WO2010069137A1 - Method for speeding up plant growth and improving yield by introducing phosphatases in transgenic plant - Google Patents
Method for speeding up plant growth and improving yield by introducing phosphatases in transgenic plant Download PDFInfo
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- WO2010069137A1 WO2010069137A1 PCT/CN2009/001465 CN2009001465W WO2010069137A1 WO 2010069137 A1 WO2010069137 A1 WO 2010069137A1 CN 2009001465 W CN2009001465 W CN 2009001465W WO 2010069137 A1 WO2010069137 A1 WO 2010069137A1
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- C—CHEMISTRY; METALLURGY
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- C12N15/00—Mutation or genetic engineering; DNA or RNA concerning genetic engineering, vectors, e.g. plasmids, or their isolation, preparation or purification; Use of hosts therefor
- C12N15/09—Recombinant DNA-technology
- C12N15/63—Introduction of foreign genetic material using vectors; Vectors; Use of hosts therefor; Regulation of expression
- C12N15/79—Vectors or expression systems specially adapted for eukaryotic hosts
- C12N15/82—Vectors or expression systems specially adapted for eukaryotic hosts for plant cells, e.g. plant artificial chromosomes (PACs)
- C12N15/8241—Phenotypically and genetically modified plants via recombinant DNA technology
- C12N15/8242—Phenotypically and genetically modified plants via recombinant DNA technology with non-agronomic quality (output) traits, e.g. for industrial processing; Value added, non-agronomic traits
- C12N15/8243—Phenotypically and genetically modified plants via recombinant DNA technology with non-agronomic quality (output) traits, e.g. for industrial processing; Value added, non-agronomic traits involving biosynthetic or metabolic pathways, i.e. metabolic engineering, e.g. nicotine, caffeine
- C12N15/8245—Phenotypically and genetically modified plants via recombinant DNA technology with non-agronomic quality (output) traits, e.g. for industrial processing; Value added, non-agronomic traits involving biosynthetic or metabolic pathways, i.e. metabolic engineering, e.g. nicotine, caffeine involving modified carbohydrate or sugar alcohol metabolism, e.g. starch biosynthesis
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- C12N15/00—Mutation or genetic engineering; DNA or RNA concerning genetic engineering, vectors, e.g. plasmids, or their isolation, preparation or purification; Use of hosts therefor
- C12N15/09—Recombinant DNA-technology
- C12N15/63—Introduction of foreign genetic material using vectors; Vectors; Use of hosts therefor; Regulation of expression
- C12N15/79—Vectors or expression systems specially adapted for eukaryotic hosts
- C12N15/82—Vectors or expression systems specially adapted for eukaryotic hosts for plant cells, e.g. plant artificial chromosomes (PACs)
- C12N15/8241—Phenotypically and genetically modified plants via recombinant DNA technology
- C12N15/8261—Phenotypically and genetically modified plants via recombinant DNA technology with agronomic (input) traits, e.g. crop yield
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- C12N9/00—Enzymes; Proenzymes; Compositions thereof; Processes for preparing, activating, inhibiting, separating or purifying enzymes
- C12N9/14—Hydrolases (3)
- C12N9/16—Hydrolases (3) acting on ester bonds (3.1)
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- Y—GENERAL TAGGING OF NEW TECHNOLOGICAL DEVELOPMENTS; GENERAL TAGGING OF CROSS-SECTIONAL TECHNOLOGIES SPANNING OVER SEVERAL SECTIONS OF THE IPC; TECHNICAL SUBJECTS COVERED BY FORMER USPC CROSS-REFERENCE ART COLLECTIONS [XRACs] AND DIGESTS
- Y02—TECHNOLOGIES OR APPLICATIONS FOR MITIGATION OR ADAPTATION AGAINST CLIMATE CHANGE
- Y02A—TECHNOLOGIES FOR ADAPTATION TO CLIMATE CHANGE
- Y02A40/00—Adaptation technologies in agriculture, forestry, livestock or agroalimentary production
- Y02A40/10—Adaptation technologies in agriculture, forestry, livestock or agroalimentary production in agriculture
- Y02A40/146—Genetically Modified [GMO] plants, e.g. transgenic plants
Definitions
- the present disclosure provides methods that speeds up plant growth and elevates plant yields by introducing phosphatases with a C-terminal motif into plants.
- the present disclosure relates to phosphatases with a C-terminal motif, and their respectively encoded protein products, as well as fragments, derivatives, homologues, and variants thereof. Methods for introducing these genes into plants to (1) speed up the growth rate of plants, (2) to increase the sugar contents of plants, and (3) to increase of yield of plants, are provided.
- Purple acid phosphatases catalyze the hydrolysis of a wide range of activated phosphoric acid mono- and di-esters and anhydrides (Klabunde et al., 1996).
- the PAP proteins are characterized by seven conserved amino acid residues (shown in bold face) in the five conserved motifs XDXX, XDXXY, GNH(D/E), XXXH, XHXH, which are involved in the coordination of the dimetal nuclear center (Fe 3+ - Me 2+ ) in the active site (Li et al., 2002), where Me is a transition metal and Me 2+ is mostly found to be Fe 2+ in mammalian, and Zn 2+ , or Mn 2+ in plants (Klabunde and Krebs, 1997; Schenk et al, 1999).
- Purple acid phosphatases are distinguished from the other phosphatases by their characteristic purple color, which is caused by a charge transfer transition at
- PAPs are insensitive to inhibition by tartrate, so they are also known as tartrate-resistant acid phosphatases (TRAPs).
- Medicago MtPAPl the transcription level of Medicago MtPAPl in roots was increased under P stress, implicating a role in P acquisition or internal mobilization (Xiao et al, 2005; Xiao et al, 2006).
- Some plant PAPs could be secreted from root cells to extracellular environment, then hydrolyze various phosphate esters. Lung et al. purified a secreted
- plant PAPs may perform some other physiological roles.
- the PAPs AtACP5 AtPAP 17
- SAP 1 SAP 1
- SAP2 del Pozo et al., 1999; Bozzo et al., 2002
- a pollen-specific PAP from Ester lily was suggested to function as an iron carrier in mature pollen (Kim and Gynheung, 1996).
- AtPAP 17 (AtACP5) was first known to be induced by phosphorus starvation. The transcription of AtPAP 17 was also responsive to ABA, salt stress (NaCl), oxidative stress (H 2 O 2 ) and leaves senescence, according to GUS activity assay. No alteration in the expression of AtPAP 17 was observed during the nitrogen or potassium starvation, and paraquat or salicylic acid. Like the other type5 acid phosphatases, AtPAP 17 displayed peroxidation activity, which may be involved in the metabolism of reactive oxygen species in stressed or senescent parts of plants.
- AtPAP 17 Besides AtPAP 17, several AtPAPs were found to be involved in phosphorus metabolism in Arabidopsis. Root secretion of AtPAP 12 was induced by P stress, and its regulation was mainly at transcriptional level (Patel et al, 1998; Coello, 2002/1 1).
- AtPAP 1 1 and AtPAP 12 were involved in phosphorus starvation response since their transcription levels increased during phosphate deprivation (Li et al, 2002; Wu et al, 2003).
- AtPAP20, 21 and 22 were irrespective to P starvation and expressed constitutively in Pi sufficient or deficient condition. Fluorescent signals were detected in the cytoplasm via the baculovirus
- AtPAP26 was purified and characterized from Pi-starved Arabidopsis suspension cell culture (Veljanovski et al, 2006). It exists as a homodimer with 55 kDa glycosylated protein, showing wide substrate specificity with the highest activity against phosphoenolpyruvate (PEP) and polypeptide phosphate. AtPAP26 also displayed alkaline peroxidase activity with the probable roles in the metabolism of reactive oxygen species. Proteomic study suggested that it may be localized in vacuole, and involved in recycling Pi from intracellular P metabolites (Shimaoka et
- PAPs can act on a wide range of substrates, but not all of them exhibit phytase activity.
- An enzyme assay involving the GST-AtPAP23 fusion protein revealed that AtPAP23 exhibits phytase activity.
- a GUS study showed that AtPAP23 is exclusively expressed in the flower of the Arabidopsis, and may play certain roles in flower
- AtPAP 15 may be involved in ascorbic acid biosynthesis with the end product /nyo-inositol of phytate hydrolysis as the precursor 35 of ascorbic acid synthesis.
- most of the functions of characterized plant PAPs are related to phosphorus metabolism. None of the functionally or biochemically characterized plant PAPs carry transmembrane motif, and none of them were shown to be associated with membrane.
- no AtPAPs or any plant PAPs have been showed to affect sugar signalling and carbon metabolism in plant.
- the present disclosure provides a method that speeds up plant growth and elevates plant yields by introducing phosphatases with a C-terminal motif into plants.
- 15 Phosphatases with a C-terminal motif, and their respectively encoded protein products, as well as fragments, derivatives, homologues, and variants thereof are disclosed.
- Methods for introducing this class of genes into plants to speed up the growth rate of plants, to increase the sugar contents of plants, and to increase of yield of plants, are provided.
- transmembrane structural element transmembrane motif
- transgenic tobacco and Arabidopsis that overexpressed AtPAPl 5, a PAP with phosphatase activity, which does not carry any C-terminal motif equivalent to that of AtPAP2; phosphatase activity was secreted into extracellular growth medium.
- Significant secretion of phosphatase activity was observed in the transgenic plants and the transgenic plants showed larger biomass than the control plants in agar and soil supplemented with exogenous phytate. Higher P content was also obtained in overexpressed transgenic lines in phytate treatment.
- the growth of transgenic plants overexpressing AtPAP 15 did not show any difference in growth phenotypes when it was compared with the wild-type, under treatments of K-P or No-P, or in soil.
- ⁇ Q example is the use of a purple acid phosphatase (PAP).
- PAP purple acid phosphatase
- the present advances are based, in part, on the characterization of a group of purple acid phosphatases (SEQ ID NOS: 1-8 and 18-47) from plants and the observations that overexpression of a purple acid phosphatase (AtPAP2, SEQ ID NO: 1) of this group in plants resulted in rapid plant growth, higher sugar content, and higher yield.
- SEQ ID NOS: 1-8 and 18-47 a group of purple acid phosphatases
- nucleotide sequences of a group of purple acid phosphatase genes (SEQ ID NOs: 1 , 3, 5, 7, 18, 20, 22, 24, 26, 28, 30, 32, 34, 36, 38, 40, 42, 44 and 46), which share a C-terminal motif/domain, from plants and amino acid sequences of their encoded proteins (SEQ ID NOS:2, 4, 6, 8, 19, 21 , 23, 25, 27, 29, 31 , 33, 35, 37, 39, 41 , 43, 45 and 47), as well as fragments, derivatives,
- nucleic acid molecules encoding the polypeptides of interest are disclosed.
- nucleic acid molecules encoding the polypeptides of interest include cDNA, genomic DNA, and RNA, are disclosed.
- Gene shall mean the
- Gene gene whereas “Gene” shall indicate the protein or polypeptide product of the Gene gene.
