Tsp_04024 cDNA ORF clone, Trichinella spiralis

The following Tsp_04024 gene cDNA ORF clone sequences were retrieved from the NCBI Reference Sequence Database (RefSeq). These sequences represent the protein coding region of the Tsp_04024 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
OTr119995 XM_003374790.1
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Trichinella spiralis putative thrombospondin type 1 domain protein (Tsp_04024) mRNA, complete cds. pcDNA3.1-C-(k)DYK or customized vector 19-21 $713.30
$1019.00

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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 OTr119995
    Clone ID Related Accession (Same CDS sequence) XM_003374790.1
    Accession Version XM_003374790.1 Latest version! Documents for ORF clone product in default vector
    Sequence Information ORF Nucleotide Sequence (Length: 3897bp)
    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 2011-06-30
    Organism Trichinella spiralis
    Product putative thrombospondin type 1 domain 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_003526944). Trichinella spiralis is a roundworm that cause most of the human trichinella infections and deaths around the world. Its pathogenicity is higher than that of other trichinella species due to the higher number of newborn larvae produced by the females and for the stronger immune reaction induced in humans. The life cycle of the parasite begins when a person or an animal eats contaminated meat containing larvae. T. spiralis is a basal nematode with a well-defined phylogenetic position near the root of the phylum Nematoda. The genome size estimate based on flow sorted nuclei stained with PI (Spencer Johnston, Texas A&M University) is 1C = 71.3 +/1 1.2 Mb. The strain being sequenced (ISS 195) was obtained from the laboratory of Judith Appleton (Cornell University) and has been maintained in rats since 1970. Worm isolation and DNA extraction was performed by Dante Zarlenga (USDA) This assembly consists of plasmid, fosmid and BAC end sequences. The data were assembled using the assembly engine, PCAP (Xiaoqiu Huang et. al. 2006). Our goal is to explore this WGS draft sequence of T. spiralis in several ways: i) to provide a better understanding of evolutionary biology by identifying gene loss or gain across the phylum Nematoda and clarify evolution of genome architecture (synteny, operons); ii) help identify RNA genes and regulatory regions; and iii) better define proteins involved in nematode parasitism that impact health and disease and are relevant to both host-parasite relationships and basic biological processes.. We masked the repeats by using RECON (Bao and Eddy, 2002) and RepeatMasker (A.F.A. Smit, R. Hubley & P. Green RepeatMasker at http://repeatmasker.org). Then the Ribosomal RNA genes were identified using RNAmmer ((http://www.cbs.dtu.dk/cgi-bin/nph-sw_request?rnammer ). Transfer RNA genes were identified with tRNAscan-SE (Lowe and Eddy, 1997). Non-coding RNAs, such as microRNAs, were identified by sequence homology search of the Rfam database (http://selab.janelia.org/software.html). Protein-coding genes were predicted using a combination of ab initio programs (Snap, Korf, 2004 and Fgenesh, Softberry, Corp) and an inhouse evidence based program Eannot (Eannot Ding et al., 2004) which uses mRNA, EST and protein alignment information from same species or cross-species to aid in gene structure determination. A consensus gene set from the above prediction algorithms will be generated, using a logical, hierarchical approach. Gene product naming was determined by BER (JCVI: http://ber.sourceforge.net ). For information regarding this assembly or project, or any other GSC genome project, please visit our Genome Groups web page (http://genome.wustl.edu/genome_group_index.cgi) and email the designated contact person. For specific questions regarding the T. spiralis genome project contact Makedonka Mitreva [email protected] (Washington University School of Medicine). The National Human Genome Research Institute (NHGRI) of the National Institutes of Health (NIH) provided funds for this project.

