Lettuce plant resistant to downy mildew and resistance gene

The SA23 resistance gene in lettuce offers broad-spectrum resistance to Bremia lactucae races, addressing rapid resistance breakdown and linkage drag issues, ensuring durable disease control and yield stability.

WO2026017264A1PCT designated stage Publication Date: 2026-01-22ENZA ZADEN BEHEER BV
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Patent Information

Application Number
PCT/EP2024/070537
Authority / Receiving Office
WO · WO
Patent Type
Applications
Current Assignee / Owner
Filing Date
2024-07-19
Publication Date
2026-01-22

AI Technical Summary

Technical Problem

Current lettuce cultivars face rapid development of new Bremia lactucae races that overcome disease resistance, leading to significant crop losses and challenges in maintaining effective fungicide control, with introgression of resistance genes often causing linkage drag and yield reduction.

Method used

Introduction of the SA23 resistance gene, encoding a protein with high sequence identity to SEQ ID No. 2, which confers broad-spectrum resistance to Bremia lactucae races Bl:39 to Bl:41, and can be combined with other resistance genes to enhance durability, using methods like gene editing and marker-aided selection to minimize linkage drag.

Benefits of technology

The SA23 gene provides durable resistance to multiple Bremia lactucae races, reducing susceptibility and maintaining crop yield and health, while minimizing negative genetic effects.

✦ Generated by Eureka AI based on patent content.

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Abstract

The present invention relates to a lettuce plant that is resistant to downy mildew, more specifically to a lettuce plant that comprises a resistance gene that confers resistance to oomycetes in lettuce, more specifically B. lactucae. Furthermore, the present invention relates to a resistance gene and a method for obtaining a lettuce plant that is resistant to downy mildew, wherein the method comprises the step of introducing said resistance gene into a lettuce plant.
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Description

[0001] LETTUCE PLANT RESISTANT TO DOWNY MILDEW AND RESISTANCE GENE

[0002] Description

[0003] The present invention relates to a lettuce plant that is resistant to downy mildew, more specifically to a lettuce plant that comprises a resistance gene that confers broad spectrum resistance to oomycetes in lettuce, more specifically Bremia lactucae. Furthermore, the present invention relates to a resistance gene and a method for obtaining a lettuce plant that is resistant to downy mildew, wherein the method comprises the step of introducing said resistance gene into a lettuce plant.

[0004] Downy mildew refers to several types of oomycete microbes that are pathogens of plants. Downy mildew can originate from various species, but mainly of Peronospora, Plasmopcirci and Bremia. Downy mildew is a problem in many food crops, for example in lettuce caused by B. lactucae, affecting the production of this crop worldwide. Plants that are being affected include food crops such as brassicas (e.g. cabbage), grape, spinach, lettuce, onion, and cucumber. Downy mildew infection shows symptoms of discoloured areas on upper leaf surfaces in combination with white, grey or purple mould located on the lower side of the leaf facing the floor. Disease is spread from plant to plant by airborne spores.

[0005] Lettuce, mostly known as Lactuca sativa, but also including Lactuca species such as L. serriola, L. saligna or L. virosa, is a very important crop worldwide. Some of the most popular varieties available belong to the Iceberg, Romaine, Butterhead, Batavia and Oakleaf lettuce types. There are many plant pathogens that affect L. sativa, and some of the diseases caused by these pathogens are downy mildew, sclerotinia rot, powdery mildew, fusarium wilt of which the most important disease is lettuce downy mildew, which is caused by the B. lactucae, an oomycete pathogen that belong to Peronosporaceae .

[0006] For some vegetable crops, such as lettuce, cultivars with resistance to downy mildew are available. However, the pathogen under pressure will mutate to break down the disease resistance and new disease resistance in crops is needed to control infection. Especially in lettuce the occurrence of downy mildew resistance is particularly complex as there are many different races, and new downy mildew resistant species emerging all the time, as found in European and the USA markets.

