Sugarcane cane sugar transport protein ShSUT2 type genes and application thereof
A technology of sucrose transporter and gene, which is applied in application, genetic engineering, plant genetic improvement, etc. It can solve problems such as unclear molecular genetic mechanism, restrictions on high-sugar variety breeding, and increased content of enzyme-synthesized sugars.
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Embodiment 1
[0040] Example 1 Cloning and analysis of the full-length coding region of the ShSUT2 gene
[0041] 1. Extraction of total RNA
[0042] Take 0.1 g of fresh sugarcane stems with 7-9 nodes (counting from the growth point downward), cut them into flakes, and grind them into powder in liquid nitrogen; add 1 mL Trizol (Gibco, Japan), and extract total RNA according to the kit instructions. Carry out 1.2% agarose gel electrophoresis detection, the result is as follows figure 1 shown. The extracted RNA has two obvious electrophoresis bands, which are 28S RNA and 18S RNA from top to bottom, indicating that the total RNA with higher purity and integrity has been obtained.
[0043] 2. Synthesis of the first strand of cDNA
[0044] Mix 5 μg of sugarcane total RNA with 1 μL (10 pmol / L) of reverse transcription primer (oligo-(dT) adapter primer), heat at 70°C for 5 minutes, place it on ice immediately, and then add 5×buffer, 2.5mmol / L dNTP mixture , Ribonuclease Inhibitor, M-MLV reverse...
Embodiment 2
[0069] Example 2. Bioinformatics analysis of ShSUT2 and its encoded protein
[0070] The full-length cDNA sequence of ShSUT2 obtained in Example 1 was subjected to bioinformatics analysis using DNAMAN and OMIGA software. The full-length sequence of ShSUT2A was 1797 bp, encoding a protein consisting of 598 amino acid residues. The full-length sequence of ShSUT2B is 1779bp, encoding a protein consisting of 592 amino acid residues. The structure diagram of ShSUT2 is shown in Figure 5 shown. The domain of ShSUT2 was analyzed with the online Blast tool, and the results showed that the protein belonged to the GPH sucrose superfamily, indicating that the protein was a member of the SUT family. The hydrophobicity of the protein was predicted by the membrane protein online prediction tool TopPred2 ( Image 6 ) and is a 12-transmembrane protein ( Figure 7 ), conforming to the structure of the sucrose transporter family, indicating that it belongs to the sucrose transporter family. ...
Embodiment 3
[0071] Example 3. Functional analysis of ShSUT2 in yeast mutants
[0072] The ShSUT2 gene amplified in Example 1 was amplified by primers containing SpeI and XhoI restriction sites (primer sequence F: 5'-GGACTAGT AGCCTGAGCCCCAGATCTCACT-3', R: 5'-GGATGGGCGGCTCTTACATACACT-3'), and the amplified The amplified target fragment was recovered and purified, connected to the pMD-19T simple (TaKaRa Code: D104A) vector, the ligated product was transformed into Escherichia coli DH5a competent cells, positive clones were screened for PCR identification of bacterial liquid, and the plasmids of positive clones were extracted Perform sequencing. Sequencing results showed that the amplified fragment had the nucleotide sequence of the coding region in sequence 2. The plasmids in the clones with correct sequencing results were extracted, digested with SpeI and XhoI, and inserted between the SpeI and XhoI restriction sites of the yeast expression vector PDR196 that had been digested with the sam...
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