    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
    2581
    2641
    2701
    2761
    2821
    2881
    2941
    3001
    3061
    3121
    3181
    3241
    3301
    3361
    3421
    3481
    3541
    3601
    3661
    3721
    3781
    3841
    ATGACGTCCC GTCGTAATCA TGGACTGTTT ACGATGCTTA TTGGAATTTT GATATTTGGC 
    TTTTTGCTCA AAATCGCTCT GCTCATCACA AGTCGTCGTT ACAATCCCAA TCCGCTTCAT
    TTGCATGATG ATCCCGAACG CCTGTCAGCT TATGAAAATA TTCAAAATTT GAAAATTGAT
    CGCAGCAAGA ATACCTACAA TGAAAAACTA CTTGTCAGCT TTGAAGCGTT TAAGCAACAT
    TTCATGCTCG TCCTCACACC TGTTGACCCA TTGGTAAGCA AGGGAGCAAA TTTTTTCATT
    CAAAATGGAC CCAAGCGATC ATCCCTTCTA CCAAGGCATT GTCATTTTCA TGGTCATGCA
    ATTTCACATG GCAACAAATC AGTAGCCTTG TCTATCTGCA ACTCCATCAG AGGTATTCTG
    ATTTTGGACG ACCATTTTCT CGTAATTCAA CCTCTACTTG ATCATGGAAG TAAAATGCCA
    AGTCACGAGA ATCATAGTAG CCATGTCATT TACAAACGAT CCGCTTCATT GAATGGCTTT
    CAACAGAACG AACTGCTTCA ACATATCGAA GATGTTTCAT TCAACGTGGT TCAACCTGAA
    CAATTCTGCG AAGTCAAATT CTTATTGTTG AAGGTAAATT TGCTATATCG ACAACCAACA
    ATTCGTCCAA AGTTGAACAT CGTCGTGGTT CATCTTGAAA TGTGGAAAAC AGAACCAGAA
    AATCTCAATG CCCAATTGCA CAAATATGGT GAAGCTCAAT TTTTTCTCGA TCAATTTTGC
    CAACTGCAAG GACGCTTGCG AAAAGCCGGT GCCCACTGGG ATCACGCCAC TCTGCTCACT
    GGCTATGATA TTTATCATAC GTCGACCAGT GTAGCCGGTG TGGCGCCGGT GGCTCGAATG
    TGTGATACAC AGTTCAGCTG CTCGTTGATC GAAGGAAATC ATCTCGGCAG ATCATTTGTT
    CTCGCCCACG AAATGGGTCA CAACATGGGC ATGCTACACG ATGGGGTGCA GAACCAGTGC
    TCGCAAAGCT GCTGCTTGAT GTCGCCGGTC AATGGCGCCG GTCGAACAAA TTGGTCACCT
    TGTTCAGTAC GAGAGTACCA ATCATTCTTG GTTGACATCA CGAAACCAGA AAGTACAATT
    CCAAATTGCC TATCCAATAC CGAAGAAGTG TCACCTGCAC TGGTGCTGGG TTCGACAATC
    CCTCAGCTAC CTGGACAACG TTATACGGCA GATCAGCAGT GTGAATTTTT CTGGGGAGAC
    GGTTATTTAA ATGAAATTCC GGATGGAAAA AGCCGTGAAT GGTGCCGTAA TGGAAAATGT
    GTGCCGTGGT TCAAAGACGA AGCTCCTGAG CCTGTCGACG GTCAGTGGAC CGAATGGTCA
    AGAGCCCAAC ACTCTCGTTG CTCGGATTGC GTAATCGCGA ATGCAATTCG CCTCCGAAGT
    GAGGTTCGCC ACTGCAAAGC TCCGGCGCCA AACAATGGAG GACGGGACTG TTTGGGATCA
    TCAATAAGAG GCTTGCTTTG CCGAGGCACG GCAGATTGTG ATCAATTTTC CAAAGCTGAC
    TTCAGTGATC GAATATGTGC AGCAATTCGA AATGATCCTG AAAAGCCAGA TCCAGATCTC
    AGCGGCAAAG GCTTTCAACG TAAAGATGAA AAAACTTATT GCCAATTTTC AAAAAAGTGT
    ATATATATCA TTCTTAACAA TCTTTCATCA TGTACAGATC CATCCAGTCC CTGCAAAGTG
    TGGTGCCATC TTCGTTCAAC TTTACTCATT CGAAGCAAAG GCAAATATCC AGACGGAACC
    CCATGTGGCG TGAACAAATA CTGCATGGAT GGAAAATGCT TAGTAAATGA ATGCTCTTTT