- isolated nucleic acid molecules hybridize under stringent 35 conditions, as defined herein, to nucleic acids having the sequence of SEQ ID NOS: 1 , 3, 5, 7, 18, 20, 22, 24, 26, 28, 30, 32, 34, 36, 38, 40, 42, 44 or 46, or homologues thereof, wherein the nucleic acid molecules encode proteins or polypeptides which exhibit at least one structural and/or functional feature of the polypeptides of the invention.
- nucleic acid molecules which are suitable for use as primers or hybridization probes for the detection of nucleic acids encoding one of the disclosed phosphatase polypeptides or other sequences.
- Yet another embodiment includes vectors, e.g., recombinant expression vectors, comprising a nucleic acid molecule of the invention.
- vectors e.g., recombinant expression vectors
- host cells containing such a vector or engineered to contain and/or express a nucleic acid J Q molecule of the invention and host cells containing a nucleotide sequence of the invention operably linked to a heterologous promoter are disclosed.
- a further embodiment includes methods for preparing a polypeptide of the invention by a recombinant DNA technology in which the host cells containing a recombinant expression vector encoding a polypeptide of the invention or a * -* nucleotide sequence encoding a polypeptide of the invention operably linked to a heterologous promoter, are cultured, and the polypeptide of the invention are produced.
- a transgenic plant contains a nucleic acid molecule which encodes an isolated polypeptides or proteins comprising the five conserved motifs of purple acid phosphatases, including XDXX, XDXXY, GNH(D/E), XXXH, XHXH, and linked to a C-terminal motif.
- Embodiments further provide antibodies that immunospecifically bind a polypeptide of the invention.
- Such antibodies include, but are not limited to, 5 antibodies from various animals, humanized, chimeric, polyclonal, monoclonal, bi- specific, multi-specific, single chain antibodies, Fab fragments, F(ab') 2 fragments, disulfide-linked Fvs, fragments containing either a VL or VH domain or even a complementary determining region (CDR), that immunospecifically binds to a polypeptide of the invention.
- CDR complementary determining region
- method for detecting the presence, activity or expression of a polypeptide of the invention or similar polypeptide in a biological material such as cells, culture media, and so forth are provided.
- the increased or decreased activity or expression of the polypeptide in a sample relative to a control 35 sample can be determined by contacting the biological material with an agent that can detect directly or indirectly the presence, activity or expression of the polypeptide of the invention.
- an agent is an antibody or a fragment thereof which immunospecifically binds to a one of the disclosed polypeptides.
- a fusion protein comprising a bioactive molecule and one or more domains of a disclosed polypeptide or fragment thereof.
- fusion proteins comprising a bioactive molecule recombinantly fused or chemically conjugated (including both covalent and non- covalent conjugations) to one or more domains of a disclosed polypeptide or fragments thereof.
- transgenic tobacco and Arabidopsis that overexpressed j Q AtPAPl 5, a PAP with phosphatase activity, which does not carry any C-terminal motif and was found to be secreted into extracellular growth medium.
- Significant secretion of phosphatase activity was observed in the transgenic plants and the transgenic plants showed larger biomass than the control plants in agar and soil supplemented with exogenous phytate.
- Higher P content was also obtained in ' -* overexpressed transgenic lines in phytate treatment.
- the growth of transgenic plants overexpressing AtPAPl 5 did not show any difference in growth phenotypes when it was compared with the wild-type, under treatments of K-P or No- P, or in soil.
- this disclosure is the first report to show that overexpressing a phosphatase with a C-terminal motif in transgenic plant is able to speed up the growth of the plants, to increase the sugar contents of plants, and to increase the yield of plants, by altering the carbon metabolism of the plants. 5
- homologue refers to a polypeptide that possesses a 30 similar or identical function to polypeptides encoded by SEQ ID NOS: 2, 4, 6, 8, 19, 21 , 23, 25, 27, 29, 31 , 33, 35, 37, 39, 41 , 43, 45 and 47, and/or a fragment of these polypeptides, that do not have an identical amino acid sequence of these polypeptides and/or a fragment of these polypeptides.
- a polypeptide that has a similar amino acid sequence included in the definition of the term "homologue” includes a polypeptide that satisfied at least one of the following: (i) polypeptide having an amino acid sequence that is one or more of at least about 30%, at least about 40%, at least about 50%, at least about 60%, at least about 70%, at least about 80%, at least about 90%, and at least about 98% identical, (ii) a polypeptide encoded by a nucleotide sequence that is one or more of at least about 30%, at least about 40%, at least about 50%, at least about 60%, at least about 70%, at least about 80%, at least about 90%, and at least about 98%identical and/or conservatively substituted to one or more of the nucleotide sequences encoding the polypeptides of SEQ ID NOS: 2, 4, 6, 8, 19, 21 , 23, 25, 27, 29, 31 , 33, 35, 37, 39, 41 , 43, 45 and 47, and/or a fragment of the these polypeptides; (ii
- 6, 8, 19, 21 , 23, 25, 27, 29, 31 , 33, 35, 37, 39, 41, 43, 45 and 47, and/or a fragment of these polypeptides refers to a polypeptide that has a similar secondary, tertiary, or quaternary structure of these polypeptides, or a fragment of these polypeptides.
- the structure of a polypeptide can be determined by methods known to those skilled in the art, including but not limited to, X-ray crystallography, nuclear magnetic resonance, and crystallographic electron microscopy.
- the term "homologue” is used herein to describe a sequence that has sequence homology. A sequence having sequence homology can be made using standard molecular biology techniques including site- directed mutagenesis including insertion or deletion of sequences.
- the term "homologue” is not limited to homologous genes or proteins originating from different species and expressly includes artificial modification to the sequences disclosed herein.
- conservatively substituted variant refers to a polypeptide or a nucleic acid sequence encoding a homologue polypeptide in which one or more amino j Q acid residues or codons have been modified by conservative substitution with an amino acid residue or a codon coding for an amino acid residue of similar chemical- type, as described below.
- an antibody or an antibody fragment which immunospecif ⁇ cally binds to polypeptides encoded by SEQ ID NOS: 2, 4, 6, 8, 19, 21 , 23, 25, 27, 29, 31 ,
- an antibody or a fragment thereof that immunospecifically binds to polypeptides encoded by SEQ ID NOS: 2, 4, 6, 8, 19, 21 , 23, 25, 27, 29, 31 , 33, 35, 37, 39, 41 , 43, 45 and 47, or a fragment of these polypeptide may cross-react with other antigens.
- an antibody or a fragment thereof that immunospecifically binds to polypeptides encoded by SEQ ID NOS: 2, 4, 6, 8, 19, 21 , 23, 25, 27, 29, 31 , 33, 35, 37, 39, 41 , 43, 45 and 47, or a fragment of these polypeptide can be identified by, for example, immunoassays or other techniques known to those skilled in the art.
- an antibody or an antibody fragment which immunospecifically binds polypeptides encoded by SEQ ID NOS: 2, 4, 6, 8, 19, 21 , 23, 25, 27, 29, 31 , 33, 35, 37, 39, 41 , 43, 45 and 47 may be interchangeably referred to as "anti-PAP antibody”.
- derivative refers to a given peptide or protein that is
- fragment refers to a fragment of a nucleic acid molecule containing one of at least about 25, at least about 30, at least about 35, at least about 40, at least about 45, at least about 100, at least about 150, at least about 200, at least about 250, at least about 300, at least about 350, at least about 400, at least about 450, at least about 500, at least about 550, at least about 600, at least about 650, at least about 700, at least about 750, at least about 800, at least about 850, at least about 900, at least about 950, at least about 1000, at least about 1050, at least j o about 1 100, at least about 1 150, at least about 1200, at least about 1250, at least about 1300, at least about 1350, from about 500 to about 2000, from about 1000 to about 2000 from about 200 to about 500, from about 500 to about 1000, form about 1000 to about 1500, and from about 1500 to about 2000nucleic acid bases in length of the relevant nucleic
- nucleic acid molecule (or the encoded protein has one functional feature of the protein encoded by the nucleic acid molecule); or a fragment of a protein or a polypeptide containing one or more of at least about 5, at least about 10, at least about 15, at least about 20, at least about 25, at least about 30, at least about 35, at least about 40, at least about 45, at least about 50, at least about 55, at least about 60, at least about 65, at least about 70, at least about 75, at least about 80, at least about 90, at least about 100, at least about 120, at least about 140, at least about 160, at least about 180, at least about 200, at least about 220, at least about 240, at least about 260, at least about 280, at least about 300, at least about 320, at least about 340, at least about 360, from
- an “isolated” nucleic acid molecule is one which is separated from other nucleic acid molecules which are present in the natural source of the nucleic acid molecule. Moreover, an “isolated” nucleic acid molecule, such as a cDNA molecule, can be substantially free of other cellular materials, or culture medium when produced
- nucleic acid molecules encoding the disclosed polypeptides/proteins are isolated or purified.
- operably linked refers to when transcription under the control of the "operably linked” promoter produces a functional messenger RNA, translation of which results in the production of the polypeptide encoded by the DNA operably linked to the promoter.
- under stringent condition refers to hybridization and washing conditions under which nucleotide sequences having homology to each other remain hybridized to each other.
- hybridization conditions are described in, for example j Q but not limited to, Current Protocols in Molecular Biology, John Wiley & Sons, N. Y. (1989), 6.3.1-6.3.6.; Basic Methods in Molecular Biology, Elsevier Science Publishing Co., Inc., N. Y. (1986), pp. 75-78, and 84-87; and Molecular Cloning, Cold Spring Harbor Laboratory, N. Y. (1982), pp. 387-389, and are well known to those skilled in the art.
- a preferred, non-limiting example of stringent hybridization ' ⁇ conditions is hybridization in 6X sodium chloride/sodium citrate (SSC), 0.5% SDS at about 68°C followed by one or more washes in 2X SSC, 0.5% SDS at room temperature.
- Another preferred, non-limiting example of stringent hybridization conditions is hybridization in 6X SSC at about 45°C followed by one or more washes in 0.2X SSC, 0.1% SDS at about 50-65°C.
- variant refers either to a naturally occurring allelic variation of a given peptide or a recombinantly prepared variation of a given peptide or protein in which one or more amino acid residues have been modified by amino acid substitution, addition, or deletion.
- aligned refers to a homology alignment between two or more sequences using a standard algorithm such as BLAST (http://blast.ncbi.nlm.nih.gov/Blast.cgi).
- FIG. 1 shows the phylogenetic tree of PAP-like sequences in the Arabidopsis genome. Twenty-nine PAPs were aligned using ClustalX and the phylogenetic tree was created by the neighbor-joining algorithm of the MEGA4 program. The accession numbers of the PAP-like, transmembrane-like C-terminal motif containing, polypeptide from Ze ⁇ mays (ZmPAP2) and Oryza sativa (OsPAP2) were ACG47621 and BAC 15853.1 , respectively.
- ZmPAP2 Ze ⁇ mays
- OsPAP2 Oryza sativa
- FIG 2A is the amino acid alignment of AtPAP2 with other PAP sequences, showing the full length of each sequence.
- These sequences include homologous sequences from B. napus (BnPAP2), G. max (GmPAP2) and Z. may (ZmPAP2).
- the five conserved motifs (XDXX, XDXXY, GNH(D/E), XXXH, XHXH) are boxed.
- j Residues in shades have low or no homology.
