 25, particularly preferably at least 30, 35, 40, 45, or 50, and especially preferably at least 100, 200, 300, 500, or 1000 nucleotides in length are subject of the present invention, which nucleic acid molecules hybridize in particular with the above-mentioned nucleotide sequences according to the invention, including the Heterodera resistance-conferring gene, which also explicitly includes the range of 15 to 35 nucleotides.

[0160] Thus, the present invention also relates to markers as oligonucleotides, in particular primer oligonucleotides, which comprise nucleic acid molecules of at least 15 nucleotides in length that specifically hybridize with the nucleotide sequences defined above.

[0161] In particular, the present invention encompasses a pair of nucleic acid molecules, preferably in the form of oligonucleotides, or a kit comprising said pair of oligonucleotides, which as forward and reverse primers are suitable for hybridization to a region specific for a nucleic acid molecule of the invention and for amplification in a polymerase chain reaction (PCR), or as forward and reverse primers for hybridization with a region in the Beta vulgaris genome that cosegregates in Beta vulgaris with resistance to Heterodera pathogens conferred by a polypeptide of the invention or a nucleic acid molecule of the invention. Preferably, this region in the Beta vulgaris genome is located between markers s5e3001s02 and s5e4668xxx, is adjacent to markers s5e3001s02 and s5e4668xxx, or comprises the chromosomal interval between markers s5e3001s02 and s5e4668xxx.

[0162] The following advantages for the breeding and development of novel resistant plant lines of Betta may also be achieved by the present invention: The sequence information and the identified polymorphisms that allow for the differentiation between resistance and potential susceptibility alleles of the disclosed genes, i.e., between alleles that confer resistance to Heterodera pathogens and alleles that are unable to confer resistance, allow for the development of markers that represent an important boost for plant breeders, especially with regard to the development of optimized elite lines free of "linkage drag." Furthermore, knowledge of this sequence structure may be used for the identification of additional resistance genes, e.g., homologous or orthologous, particularly to Heterodera.

[0163] Thus, the present invention also encompasses methods for identifying additional nucleic acid molecules encoding polypeptides or additional proteins that, when present in a plant, confer resistance to Heterodera pathogens and that can confer resistance to Heterodera pathogens in plants expressing the respective polypeptides. To this end, those skilled in the art may use databases with appropriate search profiles and computer programs for screening for homologous sequences or for sequence comparison. Furthermore, through conventional molecular biology techniques, those skilled in the art may themselves derive additional DNA sequences encoding Heterodera resistance proteins and use these within the scope of the present invention. For example, suitable hybridization probes may be derived from the sequences of the nucleic acid molecules according to the present invention and used to screen genome and cDNA banks of the desired organism. Those skilled in the art may rely here on conventional hybridization, cloning, and sequencing methods, for example, as listed in Sambrook et al., Molecular Cloning: A Laboratory Manual, 3rd ed., Cold Spring Harbor Laboratory Press, Cold Spring Harbor, NY, 2001. Using the known sequences, one skilled in the art may also synthesize and use oligonucleotide primers to amplify sequences of Heterodera resistance-conferring nucleic acid molecules.

[0164] Thus, in one embodiment, the present invention encompasses a method for identifying a nucleic acid molecule encoding a polypeptide capable of conferring resistance to Heterodera in a Beta vulgaris plant expressing the polypeptide. Thus, the method comprises comparing the amino acid sequence of a polypeptide according to the present invention that confers resistance to Heterodera pathogens in Beta vulgaris subsp. vulgaris with amino acid sequences from a sequence database or with the sequence of an allelic variant of a polypeptide according to the present invention in a Beta vulgaris genotype. Furthermore, the method according to the present invention comprises identifying an amino acid sequence or allelic variant that is at least 70%, preferably at least 80%, identical to the amino acid sequence of a polypeptide according to the present invention, and introducing a nucleic acid molecule encoding the identified amino acid sequence or allelic variant into a Beta vulgaris plant; expressing the nucleic acid molecule in the plant; and, optionally, subsequently verifying resistance to Heterodera pathogens.

[0165] As described above, additional homologs, analogs, and orthologs that are at least 70%, preferably at least 80%, particularly preferably at least 90%, and especially preferably at least 95%, or even 98% identical to the nucleic acid sequence of the Heterodera resistance-conferring protein or its encoding gene, i.e., the polypeptide encoded by the nucleic acid molecule of the present invention, may be identified via classical bioinformatic approaches (database searches and computer programs for screening for homologous sequences).