[0007] In lettuce, infection of B. lactucae result in yellow to pale green lesions that eventually become necrotic due to secondary pathogens leading to major crop losses. Fungicides can be used to control B. lactucae, but eventually B. lactucae becomes immune to these chemicals, because over time the pathogen also acquires resistance to fungicides. Furthermore, there are multiple lettuce varieties available that are resistant to B. lactucae but resistance is quickly overcome because new Bremia races develop rapidly. Therefore, it is of the utmost importance to find other methods to control B. lactucae infection. Most preferably is to identify a resistance gene that gives broad resistance against B. lactucae and to provide for lettuce plants that are resistant to downy mildew. Therefore, identification of resistance genes is a promising alternative.

[0008] During the development of new disease or pathogen resistant plants often traits are being combined, for example by introgression of a genetic locus comprising one or more resistance gene, thereby combining multiple resistance genes to combat the pathogen being able to overcome the resistance. However, the introgression fragments often comprise, apart from the resistance gene of interest, other genetic elements that may negatively affect the plant in terms of yield, growth, vitality, and seed production. For example introgression of (additional) new resistance genes in lettuce often result in a severe reduction in seed production as a result of linkage drag. Therefore, apart from the generation of improved disease resistance in plant, there is also great benefit to reduce this so called linkage drag which becomes an increasing hurdle in plant breeding. Single event introgression as well as marker-aided selection techniques in the flanking regions of the resistance gene to reduce the introgression segment can play an important role here, with the objective of minimizing residual genetics (apart from the resistance gene) being transferred to the parent plant and to eliminate linkage drag effects. Gene editing and the use of sequence information in genome-wide selection will further add to the precision of reduction of linkage drag.

[0009] Considering the above, there is a need in the art to provide plants that are resistant to downy mildew and wherein plants have a broad-spectrum resistance against this pathogen. Furthermore, it is an object of present invention to provide plants having a broad-spectrum downy mildew resistance, and to provide a method to obtain such downy mildew resistant plants.

[0010] It is an object of the present invention, amongst other objects, to address the above need in the art. The object of present invention, amongst other objects, is met by the present invention as outlined in the appended claims.

[0011] Specifically, the above object, amongst other objects, is met, according to a first aspect, by the present invention by a downy mildew resistant lettuce plant, wherein said lettuce plant comprises an SA23 resistance gene encoding a protein having at least 90%, preferably at least 95%, more preferably at least 98% even more preferably at least 99%, most preferably 100% sequence identity with amino acid sequence of SEQ ID No. 2 providing downy mildew resistance, wherein said lettuce plant is resistant to B. lactucae races Bl:39 to Bl:41. The downy mildew resistance conferring gene SA23 is a dominant resistance trait, and may be homozygous or heterozygous present in a downy mildew resistant lettuce plant. The resistance gene against B. lactucae has been found on chromosome 9 in lettuce . This SA23 resistance gene of the present invention gives resistance to B. lactucae races Bl: 16, Bl: 18, Bl:21-31, Bl:33, Bl:34, Bl:36, Bl:37, and Bl:39 to Bl:41 EU, and preferably also Bl: 1-9 US wherein said Bremia races have been characterized and classified according to the SEXTET code by IBEB (International Bremia Evaluation Board).

[0012] As disclosed herein, the percentage (%) sequence identity is known to the person skilled in the art. Preferably it is to be understood in relation to a query sequence having at least 90% of the sequence length of the gene or protein sequence as claimed herein, preferably at least 95%, more preferably 98%, even more preferably at least 99%, most preferably 100% sequence length. Alternatively, or additionally, the gene sequence alignment is performed from start(codon) to stop(codon) of the coding sequence or protein sequence. For example, Geneious Prime (Clustal Omega algorithm) can be used to align sequences and calculate the % sequence identity.

[0013] The majority of disease resistance genes in plants encode nucleotide-binding site leucine-rich repeat proteins, also known as NBS-LRR proteins (encoded by R genes). These proteins are characterized by nucleotide-binding site (NBS) and leucine-rich repeat (LRR) domains as well as variable amino- and carboxy-terminal domains and are involved in the detection of diverse pathogens, including bacteria, viruses, fungi, nematodes, insects and oomycetes. There are three major subfamilies of plant NBS-LRR proteins defined by the Toll / interleukin-1 receptor (TIR) also called TNLs, the coiled-coil (CC) motifs in the amino-terminal domain containing NBS- LRRs also called CNLs and RPW8-NLTRs also called RNLs. A typical R gene contains an NB- ARC domain which is proposed to regulate activity of the R protein.

