PLASMID COMBINATION, RECOMBINANT AGROBACTERIUM TUMEFACIENS, AND METHOD FOR IMPROVING PHYTOPHTHORA RESISTANCE OF PLANTS
20210301299 · 2021-09-30
Inventors
Cpc classification
C12N15/8279
CHEMISTRY; METALLURGY
International classification
Abstract
The present disclosure discloses an AtPPR1 gene (negative regulatory factor) for Phytophthora resistance and homologous genes thereof, involving an AtPPR1 gene and a protein encoded by the AtPPR1 gene. The AtPPR1 gene has a nucleotide sequence shown in TAIR Gene Locus: At4G02820.1, and the protein encoded by the AtPPR1 gene has an amino acid sequence shown in TAIR Accession AASequence NO.: 1009127979. A function of the AtPPR1 gene of the present disclosure to improve Phytophthora resistance of plants can be used for the selective breeding of Phytophthora-resistant varieties. As a new type of negative immunoregulatory factor in plants, AtPPR1 negatively regulates the resistance of plants to Phytophthora by interfering with downstream signal transduction of endogenous jasmonic acid (JA) and salicylic acid (SA) and ROS signals in plants.
Claims
1-5. (canceled)
6. A plasmid combination for improving Phytophthora resistance of plants, wherein, the plasmid combination comprises pTRV1 and pTRV2-NbPPR1; the pTRV2-NbPPR1 is based on an original plasmid of pTRV2 that is inserted with an NbPPR1-specific fragment; and the NbPPR1-specific fragment has a nucleotide sequence shown in SEQ ID NO. 1.
7. The plasmid combination according to claim 6, wherein, the NbPPR1-specific fragment is inserted into the pTRV2 at a site between EcoR1 and Xho1.
8. A recombinant Agrobacterium tumefaciens containing the plasmid combination according to claim 6, wherein, the pTRV1 and pTRV2-NbPPR1 are introduced into different Agrobacterium tumefaciens strains, respectively.
9. A method for improving Phytophthora resistance of plants, comprising the following steps: reducing an expression level of a protein encoded by a AtPPR1 gene to enhance Phytophthora resistance of plants, wherein, the protein encoded by the AtPPR1 gene refers to an amino acid sequence shown in TAIR Accession AASequence NO.: 1009127979 or a homologous sequence that has a similarity of more than 50% with a protein sequence encoded by the AtPPR1 gene.
10. The method according to claim 9, wherein, a gene of the homologous sequence comprises a homologous gene NbPPR1 of the AtPPR1 gene in Nicotiana benthamiana or a homologous gene of the AtPPR1 gene in a sequenced potato genome; the protein encoded by the NbPPR1 gene has an amino acid sequence shown in Sequence ID Niben101Scf00317g06017.1; and a protein encoded by the homologous gene of the AtPPR1 gene in the sequenced potato genome has an amino acid sequence shown in GenBank Accession Number: XP_015167864.1 or XP_006366127.1.
11. The method according to claim 9, wherein, the method for reducing the expression level of the protein encoded by the AtPPR1 gene comprises: constructing an AtPPR1 gene-deficient mutant of Arabidopsis thaliana through genetic engineering.
12. The method according to claim 10, wherein, the method for reducing the expression level of the protein encoded by the AtPPR1 gene comprises: constructing NbPPR1-deficient Nicotiana benthamiana through virus-induced gene silencing (VIGS); or constructing defective potato through VIGS, wherein, an object of the gene silencing is a homologous gene of the AtPPR1 gene in the sequenced potato genome.
13. The method according to claim 12, wherein, the constructing NbPPR1-deficient Nicotiana benthamiana through VIGS comprises the following steps: 1) constructing a pTRV2-NbPPR1 silencing vector; 2) transforming pTRV1 and pTRV2-NbPPR1 respectively into Agrobacterium tumefaciens to obtain a first recombinant Agrobacterium tumefaciens and a second recombinant Agrobacterium tumefaciens; and 3) transforming the first recombinant Agrobacterium tumefaciens and the second recombinant Agrobacterium tumefaciens into Nicotiana benthamiana for joint transient expression.
14. The method according to claim 13, wherein, the first recombinant Agrobacterium tumefaciens and the second recombinant Agrobacterium tumefaciens are transformed into Nicotiana benthamiana at a final concentration of OD.sub.600=0.25.
15. The method according to claim 13, wherein, a method of the transforming the first recombinant Agrobacterium tumefaciens and the second recombinant Agrobacterium tumefaciens into Nicotiana benthamiana for joint transient expression comprises an Agrobacterium tumefaciens infiltration method.
Description
BRIEF DESCRIPTION OF DRAWINGS
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DETAILED DESCRIPTION
[0025] In order to deepen the understanding of the present disclosure, the present disclosure will be described in further detail below in conjunction with examples, but these examples are only used to explain the present disclosure and do not constitute a limitation on the protection scope of the present disclosure.