[0166] Another embodiment of the present invention relates to a plant or seed comprising the nucleic acid of the present invention described herein, wherein the plant or seed of such a plant has a genome that allows the development of beet plants with a minimum fresh mass of 200 g, 250 g, 300 g, 350 g, 400 g, 450 g, or 500 g and a maximum mass of 1000 g, 1100 g, 1200 g, 1300 g, 1400 g, 1500 g, 1600 g, 1700 g, 1800 g, 1900 g, or 2000 g. The corresponding genetic constructs for the development of such beet plants are available, for example, through the following varieties: BTS 8629, BTS 8735, BTS 8500, BTS 8767, or BTS 8749. Those skilled in the art will know how to transfer the nucleic acid of the present invention into a plant having such a genetic construct. The seed in this embodiment may be a pelleted seed.

[0167] Another embodiment of the present invention relates to a plant or seed comprising the nucleic acid of the present invention described herein, wherein the plant or seed of such a plant has a genome that allows the development of beet plants having a sucrose concentration of at least 10%, 11%, 12%, 13%, 14%, 15%, 16%, 17%, 18%, 19%, or even 20% (by weight) in the fresh mass of the beet. The corresponding genetic constructs for the development of such beet plants are available, for example, through the following varieties: BTS 8629, BTS 8735, BTS 8500, BTS 8767, or BTS 8749. Those skilled in the art will know how to transfer the nucleic acid of the present invention into a plant having such a genetic construct. The seed in this embodiment may be a pelleted seed.

[0168] The term "homologous" hereby means that related genes (from two different plant species) have essentially the same function and a common ancestor, and therefore usually show significant identity in their nucleic acid sequences or encoded amino acid sequences. However, they may also be homologous genes whose protein sequences do not produce meaningful pairwise alignments. In contrast, the term "similar" describes genes or proteins that (also) have the same or similar function, but are not made from the same structure, i.e., do not share a common ancestor. In this case, it is often not possible to establish significant identity in their nucleic acid or encoded amino acid sequences, or in the best case, in specific functional domains.

[0169] In the context of genome sequencing, homology is further subdivided for annotation purposes. For this purpose, the terms ortholog and paralog are introduced. Orthologs are genes that are linked through a speciation event. Paralogs are genes that date back to a duplication event.

[0170] Thus, a gene is essentially homologous, similar or orthologous in the sense of the present invention if it can confer resistance to Heterodera in plants. For confirmation, methods already described above and known to those skilled in the art can be used, such as amplifying the identified homologue, analogue or ortholog by PCR, cloning it into an expression vector, introducing it into target plants or plant cells, and confirming the resistance.

[0171] As mentioned above, the use of resistance gene alleles disclosed herein in cisgenic or transgenic approaches opens the possibility of new resistant species of Betta that exhibit enhanced resistance using a dosage effect or that stack the disclosed genes with other resistance genes to avoid resistance breakdown and optimize resistance development. Genetic modification by tilling or targeted engineering to develop new resistance alleles is also possible.

[0172] The present invention also relates to the use of the identified Heterodera resistance-conferring gene alleles in plants in genetic or molecular stacks with other genetic elements that may confer agriculturally advantageous traits. This may significantly increase the economic value of cultivated plants, e.g., by enhancing yield performance compared to plants carrying the same gene but not provided with a nucleic acid according to the present invention. Furthermore, new crop areas may be opened for plants that were previously unavailable for cultivation due to biotic factors, such as intense pathogen pressure. In particular, the present invention relates to the use of the identified Heterodera resistance-conferring gene alleles in methods for controlling Heterodera schachtii pathogen infestation in agricultural or horticultural cultivation of Betta plants, including, for example, identifying and selecting Betta plants using one of the methods described above and / or cultivating the selected plants or their progeny. Thus, the present invention includes a method for cultivating a Beta vulgaris plant, comprising, in a first step, providing a Heterodera-resistant plant of the Beta vulgaris species according to the present invention, or producing a Beta vulgaris plant according to the production method according to the present invention, or identifying and selecting a Beta vulgaris plant according to the identification method according to the present invention; and, in a second step, cultivating the plant from the first step, or sowing seed stock of the plant from the first step, or raising the plant from the first step. This cultivation method thereby prevents Heterodera infestation of the cultivated plant. This cultivation method may be part of a method for producing sugar. The sugar production method includes the steps of this cultivation method and additionally includes, as a penultimate step, harvesting the cultivated plant and, as a final step, extracting sugar from the plant.