[0014] The SA23 resistance gene is unique since it comprises features that are typical for plant resistance, more specifically the SA23 resistance gene comprises a TIR domain and a nucleotide binding domain, more specifically AAA domain. The SA23 gene is initially picked up by fine mapping and VIGS experiments based on the L. sativa genome. The majority of disease resistance genes in plants encode nucleotide-binding site leucine-rich repeat proteins, also known as NBS-LRR proteins (encoded by R genes). These proteins are characterized by nucleotide- binding site (NBS) and leucine-rich repeat (LRR) domains as well as variable amino- and carboxy- terminal domains and are involved in the detection of diverse pathogens, including bacteria, viruses, fungi, nematodes, insects, and oomycetes. The SA23 gene comprises a TIR domain, an AAA domain (as predicted by http: / / smart.embl-heidelberg.de / ) and several LRR regions (as predicted with https: / / lrrpredictor.biochim.ro / ) within the gene that may be beneficial and contributes to generate a new R gene that confers broad spectrum Bremia resistance.

[0015] The presence of the SA23 resistance gene will provide broad spectrum Bremia resistance to lettuce plants. To decrease the chances of the pathogen overcoming the resistance, as often seen with R genes, multiple R genes can be combined to enhance the durability of disease resistance. For example, the downy mildew resistant lettuce plant of the present invention may further comprise one or more resistance genes located on chromosome 9 at a significant distance from the SA23 resistance gene or with R genes located at different linkage groups. Additionally, or alternatively the SA23 resistance gene may be stacked with other resistance genes on other chromosomes. SA23 is present on chromosome 9 and could be used to combine with another active Bremia resistance gene. As such, stacking of multiple resistance genes will enable broad and durable Bremia resistance in lettuce.

[0016] To demonstrate that the SA23 resistance gene provides Bremia resistance, this SA23 resistance gene was silenced by tobacco rattle virus (TRV)-based virus-induced gene silencing (VIGS) to induce susceptibility to B. lactucae infection in resistant L. sativa lines containing the SA23 resistance gene. With VIGS it was demonstrated that the SA23 resistance gene was associated with downy mildew resistance, since VIGS induced gene silencing was used to create Bremia susceptibility in resistant Lactuca accessions containing only SA23 resistance. Resistant lettuce plants were transiently transformed with a silencing construct specific against the SA23 resistance gene which resulted in the silencing of the resistance gene and as a consequence made the plant or plant organs susceptible to B. lactucae infection, thus by “removing” or silencing the SA23 resistance gene via virus induced gene silencing.

[0017] According to another preferred embodiment, the present invention relates to the lettuce plant, wherein said SA23 resistance gene comprises a coding sequence having at least 90%, preferably at least 95%, more preferably at least 98%, even more preferably at least 99%, most preferably 100% sequence identity with SEQ ID No. 1. Said SA23 resistance gene is located on chromosome 9 of the lettuce plant.

[0018] According to a preferred embodiment, the present invention relates to the lettuce plant, wherein the lettuce plant is further resistant to one or more of B. lactucae races selected from the group consisting of races Bl: 16, Bl: 18, Bl:21-31, Bl:33, Bl:34, Bl:36, Bl:37 EU.

[0019] According to yet another preferred embodiment, the present invention relates to the lettuce plant, wherein the plant is selected from Lactuca sativa, Lactuca virosa, Lactuca saligna, Lactuca serriola, Lactuca aculeate, Lactuca georgica, Lactuca perennis, Lactuca tatarica, Lactuca viminea, preferably Lactuca sativa.

[0020] According to a preferred embodiment, the present invention relates to the lettuce plant, wherein the SA23 resistance gene is at least heterozygous present in the lettuce plant, preferably homozygous present.