- Hydrophobic motifs at the C-termini of these polypeptides are underlined by a bar (614 th -636 lh amino acid), which is absent from the sequence of AtPAP 15. As shown, AtPAP 15 does not have a C-terminal region corresponding to the other PAP sequences.
- FIG. 2B is the amino acid alignment of the C-terminal transmembrane-like u motifs in AtPAP2 and its homologous sequences.
- FIG. 3 shows that a unique hydrophobic motif is present at the C- termini of AtPAP2 and ZmPAP2 by TMHMM analysis. This transmembrane-like C-terminal motif is absent from AtPAPl 5.
- FIG. 4 shows the characteristics of the T-DNA lines.
- the T-DNA line (SaIk O 13567) was obtained from TAIR.
- the AtP AP2 genomic sequence carries two exons and the T-DNA was inserted in exon 2 and causes a disruption of the AtP AP2 mRNA (a).
- Three PCR primers (A, B and C) were designed for the differentiation of the wild-type (WT) and the T-DNA line (atpap2-8) and they were used for PCR
- FIG. 5 is the schematic diagram of the expression vector pBV-AtPAP2.
- CaMV 35S 35S promoter of the cauliflower mosaic virus; NOS: polyadenylation signal of nopaline synthase gene; aadA: bacterial streptomycin/spectinomycin resistance gene encoding aminoglycoside-3"-adenyltransferase; pNOS:BAR: bialaphos resistance gene under the control of the nopaline synthase promoter; bom: basis of mobility from pBR322; CoIEl : replication origin from pBR322; pVSl-REP: replication origin from pVSl ; pVSl-STA: STA region from pVSl plasmid; LB: left border T-DNA repeat; RB: right border T-DNA repeat. (Hajdukiewicz et al., 1994).
- FIG. 6A shows the results of the Western blot analysis of the overexpression j o lines (OE), wild-type (WT), T-DNA and the complementation lines (CP) of AtP AP2 and
- FIG. 6B shows the results of the Western blot analysis of the overexpression lines (C- 15) and wild-type (WT) of AtPAP 15.
- FIG. 7 shows the expression analysis of AtPAP2.
- the mRNA expression profile was analysed by the Spot History program of NASC (a).
- FIG. 8 shows the growth performance of the wild-type, T-DNA and overexpression lines in soil. Seeds were germinated in MS agar with 2% sucrose for 10 days. Seedlings with 2 small visible rosette leaves ( ⁇ 1 mm) were transferred to soil and grown under 16h/8h light/dark cycles.
- FIG. 9 shows the levels of sucrose and glucose in the rosette leaves of 21 -day- old, soil grown seedlings.
- FIG. 1 Detection of AtPAP2 protein in subcellular fractions by Western blotting. Mito.: Mitochondria; Chlorop.: Chloroplasts.
- Fig. 12. shows a schematic representation of two vector constructs 35 incorporating the AtPAP2 gene.
- Fig. 13. shows Western blot analysis results for overexpression of AtPAP2 proteins missing the C-terminal motif.
- the present disclosure provides a method that speeds up plant growth and elevates plant yields by introducing phosphatases with a C-terminal motif into plants.
- the present disclosure relates to a class of genes of purple acid phosphatases, and their respectively encoded protein products, as well as fragments, derivatives, homologues, and variants thereof. Methods for introducing this class of genes into plants to speed up the growth rate of plants, to increase the sugar contents of plants, and to increase of yield of plants, are provided.
- a group of purple acid phosphatases which carry seven conserved amino acid residues (shown in bold face) in the five conserved motifs XDXX (example GDXG (SEQ ID NO: 48)), XDXXY (SEQ ID NO: 49), GNH(D/E) (SEQ ID NOS: 50-51), XXXH (example ZXGH (SEQ ID NO: 52)), XHXH (SEQ ID NO: 53), where X is any amino acid and Z is any amino acid selected from L, I, V, F, andM, and a transmembrane-like motif at their C-termini were identified in the genomes of a number of plants (FIGS.
- PAPs purple acid phosphatases
- PAPs did not carry any C-terminal motif (FIGS. 2A, 2B, and 3).
- AtPAP2 to blast the NCBI database and various EST databases, a number of genomic or cDNA sequences were identified to encodes polypeptides that carry the five conserved motifs XDXX, XDXXY, GNH(D/E), XXXH, XHXH of PAPs and a transmembrane motif at their C-termini (FIG. 2A).
- this disclosure provides a method that speeds up plant growth and elevates plant yields by introducing phosphatases into plants.
- a group of genes of purple acid phosphatases, and their respectively encoded protein products, as well as fragments, derivatives, homologues, and variants thereof are described.
- nucleic acid molecules SEQ ID NOS: 1 , 3, 5, 7, 18, 20, 22, 24, 26, 28, 30, 32, 34, 36, 38, 40, 42, 44 and 46
- polypeptides SEQ ID NOS: 2, 4, 6, 8, 19, 21 , 23, 25, 27, 29, 31, 33, 35, 37, 39, 41 , 43, 45 and 47
- nucleic acid molecules and polypeptides also encompass those nucleic acid molecules and polypeptides having a common biological activity, similar or identical structural domain and/or having sufficient nucleotide sequence or amino acid identity (homologues) to those of the nucleic acid molecules and polypeptides described above.
- Such common biological activities of the polypeptides include antigenicity, immunogenicity, catalytic activity especially phosphatase activity, ability to bind a Fe 3+ -Me 2+ dimetal nuclear center, fold into or form a transmembrane-like C-terminal motif and other activities readily assayable by the skilled artisan.
- a polypeptide that has a similar amino acid sequence refers to a polypeptide that satisfied at least one of the following: (i) a polypeptide having an amino acid sequence that is one of at least about 30%, at least about 40%, at least about 50%, at least about 60%, at least about 70%, at least about 80%, at least about 90%, and at least about 95%, and at least about 98% identical and/or conservatively
- AtPAP2 amino acid sequence of a AtPAP2 (SEQ ID NO: 2) and/or other amino acid sequence of a AtPAP2 (SEQ ID NO: 2) and/or other amino acid sequence of a AtPAP2 (SEQ ID NO: 2) and/or other amino acid sequence of a AtPAP2 (SEQ ID NO: 2) and/or other amino acid sequence of a AtPAP2 (SEQ ID NO: 2) and/or other amino acid sequence of a AtPAP2 (SEQ ID NO: 2) and/or other amino acid sequence of a AtPAP2 (SEQ ID NO: 2) and/or other amino acid sequence of a AtPAP2 (SEQ ID NO: 2) and/or other amino acid sequence of a AtPAP2 (SEQ ID NO: 2) and/or other amino acid sequence of a AtPAP2 (SEQ ID NO: 2) and/or other amino acid sequence of a AtPAP2 (SEQ ID NO: 2) and/or other amino acid sequence of a AtPAP2 (SEQ ID NO: 2) and/
- a polypeptide with similar structure to AtPAP2, or a fragment of AtPAP2 refers to a polypeptide that has a similar secondary, tertiary, or quaternary structure of AtPAP2, a fragment of AtPAP2 and has at least one functional feature of a AtPAP2, including one or more of ability to bind a Fe 3+ -Me 2+ dimetal nuclear center and fold into or form a transmembrane-like C-terminal motif.
- the structure of a polypeptide can be determined by methods known to those skilled in the art, including but not limited to, X-ray crystallography, nuclear magnetic resonance, and crystallographic electron microscopy.
- Sequences useful in practicing the embodiments include sequences having homology to SEQ ID NOS: 1-8 and 18-47 and being a protein, polypeptide, or polynucleotide coding for such protein or peptide having functionality to bind a dimetal nuclear center (Fe 3+ -Me 2+ ) and being a protein, polypeptide, or polynucleotide coding for such protein or peptide having a C-terminal motif.
- such homologues can have about 30% or more identity to the sequences disclosed herein. In another embodiment, such homologues can have about 40% or more identity to the sequences disclosed herein. In yet another embodiment, such homologues can have about 50% or more identity to the sequences disclosed herein. In sill yet another embodiment, such homologues can have about 60% or more identity to the sequences disclosed herein. In even sill yet another embodiment, such homologues can have about 70% or more identity to the sequences disclosed herein. In a further embodiment, such homologues can have about 80% or more identity to the sequences disclosed herein. In yet a still further embodiment, homologues can have about 90% or more identity to the sequences disclosed herein.
- homologues can have about 98% or more identity to the sequences disclosed herein. j Q Those having skill in the art will recognize that mutations can be made to proteins and peptides and/or to polynucleotides coding for protein and peptides or complementary thereto that substitute amino acid residue for other amino acids residues having similar chemical properties (conservative substitutions) and that such mutations are less likely to cause structural changes that affect functionality including
- amino acids are substituting an amino acid residue belong to any of the following 1 1 chemical groups with another amino acid from the same chemical group: (1) acidic (negatively charged) amino acids such as aspartic acid and glutamic acid; (2) basic (positively charged) amino acids such as arginine, histidine, and lysine; (3) neutral polar amino acids such as glycine, serine, threonine, cysteine, tyrosine, asparagine, and glutamine; (4) neutral nonpolar (hydrophobic) amino acids such as alanine, leucine, isoleucine, valine, proline, phenylalanine, tryptophan, and methionine; (5) amino acids having aliphatic side chains such as glycine, alanine,
- amino acids having aliphatic-hydroxyl side chains such as serine and threonine
- amino acids having amide-containing side chains such as asparagine and glutamine
- amino acids having aromatic side chains such as phenylalanine, tyrosine, and tryptophan
- amino acids having basic side chains such as lysine, arginine, and histidine
- amino acids having sulfur-containing side
- amino acids having similar geometry and hydrogen bonding patterns such as aspartic acid, asparagine, glutamic acid and glutamine.
- homologues can have about 30% or more identity and/or 35 conservative substitutions to the sequences disclosed herein. In another embodiment, homologues can have about 40% or more identity and/or conservative substitutions to the sequences disclosed herein. In yet another embodiment, homologues can have about 50% or more identity and/or conservative substitutions to the sequences disclosed herein. In still yet another embodiment, homologues can have about 60% or more identity and/or conservative substitutions to the sequences disclosed herein. In a further embodiment, homologues can have about 70% or more identity and/or conservative substitutions to the sequences disclosed herein. In a still further embodiment, homologues can have about 80% or more identity and/or conservative substitutions to the sequences disclosed herein. In still another embodiment, homologues can have about 90% or more identity and/or conservative substitutions to j Q the sequences disclosed herein. In still another further embodiment, homologues can have about 98% or more identity and/or conservative substitutions to the sequences disclosed herein.
- Embodiments further provide isolated nucleic acid molecules which comprise or consist of one or more of at least about 25, at least about 30, at least about 35, at
- SEQ ID NOS: 1 25 sequences of SEQ ID NOS: 1 , 3, 5,7, 18, 20, 22, 24, 26, 28, 30, 32, 34, 36, 38, 40, 42, 44 and 46, or a complement thereof encoding a protein or polypeptide having one or more activity of the amino acid sequences of their encoded proteins (SEQ ID NOS: 2, 4, 6, 8, 19, 21 , 23, 25, 27, 29, 31 , 33, 35, 37, 39, 41 , 43, 45 and 47).