[0173] This cultivation method may be part of a method for producing seed stock. The method for producing seed stock includes the steps of this cultivation method and additionally includes vernalization of the cultivated plants as a penultimate step and removal of seeds from the plants as a final step. The removed seeds may optionally be pelleted to obtain pelleted seed stock of Beta vulgaris species. In this case, this is a method for producing pelleted seed stock.

[0174] Furthermore, the method for producing seed stocks may be designed as a method for producing Heterodera-resistant seed stocks. The method for producing Heterodera-resistant seed stocks comprises the steps of the above-described method for producing seed stocks, and additionally comprises, as a final step, the verification of the nucleic acid according to the present invention by the method described herein in at least one of the extracted seeds, preferably at least 0.1% or at least 1% of the extracted seeds. This verification is particularly preferably carried out so that the seeds maintain their germination ability. This means that extracting the DNA required for verification from the seeds does not neutralize the germination ability of the seeds. In such cases, the verification of the nucleic acid according to the present invention may be carried out in a particularly large proportion of all extracted seeds. For example, this verification may be carried out in at least 2%, preferably at least 3%, particularly preferably at least 4% of all extracted seeds.

[0175] Plants, their cells, or seeds or seed stocks according to the present invention may additionally have or be equipped with agriculturally advantageous traits. One example is tolerance or tolerance to herbicides such as glyphosate, glufosinate, or ALS inhibitors. Tolerance to glyphosate or ALS-inhibitor herbicides is preferred. A specific embodiment of glyphosate tolerance is disclosed in U.S. Pat. No. 7,335,816. Such glyphosate tolerance is available, for example, from seed stocks deposited at NCIMB, Aberdeen (Scotland, UK) under accession numbers NCIMB 41158 or NCIMB 41159. Such seeds may be used to obtain glyphosate-tolerant sugar beet plants. Glyphosate tolerance may also be introduced into other betta species by crossbreeding.

[0176] Thus, the present invention also encompasses plants, their cells, or seeds or seed stocks comprising a nucleic acid molecule according to the present invention and further characterized in that a DNA fragment of the genomic DNA of the plant, part or seed thereof may be amplified by polymerase chain reaction with a first primer and a second primer.

[0177] A specific embodiment of ALS inhibitor herbicide tolerance is disclosed in WO 2012 / 049268. For example, such ALS inhibitor herbicide tolerance is available from the NCIMB, Aberdeen, UK, under the accession number NCIMB 41705. Furthermore, such ALS inhibitor herbicide tolerance may be produced through gene editing, such as by using CRISPR / Cas, or by site-directed mutagenesis or by using a nucleic acid molecule according to the present invention. Thus, the present invention also encompasses a plant, a cell thereof, or a seed or seed stock thereof, which comprises a nucleic acid molecule according to the present invention and further exhibits a mutation in an endogenous acetolactate synthase gene, which encodes an acetolactate synthase protein and has an amino acid other than tryptophan as a result of a mutation at position 569. As a result of this mutation, the amino acid at position 569 is preferably alanine, glycine, isoleucine, leucine, methionine, phenylalanine, proline, valine, or arginine. Furthermore, the mutation may be present in both heterozygous and homozygous forms in the plant, its cells or seeds, or in the seed stock, with the homozygous presence of the mutation being preferred to promote the emergence of a more stable or stronger phenotype of resistance.

[0178] Many additional herbicides and their applicability are known to those skilled in the art from the prior art, and those skilled in the art may rely on the prior art to learn which genetic elements to use in which way to install the corresponding tolerance in plants.