[0021] According to another preferred embodiment, the present invention relates to the lettuce plant, wherein said plant comprises SEQ ID No.3 having a “G” on the indicated SNP position, as indicated in Table 1. Table 1 shows the SNP that can be used to identify the resistant lettuce plant of present invention using marker 1 SEQ ID No.3. The SNP is indicated in bold and underlined as N on which the resistant plants could be selected. In Bremia susceptible lettuce plants the indicated SNP nucleotide was an “T” in respect to SEQ ID No. 3, and a “G” for Bremia resistant lettuce plants. According to yet another preferred embodiment, the present invention relates to the lettuce plant, wherein the SA23 resistance gene is obtainable, derived, or originates from a lettuce plant deposited under number NCIMB 44128. Seeds of this resistant lettuce plant comprising the SA23 resistance gene are deposited at NCIMB Ltd. Ferguson Building, Craibstone Estate, Bucksbum, Aberdeen, AB21 9YA Scotland, on 9 March 2023 underthe numberNCIMB 44128.

[0022] The present invention, according to a second aspect, relates to seed, plant parts, fruits or a plant cell of a lettuce plant according to the present invention, comprising a SA23 resistance gene encoding a protein as described above, i.e. comprising a SA23 resistance gene encoding the resistance protein protein as defined herein providing downy mildew resistance in the lettuce plant. The seed, plant parts, fruits or a plant cell comprise the SA23 resistance gene as described herein.

[0023] According to a preferred embodiment, the present invention relates to a resistance gene that confers resistance to B. lactucae in lettuce plants, wherein the resistance gene encodes for a protein that has at least 90%, preferably at least 95%, more preferably at least 98%, even more preferably at least 99%, most preferably 100% sequence identity with SEQ ID No. 2. The SA23 resistant gene is a dominant trait.

[0024] According to another preferred embodiment, the present invention relates to a resistance gene that confers resistance to B. lactucae in lettuce plants, wherein the coding sequence of said resistance gene has at least 90%, preferably at least 95%, more preferably at least 98%, even more preferably at least 99%, most preferably 100% sequence identity with SEQ ID No. 1.

[0025] According to yet another preferred embodiment, the present invention relates to a resistance gene that confers resistance to B. lactucae in lettuce plants, wherein the resistance gene confers resistance to at least Bremia lactucae races Bl:39-41, preferably to Bremia lactucae races Bl: 16, Bl: 18, Bl:21-31, Bl:33, Bl:34, Bl:36, Bl:37, and Bl:39-41 in lettuce. The resistance gene preferably further provides resistance to B. lactucae US spectrum Bl: 1-9 US.

[0026] According to yet another preferred embodiment, the present invention relates to the resistance gene that confers resistance to B. lactucae in lettuce plants, wherein the plant is selected from Lactuca sativa, Lactuca virosa, Lactuca saligna, Lactuca serriola, Lactuca aculeate, Lactuca georgica, Lactuca perennis, Lactuca tatarica, Lactuca viminea, preferably Lactuca sativa.

[0027] The present invention, according to a further aspect, relates to a method for selecting (i) a downy mildew resistant lettuce plant or (ii) a seed of said plant, wherein the method comprises the step of establishing, in the genome of a plant or a seed the presence of a SA23 resistance gene encoding a protein as defined herein. The step of establishing, in the genome of the seed, the presence of any genetic information, including the presence of the SA23 resistance gene encoding the protein as defined above, may suitably involve allowing the seed to grow into a plant and establishing the presence of the genetic information in the genome of the plant grown from the seed.

[0028] According to yet another preferred embodiment, the present invention relates to the method for identifying a downy mildew resistant lettuce plant of present invention, wherein the step of establishing, comprises establishing the presence of SEQ ID No. 1, and / or SEQ ID No. 3 having a “G” on the indicated SNP position, as indicated in Table 1. A downy mildew resistant plant of present invention comprising the SA23 resistance gene can be identified by its presence in the genome of said plant. Presence of the SA23 resistance gene is identified by SEQ ID No. 1. Alternatively, or additionally, marker 1 SEQ ID No.3 can be used. Table 1 shows the SNP that can be used to identify the resistant lettuce plant of present invention using marker 1 SEQ ID No.3. The SNP is indicated in bold and underlined as N on which the resistant plants could be selected. In Bremia susceptible lettuce plants the indicated SNP nucleotide was an “T” in respect to SEQ ID No. 3, and a “G” for Bremia resistant lettuce plants.