- the activity includes one or more of antigenicity, immunogenicity, catalytic activity (e.g., phosphatase activity), ability to bind a Fe 3+ -Me 2+ dimetal nuclear center, fold into or form a transmembrane-like C-terminal motif, and other activities readily assayable.
- Embodiments provide isolated polypeptides or proteins consisting of an amino acid sequence that contains one of about 5, at least about 10, at least about 15, at least
- Additional embodiments are any of the phosphatases and homologues thereof with the identity and/or conservative substitutions to SEQ ID NOS: 1 -8 and 18-47 described above that additionally consist of a protein, polypeptide, or polynucleotide encoding a protein having the five conserved motifs in purple acid phosphatases, including XDXX, XDXXY, GNH(D/E), XXXH, XHXH, where X is any amino acid.
- the described phosphatases and homologues thereof consist of a protein, polypeptide, or polynucleotide encoding one of the sequences YHVCIGNHEYDF (SEQ ID NO: 54) and YHVCIGNHEYDW (SEQ ID NO: 55).
- the described phosphatases and homologues thereof consist of a protein, polypeptide, or polynucleotide encoding a sequence of amino acid residues having one of the sequences YHVCIGNHEYD(W/F) (SEQ ID NO: 54) and YHVCIGNHEYN(W/F) (SEQ ID NO: 55) or a protein, polypeptide, or polynucleotide encoding a homologue to one of the foregoing sequences with only conservative substitutions, as described above, to those sequences.
- the described phosphatases and homologues thereof consist of a protein, polypeptide, or polynucleotide encoding a sequence of amino acid residues having one of the sequences GNHE (SEQ ID NO: 51 ) and GNHD (SEQ ID NO: 50).
- the described phosphatases and homologues thereof consist of a protein, polypeptide, or polynucleotide encoding a sequence of amino acid residues having one of the sequences GNHE (SEQ ID NO: 51 ) and GNHD (SEQ ID NO: 50).
- the described phosphatases and homologues thereof consist of a protein, polypeptide, or polynucleotide encoding a sequence of amino acid residues having one of the sequences GNHE (SEQ ID NO: 51 ) and GNHD (SEQ ID NO: 50).
- a protein, polypeptide, or polynucleotide encoding a protein having a homologous sequence to one of the foregoing sequences SEQ IN NOS: 50-51 with only conservative substitutions are any of the phosphatases and homologues thereof with the identity and/or conservative substitutions to SEQ ID NOS: 1-8 and 18-47 described above that additionally consist of a protein, polypeptide, or polynucleotide encoding a sequence having at least about 70% or more identity and/or conservative substitutions to amino acid residues 302-315 of SEQ ID NO: 2 when such sequence is aligned with SEQ ID NO: 2.
- the described phosphatases and homologues thereof consist of a protein, polypeptide, or polynucleotide encoding a protein having about 80% or more identity and/or conservative substitutions to amino acid residues 302-315 of SEQ ID NO: 2 when such sequence is aligned with SEQ ID NO: 2.
- the described phosphatases and homologues consist of a protein, polypeptide, or polynucleotide encoding a sequence of amino acid
- the described phosphatases and homologues thereof consist of a protein, polypeptide, or polynucleotide encoding a sequence of amino acid residues having the sequence HIGDISYARGYSW (SEQ ID NO: 56) or a protein, polypeptide, or polynucleotide
- the described phosphatases and homologues thereof consist of a protein, polypeptide, or polynucleotide encoding a sequence of amino acid residues having at least about 70% or more identity to the sequences KEKLTVSFVGNHDGEVHD (SEQ ID NO: 57), KERLTLSYVGNHDGEVHD (SEQ ID NO: 58), REKLTLTYVGNHDGQVHD (SEQ ID NO: 59), and KEKLTLTYIGNHDGQVHD (SEQ ID NO: 60).
- the described phosphatases and homologues thereof consist of a protein, polypeptide, or
- polynucleotide encoding a sequence of amino acid residues having one or more of the sequences KEKLTVSFVGNHDGEVHD (SEQ ID NO: 57), KERLTLSYVGNHDGEVHD (SEQ ID NO: 58), REKLTLTYVGNHDGQVHD (SEQ ID NO: 59), and KEKLTLTYIGNHDGQVHD (SEQ ID NO: 60) or a protein, polypeptide, or polynucleotide encoding a protein having a homologous sequence to
- the described phosphatases and homologues thereof consist of a protein, polypeptide, or polynucleotide encoding a sequence of amino 3 5 acid residues having the sequence (F/Y)(V/I)GNHDGXXH (SEQ ID NOS : 61 -64), where the first residue of the sequence can be F or Y and the second residue of the sequence can be V or I.
- the described phosphatases and homologues thereof consist of a protein, polypeptide, or polynucleotide encoding a sequence of amino acid residues having the sequence (F/Y)(V/I)GNHDGXXH (SEQ ID NOS: 61-64), where the first residue of the sequence can be F or Y and the second residue of the sequence can be V or I, or a protein, polypeptide, or polynucleotide encoding a protein having a homologous sequence to the foregoing sequence with only conservative substitutions, as described above, to the foregoing sequence.
- the described phosphatases and homologues thereof consist of a protein, polypeptide, or polynucleotide encoding a sequence of amino j o acid residues having the sequence (F/Y)(V/I)GNHDGXXH (SEQ ID NOS: 61 -64), where the first residue of the sequence can be F or Y and the second residue of the sequence can be V or I, or a protein, polypeptide, or polynucleotide encoding a protein having a homologous sequence having at least about 70% identity and/or conservative substitution, as described above, to the foregoing sequence.
- the described phosphatases and homologues thereof consist of a protein, polypeptide, or polynucleotide encoding a sequence of amino acid residues having at least about 60% or more identity and/or conservative substitutions to amino acid residues 614-636 of SEQ ID NO: 2 (SEQ ID NO: 65) and/or having at least about 60% or more identity and/or conservative substitutions to the sequence of 23 amino acid residues of SEQ ID NOS: 4, 6, 8, 19, 21 , 23, 25, 27, 29, 31 , 33 and 47 aligned with residues 614-636 of SEQ ID NO: 2 (SEQ ID NO: 65) , and where amino acid residues aligned with amino acid residues 614-636 of SEQ ID NO: 2 are predicted to form a transmembrane-like C-terminal motif by TMHMM
- the described phosphatases and homologues thereof consist of a protein, polypeptide, or polynucleotide encoding a sequence of amino acid residues having at least about 70% or more identity and/or conservative substitutions to amino acid residues 614-636 of
- SEQ ID NO: 2 (SEQ ID NO: 65) and/or having at least about 60% or more identity
- the described phosphatases and homologues thereof consist of a protein, polypeptide, or polynucleotide encoding a sequence of amino acid residues having at least about 80% or more identity and/or conservative substitutions to amino acid residues 614-636 of SEQ ID NO: 2 and/or having at least about 60% or more identity and/or conservative substitutions to the sequence of 23 amino acid residues of SEQ ID NOS: 4, 6, 8, 19, 21, 23, 25, 27, 29, 31, 33 and 47 aligned with residues 614-636 of SEQ ID NO: 2 (SEQ ID NO: 65) , and where amino acid residues aligned with amino acid residues 614-636 of SEQ ID NO: 2 (SEQ ID NO: 65) are predicted to form a transmembrane- like C-terminal motif by TMHMM analysis
- the described phosphatases and homologues thereof consist of a protein, polypeptide, or polynucleotide encoding a sequence of amino acid residues having at least about 90% or more identity and/or conservative substitutions to amino acid residues 614-636 of SEQ ID NO: 2 and/or having at least about 90% or more identity and/or conservative
- the described phosphatases or phosphatase genes consist of a protein, polypeptide, or polynucleotide encoding the sequence (L/M/V)-(L/M/V)- Z-(G/A)-(V/A/L)-Z-Z-G-(F/Y)-X-Z-G (SEQ ID NO: 66), where Z is any of the hydrophobic residues L, I, V, F, and M.
- the described 5 phosphatase or phosphatase genes consist of a protein, polypeptide, or polynucleotide encoding the sequence (L/M/V)-(L/M/V)-Z-(G/A)-(V/A/L)-Z-Z-G-(F/Y)-X-Z-G (SEQ ID NO: 66), or a protein, polypeptide, or polynucleotide encoding a sequence having at least 70% identity and/or conservative substitution to the foregoing sequence.
- Embodiments also encompass derivatives of the disclosed polypeptides.
- derivatives may include peptides or proteins that have been modified, e.g., by glycosylation, acetylation, pegylation, phosphorylation, amidation, derivatization by known protecting/blocking groups,
- proteolytic cleavage linkage to a cellular ligand or other protein, etc. Any of numerous chemical modifications may be carried out by known techniques, including, but not limited to, specific chemical cleavage, acetylation, formylation, etc. Additionally, the derivative may contain one or more non-classical amino acids.
- an isolated nucleic acid molecule encodes a variant of a polypeptide in which the amino acid sequences have been modified by genetic engineering so that biological activities of the polypeptides are either enhanced or reduced, or the local structures thereof are changed without significantly altering the biological activities.
- these variants can act as either agonists or as antagonists.
- An agonist can retain substantially the same or a portion of the biological activities of the polypeptides and an antagonist can inhibit one or more of the
- mutagenesis may be performed in accordance with any of the
- oligonucleotide having one or more modifications within the sequence of a given polypeptide to be modified.
- Site-specific mutagenesis can be conducted using specific oligonucleotide sequences which encode the nucleotide sequence containing the desired mutations in addition to a sufficient number of adjacent nucleotides in the polypeptide.
- Such oligonucleotides can serve as primers which can form a stable duplex on both sides of the deletion junction being traversed.
- a primer of about 15 to about 75 nucleotides or more in length is preferred, with about 10 to about 25 or more residues on both sides of the junction of the sequence being altered.
- a 5 number of such primers introducing a variety of different mutations at one or more positions can be used to generate a library of mutants.
- 30 directed mutagenesis is performed by first obtaining a single-stranded vector or melting apart of two strands of a double stranded vector which includes within its sequence a DNA sequence which encodes the desired peptide.
- An oligonucleotide primer bearing the desired mutated sequence is prepared, generally synthetically. 35
- This primer is then annealed with the single-stranded vector, and subjected to DNA polymerizing enzymes such as T7 DNA polymerase, in order to complete the synthesis of the mutation-bearing strand.
- T7 DNA polymerase DNA polymerizing enzymes
- a heteroduplex is formed wherein one strand encodes the original non-mutated sequence and the second strand bears the desired mutation.
- This heteroduplex vector is then used to transform or transfect appropriate cells, such as E.
- coli cells, and clones are selected which include recombinant vectors bearing the mutated sequence arrangement.
- the technique typically employs a phage vector which exists in both a single stranded and double stranded form.
- Typical vectors useful in site-directed mutagenesis include vectors such as the Ml 3 phage. These phages are readily commercially available and their use is generally well known to those skilled in the j Q art.
- Double stranded plasmids are also routinely employed in site directed mutagenesis which eliminates the step of transferring the gene of interest from a plasmid to a phage.