[0179] Another example of an agriculturally advantageous trait is additional pathogen resistance, where the pathogen may be, for example, an insect, a virus, a nematode, a bacterium, or a fungus. For example, broad-spectrum pathogen protection for a plant may be achieved through the combination of different pathogen resistances / tolerances, as genetic elements may exhibit additive effects with each other. For example, various resistance genes for this purpose are known to those skilled in the art as genetic elements. For example, U.S. Patent Application Publication No. 2016 / 0152999 discloses the RZ resistance gene for rhizobium. This disease is caused by the pathogen "Beet Necrotic Yellow Vein Virus." Multiple disease resistances contained in a single plant have synergistic effects with each other. When a plant is first infested with a pathogen, its immune system is usually weakened, and the outer barrier, the epidermis, is often damaged, increasing the likelihood of further infection. An additional example of an agriculturally advantageous trait is cold tolerance or frost resistance. Plants that exhibit this trait may, for example, be sown earlier in the year or remain in the field longer, which may lead to increased yields. Here, those skilled in the art may rely on the prior art to find suitable genetic elements. Additional examples of agriculturally advantageous traits are water use efficiency, nitrogen use efficiency, and yield. Genetic elements that may be used to confer such traits can be found in the prior art.

[0180] Furthermore, numerous modifications for pathogen defense are known to those skilled in the art. In addition to the often-described R gene family, the Avr / R approach, Avr gene complementation (WO 2013 / 127379), R gene autoactivation (WO 2006 / 128444), or HIGS (host-induced gene silencing) approach (e.g., WO 2013 / 050024) may be advantageously used. In particular, R gene autoactivation may be important for the present invention. For this purpose, a nucleic acid encoding an autoactivated resistance protein for generating resistance to pathogens in plants is prepared. In this case, the nucleic acid has only a limited portion of an NBS-LRR resistance gene, such as the wb-R gene, extending downstream from the 5' end of the coding region of the NBS-LRR resistance gene, which begins encoding the NBS domain of the NBS-LRR resistance gene.

[0181] In this context, also encompassed are methods comprising the step of removing the region of the nucleic acid according to the invention which encodes the N-terminal region and which begins at the p-loop in the NBS domain and extends to the end of the N-terminal region.

[0182] The resistance proteins encoded by such truncated nucleic acids are generally autoactivated, and these resistance proteins trigger an immune response in the plant even in the absence of the relevant pathogen, thereby enhancing the plant's basal immunity. Further encompassed are truncated nucleic acids according to the present invention, and polypeptides encoded thereby.

[0183] Furthermore, the present invention also includes the use of Heterodera resistance-conferring gene alleles identified by the above-described methods in combination with previously described genetic elements that may convey one or more of the above-described modifications of agronomically advantageous traits in plants.

[0184] In addition to the plants according to the invention, the invention also relates to seeds or progeny, organs, plant parts, tissues, or cells thereof in the production of products such as food and animal feed, preferably sugar or syrup (molasses), which are typically produced from sustainable raw materials, and which are used for industrial applications, for example in alcohol production or as a growth medium for the production of biotechnological products, materials or substances for the chemical industry, such as refined chemicals, pharmaceuticals or precursors thereof, diagnostic agents, cosmetics, bioethanol, or biogas production. An example of the use of sugar beets as biogenic feedstock in biogas plants is described in DE 10 201 2 022 178 A1, see e.g. paragraph 10.

[0185] The following examples illustrate the present invention, but do not limit the subject matter of the present invention.Unless otherwise specified, standard molecular biology methods are used: see, for example, Sambrook et al., Molecular Cloning: A Laboratory Manual, 3rd ed., Cold Spring Harbor Laboratory Press, Cold Spring Harbor, NY, 2001, Fritsch et al., Cold Spring Harbor Laboratory Press: 1989; Mayer et al., Immunochemical Methods in Cell and Molecular Biology, eds., Academic Press, London, 1987 and Weir et al., Handbook of Experimental Immunology, Volumes I-IV, Blackwell, eds., 1986.