Example 1
[0026] This example provided the cloning of the AtPPR1 gene in Arabidopsis thaliana, including the following steps:
[0027] Step 1: Preparation of plant materials: wild-type Arabidopsis thaliana Col-0 was prepared (available through public channels). Extraction of RNA: RNA was extracted with an RNA extraction kit (OMGA, Lot #: R6827-01), the integrity of RNA was identified by agarose gel electrophoresis, and the purity and concentration of RNA were then determined on a spectrophotometer.
[0028] Step 2: Gene cloning: A reverse transcription kit (TaKaRa, Lot #: AHE3187A) was used to obtain cDNA of Col-0. The upstream and downstream primers AtPPR1-F/R were designed according to a full-length coding sequence of AtPPR1 (At4G02820) provided in the Arabidopsis Information Resource (TAIR) website, and the cDNA was used as a template for amplification. PCR products were subjected to enzyme digestion, ligation, and bacterial liquid PCR verification and then used to construct vectors pKannibal-AtPPR1, which were sent for sequencing. Sequencing results were aligned with a published sequence, and correct plasmids were used for subsequent experiments.
TABLE-US-00001 Primer sequences: AtPPR1-F: shown in SEQ ID NO. 2 CCGCTCGAGATGAATAAAAACATGTTGGTTCGCT,; and AtPPR1-R: shown in SEQ ID NO. 3 GCTCTAGACTAAGAAATGGTGGACGAGATTTCA,.
Example 2
[0029] This example provided the sequence information and homology analysis for the Arabidopsis thaliana AtPPR1 gene. A full-length CDS sequence of the Arabidopsis thaliana AtPPR1 gene was 1,599 bp, and a detailed sequence could be seen in TAIR Gene Locus: At4G02820.1. An amino acid sequence of the gene had a total of 532 amino acids, and a detailed sequence could be seen in TAIR Accession AASequence NO.: 1009127979.
[0030] The amino acid sequence of the protein encoded by the Arabidopsis thaliana AtPPR1 gene was subjected to homology search with the BLAST program, and results showed that one homologous gene NbPPR1 was found in Nicotiana benthamiana. Moreover, two homologous genes for AtPPR1 were also found in research of a potato genome. With an amino acid sequence similarity of more than 50%, the 3 homologous genes were inferred to have the same function as AtPPR1.
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Example 3
[0032] This example showed that a T-DNA-inserted mutant of AtPPR1 Arabidopsis thaliana (purchased from Arabidopsis Biological Resource Center (ABRC)) exhibited the resistance to P. parasitica, P capsici, and P. syringae, specifically including the following steps:
[0033] Step 1: Specific primers (qAtPPR1-F: AAAATGAATGATGCGGAGTATCTC, shown in SEQ ID NO. 4; and qAtPPR1-R: TAGAATAGCTCGGGTTTATCCCT, shown in SEQ ID NO. 5) were first designed to detect the expression of AtPPR1 in the mutant.
[0034] Step 2: About 0.1 g of an Arabidopsis thaliana sample was collected to extract RNA, which was reverse-transcribed into cDNA; then specific primers were designed; and the expression of AtPPR1 was detected using the real-time fluorescent quantitative PCR technology.
[0035] Step 3: AtPPR1 mutant Arabidopsis thaliana leaves at a seedling age of 4 to 5 weeks were collected, and wild-type Arabidopsis thaliana Col-0 was adopted as a control. The leaves were scratched and inoculated with about 2,000 GFP-labeled zoospores of P. parasitica, and then cultivated in a 23° C. incubator in the dark for about 48 h. Fluorescence observation and disease degree evaluation were conducted.
[0036] Step 4: P. capsici was inoculated at a zoospore number adjusted to about 800 and cultivated under conditions similar to that of P. parasitica. About 40 h after cultivation, a lesion diameter was observed and measured.
[0037] Step 5: A stored Pst DC3000 bacterial glycerol stock was streaked on an LB plate with corresponding antibiotics for activation, and then cultivated overnight at 28° C. in the dark.
[0038] Step 6: Single colonies were picked and inoculated into 3 mL of LB liquid medium with antibiotics, and cultivated at 28° C. with 220 rpm until OD.sub.600=1; then bacteria were collected and resuspended in dH.sub.2O, and OD.sub.600 was adjusted to 0.1; the resulting solution was diluted 1,000 times and then injected into Arabidopsis thaliana leaves; and after the injection and three days after the inoculation, samples were collected at the same amount, then ground, and coated to analyze the reproduction of P. syringae.