- thermostable enzymes such as Taq DNA polymerase may be used to incorporate a mutagenic
- oligonucleotide primer into an amplified DNA fragment that can then be cloned into an appropriate cloning or expression vector. See, e.g., Tomic et al., Nucleic Acids Res., 18(6): 1656, 1987, and Upender et al., Biotechniques, 18(l):29-30, 32, 1995, for PCR-mediated mutagenesis procedures, which are hereby incorporated in their entireties.
- thermostable ligase in addition to a thermostable polymerase may also be used to incorporate a phosphorylated mutagenic oligonucleotide into an amplified DNA fragment that may then be cloned into an appropriate cloning or expression vector (see e.g., Michael, Biotechniques, 16(3):410-2, 1994, which is hereby incorporated by reference in its entirety).
- sequence variants of a given polypeptide or a fragment thereof can be used.
- recombinant vectors encoding the amino acid sequence of the polypeptide or a fragment thereof may be treated with mutagenic agents, such as hydroxylamine, to obtain sequence variants.
- the amino acid residues to be modified are surface exposed residues.
- the amino acid residue to be substituted is a conservative amino acid substitution, for example, a polar residue is substituted with a polar residue, a hydrophilic residue with a 35 hydrophilic residue, hydrophobic residue with a hydrophobic residue, a positively charged residue with a positively charged residue, or a negatively charged residue with a negatively charged residue.
- the amino acid residue that can be modified is not highly or completely conserved across strains or species and/or is critical to maintain the biological activities of the protein.
- nucleic acid molecules encoding a polypeptide of the invention that contains amino acid modifications that are not critical to its biological activity.
- the present disclosure further encompasses fusion proteins in which the polypeptides or fragments thereof, are recombinantly fused or chemically conjugated (e.g., covalent and non-covalent conjugations) to heterologous polypeptides (i.e., an unrelated polypeptide or portion thereof, preferably at least 10, at least 20, at least 30, at least 40, at least 50, at least 60, at least 70, at least 80, at least 90 or at least 100 , r amino acids of the polypeptide) to generate fusion proteins.
- heterologous polypeptides i.e., an unrelated polypeptide or portion thereof, preferably at least 10, at least 20, at least 30, at least 40, at least 50, at least 60, at least 70, at least 80, at least 90 or at least 100 , r amino acids of the polypeptide
- the fusion can be direct, but may occur through linker sequences.
- the fusion protein comprises a polypeptide which is fused to a heterologous signal sequence at its N-terminus.
- the signal sequence naturally found in the polypeptide can be replaced by a signal sequence which is 20 derived from a heterologous origin.
- Various signal sequences are commercially available.
- a polypeptide in another embodiment, can be fused to tag sequences, e.g., a hexa-histidine peptide, among others, many of which are commercially available. As described in Gentz et al., 1989, Proc. Natl. Acad. ScL USA, 86:821-824, for instance, 25 hexa-histidine provides for convenient purification of the fusion protein.
- peptide tags are the hemagglutinin "HA” tag, which corresponds to an epitope derived from the influenza hemagglutinin protein (Wilson et al., 1984, Cell, 37:767) and the “flag” tag (Knappik et al., 1994, Biotechniques, 17(4):754-761). 30 These tags are especially useful for purification of recombinantly produced polypeptides.
- Fusion proteins can be produced by standard recombinant DNA techniques or by protein synthetic techniques, e.g., by use of a DNA synthesizer.
- a nucleic acid molecule encoding a fusion protein can be synthesized by conventional techniques including automated DNA synthesizers.
- PCR amplification of gene fragments can be carried out using anchor primers which give rise to complementary overhangs between two consecutive gene fragments which can subsequently be annealed and reamplified to generate a chimeric gene sequence (see, e.g., Current Protocols in Molecular Biology, Ausubel et al., eds., John Wiley & Sons, 1992).
- the nucleotide sequence coding for a fusion protein can be inserted into an appropriate expression vector, i.e., a vector which contains the necessary elements for the transcription and translation of the inserted protein-coding sequence.
- the expression of a fusion protein is regulated by an j Q inducible promoter.
- Carbon flow is a key process in plant biology and high energy carbon molecules (e.g. glucose) were harvested by plant through photosynthesis. The carbon molecules were then converted into more complicated carbohydrate molecules such as starch, cellulose, etc.
- carbohydrate molecules such as starch, cellulose, etc.
- Cellulose is the major component of cell wall and starch is the major storage form of glucose in plant cells and plant seeds. Therefore, the efficiency ,, department and/or the equilibrium of the carbon flow process become a limiting factor for plant growth and crop yield.
- the present disclosure is based upon the discovery that overexpression of a membrane-bound phosphatase can enhance the growth performance of plants by altering its carbon metabolism, as indicated by, for example, a faster growth rate, a 25 higher sugar contents, and a higher seed yield.
- the present disclosure provides a transgenic plant containing a nucleic acid molecule that encodes and expresses a phosphatase having a C-terminal transmembrane-like domain.
- the transgenic plants disclosed herein have faster growth rate, and higher seed yield to comparable unengineered plants i.e. same 30 species (strain).
- such a phosphatase is from a plant species having a phosphatase activity and a C-terminal motif.
- a transgenic plant disclosed herein comprises a nucleic acid molecule encoding phosphatase and expresses AtPAP2 (SEQ ID NO: 2) and/or other PAPs with a C- 35 terminal motif including one or more of SEQ ID NOS: 4, 6, 8, 19, 21, 23, 25, 27, 29, 31 , 33, 35, 37, 39, 41 , 43, 45 and 47.
- the phosphatase is expressed on cellular membrane, for example, the ER or the Golgi apparatus.
- Such a membrane expression of a phosphatase in plants can be achieved by fusing onto the C-terminus with a nucleotide sequence encoding a C-terminal motif peptide which can efficiently attach the phosphatase upon translation thereof from the cells of a given plant.
- a transgenic plant comprises a nucleic acid molecule encoding phosphatase and expresses AtPAP2 (SEQ ID NO: 2) and/or other PAPs with a C-terminal motif including SEQ ID NOS: 4, 6, 8, 19, 21 , 23, 25, 27, 29, 31 , 33, 35, 37, 39, 41, 43, 45 and 47, except that all or a portion, particularly an N-terminal portion, of amino acid residues 1 to 80, preferably all or a portion of amino acid residues 1 to 30, of SEQ ID NO: 2 or all or a portion, particularly an N-terminal portion, of amino acid residues 1 to 80, preferably all or a portion of amino acid residues 1 to 30, of SEQ ID NOS: 4, 6, 8, 19, 21 , 23, 25, 27, 29, 31 , 33, 35, 37, 39, 41 , 43, 45 or 47, are replaced by a heterologous plant signal peptide by genetic engineering.
- a transgenic plant comprises a nucleic acid molecule encoding phosphatase and expresses homologues, derivatives, and/or fragments thereof having at least one functional feature and/or structural feature of a phosphatase polypeptide.
- the embodiments include homologues to such sequences, as described above, having at least one functional feature and/or structural feature of a phosphatase polypeptide.
- a transgenic plant comprises a nucleic acid molecule that hybridizes under stringent conditions, as defined herein, to a nucleic acid molecule having the sequence of SEQ ID NOS: 1 , 3, 5, 7, 18, 20, 22, 24, 26, 28, 30, 32, 34, 36, 38, 40, 42, 44 or 46, or a complement thereof, and encodes a protein or polypeptide that exhibits at least one structural and/or functional feature of the disclosed phosphatase polypeptides.
- the production of transgenic plant that overexpressed a membrane-bound phosphatase which contributes to improving plant physiology, such as plant growth rate and characteristics, for example, in seed yield, is provided.
- chimeric gene constructs for genetic modification of plants to increase their growth rate and improve the yield.
- the chimeric gene constructs comprise a sequence that encodes substantially solely for a phosphatase enzyme that carry a C-terminal transmembrane-like motif.
- a phosphatase enzyme can be derived from the purple acid phosphatase family.
- the chimeric gene constructs comprise a nucleic acid having the sequence of SEQ ID NOS: 1 , 3, 5, 7, 18, 20, 22, 24, 26, 28, 30, 32, 34, 36, 38, 40, 42, 44 or 46.
- the chimeric gene constructs comprise a nucleic acid molecule that encodes a homologue or fragment thereof having at least one functional feature and/or structural feature of a phosphatase polypeptide.
- the chimeric gene constructs comprise a sequence that j Q hybridizes under stringent conditions, as defined herein, to a nucleic acid having the sequence of SEQ ID NOS: 1 , 3, 5, 7, 18, 20, 22, 24, 26, 28, 30, 32, 34, 36, 38, 40, 42, 44 or 46, or a complement thereof, wherein the sequence encodes a protein or a polypeptide that exhibits at least one structural and/or functional feature of the phosphatase polypeptides.
- molecules contained in the chimeric gene constructs can be any other phosphatases that have similar structural characteristics, such as having a C-terminal transmembrane-like motif, to those of the phosphatases described herein.
- phosphatase include, but not limited to, the following polypeptides: Purple acid phosphatases from Zea mays (Accession No: ACG47621); and Oryza sativa (Accession No: BAC15853.1).
- the phosphatase-coding sequence is operatively linked to upstream and downstream regulatory components, preferably heterologous to the phosphatase sequence; for example CMV 35S promoter, which acts to cause expression of the
- the method described herein also favors the growth rate of the plant, resulting in faster growth rate and higher yield.
- the time required for the maturation of the plant 35 and the time required for flowering is shortened.
- methods for increasing growth rate and yield of plants comprising the step of inserting into such plant cells or the cells of such whole plants a chimeric gene construct.
- Arabidopsis (see Section 6) was adopted as the model system.
- An overexpression construct the gene coding for phosphatase were introduced into Arabidopsis.
- the phosphatase from Arabidopsis is used.
- the results obtained with this disclosure indicate that the growth rate and the seed yield of transgenic Arabidopsis were enhanced by overexpressing this gene ⁇ see Section 6.5 and FIG. 8 and Table 3).
- any plant species can be modified using the expression cassette and methods described herein, preferably included without limitation are species from the following genera with representative species in parentheses:
- Monocots genera Asparagus (asparagus), Bromus (cheatgrass), Hemerocallis (daylily), Hordeum (barley), Lolium (ryegrass), Oryza (rice), Panicum (Switchgrass), Pennisetum (fountaingrass), Saccharum (Sugar cane), Sorghum, Trigonella (fenu grass), Triticum (wheat), Zea (corn); and
- Dicots genera Antirrhinum (flower sp.), Arabidopsis (thaliana), Arachis (peanut), Atropa (deadly nightshade), Brassica (rapeseed), Browallia, Capsicum (pepper), Carthamus (safflower), Cichorium (chicory), Citrus (orange, lemon), Chrysanthemum, Cucumis (cucumber), Datura (thorn apple), Daucus (carrot), Digitalis (foxglove), Fragaria (strawberry), Geranium (flower sp.), Glycine (soybean), Helianthus (sunflower), Hyscyamus, Ipomoea (morning glory), Latuca (lettuce), Linum (linseed), Lotus (flower sp.), Lycopersicon (tomato), Majorana, Malva (cotton), Manihot, Medicago (alfalfa), Nemesia, Nicotiana (tobacco),
- A. tumef ⁇ ciens which in nature infects plants by inserting tumor causing genes into a plant's genome, is altered. Selected genes are engineered into the T-DNA of the bacterial Ti (tumor-inducing) plasmid of A. tumefaciens in laboratory conditions so that they become integrated into the plant chromosomes when the T-DNA is transferred to the plant by the bacteria's own internal transfer mechanisms.