[0186] Some of the most important sequences according to the invention are described in detail below: - SEQ ID NO: 1: Genomic DNA sequence of the Heterodera resistance-conferring LLR2 gene from Beta vulgaris subsp. maritima. - SEQ ID NO: 2: cDNA sequence of the non-naturally occurring Heterodera resistance-conferring LLR2 gene. - SEQ ID NO: 3: Amino acid sequence of the Heterodera resistance-conferring LLR2 protein encoded by SEQ ID NO: 1 or SEQ ID NO: 2. - SEQ ID NO: 4: Genomic DNA sequence of the Heterodera resistance-conferring LLR1 gene from Beta vulgaris subsp. maritima. - SEQ ID NO: 5: cDNA sequence of the non-naturally occurring Heterodera resistance-conferring LLR1 gene. - SEQ ID NO: 6: Amino acid sequence of the Heterodera resistance-conferring LLR1 protein encoded by SEQ ID NO: 4 or SEQ ID NO: 5. - SEQ ID NO: 7: Genomic DNA sequence of the Heterodera resistance-conferring LLR3 gene from Beta vulgaris subsp. maritima. - SEQ ID NO: 8: cDNA sequence of the non-naturally occurring Heterodera resistance-conferring LLR3 gene. - SEQ ID NO: 9: Amino acid sequence of the Heterodera resistance-conferring LLR3 protein encoded by SEQ ID NO: 7 or SEQ ID NO: 8. - SEQ ID NO: 10: Resistance-conferring allele version of molecular marker s5e3001s02 - SEQ ID NO: 11: susceptible allele version of molecular marker s5e3001s02 - SEQ ID NO: 12: Resistance-conferring allele version of molecular marker s5e4668xxx - SEQ ID NO: 13: susceptible allele version of molecular marker s5e4668xxx Molecular markers s5e3001s02 and s5e4668xxx are external flanking markers of the resistance-conferring region containing the resistance-conferring gene according to SEQ ID NO: 1 and / or SEQ ID NO: 4.

[0187] Further molecular markers suitable for identifying the resistance genes according to SEQ ID NO: 1 and / or SEQ ID NO: 4 or for identifying the genomic regions encoding the resistance-conferring polypeptides according to SEQ ID NO: 3 or SEQ ID NO: 6 are shown in Table 4. The markers can also be used to distinguish between resistance-conferring allelic versions of the genes according to the invention and allelic versions of these genes that do not confer resistance. [Table 1-1] [Table 1-2] [Table 1-3]

[0188] Example Example 1: Conducting a nematode test 1) Plants according to the invention were sown in a greenhouse on a peat substrate.

[0189] 2) The plants were transplanted at the cotyledon stage after germination, as single plants (1 plant / box) into plastic boxes of approximately 30 cm (approximately 2 x 1 x 15 cm) filled with quartz sand. Alternatively, seedlings from tissue culture can be transferred directly into plastic boxes. Temperature and light conditions: 16 / 8 hours light / dark with a temperature change of 23°C / 12°C.

[0190] 3) One week after transplanting, infestation was simulated by applying 600 larvae of Heterodera schachtii.

[0191] 4) Evaluation of plant and cyst numbers was performed under a binocular microscope 4 weeks after infection.

[0192] Example 2: Gene assembly The resistance locus is located on chromosome 5, and the target region was reduced in several mapping steps to flanking markers s5e5864s01 (integrated genetic map: 9.17 cM) and s5e4503s02 (9.74 cM), encompassing a physical distance of 119,341 bp in the reference physical map (ZR_BPMv7-Single Embryo Susceptibility Reference Sequence). BAC screening of the resistant donor line identified three BAC clones for the target genomic region. These BAC clones were sequenced using the PacBio method (Fichot, Erin B., and R. Sean Norman. "Microbial phylogenetic profiling with the Pacific Biosciences sequencing platform." Microbiome 1.1 (2013): 10). This method allows for the generation of relatively long, continuous sequence contigs, which facilitates subsequent assembly of contigs generated from genomic regions containing repetitive sequences. A gapless resistance sequence was assembled, allowing for sequence comparison between the resistant and susceptible reference genotypes to develop novel markers within the target region. A novel fine-mapping step using available recombinants reduced the target region to two novel flanking markers encompassing a sequence span of 26,484 bp in the resistant genotype and 39,587 bp in the susceptible genotype. The reduced target region contains only nine annotated genes. Among these genes, three tandemly repeated LRR genes were identified as potential causative candidate genes for NRBMH resistance (LRR1, LRR2, and LRR3 (Figure 1)). This target region exhibits high complexity: a) the resistance sequence contains large sequence overlaps; b) the LRR genes show sequence similarity; and c) several retrotransposons are embedded within the target region in the susceptible genotype. Due to this sequence complexity, assembly of the RR and ss sequences was a highly demanding and complex procedure.

[0193] Within the reduced target region, five recombinants were detected, and 180 progeny of these recombinants were phenotyped. The phenotype was tested by intensive statistical methods (t-test, power analysis). From these five recombinants, 10 plant samples per ident were analyzed using special dominant markers developed for the three LRR genes. The three LRR genes could be tested for function. As an exemplary result, the LRR1 gene did not show any contradictory data in any of the recombinants, i.e., all recombinants carrying the LRR1 gene were resistant.