    TCACTGGAAA TTGTTCTTCT TCACATGAAA AGCAGTTTTG CTACAGTTAT CCCTATAGAC
    GGTGCATGGT CAGCATGGTC ATCATGGAGC AATTGCTCTG CCAGTTGTGG AATAGGTACA
    CAAATAAGAA AGCGGCAGTG TGAAAATGGC AAATGCCTGA ACGGTACGTC GATTGAAGAA
    CAAATCTGCA ATGGTGTCGA TTGCTCATCT TGGACAAGTT GGAGTGAATG GAGCAAATGC
    AGTGCTTCTT GTGGTAATGG GGCTCGTCTC CGTTCTCGAA CTTGTCGTAC TGATCAACCG
    TGCGATGGAC CTTCGGTCGA TTTTGAAAAA TGCACCGGAA CCAACTGCTC CAGCTGGTCT
    GAATGGTCAG CCTGGTCAAC TTGTTCGAGA AGTTGTGGCG TTGGCAAGCA GTCCCGAAAT
    CGTCACTGCA AATATGACTT ATCCGCTGAA TGTGATGGTC ACTCACAAGA ACTGAAAACT
    TGCAATGATC AAGACTGTCC CGTTTTACAA GGCAGTTGGA GTGAATGGTC CAAATGCACT
    GAACAGTGTG CAAATTCCGC AGGAACCAGA ACTAGAAGTC GCGCATGTTC ACCAGATCAC
    CACGCCAGTT GCGTTGATTC GAAAGAAACG CAAACTGAAC CCTGCTTAGG TAAAGAAGAC
    TGTCCCACAT GGCTTTCTTG GGGTCCGTGG AGCGCTTGTA CAGTTTCATG TGGATCAGGA
    ATACAGACAC GTCTACGTAC ATGCCTACAG CAAGAAACGG CCCTCGTTCT TCTCGATGGT
    ACTGCATTAT CAAACAGATG TCCAGGAAGT AATATAGAAA GTCGATCATG TTCAACAGAA
    CCATGCGAAG AGAATACACA AAACGAAGAT CCTGCTTCTT GGACCGAGTG GACACCCTGT
    TCGGCAACGT GTGGACTGGG TGTGAAAATT CGCCGAAGAA ATTGCAACAG CTTTCGTAAA
    TTTACTAGTG ATCAATCAGA ATGTCACCAC GGTGTACAAA AAATTACATG CGAACTCAAG
    CCTTGCCAAC AGTTGGATGC TGAAATGGAA TGGCAACCGT GGAGTCCATG TTCCAGATCT
    TGCGGCACTG GATACCGTCA TCGAACGCGA TCGTGTGAAT CTTGCTCCGG AAAGGAGATG
    ACCCAACAGG AACCATGCAA TACATTCAAC TGTTCAGTAA CTGTAACTTT AACCACTGAG
    CTGACCAGTC TCGACCAACC TAGTTGGTCT GAATGGTCAC CTTGGAGTGA GTGCTCGAAA
    GCTTGCGACG GTGGTCGACA AGTGCGTAGA CGTCAGTGCA GCACAACACT GCAACAGTGC
    AAAGGATTCG CCGTCGAAGA GACCATTTGC AATGAACAAT CGTGTGATCA AAATCAATCA
    CAGCAAGAAG GTAATACTAC GACATTTTTG TTCTTTGATC ATACATACGA AGCAGCAATA
    TTTATGCAAC GTCGTGATTC AGTCATATCA AAAGCAATGT CCAACAACGC GCAATGGTCC
    AGCTGGTCAG AATGGAGTGA ATGCAGCTGC TATAAAAACT TAAAAATTCG CCTACGACAC
    TGCATTGTGA GCGATCCCAA GACGATGGGA TTTTGTTTAG GTCCAACTTA TGAAAAACTC
    ACTTGTGTAC CTGAAAAATG TAAACCAACA GATGGAAGCT GGACTGAATG GTCGTCTTGG
    AGCCATTGTT CTCAATCCTG TTCTTCTGGT TCAGATGCTG TTCAGACGCG TTTTCGTGCT
    TGCGCAAATC CTGTACCAAG CAATCAAGGC TTTTATTGTC AAGGATCTGC AACTGACGTG
    CAACAATGCC CAGATTTGCC ACAGTGTTCG AATGGTATTG TAAATGTTGA TAGCCACATG
    TCTGTGATTT TTACATTTTC TTTTTTCATT CTTATTCCAG ATCAAACTGA AGGTACATGG
    ACAGATTGGT CAACTTGGAC TGATTATTAT CAAAGTATTG GATGCGAACG CAAGCGAGCA
    CGAACAAGGT GCCAACCAGA AATGGTTTCT TATAGTTCAT TCAAACGGTT GAATTAA