- the only essential parts of the T-DNA are its two small (25 base pair) border repeats, at least one of which is needed for plant transformation.
- the bacterial genes encoding for plant hormones that promote tumor growth are excised from the T-DNA and replaced with a sequence of DNA that typically contains: a selectable marker (e.g.
- Agrobacterium can be added to plant protoplasts (plant cells with cell walls removed) in culture, that are then allowed to regenerate cell walls at which point non-transformed plants are killed with antibiotics for which the transformed plants have been given resistance genes. Plantlets are then regenerated from the surviving transformed cells using standard plant tissue culture techniques. In an alternative technique, sterile disks or fragments of vegetative portions of plants are place in liquid culture medium with
- Agrobacterium then hormones are used to induce rooting thereby regenerate plantlets which are grown on selection media.
- a third technique for delivering genes is possible for some plants such as Arabidopsis where the Agrobacterium or even "naked" DNA can be infused through the seed coat to cause transformation (Clough SJ and Bent AF, 1998. Floral dip: a simplified method for Agrobacterium-med ⁇ ated transformation of Arabidopsis thaliana. Plant J 16:735-43).
- the method can be practiced on whole plants and is particularly effective on meristematic tissue. It is also capable of delivering DNA either to the nucleus or into mitochondria (Johnston, S. A., et al., 1988. Mitochondrial transformation in yeast by bombardment with microprojectiles (Science 240, 1538-41 ) and chloroplasts (Svab, Z., et ah, 1990, Stable transformation of plastids in higher plants, Proc Natl Acad Sci. USA 87, 8526-8530).
- electroporation method of plant genetic engineering has met with less success.
- protoplasts in culture take up pure DNA when treated with certain membrane-active agents or with electroporation, a rapid pulse of high-voltage direct current. Once the DNA has entered the protoplast it can be integrated into the cells genome. Standard tissue culture techniques are then used to regenerate transgenic plants.
- microinjection method of plant genetic engineering is perhaps the most j Q difficult.
- DNA is microinjected into target plant cells using very thin glass needles in a method similar to that used with animals.
- the technique is laborious, ineffective, and impractical for generating large numbers of transgenic plants.
- the method chosen for genetically engineering plants is most often dependent ' ⁇ on the targeted plant species and which methods have been proven effective therein.
- Antibodies which specifically recognize one of the described phosphatase 20 polypeptides or fragments thereof can be used for detecting, screening, and isolating the polypeptide of the invention or fragments thereof, or similar sequences that might encode similar enzymes from the other organisms.
- an antibody which immunospecifically binds AtPAP2 or fragments thereof can be used for various in vitro detection assays, including enzyme-linked immunosorbent assays (ELISA), radioimmunoassays, Western blot, etc., for the detection of the polypeptide of the invention or fragments, derivatives, homologues, or variants thereof, or similar molecules having the similar enzymatic activities as the phosphatase polypeptides, in samples, for example, a biological material, including 30 plant cells, plants, food, drinks, or any materials derived from plants.
- ELISA enzyme-linked immunosorbent assays
- radioimmunoassays radioimmunoassays
- Western blot etc.
- Antibodies specific for the described phosphatase polypeptides can be generated by any suitable method known in the art.
- Polyclonal antibodies to an antigen-of-interest can be produced by various procedures well known in the art.
- an antigen derived from the phosphatase polypeptide can be administered to various host animals including, but not limited to, rabbits, mice, rats, etc., to induce the production of antisera containing polyclonal antibodies specific for the antigen.
- adjuvants may be used to increase the immunological response, depending on the host species, and include but are not limited to, Freund's (complete and incomplete) adjuvant, mineral gels such as aluminum hydroxide, surface active substances such as lysolecithin, pluronic polyols, polyanions, peptides, oil emulsions, keyhole limpet hemocyanins, dinitrophenol, and potentially useful adjuvants for humans such as BCG (Bacille Calmette-Gueriri) and Corynebacterium parvum.
- BCG Bacille Calmette-Gueriri
- Corynebacterium parvum include but are not limited to, Freund's (complete and incomplete) adjuvant, mineral gels such as aluminum hydroxide, surface active substances such as lysolecithin, pluronic polyols, polyanions, peptides, oil emulsions, keyhole limpet hemocyanins, dinitrophenol, and potentially useful adjuvants for humans
- Monoclonal antibodies can be prepared using a wide variety of techniques j Q known in the art including the use of hybridoma, recombinant, and phage display technologies, or a combination thereof.
- monoclonal antibodies can be produced using hybridoma techniques including those known in the art and taught, for example, in Harlow et at., Antibodies: A Laboratory Manual, (Cold Spring Harbor Laboratory Press, 2nd ed. 1988); Hammerling, et ai, in: Monoclonal Antibodies and
- the term “monoclonal antibody” as used herein is not limited to antibodies produced through hybridoma technology.
- the term “monoclonal antibody” refers to an antibody that is derived from a single clone, including any eukaryotic, prokaryotic, or phage clone, and not the method by which it is produced.
- mice can be immunized with an antigen of interest or a cell expressing such an antigen.
- the mouse spleen is harvested and splenocytes isolated.
- the splenocytes are then fused by well known techniques to any suitable myeloma cells.
- Hybridomas are selected and cloned by limiting dilution.
- the hybridoma clones are then assayed by methods known in the art for cells that secrete antibodies capable of binding the antigen.
- Ascites fluid which generally contains high levels of antibodies, can be generated by inoculating mice intraperitoneally with positive hybridoma clones.
- Antibody fragments which recognize specific epitopes may be generated by
- Fab and F(ab') 2 fragments may be produced by proteolytic cleavage of immunoglobulin molecules, using enzymes such as papain (to produce Fab fragments) or pepsin (to produce F(ab') 2 fragments).
- F(ab') 2 fragments contain the complete light chain, and the variable region, the CHl region and the hinge region of the heavy chain.
- the antibodies or fragments thereof can be also produced by any method known in the art for the synthesis of antibodies, in particular, by chemical synthesis or preferably, by recombinant expression techniques.
- nucleotide sequence encoding an antibody may be obtained from any information available to those skilled in the art (i.e., from Genbank, the literature, or by routine cloning). If a clone containing a nucleic acid encoding a particular j Q antibody or an epitope-binding fragment thereof is not available, but the sequence of the antibody molecule or epitope-binding fragment thereof is known, a nucleic acid encoding the immunoglobulin may be chemically synthesized or obtained from a suitable source (e.g., an antibody cDNA library, or a cDNA library generated from, or nucleic acid, preferably poly A+ RNA, isolated from any tissue or cells expressing the
- '-> antibody such as hybridoma cells selected to express an antibody
- PCR amplification using synthetic primers hybridizable to the 3' and 5' ends of the sequence or by cloning using an oligonucleotide probe specific for the particular gene sequence to identify, e.g., a cDNA clone from a cDNA library that encodes the antibody.
- Amplified nucleic acids generated by PCR may then be cloned into replicable cloning vectors using any method well known in the art.
- nucleotide sequence of the antibody may be manipulated using methods well known in the art for the manipulation of nucleotide sequences, e.g., recombinant DNA techniques, site
- Recombinant expression of an antibody requires construction of an expression vector containing a nucleotide sequence that encodes the antibody. Once a nucleotide sequence that encodes the antibody is constructed of an expression vector containing a nucleotide sequence that encodes the antibody. Once a nucleotide
- the vector for the production of the antibody molecule may be produced by recombinant DNA technology using techniques well known in the art as discussed in the previous sections. Methods which are well known to those skilled in the art can be used to construct expression vectors containing antibody coding sequences and appropriate transcriptional and translational control signals. These methods include, for example, in vitro recombinant DNA techniques, synthetic techniques, and in vivo genetic recombination.
- nucleotide sequence encoding the heavy-chain variable region, light-chain variable region, both the heavy-chain and light-chain variable regions, an epitope-binding fragment of the heavy- and/or light-chain variable region, or one or j Q more complementarity determining regions (CDRs) of an antibody may be cloned into such a vector for expression.
- CDRs complementarity determining regions
- embodiments include host cells containing a polynucleotide encoding an antibody specific for the disclosed phosphatase polypeptides or fragments thereof.
- the host cell can be co-transfected with two expression vectors, the first vector encoding a heavy chain derived polypeptide and the second vector encoding a light chain derived polypeptide.
- the two vectors may contain identical selectable markers which enable equal expression of heavy and light chain polypeptides or different selectable markers to ensure maintenance of both plasmids.
- a single vector may be used which encodes, and is capable of expressing, both heavy and light chain polypeptides. In such situations, the light chain should be placed before the heavy chain to avoid an excess of toxic free heavy chain (Proudfoot, 1986, Nature, 322:52; and Kohler, 1980, Proc. Natl. Acad. ScL USA, 77:2197).
- 25 sequences for the heavy and light chains may comprise cDNA or genomic DNA.
- antibodies can also be generated using various phage display methods known in the art.
- phage display methods functional antibody domains are displayed on the surface of phage particles which carry the polynucleotide sequences encoding them.
- phage can be utilized to display antigen binding domains, such as Fab and Fv or disulfide- bond stabilized Fvs, expressed from a repertoire or combinatorial antibody library (e.g., human or murine).
- Phage expressing an antigen binding domain that binds the antigen of interest can be selected or identified with antigen, e.g., using labeled
- Phages used in these methods are typically filamentous phage, including fd and Ml 3.
- the antigen binding domains are expressed as a recombinantly fused protein to either the phage gene III or gene VIII protein.
- Examples of phage display methods that can be used to make the immunoglobulins, or fragments thereof, include those disclosed in Brinkman et al, 1995, J Immunol. Methods 182:41-50; Ames et al, 1995, J. Immunol. Methods 184: 177-186; Kettleborough et al., 1994, Eur. J.
- the antibody coding regions from the phage can be isolated and used to generate whole antibodies, including human antibodies, or any other desired fragments, and expressed in any desired host, including mammalian cells, insect cells, plant cells, yeast, and bacteria, e.g., as described in detail below.
- an antibody molecule may then be purified by any method known in the art for purification of an immunoglobulin molecule, for example, by chromatography ⁇ e.g., ion exchange, affinity, particularly by affinity for the specific antigen after Protein A or Protein G purification, and sizing column chromatography), centrifugation, differential solubility, or by any other standard techniques for the purification of proteins.
- the antibodies or fragments thereof may be fused to heterologous polypeptide sequences described herein or otherwise known in the art to facilitate purification.
- Antibodies fused or conjugated to heterologous polypeptides may be used in in vitro immunoassays and in purification methods ⁇ e.g., affinity chromatography) well known in the art. See e.g., PCT publication Number WO 93/21232; EP 439,095; Naramura et al., 1994, Immunol Lett. 39:91-99; U.S. Patent 5,474,981 ; Gillies et al., 1992, PNAS 89: 1428-1432; and Fell et al., 1991 , J Immunol. 146:2446-2452, which are incorporated herein by reference in their entireties.