[0194] The "map-based cloning" process includes the following steps: gene fine mapping, physical mapping, WHG (whole genome) sequence analysis, construction of several large segregating populations, recombination screening, marker development within the target region, comparative BAC sequencing in resistant genotypes, analysis of resistant and susceptible genotype sequences, bioinformatic analysis, protein prediction, and protein comparison. The following steps were important for this invention: fine mapping combined with focused phenotyping, identification and sequencing of resistant BAC clones, development of dominant markers for the three LRR genes, sequence analysis, and sequence and protein comparison between the RR (resistant) and ss (susceptible) genotypes.

[0195] Example 3: Introduction of a resistance-conferring gene as a transgene by genetic transformation in Beta vulgaris subsp. vulgaris Transgenic approaches to producing Heterodera -resistant plants provide not only alternative confirmation of LRR genes as resistance-conferring genes but also a means to generate transgenic resistance events that confer novel Heterodera resistance or improve existing Heterodera resistance.

[0196] The LRR gene of interest was cloned into the binary vector pZFN-nptII (Figure 2) using the following standard cloning procedure: To ensure high constitutive expression levels of the resistance gene in transgenic plants, the cDNA of the resistance gene was cloned within the T-DNA of this vector between a duplicated CaMV 35S promoter and a nopaline synthase (NOS) terminator. The T-DNA also contains neomycin phosphotransferase II (nptII), which confers resistance to a range of aminoglycoside antibiotics, such as kanamycin or paromomycin. These antibiotic resistances were used for selection of transgenic plant cells and tissues. The NOS promoter and pAG7 terminator flank the nptII gene. The binary vector backbone also contains colE1 and pVS1 origins for plasmid replication in Escherichia coli or Agrobacterium tumefaciens. The aadA gene confers streptomycin / spectinomycin resistance for bacterial selection. The pZFN-nptII-LRR plasmid was transformed into Agrobacterium strain AGL-1 by standard procedures.

[0197] Sugar beet transformation was performed according to Lindsey & Gallois (1990), "Transformation of sugarbeet (Beta vulgaris) by Agrobacterium tumefaciens." Journal of experimental botany 41.5, 529-536. For this purpose, "micropropagated shoots" of genotype 04E05B1DH5, which carry only the susceptible allele of the identified gene, were used as starting material. The shoots were grown in the corresponding medium according to Lindsey & Gallois (1990). To induce as many meristems as possible, the "shoots" were transferred to another medium (see Lindsey & Gallois (1990)) and incubated in the dark at approximately 30°C for several weeks. The Agrobacterium strain AGL-1 containing the vector pZFN-nptII-LRR was cultivated in a supplementary medium (see Lindsey & Gallois (1990)), which additionally provided the corresponding antibiotic for selection. The treated shoot-based meristem sections were incubated with Agrobacterium in supplemented medium (see Lindsey & Gallois (1990)) for several hours. Plant explants and Agrobacterium were co-cultured in the dark for at least two days in medium (see Lindsey & Gallois (1990)). The inoculated explants were then incubated in the dark for approximately two weeks in supplemented medium (see Lindsey & Gallois (1990)). The explants were then further propagated in supplemented medium (see Lindsey & Gallois (1990)) and subcultured to allow for the selection of transgenic tissue. Leaf material was then removed from the green, developed "shoots" and examined for the presence of the transgene using PCR. Suitable "shoots" were rooted and subsequently transferred to the greenhouse for the production of T1 seed stocks. Heterodera resistance in T1 plants can then be tested using the protocol described in Example 1. The results are shown in Tables 1 to 3. [Table 2-1] [Table 2-2]

[0198] Since the nematode infects root tissue, only plants showing typical root development were included in the analyses shown in these tables. Segregating plants were selfed heterozygous transgenic regenerants. The expected phenotypic segregation was from 3 (resistant) to 1 (susceptible). Plants showing 30 or fewer cysts were considered phenotypically resistant, and the corresponding values ​​in Table 1 are shown in bold. A sufficiently large number of lines and individuals were produced for statistical evaluation, as a certain standard deviation was expected. [Table 3-1] [Table 3-2]