[0039] Results are shown in
Example 4
[0040] This example showed that silencing NbPPR1 in Nicotiana benthamiana could improve the resistance to P. parasitica and P. infestans, including the following steps:
[0041] Step 1: An NbPPR1-specific fragment of about 300 bp was selected and inserted at a site between EcoR1 and Xho1 to construct a pTRV2-NbPPR1 silencing vector; and the NbPPR1-specific fragment had a nucleotide sequence shown in SEQ ID NO. 1, specifically:
TABLE-US-00002 AGCTGAGGCTTTGATGGAAAAAATGTCCGAATGTGGTTTCTTGAAATGCC CTCTTCCTTATAATCACATGCTATCCTTATACATATCCCAAGGGCAACTA GAGAAGGTTCCCCGCCTGATTCAGGAATTGAAGAAAAATAGCTCTCCTGA TATTGTCACATACAACCTGGAGTTGGCAGTTTGTGCATCCCAGAATGATG TTGAAGCTGCAGAGAAAACATTCGTTGAGCTAAAGAAGGCAAAATTGGAT CCTGATTGGATAACGTTTAGCACATTAACAAACATCTATATTAAAAGCTC ACTTCAGGATAAAGCAAAGTC.
[0042] Step 2: pTRV1, pTRV2-GFP, and a pTRV2 vector inserted with a target fragment were electroporated into Agrobacterium tumefaciens, the Agrobacterium tumefaciens infiltration method was used to achieve the joint transient expression of pTRV1-transformed Agrobacterium tumefaciens and pTRV-NbPPR1-transformed Agrobacterium tumefaciens on Nicotiana benthamiana, and generally, the Nicotiana benthamiana was injected at a final concentration of OD.sub.600=0.25.
[0043] Step 3: A silenced phytoene desaturase (PDS) gene was adopted as a positive control, and GFP was adopted as a negative control. When the positive control exhibited a significant silencing effect (2 to 3 weeks later), leaves of the experimental group were selected and inoculated with pathogens for analysis, and specific primers were designed to detect the expression of PPR1 in silent plants.
[0044] Step 4: About 0.1 g of a Nicotiana benthamiana sample was collected to extract RNA, which was reverse-transcribed into cDNA; then specific primers were designed; and the expression of PPR1 was detected using the real-time fluorescent quantitative PCR technology.
[0045] Step 5: NbPPR1-silenced Nicotiana benthamiana leaves were collected, and GFP-silenced plants were adopted as a control. The leaves were scratched and inoculated with about 2,000 GFP-labeled zoospores of P. parasitica, and then cultivated in a 23° C. incubator in the dark for about 40 h. Then a lesion diameter was observed and measured.
[0046] Step 6: After fresh P. infestans was cultivated for about 10 days, about 5 mL of sterile water was added to the culture to stimulate zoospores at 4° C. for about 1 h to 2 h. After a large number of zoospores were released, about 1,500 zoospores were inoculated at each inoculation site. A lesion diameter was observed and measured after the leaves were cultivated at 16° C. for 5 days. 10 days after the inoculation, leaves were collected, and produced sporangia were counted.
[0047] Step 7: The growth and flowering of silent plants were continuously observed 3 to 6 weeks after the injection.
[0048] Results are shown in
[0049] The AtPPR1 gene of the present disclosure is cloned for the first time as a negative immunoregulatory factor that affects plant ROS and hormone signal transduction. An AtPPR1 gene-overexpressed transgenic Arabidopsis thaliana material is constructed through genetic engineering, and the in vitro leaf inoculation experiment proves that AtPPR1-overexpressed Arabidopsis thaliana is more susceptible to infection of P. parasitica. An AtPPR1 gene-deficient mutant is constructed through genetic engineering, and it is found that the mutant can significantly increase the resistance to pathogens such as Phytophthora and P. syringae. An NbPPR1-deficient Nicotiana benthamiana plant material is obtained through virus-induced gene silencing (VIGS), and it is proved by the in vitro leaf inoculation experiment that this material can enhance the resistance to P. parasitica and P. infestans. Experimental results prove that the function of the AtPPR1 gene to improve Phytophthora resistance of plants can be used for the selective breeding of Phytophthora-resistant varieties.
[0050] In addition, it is found from the analysis by the real-time fluorescent quantitative PCR technology that the AtPPR1 gene interferes with the signaling pathways of endogenous SA and JA in plants, and it is also found from ROS determination that AtPPR1-deficient plants show stronger ROS. Results show that AtPPR1, as a new negative immunoregulatory factor in plants, negatively regulates the resistance of plants to Phytophthora by interfering with downstream signal transduction of endogenous JA and SA and ROS signals in plants.
[0051] The above shows and describes the basic principles, main features, and advantages of the present disclosure. It should be understood by those skilled in the art that, the present disclosure is not limited by the above examples, and the above examples and the description only illustrate the principle of the present disclosure. Various changes and modifications may be made to the present disclosure without departing from the spirit and scope of the present disclosure, and such changes and modifications all fall within the claimed scope of the present disclosure. The protection scope of the present disclosure is defined by the appended claims and equivalents thereof.