Dere\GG12317 cDNA ORF clone, Drosophila erecta

The following Dere\GG12317 gene cDNA ORF clone sequences were retrieved from the NCBI Reference Sequence Database (RefSeq). These sequences represent the protein coding region of the Dere\GG12317 cDNA ORF which is encoded by the open reading frame (ORF) sequence. ORF sequences can be delivered in our standard vector, pcDNA3.1+/C-(K)DYK or the vector of your choice as an expression/transfection-ready ORF clone. Not the clone you want? Click here to find your clone.

***CloneID Accession No. Definition **Vector *Turnaround time Price (USD) Select
ODi10247 XM_001981895.2
Latest version!
Drosophila erecta serine/threonine-protein kinase Nek8 (LOC6554486), transcript variant X1, mRNA. pcDNA3.1-C-(k)DYK or customized vector 14-16 $475.30
$679.00
ODi216794 XM_026978428.1
Latest version!
Drosophila erecta serine/threonine-protein kinase Nek8 (LOC6554486), transcript variant X2, mRNA. pcDNA3.1-C-(k)DYK or customized vector 14-16 $391.30
$559.00
View Old Accession Versions >>
ODi10247 XM_001981895.1 Drosophila erecta uncharacterized protein (Dere\GG12317), partial mRNA. pcDNA3.1-C-(k)DYK or customized vector 14-16 $475.30
$679.00
Hide Old Accession Versions >>

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** You may select a custom vector to replace pcDNA3.1+/C-(K)DYK after clone is added to cart.

** GenScript guarantees 100% sequence accuracy of all synthetic DNA constructs we deliver, but we do not guarantee protein expression in your experimental system. Protein expression is influenced by many factors that may vary between experiments or laboratories. In addition, please pay attention to the signal peptide, propeptide and transit peptide in target ORF, which may affect the choice of vector (N/C terminal tag vector).

***One clone ID might be correlated to multiple accession numbers, which share the same CDS sequence.

  • Reference Sequences (Refseq)
    CloneID ODi10247
    Clone ID Related Accession (Same CDS sequence) XM_001981895.2 , XM_001981895.1
    Accession Version XM_001981895.2 Latest version! Documents for ORF clone product in default vector
    Sequence Information ORF Nucleotide Sequence (Length: 2526bp)
    Protein sequence
    SNP
    Vector pcDNA3.1-C-(k)DYK or customized vector User Manual
    Clone information Clone Map MSDS
    Tag on pcDNA3.1+/C-(K)DYK C terminal DYKDDDDK tags
    ORF Insert Method CloneEZ™ Seamless cloning technology
    Insert Structure linear
    Update Date 1541347200000
    Organism Drosophila erecta
    Product serine/threonine-protein kinase Nek8 isoform X1
    Comment Comment: MODEL REFSEQ: This record is predicted by automated computational analysis. This record is derived from a genomic sequence (NW_020825194.1) annotated using gene prediction method: Gnomon, supported by mRNA evidence. Also see: Documentation of NCBI's Annotation Process On Nov 6, 2018 this sequence version replaced XM_001981895.1. ##Genome-Annotation-Data-START## Annotation Provider :: NCBI Annotation Status :: Full annotation Annotation Name :: Drosophila erecta Annotation Release 101 Annotation Version :: 101 Annotation Pipeline :: NCBI eukaryotic genome annotation pipeline Annotation Software Version :: 8.1 Annotation Method :: Best-placed RefSeq; Gnomon Features Annotated :: Gene; mRNA; CDS; ncRNA ##Genome-Annotation-Data-END##