- Antibodies may also be attached to solid supports, which are particularly useful for immunoassays or purification of the described polypeptides or fragments, derivatives, homologues, or variants thereof, or similar molecules having the similar enzymatic activities as the polypeptide of the invention.
- solid supports include, but are not limited to, glass, cellulose, polyacrylamide, nylon, polystyrene, polyvinyl I Q chloride or polypropylene.
- An exemplary method for detecting the presence or absence of an over- I c expressed phosphatase polypeptide or an inserted phosphatase-encoding nucleic acid in a biological sample involves obtaining a biological sample from various sources and contacting the sample with a compound or an agent capable of detecting a polypeptide or nucleic acid (e.g., mRNA, genomic DNA) such that the presence of a heterologous polypeptide or nucleic acid is detected in the sample.
- a compound or an agent capable of detecting a polypeptide or nucleic acid e.g., mRNA, genomic DNA
- An exemplary 0 agent for detecting mRNA or genomic DNA encoding an inserted phosphatase polypeptide is a labeled nucleic acid probe capable of hybridizing to mRNA or genomic DNA encoding any of the described phosphatase polypeptides.
- the nucleic acid probe can be, for example, a full-length cDNA, such as the nucleic acid of SEQ ID NOS: 1 ,3, 5, 7, 18, 20, 22, 24, 26, 28, 30, 32, 34, 36, 38, 40, 42, 44 or 46, or a portion thereof, such as an oligonucleotide of at least one of at least about 15, at least about 20, at least about 25, at least about 30, at least about 50, at least about 100, at least about 250, at least about 500, or more nucleotides in length and sufficient to specifically hybridize under stringent conditions to a mRNA or genomic DNA 30 encoding a polypeptide of the invention.
- a full-length cDNA such as the nucleic acid of SEQ ID NOS: 1 ,3, 5, 7, 18, 20, 22, 24, 26, 28, 30, 32, 34, 36, 38, 40, 42, 44 or 46, or a portion thereof, such as an oligonucleotide of at least one of at least about 15, at least about 20, at least about 25, at least about 30,
- An exemplary agent for detecting an over-expressed phosphatase polypeptide is an antibody capable of binding to a phosphatase polypeptide product of an inserted phosphatase gene, preferably an antibody with a detectable label.
- Antibodies can be polyclonal, or more preferably, monoclonal. An intact antibody, or a fragment thereof 35 (e.g., Fab or F(ab') 2 ) can be used. See also the detailed descriptions about antibodies in Section 5.5.
- labeled with regard to the probe or antibody, is intended to encompass direct labeling of the probe or antibody by coupling (i.e., physically linking) a detectable substance to the probe or antibody, as well as indirect labeling of the probe or antibody by reactivity with another reagent that is directly labeled.
- indirect labeling include detection of a primary antibody using a fluorescently labeled secondary antibody and end-labeling of a DNA probe with biotin such that it can be detected with fluorescently labeled streptavidin.
- J Q detection method can be used to detect mRNA, protein, or genomic DNA in a sample in vitro as well as in vivo.
- in vitro techniques for detection of mRNA include Northern hybridizations and in situ hybridizations.
- in vitro techniques for detection of a heterologous polypeptide include enzyme linked immunosorbent assays (ELISAs), Western blots, immunoprecipitations and immunofluorescence.
- ELISAs enzyme linked immunosorbent assays
- Western blots Western blots
- immunoprecipitations immunofluorescence.
- in vivo techniques for detection of a heterologous polypeptide include introducing into a subject organism a labeled antibody directed against the polypeptide.
- the antibody can be labeled with a radioactive marker whose presence and location in the subject organism can be detected by standard imaging techniques, including autoradiography.
- the methods further involve obtaining a control sample from a control subject, contacting the control sample with a compound or agent capable of detecting an over-expressed polypeptide product or the mRNA
- Embodiments also encompasse kits for detecting the presence of a heterologous polypeptide or nucleic acid in a test sample.
- the kit can comprise a labeled compound or agent capable of 35 detecting the polypeptide or mRNA encoding the polypeptide in a test sample and means for determining the amount of the polypeptide or mRNA in the sample (e.g., an antibody which binds the polypeptide or an oligonucleotide probe which binds to DNA or mRNA encoding the polypeptide). Kits can also optionally include instructions for use.
- a labeled compound or agent capable of 35 detecting the polypeptide or mRNA encoding the polypeptide in a test sample and means for determining the amount of the polypeptide or mRNA in the sample (e.g., an antibody which binds the polypeptide or an oligonucleotide probe which binds to DNA or mRNA encoding the polypeptide).
- Kits can also optionally include instructions for use.
- the kit can comprise, for example: (1) a first antibody (e.g., attached to a solid support) which binds to a phosphatase polypeptide; and, optionally, (2) a second, different antibody which binds to either the polypeptide or the first antibody and is conjugated to a detectable agent.
- a first antibody e.g., attached to a solid support
- a second, different antibody which binds to either the polypeptide or the first antibody and is conjugated to a detectable agent.
- the kit can comprise, for example: (1) an oligonucleotide, e.g., a detectably labeled oligonucleotide, which hybridizes to a
- kits can also comprise, e.g., a buffering agent, a preservative, or a protein stabilizing agent.
- the kit can also comprise components necessary for detecting the detectable agent (e.g., an enzyme or a substrate).
- ' ⁇ can also contain a control sample or a series of control samples which can be assayed and compared to the test sample contained.
- Each component of the kit is usually enclosed within an individual container and all of the various containers are within a single package along with instructions for use.
- the transgenic plants generated can have many useful applications, including food, feed, biomass, biofuels (starch, cellulose, seed lipids) and wood pulp.
- the enhanced growth rate of the transgenic plants may provide additional carbon dioxide fixation per hectare of land per year and thus generate carbon credits.
- AtPAP2 was found to share 72% sequence identity in amino acid sequence with AtPAP9.
- Two sequences from Zea mays (Accession No: ACG47621) and Oryza sativa (Accession No: BAC15853.1) were found to share 58% and 57% a.a. identity with AtPAP2, respectively. Their 25 sequences were aligned in FIG. 2.
- AtPAP2-like sequences from other plant species that carry a hydrophobic motif at their C- termini were retrieved by tblastn program from Plant GDB database
- AtPAP2 uses the amino acid sequence of AtPAP2 as the search sequence.
- cDNA and protein sequences that share high homology with that of AtPAP2 were identified in Zea mays (SEQ ID NOs: 7 and 8), Brassica rapa (SEQ ID NOs: 18 and 19), Hordeum vulgare (SEQ ID NOs: 20 and 21 ), Medicago truncatula (SEQ ID NOs: 22 and 23), 35 Physcomitrella patens (SEQ ID NOs: 24 and 25), Populus trichocarpa (SEQ ID NOs: 26 and 27), Saccharum officinarum (SEQ ID NOs: 28 and 29), Solarium tuberosum (SEQ ID NOs: 30 and 31), Vitis vinifera (SEQ ID NOs: 32 and 33), Oryza sativa (SEQ ID NOs: 34 and 35), Gossypium hirsutum (SEQ ID NOs: 36 and 37) Panicum virgatum (SEQ
- the cDN A sequences of AtPAP-like sequences were amplified from a local Glycine max variety (SEQ ID NO: 5) and the Brassica napus cultivar Westar (SEQ ID NO: 46) by RT-PCR using primers designed from corresponding EST sequences, which were retrieved from the Plant GDB database (http://www.plantgdb.org/).
- T-DNA insertion lines of PAP2 gene (Arabidopsis genomic locus name: Salk_013567), in the Col ecotype were obtained from Arabidopsis Biological
- cDNA was amplified for 30 cycles, with an annealing temperature of 50 0 C and using elongation factor (EF) primers, EF-I (5'- GTTTCACATCAACATTGTGGTCA TTGG -3, SEQ ID NO: 14) and EF- 2 (5 1 - GAGTACTTGGGGGTAGTGGC ATCC-3, SEQ ID NO: 15) (Axelos et al, 1989) for control experiment.
- EF elongation factor
- the inability of the T-DNA line to express protein was confirmed by Western blotting analysis (FIG. 4). Antiserum specific to AtPAP2 was raised in rabbit as described in Section 6.3. j Q To create transgenic AtPAP2 overexpressing lines or expressing this gene in the knockout mutants, the full length coding region of the AtP AP2 cDNA was amplified by PCR using primers P2YF (SEQ ID NO: 12) and P2NR ( SEQ ID NO: 13). A Sail site and a Spel site were engineered into P2YF and P2NR, respectively. The resulting product (1976bp) was inserted into the Xhol/Spe I sites of a binary
- the vector was introduced into Agrobacterium tumefaciens strain GV3101 and then transformed by the floral dip method (Clough and Bent, 1998), into wild- type CoI-O to generate PAP2-overexpressing lines or into homologous pap2 plants (T- DNA lines) to generate complementation lines.
- T- DNA lines homologous pap2 plants
- AtPAP2 protein was overexpressed in OE lines but was absence from the T-DNA line.
- the homozygous T3 seeds of the transgenic plants were used for further analysis.
- AtPAP 15 overexpression lines
- the cDNA of AtPAP 15 was also amplified by RT-PCR and then subcloned into a plant binary vector which bared a kanamycin-resistant gene and a cauliflower mosaic virus 35S promoter (CaMV).
- This expression construct named was then mobilized into Agrobacterium tumefaciens strain EHAl 05 by freeze-thaw transformation (Hofgen and Willmitzer, 1988) and transformed into Arabidopsis. Transgenic status was further confirmed by
- AtPAP 15 protein was overexpressed in OE lines.
- the homozygous T3 seeds of the transgenic plants were used for further analysis.
- AtP AP2 cDNA corresponding to the N terminal 120 amino acids was amplified using forward primer P2AF (5'- GGTTGAGCTCGATTCTAAAGCGACC ATTTC-3', SEQ ID NO: 16) and reverse primer P2AR (5'- TTTTGGTACCTCAGGATCCGAA AGTCAGC-3', SEQ ID NO: 17).
- the PCR product was cleaved by Sad and Kpn ⁇ and cloned into the pRsetA
- the overexpressed His-AtPAP2 fusion proteins in inclusion bodies were centrifuged at 5000 x g for 15 min, and the pellets were solubilized in 150 mM NaCl, 8 M urea, and 20 mM Tris-HCl, pH 7.5.
- the fusion proteins were purified on a HisTrap FF (GE Healthcare) column and were used for standard immunization protocols in rabbits.
- AtPAP2 The mRNA expression level of AtPAP2 was analyzed by the Spot History program (http://affymetrix.arabidopsis.info/narrays/spothistory.pl) that presented the
- AtPAP2 expression levels of a given gene in thousands of microarray (Affymetrix ATHl microarray) database. Spot history analysis indicated that the expression of AtPAP2 was constitutive but is relative low in most experimental circumstances (FIG. 7a). To determine AtPAP2 expression levels, different tissues of wild-type A. thaliana (CoI-O) were collected.
- TTBS washing buffer pH 7.6
- specific anti-AtPAP2 antiserum for 3 hours or overnight at an 1 : 1000 dilution at 4°C .