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

    RefSeq XP_003374838.1
    CDS1..3897
    Translation

    Target ORF information:

    RefSeq Version XM_003374790.1
    Organism Trichinella spiralis
    Definition Trichinella spiralis putative thrombospondin type 1 domain protein (Tsp_04024) mRNA, complete cds.

    Target ORF information:

    Epitope DYKDDDDK
    Bacterial selection AMPR
    Mammalian selection NeoR
    Vector pcDNA3.1+/C-(K)DYK
    XM_003374790.1

    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
    2581
    2641
    2701
    2761
    2821
    2881
    2941
    3001
    3061
    3121
    3181
    3241
    3301
    3361
    3421
    3481
    3541
    3601
    3661
    3721
    3781
    3841
    ATGACGTCCC GTCGTAATCA TGGACTGTTT ACGATGCTTA TTGGAATTTT GATATTTGGC 
    TTTTTGCTCA AAATCGCTCT GCTCATCACA AGTCGTCGTT ACAATCCCAA TCCGCTTCAT
    TTGCATGATG ATCCCGAACG CCTGTCAGCT TATGAAAATA TTCAAAATTT GAAAATTGAT
    CGCAGCAAGA ATACCTACAA TGAAAAACTA CTTGTCAGCT TTGAAGCGTT TAAGCAACAT
    TTCATGCTCG TCCTCACACC TGTTGACCCA TTGGTAAGCA AGGGAGCAAA TTTTTTCATT
    CAAAATGGAC CCAAGCGATC ATCCCTTCTA CCAAGGCATT GTCATTTTCA TGGTCATGCA
    ATTTCACATG GCAACAAATC AGTAGCCTTG TCTATCTGCA ACTCCATCAG AGGTATTCTG
    ATTTTGGACG ACCATTTTCT CGTAATTCAA CCTCTACTTG ATCATGGAAG TAAAATGCCA
    AGTCACGAGA ATCATAGTAG CCATGTCATT TACAAACGAT CCGCTTCATT GAATGGCTTT
    CAACAGAACG AACTGCTTCA ACATATCGAA GATGTTTCAT TCAACGTGGT TCAACCTGAA
    CAATTCTGCG AAGTCAAATT CTTATTGTTG AAGGTAAATT TGCTATATCG ACAACCAACA
    ATTCGTCCAA AGTTGAACAT CGTCGTGGTT CATCTTGAAA TGTGGAAAAC AGAACCAGAA
    AATCTCAATG CCCAATTGCA CAAATATGGT GAAGCTCAAT TTTTTCTCGA TCAATTTTGC
    CAACTGCAAG GACGCTTGCG AAAAGCCGGT GCCCACTGGG ATCACGCCAC TCTGCTCACT
    GGCTATGATA TTTATCATAC GTCGACCAGT GTAGCCGGTG TGGCGCCGGT GGCTCGAATG
    TGTGATACAC AGTTCAGCTG CTCGTTGATC GAAGGAAATC ATCTCGGCAG ATCATTTGTT
    CTCGCCCACG AAATGGGTCA CAACATGGGC ATGCTACACG ATGGGGTGCA GAACCAGTGC
    TCGCAAAGCT GCTGCTTGAT GTCGCCGGTC AATGGCGCCG GTCGAACAAA TTGGTCACCT
    TGTTCAGTAC GAGAGTACCA ATCATTCTTG GTTGACATCA CGAAACCAGA AAGTACAATT
    CCAAATTGCC TATCCAATAC CGAAGAAGTG TCACCTGCAC TGGTGCTGGG TTCGACAATC
    CCTCAGCTAC CTGGACAACG TTATACGGCA GATCAGCAGT GTGAATTTTT CTGGGGAGAC
    GGTTATTTAA ATGAAATTCC GGATGGAAAA AGCCGTGAAT GGTGCCGTAA TGGAAAATGT
    GTGCCGTGGT TCAAAGACGA AGCTCCTGAG CCTGTCGACG GTCAGTGGAC CGAATGGTCA
    AGAGCCCAAC ACTCTCGTTG CTCGGATTGC GTAATCGCGA ATGCAATTCG CCTCCGAAGT
    GAGGTTCGCC ACTGCAAAGC TCCGGCGCCA AACAATGGAG GACGGGACTG TTTGGGATCA
    TCAATAAGAG GCTTGCTTTG CCGAGGCACG GCAGATTGTG ATCAATTTTC CAAAGCTGAC
    TTCAGTGATC GAATATGTGC AGCAATTCGA AATGATCCTG AAAAGCCAGA TCCAGATCTC
    AGCGGCAAAG GCTTTCAACG TAAAGATGAA AAAACTTATT GCCAATTTTC AAAAAAGTGT