    1
    61
    121
    181
    241
    301
    361
    421
    481
    541
    601
    661
    721
    781
    841
    901
    961
    1021
    1081
    1141
    1201
    1261
    1321
    1381
    1441
    1501
    1561
    1621
    1681
    1741
    1801
    1861
    1921
    1981
    2041
    2101
    2161
    2221
    2281
    2341
    2401
    2461
    2521
    ATGAAGAAGT TTCGGGCCAA GGCGACCTCC CTGCCCATAT TCAACGGTCG CATAACCGAC 
    GCCACCACGC TGACCACCAG TTCGCTGCAG TTACCCTTGG GTCAGGCTTC ACAGCGGAAG
    CAATCGACTT GCACCAGGGT CCTGCCCACG GTTTTTACCA TTACGGACGG CACCACCGGA
    GCGGCCAGTA CCTCCTTGGC GGAGGCCATG TCGAGCAGTA AGGCACAGGT GCCATACCGA
    CAGGAGAGCC TCCTGCAGCT CAGTGTTCCC CGGGAGGCGG CAGTGGGAGT GGCAGGACCT
    GAATTGGCTA ACTATGAAAA GGTGCGAGTG GTGGGCCAGG GTTCCTTTGG CATCGCCATC
    CTGTACCGGC GCAAGTCCGA CGGGCACCAG ATCGTCTTCA AGCAAATCAA CTTGAGTGAG
    TTGACCCCGC CTGGTCGGGA TCTGGCCATG AACGAGGTTG ATGTCTTCTC GAAATTACAT
    CATCCGAATA TTGTGAGCTA CCTCGGAAGC TTCATCAAGG ACAACAGTCT GCTCATCGAG
    ATGGAGTACG CCGATGGAGG GACACTGGCC CACATCATCG CCGAGCGGCA GGGTAAATTG
    CATTTCCCTG AACGCTATAT AATAGCCGTA TTCGAGCAGA TATCCAGTGC CATTAACTAC
    ATGCACTCGG AGAACATCCT GCATCGGGAT TTGAAGACCG CGAATGTATT CCTAAACAGG
    CGGGGTATTG TGAAAATCGG AGATTTCGGC ATATCCAAAA TAATGAACAC CAAGATACAT
    GCCCAGACTG TTTTGGGCAC ACCCTACTAC TTCAGTCCGG AGATGTGTGA GGGTAAGGAG
    TACGACAACA AGAGTGATAT TTGGGCACTG GGCTGCATTC TGGGCGAGAT GTGCTGCCTG
    AAGAAAACGT TTGCTGCCTC CAATCTATCC GAACTGGTTA CCAAGATTAT GGCAGGGAAC
    TATACGCCCG TGCCATCGGG TTACACCTCG GGACTTCGCA GTTTAATGTC CAACCTGCTT
    CAAGTGGAGG CACCACGGCG ACCTACCGCA TCAGAGGTTT TGGTTTACTG GATTCCGCTG
    ATATTCCGTA GTCTGGGAAA GAATAAGGGG TACTCCTACG AGGATGATGT GGGAGGCAGC
    GGCGGCGACC AATTGACTGC TCCTGATCCA GCCGCCGCCC ACAGCAATGT GTCCATGGAG
    CTGGAATTGC CCACCGCCCA GACGGAGACC AAGCAATTAA TGAGTGCGGA GACAGCGGCG
    CCGCACGAGA TCCTTGAGAA ACGATCCGTG CTATACCAGC TGAAGGCCTT CGGCACCTGC
    TTCAGCATGG CGCCCATCCA ACTGCCGCCG AAGGCTGTCA TCGTGGGCGT AGCGATGTCA
    GATTCCCACT TCGTGGTGGT CAACGAGGAC GGATCGGCAT ACGCCTGGGG TGAGGGCACT
    TACGGCCAGC TGGGTCTCAC CGCACTGGAG GCCTGGAAGC ACTACCCAAG CCGTATGGAG
    AGCGTGCGCA ACTACCATCT CGTGAGCGCC TGTGCCGGCG ATGGCTTTAC TATCCTGGTC
    ACTCAGGCGG GCAGTCTGCT AAGCTGCGGG AGCAATGCCC ATCTGGCACT GGGGCAGGAC
    GAGCAACGCA ACTACCACAG CCCCAAACTG GTCGCCCGAT TGGCGGATGT CCGGGTGGAG
    CAGGTGGCTG CTGGACTCCA CCACGTTCTG GCCTTGAGTC GAGAGGGAGC GGTCTACGTG
    TGGGGCACGA GTACATGCGG AGCTCTTGGT CTTGGAAATT ATCAGCAGCA ACAAAAATTC
    CCCCAAAAGA TTCTTCTATC GCATGTGAAA ACCAAGCCAT CCAAGATTTA CTGCGGTCCC
    GATACATCAG CTGTGTTGTT CGCCAACGGA GAACTGCACG TCTGTGGCAG CAATGACTAC
    AATAAACTTG GTTTCCAACG TCCGTCGAAG ATTACAGCCT TCAAAAAGGT CCAACTGCCC
    CACAAGGTGA TTCAGGCGTG CTTCTCGTCC ACCCATTCGG TGTTCCTGGT GGAGGGCGGC
    TATGTCTATA CCATGGGTCG AAATGCGGAG GGTCAGCGGG GAATCGGGCA CTGCAACTCG
    GTTGATCACC CCACCATGGT GGATTCCGTC AAGTCACGGT ATATTGTGAA GGCGAACTGC
    AGCGACCAGT GCACCATTGT TGCCTCGGAA GACAATATCA TCACCGTTTG GGGCACTCGT
    AATGGTCTGC CGGGGATTGG TTCGACCAAC AGTGGACTTG GGCTGGAGAT CTGCACACCC
    AACACAGAAT TGGAACTGGG TAACAACACG GCAGCGTTTA CAAACTTTCT GGCCTCGGTC
    TACAAGTCGG AACTGATACT GGAACCAGTG GATATATTGG CGCTCTTCTC CTCCAAGGAG
    CAGTGCGACA GAGGTTACTA CGTCCAGGTG CACGATGTTT ATCCTTTGGC TCACAGCGTT
    CTGGTGCTAG TGGACACGAC CACGCCACTA ATATCCTCAT ACGAAGGCGA TTATCCACAG
    TTATAG

    The stop codons will be deleted if pcDNA3.1+/C-(K)DYK vector is selected.

    RefSeq XP_001981931.1
    CDS336..2861
    Translation

    Target ORF information:

    RefSeq Version XM_001981895.2
    Organism Drosophila erecta
    Definition Drosophila erecta serine/threonine-protein kinase Nek8 (LOC6554486), transcript variant X1, mRNA.

    Target ORF information:

    Epitope DYKDDDDK
    Bacterial selection AMPR
    Mammalian selection NeoR
    Vector pcDNA3.1+/C-(K)DYK
    XM_001981895.2

    ORF Insert Sequence:

    1
    61
    121
    181
    241
    301
    361
    421
    481
    541
    601
    661
    721
    781
    841
    901
    961
    1021
    1081
    1141
    1201
    1261
    1321
    1381
    1441
    1501
    1561
    1621
    1681
    1741
    1801
    1861
    1921
    1981
    2041
    2101
    2161
    2221
    2281
    2341
    2401
    2461
    2521
    ATGAAGAAGT TTCGGGCCAA GGCGACCTCC CTGCCCATAT TCAACGGTCG CATAACCGAC 
    GCCACCACGC TGACCACCAG TTCGCTGCAG TTACCCTTGG GTCAGGCTTC ACAGCGGAAG
    CAATCGACTT GCACCAGGGT CCTGCCCACG GTTTTTACCA TTACGGACGG CACCACCGGA
    GCGGCCAGTA CCTCCTTGGC GGAGGCCATG TCGAGCAGTA AGGCACAGGT GCCATACCGA
    CAGGAGAGCC TCCTGCAGCT CAGTGTTCCC CGGGAGGCGG CAGTGGGAGT GGCAGGACCT
    GAATTGGCTA ACTATGAAAA GGTGCGAGTG GTGGGCCAGG GTTCCTTTGG CATCGCCATC
    CTGTACCGGC GCAAGTCCGA CGGGCACCAG ATCGTCTTCA AGCAAATCAA CTTGAGTGAG
    TTGACCCCGC CTGGTCGGGA TCTGGCCATG AACGAGGTTG ATGTCTTCTC GAAATTACAT
    CATCCGAATA TTGTGAGCTA CCTCGGAAGC TTCATCAAGG ACAACAGTCT GCTCATCGAG
    ATGGAGTACG CCGATGGAGG GACACTGGCC CACATCATCG CCGAGCGGCA GGGTAAATTG
    CATTTCCCTG AACGCTATAT AATAGCCGTA TTCGAGCAGA TATCCAGTGC CATTAACTAC
    ATGCACTCGG AGAACATCCT GCATCGGGAT TTGAAGACCG CGAATGTATT CCTAAACAGG
    CGGGGTATTG TGAAAATCGG AGATTTCGGC ATATCCAAAA TAATGAACAC CAAGATACAT
    GCCCAGACTG TTTTGGGCAC ACCCTACTAC TTCAGTCCGG AGATGTGTGA GGGTAAGGAG
    TACGACAACA AGAGTGATAT TTGGGCACTG GGCTGCATTC TGGGCGAGAT GTGCTGCCTG
    AAGAAAACGT TTGCTGCCTC CAATCTATCC GAACTGGTTA CCAAGATTAT GGCAGGGAAC
    TATACGCCCG TGCCATCGGG TTACACCTCG GGACTTCGCA GTTTAATGTC CAACCTGCTT
    CAAGTGGAGG CACCACGGCG ACCTACCGCA TCAGAGGTTT TGGTTTACTG GATTCCGCTG
    ATATTCCGTA GTCTGGGAAA GAATAAGGGG TACTCCTACG AGGATGATGT GGGAGGCAGC
    GGCGGCGACC AATTGACTGC TCCTGATCCA GCCGCCGCCC ACAGCAATGT GTCCATGGAG
    CTGGAATTGC CCACCGCCCA GACGGAGACC AAGCAATTAA TGAGTGCGGA GACAGCGGCG
    CCGCACGAGA TCCTTGAGAA ACGATCCGTG CTATACCAGC TGAAGGCCTT CGGCACCTGC
    TTCAGCATGG CGCCCATCCA ACTGCCGCCG AAGGCTGTCA TCGTGGGCGT AGCGATGTCA
    GATTCCCACT TCGTGGTGGT CAACGAGGAC GGATCGGCAT ACGCCTGGGG TGAGGGCACT
    TACGGCCAGC TGGGTCTCAC CGCACTGGAG GCCTGGAAGC ACTACCCAAG CCGTATGGAG
    AGCGTGCGCA ACTACCATCT CGTGAGCGCC TGTGCCGGCG ATGGCTTTAC TATCCTGGTC
    ACTCAGGCGG GCAGTCTGCT AAGCTGCGGG AGCAATGCCC ATCTGGCACT GGGGCAGGAC
    GAGCAACGCA ACTACCACAG CCCCAAACTG GTCGCCCGAT TGGCGGATGT CCGGGTGGAG
    CAGGTGGCTG CTGGACTCCA CCACGTTCTG GCCTTGAGTC GAGAGGGAGC GGTCTACGTG
    TGGGGCACGA GTACATGCGG AGCTCTTGGT CTTGGAAATT ATCAGCAGCA ACAAAAATTC
    CCCCAAAAGA TTCTTCTATC GCATGTGAAA ACCAAGCCAT CCAAGATTTA CTGCGGTCCC
    GATACATCAG CTGTGTTGTT CGCCAACGGA GAACTGCACG TCTGTGGCAG CAATGACTAC
    AATAAACTTG GTTTCCAACG TCCGTCGAAG ATTACAGCCT TCAAAAAGGT CCAACTGCCC
    CACAAGGTGA TTCAGGCGTG CTTCTCGTCC ACCCATTCGG TGTTCCTGGT GGAGGGCGGC
    TATGTCTATA CCATGGGTCG AAATGCGGAG GGTCAGCGGG GAATCGGGCA CTGCAACTCG
    GTTGATCACC CCACCATGGT GGATTCCGTC AAGTCACGGT ATATTGTGAA GGCGAACTGC
    AGCGACCAGT GCACCATTGT TGCCTCGGAA GACAATATCA TCACCGTTTG GGGCACTCGT
    AATGGTCTGC CGGGGATTGG TTCGACCAAC AGTGGACTTG GGCTGGAGAT CTGCACACCC
    AACACAGAAT TGGAACTGGG TAACAACACG GCAGCGTTTA CAAACTTTCT GGCCTCGGTC
    TACAAGTCGG AACTGATACT GGAACCAGTG GATATATTGG CGCTCTTCTC CTCCAAGGAG
    CAGTGCGACA GAGGTTACTA CGTCCAGGTG CACGATGTTT ATCCTTTGGC TCACAGCGTT
    CTGGTGCTAG TGGACACGAC CACGCCACTA ATATCCTCAT ACGAAGGCGA TTATCCACAG
    TTATAG

    The stop codons will be deleted if pcDNA3.1+/C-(K)DYK vector is selected.