- HRP-labeled secondary antibody diluted 1 : 10,000 in TTBS washing buffer was added.
- AtPAP2 protein was expressed in all tissues tested (Leaf, Flower, Stem, Root, Silique) at equal levels.
- the protein expression level of AtPAP2 during germination was very stable too (FIG. 7c) and was independent of phosphorus status (FIG. 7d).
- Arabidopsis seeds were soaked in water at 4°C for 3 days. The seeds were surface sterilized and sown on Murashige and Skoog (MS) medium supplemented with 2% (w/v) sucrose for 10 days. Seedlings with 2 rosette leaves of the same size were transferred to soil under Long Day (16h light at 22 0 C/ 8h dark atl 8°C) or Short
- Flowering time was started to be measured by scoring the number of rosette leaves and cauline leaves when the primary inflorescence florescence reached 1 cm above the rosette leaves. Ten to 20 plants were scored for each line (Liu et al., 2008; Wu et ⁇ /., 2008).
- Table 3A OE lines ; produced more siliques and seeds (Trial 1).
- OE lines produced more siliques and seeds (Trial 2).
- Rosette leaves of plants of various developmental stages were harvested at the end of the light period of 21 -day-old plants.
- Soluble sugars were extracted from Arabidopsis using chloroform/methanol method (Lunn et ai, 2006; Antonio et ai, 2007; Luo et al, 2007).
- 100 mg plant tissues were ground to a fine powder in liquid nitrogen and mixed and vortexed with 250 ⁇ l ice-cold chloroform: methanol (3:7, v/v). Soluble metabolites were then extracted at -20 °C overnight. 200 ⁇ l water was added to the mixture with repeated shaking. The extracts were centrifuged at 16000 x g for lOmin and the supernatant was collected.
- the pellet was re-extracted by 200 ⁇ l water and the supernatant was collected by centrifugation as described above. The combined supernatant was evaporated to dryness using a SpeedVac and the pellet was re- dissolved in 200 ⁇ l water. Finally, debris was removed by centrifugation at 16000 x g for 30min. 20 ⁇ l filtered samples were analyzed by an API-3000 triple-quadrupole mass spectrometer (Applied Biosystems) via an electrospray ionization source.
- the peaks were identified by comparison with glucose and sucrose standards and the amount of sugars were quantified by standard curves of these sugars.
- the Analyst 1.3.1 software (Applied Biosystems) was used for data acquisition, peak integration, and calculation.
- Seeds of wild-type, T-DNA, OE7 and OE21 lines were germinated in MS (2% sucrose) medium for 10 days. Seedlings with 2 small visible rosette leaves (l mm) of * the same size were transferred to soil for another 12 days in normal growth conditions (LDs, 16h/light (22°C)/8h darkness (18 0 C)). The light source of the growth chamber was then switched off for 12 days. Then the plants were allowed to recover under the 16h/light (22°C)/8h darkness (18°C) cycle for 10 days. The plants that stayed green and that continued to emerge inflorescence were recorded in Table 4.
- Rosette leaves of three-week-old wild-type (Col-0) Arabidopsis were harvested and stored at -80 °C freezer until use.
- Tissues (4-5 g) were ground to fine powder in liquid nitrogen using a mortar with a pestle. The powder was transferred into 10 ml grinding buffer (0.3 M sucrose, 40 mM Tris-HCl (pH 7.8), 5 mM MgCh, ImM PMSF) and swelled on ice for 5 min. Homogenization was performed for two 30-second pulses at high-speed setting. The homogenate was filtered through two layers of Miracloth (Tetko, Elmsford, N. Y., USA).
- the homogenate was separated by centrifugation at 350 g for 10 min at 4 0 C.
- the pellet (crude nuclear) was further layered onto 1 ml of 2.3 M sucrose, 50 mM Tris-HCl (pH 8.8), 5 mM MgCh in an Eppendorf tube for centrifugation at 15,000 g 10 min at 4 0 C, to obtain the nuclear fraction in the derived pellet.
- Supernatants from the first low-speed centrifugation 350 g
- the pellet contained large particles including mitochondria, chloroplasts and peroxisomes.
- the supernatant was further centrifuged at 100,000 x g for 1 h at 4 °C to yield the soluble cytosol fraction in the resulting supernatant.
- the pellet representing the membrane fraction was resuspended in 0.1 ml grinding buffer. Protein concentration in the extract was determined following the method of Bradford (Bradford, 1976) using the Bio-Rad Protein Assay Kit I.
- leaf tissues were homogenized in grinding buffer (62.5 mM Tris-HCl, pH 7.5, 5 mM DTT, 1% (v/v) bovine serum albumin, 2 mM phenylmethylsulfonyl fluoride, 2 ⁇ g/ml leupeptin, 2 ⁇ g/ml E-64, 2 ⁇ g/ml pepstatin A) using a Polytron (full speed, 3 x 10 s). The homogenate was centrifuged at 1 ,000 x g for 3 min. The pellet was washed with ice-cold grinding buffer (without 1% BSA)
- the subcellular fractions were run in a SDS-PAGE gel and were probed with anti-AtPAP2 antiserum. AtPAP2 was detected in membrane and soluble protein fractions but not in nucleus, mitochondria nor chloroplasts (FIG. 1 1).
- Arabidopsis plants transformed with the AtPAP2 gene have the following phenotypes when they were compared with the wild-type: (1) Faster growth rate (Tables 1 and 2); (2) Higher sucrose content (FIG. 9); (3) Higher glucose content (FIG. 9); and (4) Higher crop yield (Table 3).
- j Q Those skilled in the art will recognize, or be able to ascertain many equivalents to the specific embodiments described herein using no more than routine experimentation. Such equivalents are intended to be encompassed by the following claims.
- a ⁇ figure or a parameter from one range may be combined with another figure or a parameter from a different range for the same characteristic to generate a numerical range.
- Sucrose phosphate synthesis (SPS), sucrose synthesis (SuSy), cytosolic invertase and cell wall invertase activities in the shoot of 20-day-old plants were determined. Samples were collected 8h after the light and dark period (Long Day). SPS activity was measured under both optimal (Vmax) and limiting (V limit) assay conditions (Park et al, 2008). SuSy, cytosolic invertase and insoluble cell wall invertase activities were also determined (Doehlert, 1987). The assays were repeated three times and the SPS (Vmax and V limit) activities of both independent lines were significantly higher than that of the wild-type and T-DNA lines in all three repeated experiments. The data of a representative experiment is shown in table 5. In contrast to SPS, SuSy, cytosolic invertase and cell wall invertase activities were not different among the lines.
- Floral dip a simplified method for Agrobacterium-mediated transformation of Arabidopsis thaliana. Plant J, 16, 735-743.
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| CN200980151612.8A CN102257146B (en) | 2008-12-18 | 2009-12-16 | Method for accelerating plant growth and improving yield by introducing phosphatase into transgenic plants |
| CA2746796A CA2746796C (en) | 2008-12-18 | 2009-12-16 | Method for speeding up plant growth and improving yield by introducing phosphatases in transgenic plant |
| BRPI0922980A BRPI0922980A8 (en) | 2008-12-18 | 2009-12-16 | METHOD TO ACCELERATE PLANT GROWTH AND IMPROVE PRODUCTION BY INTRODUCING PHOSPHATASE INTO TRANSGENIC PLANT |
| AU2009327244A AU2009327244B2 (en) | 2008-12-18 | 2009-12-16 | Method for speeding up plant growth and improving yield by introducing phosphatases in transgenic plant |
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| US9573980B2 (en) | 2013-03-15 | 2017-02-21 | Spogen Biotech Inc. | Fusion proteins and methods for stimulating plant growth, protecting plants from pathogens, and immobilizing Bacillus spores on plant roots |
| IL315468A (en) | 2014-09-17 | 2024-11-01 | Spogen Biotech Inc | Fusion proteins, recombinant bacteria, and methods for using recombinant bacteria |
| CA3221950A1 (en) | 2016-03-16 | 2017-09-21 | Spogen Biotech Inc. | Methods for promoting plant health using free enzymes and microorganisms that overexpress enzymes |
| CN106282081B (en) * | 2016-08-31 | 2020-02-11 | 江南大学 | Method for high yield of vitamin C-2-phosphate |
| EP3750579B1 (en) * | 2018-02-09 | 2025-12-31 | Daicel Corporation | INJECTOR |
| CN110770339B (en) * | 2018-08-17 | 2023-06-02 | 邦泰生物工程(深圳)有限公司 | A kind of acid phosphatase mutant, its application and the method for preparing nicotinamide riboside |
| KR101964658B1 (en) | 2018-10-24 | 2019-04-02 | 서울대학교산학협력단 | GmPAP2.1 gene from Glycine max controlling plant disease resistance against Soybean mosaic virus and uses thereof |
| CN109828019A (en) * | 2019-02-21 | 2019-05-31 | 南昌大学 | The method that electron spray extraction ionization mass spectrometry quickly detects Citrus Huanglongbing pathogen |
| CN113789344B (en) * | 2021-08-13 | 2023-06-09 | 中国热带农业科学院热带作物品种资源研究所 | Application of SgPAP7 in Improving Plants' Ability to Utilize Endogenous Organic Phosphorus |
| CN116200413A (en) * | 2023-02-23 | 2023-06-02 | 华南农业大学 | Soybean low phosphorus resistance related gene GmACP17a, encoding protein and application thereof |
| CN120485231B (en) * | 2025-05-15 | 2025-11-18 | 中国农业科学院北京畜牧兽医研究所 | Application of the MsCEPR1 gene and its encoded protein in alfalfa tolerance to low phosphorus stress |
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| US9238819B2 (en) | 2011-05-04 | 2016-01-19 | Versitech Limited | Method for speeding up plant growth and improving yield by altering expression levels of kinases and phosphatases |
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| WO2008022570A1 (en) * | 2006-08-18 | 2008-02-28 | The Chinese University Of Hong Kong | Method to alleviate abiotic stress in plants |
| WO2008134372A2 (en) * | 2007-04-26 | 2008-11-06 | The Samuel Roberts Noble Foundation, Inc. | Production of proanthocyanidins to improve forage quality |
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| DATABASE GENBANK 16 February 2008 (2008-02-16), Database accession no. BAC15853 * |
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Cited By (1)
| Publication number | Priority date | Publication date | Assignee | Title |
|---|---|---|---|---|
| CN103649318A (en) * | 2011-05-04 | 2014-03-19 | 港大科桥有限公司 | Method for accelerating plant growth and increasing yield by modifying expression levels of kinases and phosphatases |
Also Published As
| Publication number | Publication date |
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| CA2746796C (en) | 2020-04-28 |
| AU2009327244B2 (en) | 2017-01-19 |
| US20100159065A1 (en) | 2010-06-24 |
| US20130291224A1 (en) | 2013-10-31 |
| BRPI0922980A8 (en) | 2017-06-20 |
| CN102257146A (en) | 2011-11-23 |
| US9476058B2 (en) | 2016-10-25 |
| CA2746796A1 (en) | 2010-06-24 |
| BRPI0922980A2 (en) | 2015-08-11 |
| AU2009327244A1 (en) | 2011-08-04 |
| CN102257146B (en) | 2017-11-28 |
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