    ATATATATCA TTCTTAACAA TCTTTCATCA TGTACAGATC CATCCAGTCC CTGCAAAGTG
    TGGTGCCATC TTCGTTCAAC TTTACTCATT CGAAGCAAAG GCAAATATCC AGACGGAACC
    CCATGTGGCG TGAACAAATA CTGCATGGAT GGAAAATGCT TAGTAAATGA ATGCTCTTTT
    TCACTGGAAA TTGTTCTTCT TCACATGAAA AGCAGTTTTG CTACAGTTAT CCCTATAGAC
    GGTGCATGGT CAGCATGGTC ATCATGGAGC AATTGCTCTG CCAGTTGTGG AATAGGTACA
    CAAATAAGAA AGCGGCAGTG TGAAAATGGC AAATGCCTGA ACGGTACGTC GATTGAAGAA
    CAAATCTGCA ATGGTGTCGA TTGCTCATCT TGGACAAGTT GGAGTGAATG GAGCAAATGC
    AGTGCTTCTT GTGGTAATGG GGCTCGTCTC CGTTCTCGAA CTTGTCGTAC TGATCAACCG
    TGCGATGGAC CTTCGGTCGA TTTTGAAAAA TGCACCGGAA CCAACTGCTC CAGCTGGTCT
    GAATGGTCAG CCTGGTCAAC TTGTTCGAGA AGTTGTGGCG TTGGCAAGCA GTCCCGAAAT
    CGTCACTGCA AATATGACTT ATCCGCTGAA TGTGATGGTC ACTCACAAGA ACTGAAAACT
    TGCAATGATC AAGACTGTCC CGTTTTACAA GGCAGTTGGA GTGAATGGTC CAAATGCACT
    GAACAGTGTG CAAATTCCGC AGGAACCAGA ACTAGAAGTC GCGCATGTTC ACCAGATCAC
    CACGCCAGTT GCGTTGATTC GAAAGAAACG CAAACTGAAC CCTGCTTAGG TAAAGAAGAC
    TGTCCCACAT GGCTTTCTTG GGGTCCGTGG AGCGCTTGTA CAGTTTCATG TGGATCAGGA
    ATACAGACAC GTCTACGTAC ATGCCTACAG CAAGAAACGG CCCTCGTTCT TCTCGATGGT
    ACTGCATTAT CAAACAGATG TCCAGGAAGT AATATAGAAA GTCGATCATG TTCAACAGAA
    CCATGCGAAG AGAATACACA AAACGAAGAT CCTGCTTCTT GGACCGAGTG GACACCCTGT
    TCGGCAACGT GTGGACTGGG TGTGAAAATT CGCCGAAGAA ATTGCAACAG CTTTCGTAAA
    TTTACTAGTG ATCAATCAGA ATGTCACCAC GGTGTACAAA AAATTACATG CGAACTCAAG
    CCTTGCCAAC AGTTGGATGC TGAAATGGAA TGGCAACCGT GGAGTCCATG TTCCAGATCT
    TGCGGCACTG GATACCGTCA TCGAACGCGA TCGTGTGAAT CTTGCTCCGG AAAGGAGATG
    ACCCAACAGG AACCATGCAA TACATTCAAC TGTTCAGTAA CTGTAACTTT AACCACTGAG
    CTGACCAGTC TCGACCAACC TAGTTGGTCT GAATGGTCAC CTTGGAGTGA GTGCTCGAAA
    GCTTGCGACG GTGGTCGACA AGTGCGTAGA CGTCAGTGCA GCACAACACT GCAACAGTGC
    AAAGGATTCG CCGTCGAAGA GACCATTTGC AATGAACAAT CGTGTGATCA AAATCAATCA
    CAGCAAGAAG GTAATACTAC GACATTTTTG TTCTTTGATC ATACATACGA AGCAGCAATA
    TTTATGCAAC GTCGTGATTC AGTCATATCA AAAGCAATGT CCAACAACGC GCAATGGTCC
    AGCTGGTCAG AATGGAGTGA ATGCAGCTGC TATAAAAACT TAAAAATTCG CCTACGACAC
    TGCATTGTGA GCGATCCCAA GACGATGGGA TTTTGTTTAG GTCCAACTTA TGAAAAACTC
    ACTTGTGTAC CTGAAAAATG TAAACCAACA GATGGAAGCT GGACTGAATG GTCGTCTTGG
    AGCCATTGTT CTCAATCCTG TTCTTCTGGT TCAGATGCTG TTCAGACGCG TTTTCGTGCT
    TGCGCAAATC CTGTACCAAG CAATCAAGGC TTTTATTGTC AAGGATCTGC AACTGACGTG
    CAACAATGCC CAGATTTGCC ACAGTGTTCG AATGGTATTG TAAATGTTGA TAGCCACATG
    TCTGTGATTT TTACATTTTC TTTTTTCATT CTTATTCCAG ATCAAACTGA AGGTACATGG
    ACAGATTGGT CAACTTGGAC TGATTATTAT CAAAGTATTG GATGCGAACG CAAGCGAGCA
    CGAACAAGGT GCCAACCAGA AATGGTTTCT TATAGTTCAT TCAAACGGTT GAATTAA

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