    CloneID ODi10247
    Clone ID Related Accession (Same CDS sequence) XM_001981895.2 , XM_001981895.1
    Accession Version XM_001981895.1 Documents for ORF clone product in default vector
    Sequence Information ORF Nucleotide Sequence (Length: 2526bp)
    Protein sequence
    SNP
    Vector pcDNA3.1-C-(k)DYK or customized vector User Manual
    Clone information Clone Map MSDS
    Tag on pcDNA3.1+/C-(K)DYK C terminal DYKDDDDK tags
    ORF Insert Method CloneEZ™ Seamless cloning technology
    Insert Structure linear
    Update Date 1450540800000
    Organism Drosophila erecta
    Product uncharacterized protein
    Comment Comment: PROVISIONAL REFSEQ: This record has not yet been subject to final NCBI review. This record is derived from an annotated genomic sequence (NW_001956553). ##Genome-Annotation-Data-START## Annotation Provider :: FlyBase Annotation Status :: Full annotation Annotation Version :: Release 1.04 Annotation Pipeline :: NCBI eukaryotic genome annotation pipeline URL :: http://flybase.org ##Genome-Annotation-Data-END## COMPLETENESS: incomplete on both ends.

    1
    61
    121
    181
    241
    301
    361
    421
    481
    541
    601
    661
    721
    781
    841
    901
    961
    1021
    1081
    1141
    1201
    1261
    1321
    1381
    1441
    1501
    1561
    1621
    1681
    1741
    1801
    1861
    1921
    1981
    2041
    2101
    2161
    2221
    2281
    2341
    2401
    2461
    2521
    ATGAAGAAGT TTCGGGCCAA GGCGACCTCC CTGCCCATAT TCAACGGTCG CATAACCGAC 
    GCCACCACGC TGACCACCAG TTCGCTGCAG TTACCCTTGG GTCAGGCTTC ACAGCGGAAG
    CAATCGACTT GCACCAGGGT CCTGCCCACG GTTTTTACCA TTACGGACGG CACCACCGGA
    GCGGCCAGTA CCTCCTTGGC GGAGGCCATG TCGAGCAGTA AGGCACAGGT GCCATACCGA
    CAGGAGAGCC TCCTGCAGCT CAGTGTTCCC CGGGAGGCGG CAGTGGGAGT GGCAGGACCT
    GAATTGGCTA ACTATGAAAA GGTGCGAGTG GTGGGCCAGG GTTCCTTTGG CATCGCCATC
    CTGTACCGGC GCAAGTCCGA CGGGCACCAG ATCGTCTTCA AGCAAATCAA CTTGAGTGAG
    TTGACCCCGC CTGGTCGGGA TCTGGCCATG AACGAGGTTG ATGTCTTCTC GAAATTACAT
    CATCCGAATA TTGTGAGCTA CCTCGGAAGC TTCATCAAGG ACAACAGTCT GCTCATCGAG
    ATGGAGTACG CCGATGGAGG GACACTGGCC CACATCATCG CCGAGCGGCA GGGTAAATTG
    CATTTCCCTG AACGCTATAT AATAGCCGTA TTCGAGCAGA TATCCAGTGC CATTAACTAC
    ATGCACTCGG AGAACATCCT GCATCGGGAT TTGAAGACCG CGAATGTATT CCTAAACAGG
    CGGGGTATTG TGAAAATCGG AGATTTCGGC ATATCCAAAA TAATGAACAC CAAGATACAT
    GCCCAGACTG TTTTGGGCAC ACCCTACTAC TTCAGTCCGG AGATGTGTGA GGGTAAGGAG
    TACGACAACA AGAGTGATAT TTGGGCACTG GGCTGCATTC TGGGCGAGAT GTGCTGCCTG
    AAGAAAACGT TTGCTGCCTC CAATCTATCC GAACTGGTTA CCAAGATTAT GGCAGGGAAC
    TATACGCCCG TGCCATCGGG TTACACCTCG GGACTTCGCA GTTTAATGTC CAACCTGCTT
    CAAGTGGAGG CACCACGGCG ACCTACCGCA TCAGAGGTTT TGGTTTACTG GATTCCGCTG
    ATATTCCGTA GTCTGGGAAA GAATAAGGGG TACTCCTACG AGGATGATGT GGGAGGCAGC
    GGCGGCGACC AATTGACTGC TCCTGATCCA GCCGCCGCCC ACAGCAATGT GTCCATGGAG
    CTGGAATTGC CCACCGCCCA GACGGAGACC AAGCAATTAA TGAGTGCGGA GACAGCGGCG
    CCGCACGAGA TCCTTGAGAA ACGATCCGTG CTATACCAGC TGAAGGCCTT CGGCACCTGC
    TTCAGCATGG CGCCCATCCA ACTGCCGCCG AAGGCTGTCA TCGTGGGCGT AGCGATGTCA
    GATTCCCACT TCGTGGTGGT CAACGAGGAC GGATCGGCAT ACGCCTGGGG TGAGGGCACT
    TACGGCCAGC TGGGTCTCAC CGCACTGGAG GCCTGGAAGC ACTACCCAAG CCGTATGGAG
    AGCGTGCGCA ACTACCATCT CGTGAGCGCC TGTGCCGGCG ATGGCTTTAC TATCCTGGTC
    ACTCAGGCGG GCAGTCTGCT AAGCTGCGGG AGCAATGCCC ATCTGGCACT GGGGCAGGAC
    GAGCAACGCA ACTACCACAG CCCCAAACTG GTCGCCCGAT TGGCGGATGT CCGGGTGGAG
    CAGGTGGCTG CTGGACTCCA CCACGTTCTG GCCTTGAGTC GAGAGGGAGC GGTCTACGTG
    TGGGGCACGA GTACATGCGG AGCTCTTGGT CTTGGAAATT ATCAGCAGCA ACAAAAATTC
    CCCCAAAAGA TTCTTCTATC GCATGTGAAA ACCAAGCCAT CCAAGATTTA CTGCGGTCCC
    GATACATCAG CTGTGTTGTT CGCCAACGGA GAACTGCACG TCTGTGGCAG CAATGACTAC
    AATAAACTTG GTTTCCAACG TCCGTCGAAG ATTACAGCCT TCAAAAAGGT CCAACTGCCC
    CACAAGGTGA TTCAGGCGTG CTTCTCGTCC ACCCATTCGG TGTTCCTGGT GGAGGGCGGC
    TATGTCTATA CCATGGGTCG AAATGCGGAG GGTCAGCGGG GAATCGGGCA CTGCAACTCG
    GTTGATCACC CCACCATGGT GGATTCCGTC AAGTCACGGT ATATTGTGAA GGCGAACTGC
    AGCGACCAGT GCACCATTGT TGCCTCGGAA GACAATATCA TCACCGTTTG GGGCACTCGT
    AATGGTCTGC CGGGGATTGG TTCGACCAAC AGTGGACTTG GGCTGGAGAT CTGCACACCC
    AACACAGAAT TGGAACTGGG TAACAACACG GCAGCGTTTA CAAACTTTCT GGCCTCGGTC
    TACAAGTCGG AACTGATACT GGAACCAGTG GATATATTGG CGCTCTTCTC CTCCAAGGAG
    CAGTGCGACA GAGGTTACTA CGTCCAGGTG CACGATGTTT ATCCTTTGGC TCACAGCGTT
    CTGGTGCTAG TGGACACGAC CACGCCACTA ATATCCTCAT ACGAAGGCGA TTATCCACAG
    TTATAG