[0199] Table 2 shows the percentage of plants with up to 30 cysts that are considered phenotypically resistant. Line A is a typical susceptible line, with only 4.8% of the tested individuals exhibiting a resistant phenotype. Line B is a known line exhibiting good resistance. 100% of the tested individuals of line B exhibited a resistant phenotype. Since only certain lines are adapted to be used for genetic transformation, the lines used for transformation were also tested for resistance (non-transgenic state): the four tested lines C-F exhibited 24%-36% of phenotypically resistant individuals. [Table 4]

[0200] Due to segregation, it is statistically expected that 25% of transformants will not carry the resistance gene. Taking this into account, a value of 75% of phenotypically resistant plants is equivalent to 100% resistance conferred by the corresponding transgene. Therefore, the last two lines in Table 3 show statistically corrected values ​​(multiplied by a factor of 1.33). The values ​​in Table 3 show a significant increase in the number of plants with the resistance phenotype after transformation with SEQ ID NO: 2 and SEQ ID NO: 5 compared to the transformed control.

Claims

1. 1. A nucleic acid molecule for enhancing resistance to Heterodera nematodes in a plant expressing the nucleic acid molecule, the nucleic acid molecule comprising: (a) a nucleotide sequence comprising a sequence selected from the group consisting of SEQ ID NOs: 1 and 4; (b) a nucleotide sequence comprising a coding sequence selected from the group consisting of SEQ ID NOs: 2 and 5; (c) a nucleotide sequence that hybridizes under stringent conditions to the complementary sequence of the nucleotide sequence according to (a), (b), (f) or (g); (d) a nucleotide sequence comprising a sequence that is at least 90% identical to the sequence of any one of the nucleotide sequences of (a), (b), (f) or (g); (f) a nucleotide sequence encoding a polypeptide having an amino acid sequence selected from the group consisting of SEQ ID NOs: 3 and 6; (g) a nucleotide sequence encoding a polypeptide having an amino acid sequence that is at least 90% identical to an amino acid sequence selected from the group consisting of SEQ ID NOs: 3 and 6. is selected from the group consisting of The nucleotide sequence is operably linked to a promoter A nucleic acid molecule characterized in that:

2. A vector or expression cassette comprising the nucleic acid molecule of claim 1.

3. A cell comprising the nucleic acid molecule of claim 1, or the vector or expression cassette of claim 2.

4. Pelleted seeds and / or primed seeds comprising the nucleic acid molecule of claim 1, the vector or expression cassette of claim 2, or the cell of claim 3.

5. 5. The pelleted seeds and / or primed seeds according to claim 4, characterized in that the pelleted seeds and / or primed seeds contain a nucleic acid molecule according to claim 1 or a sequence encoding the same polypeptide, endogenously or by gene transfer.

6. 5. The pelleted seeds and / or primed seeds according to claim 4, wherein the pelleted seeds and / or primed seeds endogenously containing the nucleic acid molecule belong to the species Beta vulgaris but are not B. vulgaris subsp. maritima.

7. below: (a) Policing (b) Incrustation (c) Coloring 7. The pelleted seeds and / or primed seeds according to claim 4, 5 or 6, which have been subjected to a treatment selected from the group consisting of:

8. below: (i) integrating the nucleic acid molecule of claim 1 into the genome of at least one cell of a plant by site-specific nuclease-facilitated, homology-directed repair or homologous recombination, and regenerating a plant from the plant cell; or (ii) increasing the expression of the polypeptide encoded by the nucleic acid molecule of claim 1 in plants upon infection by a Heterodera pathogen by modifying the native promoter or by fusing the nucleic acid molecule of claim 1 to a heterologous promoter that exhibits higher activity compared to the native promoter; or (iii) Transforming a plant cell with the nucleic acid molecule of claim 1, or a vector or expression cassette comprising the nucleic acid molecule of claim 1, and regenerating a transgenic plant from the transformed plant cell.