[0029] The present invention, according to a further aspect, relates to a method for obtaining a lettuce plant that is resistant to downy mildew, wherein the method comprises the steps of, a) crossing a lettuce plant comprised of the resistance gene of the present invention with a lettuce plant susceptible to downy mildew and which does not comprise said resistance gene, b) optionally, selfing the plant obtained in step a) for at least one time, c) selecting the plants that are resistant to downy mildew. Step c is preferably done using the method of selection as defined above.

[0030] A plant having this resistant phenotype can be obtained via use of gene editing and / or mutation techniques, such as EMS mutagenesis or CRISPR / Cas in concert with cloning techniques on the SA23 resistance gene to generate disease resistant crops. A resistance gene can be brought into the plant by known means including e.g. transgenic techniques or by introgression, wherein the resistance providing sequence(s) are introduced into the plant.

[0031] The present invention, according to a further aspect, relates to the use of a gene construct or plasmid for introducing a resistance gene into the genome of a plant or plant cell and providing broad spectrum resistance to downy mildew caused by one or more of B. lactucae races selected from the group of race Bl: 16, Bl: 18, Bl:21-31, Bl:33, Bl:34, Bl:36, Bl:37, and BP39-41, wherein the gene construct is comprised of the resistance gene operably linked to expression providing sequences in said plant. The resistance gene of present invention may be transferred (e.g. by transformation or transfection) into plants, such as lettuce plants, using a plasmid or vector or linear gene construct that comprises the resistance gene of present invention. The SA23 resistance gene, after being transferred into the lettuce plant will provide resistance to B. lactucae, i.e. resistance to at least B. lactucae of race Bl:39 to Bl:41 and B140 EU, preferably to at least Bl: 16, Bl: 18, Bl:21-31, Bl:33, Bl:34, Bl:36, Bl:37, and BL39-41 EU.

[0032] The present invention will be further detailed in the following examples and figures wherein:

[0033] Figure 1: shows the % of susceptible leaves of lettuce that have been infected with Bremia lactucae Bl:30 and Bl:37 EU, after VIGS silencing of the SA23 resistance gene of present invention of a lettuce plant of present invention comprising the SA23 resistance gene using VIGS gene silencing constructs of Table 2 and subsequently infected with Bremia lactucae. As expected with transient gene silencing, VIGS gene silencing does not result in fully 100% silencing of the gene in all plants. However, the leaves from plants wherein the SA23 resistance gene has been silenced by VIGS silencing (VIGS 1 construct), showed a significant increase of percentage of susceptible leaves (about 22% and 11% for Bl :30 or B137, respectively) when infected with Bremia as compared to plants where the SA23 gene was not silenced, i.e. by VIGS2 or PDS silencing construct, in the plant comprising the SA23 gene, which remained resistant and did not show any signs of susceptibility.

[0034] Figure 2: shows an overview of the disease test performed with the most recent isolates of B. lactucae on L. sativa lines Cobham Green, and the plant of present invention comprising the SA23 resistance gene. The plant of present invention shows to be resistant to all tested downy mildew isolates, Bl: 16, Bl: 18, BL21-31, Bl:33, Bl:34, Bl:36, Bl:37, and BL39-41 EU.

[0035] Examples

[0036] Gene Mapping of SA23 resistance gene in L. serriola

[0037] Gene mapping experiments were done to identify a resistance gene that is involved in full spectrum Bremia (B. lactucae) resistance in lettuce (L. sativa). The resistance gene was originally isolated from L. serriola and was mapped on chromosome 9, providing Bremia resistance in lettuce.