    The stop codons will be deleted if pcDNA3.1+/C-(K)DYK vector is selected.

    RefSeq XP_001981931.1
    CDS1..2526
    Translation

    Target ORF information:

    RefSeq Version XM_001981895.1
    Organism Drosophila erecta
    Definition Drosophila erecta uncharacterized protein (Dere\GG12317), partial mRNA.

    Target ORF information:

    Epitope DYKDDDDK
    Bacterial selection AMPR
    Mammalian selection NeoR
    Vector pcDNA3.1+/C-(K)DYK
    XM_001981895.1

    ORF Insert Sequence:

    1
    61
    121
    181
    241
    301
    361
    421
    481
    541
    601
    661
    721
    781
    841
    901
    961
    1021
    1081
    1141
    1201
    1261
    1321
    1381
    1441
    1501
    1561
    1621
    1681
    1741
    1801
    1861
    1921
    1981
    2041
    2101
    2161
    2221
    2281
    2341
    2401
    2461
    2521
    ATGAAGAAGT TTCGGGCCAA GGCGACCTCC CTGCCCATAT TCAACGGTCG CATAACCGAC 
    GCCACCACGC TGACCACCAG TTCGCTGCAG TTACCCTTGG GTCAGGCTTC ACAGCGGAAG
    CAATCGACTT GCACCAGGGT CCTGCCCACG GTTTTTACCA TTACGGACGG CACCACCGGA
    GCGGCCAGTA CCTCCTTGGC GGAGGCCATG TCGAGCAGTA AGGCACAGGT GCCATACCGA
    CAGGAGAGCC TCCTGCAGCT CAGTGTTCCC CGGGAGGCGG CAGTGGGAGT GGCAGGACCT
    GAATTGGCTA ACTATGAAAA GGTGCGAGTG GTGGGCCAGG GTTCCTTTGG CATCGCCATC
    CTGTACCGGC GCAAGTCCGA CGGGCACCAG ATCGTCTTCA AGCAAATCAA CTTGAGTGAG
    TTGACCCCGC CTGGTCGGGA TCTGGCCATG AACGAGGTTG ATGTCTTCTC GAAATTACAT
    CATCCGAATA TTGTGAGCTA CCTCGGAAGC TTCATCAAGG ACAACAGTCT GCTCATCGAG
    ATGGAGTACG CCGATGGAGG GACACTGGCC CACATCATCG CCGAGCGGCA GGGTAAATTG
    CATTTCCCTG AACGCTATAT AATAGCCGTA TTCGAGCAGA TATCCAGTGC CATTAACTAC
    ATGCACTCGG AGAACATCCT GCATCGGGAT TTGAAGACCG CGAATGTATT CCTAAACAGG
    CGGGGTATTG TGAAAATCGG AGATTTCGGC ATATCCAAAA TAATGAACAC CAAGATACAT
    GCCCAGACTG TTTTGGGCAC ACCCTACTAC TTCAGTCCGG AGATGTGTGA GGGTAAGGAG
    TACGACAACA AGAGTGATAT TTGGGCACTG GGCTGCATTC TGGGCGAGAT GTGCTGCCTG
    AAGAAAACGT TTGCTGCCTC CAATCTATCC GAACTGGTTA CCAAGATTAT GGCAGGGAAC
    TATACGCCCG TGCCATCGGG TTACACCTCG GGACTTCGCA GTTTAATGTC CAACCTGCTT
    CAAGTGGAGG CACCACGGCG ACCTACCGCA TCAGAGGTTT TGGTTTACTG GATTCCGCTG
    ATATTCCGTA GTCTGGGAAA GAATAAGGGG TACTCCTACG AGGATGATGT GGGAGGCAGC
    GGCGGCGACC AATTGACTGC TCCTGATCCA GCCGCCGCCC ACAGCAATGT GTCCATGGAG
    CTGGAATTGC CCACCGCCCA GACGGAGACC AAGCAATTAA TGAGTGCGGA GACAGCGGCG
    CCGCACGAGA TCCTTGAGAA ACGATCCGTG CTATACCAGC TGAAGGCCTT CGGCACCTGC
    TTCAGCATGG CGCCCATCCA ACTGCCGCCG AAGGCTGTCA TCGTGGGCGT AGCGATGTCA
    GATTCCCACT TCGTGGTGGT CAACGAGGAC GGATCGGCAT ACGCCTGGGG TGAGGGCACT
    TACGGCCAGC TGGGTCTCAC CGCACTGGAG GCCTGGAAGC ACTACCCAAG CCGTATGGAG
    AGCGTGCGCA ACTACCATCT CGTGAGCGCC TGTGCCGGCG ATGGCTTTAC TATCCTGGTC
    ACTCAGGCGG GCAGTCTGCT AAGCTGCGGG AGCAATGCCC ATCTGGCACT GGGGCAGGAC
    GAGCAACGCA ACTACCACAG CCCCAAACTG GTCGCCCGAT TGGCGGATGT CCGGGTGGAG
    CAGGTGGCTG CTGGACTCCA CCACGTTCTG GCCTTGAGTC GAGAGGGAGC GGTCTACGTG
    TGGGGCACGA GTACATGCGG AGCTCTTGGT CTTGGAAATT ATCAGCAGCA ACAAAAATTC
    CCCCAAAAGA TTCTTCTATC GCATGTGAAA ACCAAGCCAT CCAAGATTTA CTGCGGTCCC
    GATACATCAG CTGTGTTGTT CGCCAACGGA GAACTGCACG TCTGTGGCAG CAATGACTAC
    AATAAACTTG GTTTCCAACG TCCGTCGAAG ATTACAGCCT TCAAAAAGGT CCAACTGCCC
    CACAAGGTGA TTCAGGCGTG CTTCTCGTCC ACCCATTCGG TGTTCCTGGT GGAGGGCGGC
    TATGTCTATA CCATGGGTCG AAATGCGGAG GGTCAGCGGG GAATCGGGCA CTGCAACTCG
    GTTGATCACC CCACCATGGT GGATTCCGTC AAGTCACGGT ATATTGTGAA GGCGAACTGC
    AGCGACCAGT GCACCATTGT TGCCTCGGAA GACAATATCA TCACCGTTTG GGGCACTCGT
    AATGGTCTGC CGGGGATTGG TTCGACCAAC AGTGGACTTG GGCTGGAGAT CTGCACACCC
    AACACAGAAT TGGAACTGGG TAACAACACG GCAGCGTTTA CAAACTTTCT GGCCTCGGTC
    TACAAGTCGG AACTGATACT GGAACCAGTG GATATATTGG CGCTCTTCTC CTCCAAGGAG
    CAGTGCGACA GAGGTTACTA CGTCCAGGTG CACGATGTTT ATCCTTTGGC TCACAGCGTT
    CTGGTGCTAG TGGACACGAC CACGCCACTA ATATCCTCAT ACGAAGGCGA TTATCCACAG
    TTATAG