10. A method for increasing resistance to Heterodera genus nematodes in plants, comprising:

9. below: (a) transforming a plant cell with the nucleic acid molecule of claim 1 or a vector or expression cassette comprising the nucleic acid molecule of claim 1; and (b) regenerating a transgenic plant from the transformed plant cell; or (i) introducing into a cell of a plant a site-specific nuclease and a repair matrix, wherein the site-specific nuclease is capable of generating at least one single-strand break or at least one double-strand break in DNA in the genome of the cell upstream and / or downstream of a target region, and the repair matrix comprises a polypeptide encoding the nucleic acid molecule of claim 1 or a portion of the nucleic acid molecule of claim 1; (ii) culturing the cells from (i) under conditions that allow for homology-directed repair or homologous recombination, wherein the nucleotide sequence is integrated from the repair matrix into the genome of the plant; and (iii) regenerating a plant from the cells modified in (ii); or (I) introducing into a cell of a plant a site-specific nuclease or base editor, wherein the site-specific nuclease generates at least one single-stranded break or at least one double-stranded break in DNA in the genome of the cell upstream, downstream, or within a target region that is homologous to the nucleic acid molecule of claim 1; (II) culturing the cells from (I) under conditions that allow modification of the target region, selected from: (1) substitution of at least one nucleotide; (2) a deletion of at least one nucleotide; (3) an insertion of at least one nucleotide; or (4) any combination of (1) to (3); and (III) Regenerating a plant from the cells modified in (II). A method for producing a plant that is resistant to Heterodera genus nematodes, comprising:

10. The target region is a) located between the nucleic acid sequence shown in SEQ ID NO: 10 or SEQ ID NO: 11 and the nucleic acid sequence shown in SEQ ID NO: 12 or SEQ ID NO: 13, or b) adjacent to the nucleic acid sequence set forth in SEQ ID NO: 10 or SEQ ID NO: 11 and the nucleic acid sequence set forth in SEQ ID NO: 12 or SEQ ID NO: 13; or c) comprising a chromosomal interval between the nucleic acid sequence shown in SEQ ID NO: 10 or SEQ ID NO: 11 and the nucleic acid sequence shown in SEQ ID NO: 12 or SEQ ID NO: 13; 10. The method according to claim 9, characterized in that

11. 11. The method of claim 9 or 10, wherein the at least one single-strand break or the at least one double-strand break occurs at a position up to 10,000 base pairs upstream and / or downstream of the target region.

12. 1. A method for identifying a plant that is resistant to nematodes of the genus Heterodera, the method comprising: (i) detecting the presence and / or expression of the nucleic acid molecule of claim 1 in said plant or plant part; and / or (ii) detecting at least one region that co-segregates within the nucleic acid molecule of claim 1; and (iii) Selecting plants that are resistant to Heterodera nematodes. A method for identifying plants, comprising:

13. A plant obtained from pelleted seeds and / or primed seeds according to any one of claims 4 to 7.

14. below (i) providing a plant according to claim 13 or a seed according to any one of claims 4 to 7, or producing a plant according to the method of any one of claims 9 to 11, or identifying and selecting a plant according to the method of claim 12; and (ii) cultivating a plant or progeny thereof from (i). Including, The method prevents infestation of cultivated plants with nematodes of the genus Heterodera. How to grow plants.

15. A nucleic acid molecule, the nucleic acid molecule comprising: (i) a nucleotide sequence comprising a sequence selected from the group consisting of SEQ ID NOs: 1 and 4; (ii) a nucleotide sequence comprising a coding sequence selected from the group consisting of SEQ ID NOs: 2 and 5; (iii) a nucleotide sequence encoding a polypeptide having an amino acid sequence selected from the group consisting of SEQ ID NOs: 3 and 6 A nucleic acid molecule that specifically hybridizes as a primer to any of the nucleotide sequences selected from the group consisting of:

16. 16. The pair of nucleic acid molecules described in claim 15, and a kit for confirming whether a Heterodera resistance-conferring gene comprising the pair of nucleic acid molecules is endogenously present in an organism or has been successfully introduced into a heterologous organism, wherein the nucleic acid molecules are suitable for hybridization as forward and reverse primers to a region in the Beta vulgaris genome that co-segregates in Beta vulgaris that has resistance to Heterodera nematodes conferred by the nucleic acid molecule of claim 1, and the region in the Beta vulgaris genome is located between the nucleic acid sequence shown in SEQ ID NO: 10 or SEQ ID NO: 11 and the nucleic acid sequence shown in SEQ ID NO: 12 or SEQ ID NO: 13, or is adjacent to the nucleic acid sequence shown in SEQ ID NO: 10 or SEQ ID NO: 11 and the nucleic acid sequence shown in SEQ ID NO: 12 or SEQ ID NO: 13, or comprises a chromosomal interval between the nucleic acid sequence shown in SEQ ID NO: 10 or SEQ ID NO: 11 and the nucleic acid sequence shown in SEQ ID NO: 12 or SEQ ID NO: 13.