[0038] The identified resistance locus comprises Marker 1 (SEQ ID No.3), providing a resistance locus which comprises a novel resistance gene identified as SA23. After fine mapping in a population of about 12,000 plants there was one putative resistance gene present in the identified resistance locus. The SNP is indicated in bold and underlined as N on which the resistant plants could be selected. In Bremia susceptible lettuce plants the indicated SNP nucleotide was an “T” in respect to SEQ ID No. 3, and a “G” for Bremia resistant plants.

[0039] Table 1. Marker sequences

[0040] SA23 resistance gene silencing experiment using Virus Induced Gene Silencing (VIGS)

[0041] To demonstrate that the SA23 resistance gene provides Bremia resistance, the SA23 resistance gene was silenced by tobacco rattle virus (TRV)-based virus-induced gene silencing (VIGS) to induce susceptibility to B. lactucae infection in L. saliva lines containing the SA23 resistance gene. Tobacco rattle virus (TRV)-derived VIGS vectors have been abundantly described to study gene function in Arabidopsis thaliana, Nicotiana benthamiana, Solarium esculentum and other plants (see for example Huang C, Qian Y, Li Z, Zhou X.: Virus-induced gene silencing and its application in plant functional genomics. Sci China Life Sci. 2012;55(2):99-108). With VIGS it was demonstrated that the SA23 resistance gene was associated with downy mildew resistance, since VIGS induced gene silencing was used to create Bremia susceptibility in resistant Lactuca accessions comprising the SA23 gene. Resistant lettuce plants were transiently transformed with a silencing construct specific against the resistance SA23 gene which will result in the silencing of the resistance gene.

[0042] Briefly, lettuce plants containing the SA23 resistance gene were silenced for SA23 resistance gene by VIGS using different silencing constructs to identify if this SA23 resistance gene was indeed responsible for the observed resistance. Two VIGS -constructs were used, one (VIGS1) that results in specific silencing of the SA23 resistance gene and a control construct (VIGS2) that targets a region on chromosome 9 in close proximity of the SA23 resistance gene (See Table 2 for sequences, respectively SEQ ID No. 4, SEQ ID No. 5). Furthermore, independent of resistance gene silencing the PDS gene was silenced as well that served as positive control to indicate if VIGS is working and to determine the efficiency. The PDS gene is involved in carotenoid biosynthesis and is the first step in lycopene biosynthesis. This step is catalyzed by the enzyme phytoene desaturase (PDS). When silencing of the PDS gene is achieved, this results in bleached leaves. Experiments showed bleached leaves indicating that the VIGS silencing was achieved and performed correctly (data not shown). All plants that were VIGS inoculated were harvested and put in a tray and sprayed with Bremia to test the effect of the gene silencing on disease resistance.

[0043] The VIGS constructs were cloned in the K20 vector. The constructs were transformed and transiently expressed into a lettuce plant of present invention that is resistant to Bremia, using co-cultivation with agrobacterium (GV3101) to study the resistance gene function in relation to Bremia resistance. The % of susceptible Bremia leaves was observed in both groups and both silencing constructs. With the leaves of VIGS -experiments independent disease tests (see below) were performed to observe that when SA23 resistance gene was silenced, plants became susceptible to Bremia.

[0044] Results (Figure 1) indicate that when SA23 was silenced by VIGS with the VIGS1 construct the plants became susceptible (increased % of the leaves showed infection) after Bremia infection (Bl: 30 and B1:37EU) confirming that the resistance gene is linked to a resistance gene that provides the plant resistance against Bremia. The PDS and VIGS2 controls plants remained resistant to the Bremia infection, all leaves were unaffected.

[0045] Table 2. VIGS constructs Disease test and biotest for downy mildew in Lettuce

[0046] Leaves of resistant plants transiently transformed with the above described VIGS constructs, were put in trays with moistened paperboard and infected with Bremia. Infected seedlings are suspended in 20 ml water, filtered by cheesecloth and the flow-through is collected in a spray flask. The trays are spray-inoculated with the B. lactucae suspension. The trays are covered with a glass plate and stored in a climate chamber at 15 °C (12 hours of light). A black, opaque foil is placed over the trays for one day to improve growth of B. lactucae. After one day, the foil is removed. Experiments were performed in triple, and eight to ten days after infection leaves are phenotypically scored by eye on the presence of Bremia, i.e. being susceptible or resistant.