    The stop codons will be deleted if pcDNA3.1+/C-(K)DYK vector is selected.

    CloneID ODi216794
    Clone ID Related Accession (Same CDS sequence) XM_026978428.1
    Accession Version XM_026978428.1 Latest version! Documents for ORF clone product in default vector
    Sequence Information ORF Nucleotide Sequence (Length: 2346bp)
    Protein sequence
    SNP
    Vector pcDNA3.1-C-(k)DYK or customized vector User Manual
    Clone information Clone Map MSDS
    Tag on pcDNA3.1+/C-(K)DYK C terminal DYKDDDDK tags
    ORF Insert Method CloneEZ™ Seamless cloning technology
    Insert Structure linear
    Update Date 1541347200000
    Organism Drosophila erecta
    Product serine/threonine-protein kinase Nek8 isoform X2
    Comment Comment: MODEL REFSEQ: This record is predicted by automated computational analysis. This record is derived from a genomic sequence (NW_020825194.1) annotated using gene prediction method: Gnomon. Also see: Documentation of NCBI's Annotation Process ##Genome-Annotation-Data-START## Annotation Provider :: NCBI Annotation Status :: Full annotation Annotation Name :: Drosophila erecta Annotation Release 101 Annotation Version :: 101 Annotation Pipeline :: NCBI eukaryotic genome annotation pipeline Annotation Software Version :: 8.1 Annotation Method :: Best-placed RefSeq; Gnomon Features Annotated :: Gene; mRNA; CDS; ncRNA ##Genome-Annotation-Data-END##

    1
    61
    121
    181
    241
    301
    361
    421
    481
    541
    601
    661
    721
    781
    841
    901
    961
    1021
    1081
    1141
    1201
    1261
    1321
    1381
    1441
    1501
    1561
    1621
    1681
    1741
    1801
    1861
    1921
    1981
    2041
    2101
    2161
    2221
    2281
    2341
    ATGAAGAAGT TTCGGGCCAA GGCGACCTCC CTGCCCATAT TCAACGGTCG CATAACCGAC 
    GCCACCACGC TGACCACCAG TTCGCTGCAG TTACCCTTGG GTCAGGCTTC ACAGCGGAAG
    CAATCGACTT GCACCAGGGT CCTGCCCACG GTTTTTACCA TTACGGACGG CACCACCGGA
    GCGGCCAGTA CCTCCTTGGC GGAGGCCATG TCGAGCAGTA AGGCACAGGT GCCATACCGA
    CAGGAGAGCC TCCTGCAGCT CAGTGTTCCC CGGGAGGCGG CAGTGGGAGT GGCAGGACCT
    GAATTGGCTA ACTATGAAAA GGTGCGAGTG GTGGGCCAGG GTTCCTTTGG CATCGCCATC
    CTGTACCGGC GCAAGTCCGA CGGGCACCAG ATCGTCTTCA AGCAAATCAA CTTGAGTGAG
    TTGACCCCGC CTGGTCGGGA TCTGGCCATG AACGAGGTTG ATGTCTTCTC GAAATTACAT
    CATCCGAATA TTGTGAGCTA CCTCGGAAGC TTCATCAAGG ACAACAGTCT GCTCATCGAG
    ATGGAGTACG CCGATGGAGG GACACTGGCC CACATCATCG CCGAGCGGCA GGGTAAATTG
    CATTTCCCTG AACGCTATAT AATAGCCGTA TTCGAGCAGA TATCCAGTGC CATTAACTAC
    ATGCACTCGG AGAACATCCT GCATCGGGAT TTGAAGACCG CGAATGTATT CCTAAACAGG
    CGGGGTATTG TGAAAATCGG AGATTTCGGC ATATCCAAAA TAATGAACAC CAAGATACAT
    GCCCAGACTG TTTTGGGCAC ACCCTACTAC TTCAGTCCGG AGATGTGTGA GGGTAAGGAG
    TACGACAACA AGAGTGATAT TTGGGCACTG GGCTGCATTC TGGGCGAGAT GTGCTGCCTG
    AAGAAAACGT TTGCTGCCTC CAATCTATCC GAACTGGTTA CCAAGATTAT GGCAGGGAAC
    TATACGCCCG TGCCATCGGG TTACACCTCG GGACTTCGCA GTTTAATGTC CAACCTGCTT
    CAAGTGGAGG CACCACGGCG ACCTACCGCA TCAGAGGTTT TGGTTTACTG GATTCCGCTG
    ATATTCCGTA GTCTGGGAAA GAATAAGGGG TACTCCTACG AGGATGATGT GGGAGGCAGC
    GGCGGCGACC AATTGACTGC TCCTGATCCA GCCGCCGCCC ACAGCAATGT GTCCATGGAG
    CTGGAATTGC CCACCGCCCA GACGGAGACC AAGCAATTAA TGAGTGCGGA GACAGCGGCG
    CCGCACGAGA TCCTTGAGAA ACGATCCGTG CTATACCAGC TGAAGGCCTT CGGCACCTGC
    TTCAGCATGG CGCCCATCCA ACTGCCGCCG AAGGCTGTCA TCGTGGGCGT AGCGATGTCA
    GATTCCCACT TCGTGGTGGT CAACGAGGAC GGATCGGCAT ACGCCTGGGG TGAGGGCACT
    TACGGCCAGC TGGGTCTCAC CGCACTGGAG GCCTGGAAGC ACTACCCAAG CCGTATGGAG
    AGCGTGCGCA ACTACCATCT CGTGAGCGCC TGTGCCGGCG ATGGCTTTAC TATCCTGGTC
    ACTCAGGCGG GCAGTCTGCT AAGCTGCGGG AGCAATGCCC ATCTGGCACT GGGGCAGGAC
    GAGCAACGCA ACTACCACAG CCCCAAACTG GTCGCCCGAT TGGCGGATGT CCGGGTGGAG
    CAGGTGGCTG CTGGACTCCA CCACGTTCTG GCCTTGAGTC GAGAGGGAGC GGTCTACGTG
    TGGGGCACGA GTACATGCGG AGCTCTTGGT CTTGGAAATT ATCAGCAGCA ACAAAAATTC
    CCCCAAAAGA TTCTTCTATC GCATGTGAAA ACCAAGCCAT CCAAGATTTA CTGCGGTCCC
    GATACATCAG CTGTGTTGTT CGCCAACGGA GAACTGCACG TCTGTGGCAG CAATGACTAC
    AATAAACTTG GTTTCCAACG TCCGTCGAAG ATTACAGCCT TCAAAAAGGT CCAACTGCCC
    CACAAGGTGA TTCAGGCGTG CTTCTCGTCC ACCCATTCGG TGTTCCTGGT GGAGGGCGGC
    TATGTCTATA CCATGGGTCG AAATGCGGAG GGTCAGCGGG GAATCGGGCA CTGCAACTCG
    GTTGATCACC CCACCATGGT GGATTCCGTC AAGTCACGAA GGCGAACTGC AGCGACCAGT
    GCACCATTGT TGCCTCGGAA GACAATATCA TCACCGTTTG GGGCACTCGT AATGGTCTGC
    CGGGGATTGG TTCGACCAAC AGTGGACTTG GGCTGGAGAT CTGCACACCC AACACAGAAT
    TGGAACTGGG TAACAACACG GCAGCGTTTA CAAACTTTCT GGCCTCGGTC TACAAGTCGG
    AACTGA

    The stop codons will be deleted if pcDNA3.1+/C-(K)DYK vector is selected.

    RefSeq XP_026834229.1
    CDS336..2681
    Translation

    Target ORF information:

    RefSeq Version XM_026978428.1
    Organism Drosophila erecta
    Definition Drosophila erecta serine/threonine-protein kinase Nek8 (LOC6554486), transcript variant X2, mRNA.