[0047] Disease resistance tests show that the SA23 resistance gene provides resistance to Bremia races from Bl: 16, Bl: 18, BL21-31, Bl:33, Bl:34, Bl:36, Bl:37, and Bl:39-41 (See Figure 2).

[0048] A single gene line comprising the SA23 resistance gene was used internally to test Bremia diagnostically. Seeds of this line are deposited at NCIMB Ltd. Ferguson Building, Craibstone Estate, Bucksbum, Aberdeen, AB21 9YA Scotland, on 9 March 2023 under the number NCIMB 44128.

Claims

Claims1. A downy mildew resistant lettuce plant, wherein said lettuce plant comprises an SA23 resistance gene encoding a protein having at least 95% sequence identity with amino acid sequence of SEQ ID No. 2 providing downy mildew resistance, wherein said lettuce plant is resistant to Bremia lactucae races Bl:39-41 EU.

2. Lettuce plant according to claim 1, wherein said SA23 resistance gene comprises a coding sequence having at least 95% sequence identity with SEQ ID No. 1.

3. Lettuce plant according to any one of the claims 1 or 2, wherein the lettuce plant is further resistant to one or more of Bremia lactucae races selected from the group consisting of races Bl: 16, Bl: 18, Bl:21-31, Bl:33, Bl:34, Bl:36, Bl:37 EU.

4. Lettuce plant according to any one of the claims 1 to 3, wherein the lettuce plant is a Lactuca sativa.

5. Lettuce plant according to any one of the claims 1 to 4, wherein said plant comprises SEQ ID No.3 having a “G” on the indicated SNP position, as indicated in Table 1.

6. Lettuce plant according to any one of the claims 1 to 5, wherein the SA23 resistance gene is obtainable, derived, or originates from a lettuce plant deposited under number NCIMB 44128.

7. Seed, plant parts, fruits or a plant cell of a lettuce plant according to any one of the claims 1 to 6, comprising a SA23 resistance gene encoding a protein as defined in any one of the claims 1 to 6 providing downy mildew resistance.

8. A resistance gene that confers resistance to downy mildew in lettuce plants, wherein the resistance gene encodes for a protein that has at least 95% sequence identity with SEQ ID No. 2.

9. Resistance gene according to claim 8, wherein the coding sequence of said resistance gene has at least 95% sequence identity with SEQ ID No. 1.

10. Resistance gene according to claim 8 or 9, wherein the resistance gene confers resistance to at least Bremia lactucae races Bl:39-41, preferably to Bremia lactucae races Bl: 16, Bl: 18, Bl:21-31, Bl:33, Bl:34, Bl:36, Bl:37, and BL39-41 in lettuce.

11. Method for selecting (i) a downy mildew resistant lettuce plant or (ii) a seed of said plant according to any one of the claims 1 to 7, wherein the method comprises the step of establishing, in the genome of a plant or a seed the presence of a SA23 resistance gene encoding a protein as defined in any one of the claims 1 to 7.

12. Method according to claim 11, wherein the step of establishing, comprises establishing the presence of SEQ ID No. 1, and / or SEQ ID No. 3 having a “G” on the indicated SNP position, as indicated in Table 1.

13. Method for providing a lettuce plant that is resistant to downy mildew, wherein the method comprises the steps of, a) crossing a lettuce plant comprising a resistance gene according to any one of the claims 8 to 10 with a lettuce plant that is susceptible to downy mildew and does not comprise said resistance gene, b) optionally, selfing the plant obtained in step a) for at least one time, c) selecting the plants that are resistant to downy mildew.

14. Use of a gene construct or plasmid for introducing a resistance gene into the genome of a plant or plant cell and providing broad spectrum resistance to downy mildew caused by one or more of B. lactucae selected from the group of race Bl: 16, Bl: 18, Bl:21-31, Bl:33, Bl:34, Bl:36, Bl:37, and BL39-41, wherein the gene construct is comprised of the resistance gene according to any one of the claims 8 to 10 operably linked to expression providing sequences in said plant.

Citation Information

Patent Citations

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