    Target ORF information:

    Epitope DYKDDDDK
    Bacterial selection AMPR
    Mammalian selection NeoR
    Vector pcDNA3.1+/C-(K)DYK
    XM_026978428.1

    ORF Insert Sequence:

    1
    61
    121
    181
    241
    301
    361
    421
    481
    541
    601
    661
    721
    781
    841
    901
    961
    1021
    1081
    1141
    1201
    1261
    1321
    1381
    1441
    1501
    1561
    1621
    1681
    1741
    1801
    1861
    1921
    1981
    2041
    2101
    2161
    2221
    2281
    2341
    ATGAAGAAGT TTCGGGCCAA GGCGACCTCC CTGCCCATAT TCAACGGTCG CATAACCGAC 
    GCCACCACGC TGACCACCAG TTCGCTGCAG TTACCCTTGG GTCAGGCTTC ACAGCGGAAG
    CAATCGACTT GCACCAGGGT CCTGCCCACG GTTTTTACCA TTACGGACGG CACCACCGGA
    GCGGCCAGTA CCTCCTTGGC GGAGGCCATG TCGAGCAGTA AGGCACAGGT GCCATACCGA
    CAGGAGAGCC TCCTGCAGCT CAGTGTTCCC CGGGAGGCGG CAGTGGGAGT GGCAGGACCT
    GAATTGGCTA ACTATGAAAA GGTGCGAGTG GTGGGCCAGG GTTCCTTTGG CATCGCCATC
    CTGTACCGGC GCAAGTCCGA CGGGCACCAG ATCGTCTTCA AGCAAATCAA CTTGAGTGAG
    TTGACCCCGC CTGGTCGGGA TCTGGCCATG AACGAGGTTG ATGTCTTCTC GAAATTACAT
    CATCCGAATA TTGTGAGCTA CCTCGGAAGC TTCATCAAGG ACAACAGTCT GCTCATCGAG
    ATGGAGTACG CCGATGGAGG GACACTGGCC CACATCATCG CCGAGCGGCA GGGTAAATTG
    CATTTCCCTG AACGCTATAT AATAGCCGTA TTCGAGCAGA TATCCAGTGC CATTAACTAC
    ATGCACTCGG AGAACATCCT GCATCGGGAT TTGAAGACCG CGAATGTATT CCTAAACAGG
    CGGGGTATTG TGAAAATCGG AGATTTCGGC ATATCCAAAA TAATGAACAC CAAGATACAT
    GCCCAGACTG TTTTGGGCAC ACCCTACTAC TTCAGTCCGG AGATGTGTGA GGGTAAGGAG
    TACGACAACA AGAGTGATAT TTGGGCACTG GGCTGCATTC TGGGCGAGAT GTGCTGCCTG
    AAGAAAACGT TTGCTGCCTC CAATCTATCC GAACTGGTTA CCAAGATTAT GGCAGGGAAC
    TATACGCCCG TGCCATCGGG TTACACCTCG GGACTTCGCA GTTTAATGTC CAACCTGCTT
    CAAGTGGAGG CACCACGGCG ACCTACCGCA TCAGAGGTTT TGGTTTACTG GATTCCGCTG
    ATATTCCGTA GTCTGGGAAA GAATAAGGGG TACTCCTACG AGGATGATGT GGGAGGCAGC
    GGCGGCGACC AATTGACTGC TCCTGATCCA GCCGCCGCCC ACAGCAATGT GTCCATGGAG
    CTGGAATTGC CCACCGCCCA GACGGAGACC AAGCAATTAA TGAGTGCGGA GACAGCGGCG
    CCGCACGAGA TCCTTGAGAA ACGATCCGTG CTATACCAGC TGAAGGCCTT CGGCACCTGC
    TTCAGCATGG CGCCCATCCA ACTGCCGCCG AAGGCTGTCA TCGTGGGCGT AGCGATGTCA
    GATTCCCACT TCGTGGTGGT CAACGAGGAC GGATCGGCAT ACGCCTGGGG TGAGGGCACT
    TACGGCCAGC TGGGTCTCAC CGCACTGGAG GCCTGGAAGC ACTACCCAAG CCGTATGGAG
    AGCGTGCGCA ACTACCATCT CGTGAGCGCC TGTGCCGGCG ATGGCTTTAC TATCCTGGTC
    ACTCAGGCGG GCAGTCTGCT AAGCTGCGGG AGCAATGCCC ATCTGGCACT GGGGCAGGAC
    GAGCAACGCA ACTACCACAG CCCCAAACTG GTCGCCCGAT TGGCGGATGT CCGGGTGGAG
    CAGGTGGCTG CTGGACTCCA CCACGTTCTG GCCTTGAGTC GAGAGGGAGC GGTCTACGTG
    TGGGGCACGA GTACATGCGG AGCTCTTGGT CTTGGAAATT ATCAGCAGCA ACAAAAATTC
    CCCCAAAAGA TTCTTCTATC GCATGTGAAA ACCAAGCCAT CCAAGATTTA CTGCGGTCCC
    GATACATCAG CTGTGTTGTT CGCCAACGGA GAACTGCACG TCTGTGGCAG CAATGACTAC
    AATAAACTTG GTTTCCAACG TCCGTCGAAG ATTACAGCCT TCAAAAAGGT CCAACTGCCC
    CACAAGGTGA TTCAGGCGTG CTTCTCGTCC ACCCATTCGG TGTTCCTGGT GGAGGGCGGC
    TATGTCTATA CCATGGGTCG AAATGCGGAG GGTCAGCGGG GAATCGGGCA CTGCAACTCG
    GTTGATCACC CCACCATGGT GGATTCCGTC AAGTCACGAA GGCGAACTGC AGCGACCAGT
    GCACCATTGT TGCCTCGGAA GACAATATCA TCACCGTTTG GGGCACTCGT AATGGTCTGC
    CGGGGATTGG TTCGACCAAC AGTGGACTTG GGCTGGAGAT CTGCACACCC AACACAGAAT
    TGGAACTGGG TAACAACACG GCAGCGTTTA CAAACTTTCT GGCCTCGGTC TACAAGTCGG
    AACTGA

    The stop codons will be deleted if pcDNA3.1+/C-(K)DYK vector is selected.

  • PubMed

    Assembly reconciliation.
    Bioinformatics (Oxford, England)24(1)42-5(2008 Jan)
    Zimin AV,Smith DR,Sutton G,Yorke JA


    Evolution of genes and genomes on the Drosophila phylogeny.
    Nature450(7167)203-18(2007 Nov)
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