2025-09-14 20:58:47, GGRNA.v2 : RefSeq release 231 (Jul, 2025)
LOCUS XM_070341943 11212 bp mRNA linear INV 12-DEC-2024 DEFINITION PREDICTED: Littorina saxatilis copper-transporting ATPase 1-like (LOC138969207), transcript variant X2, mRNA. ACCESSION XM_070341943 VERSION XM_070341943.1 DBLINK BioProject: PRJNA1148619 KEYWORDS RefSeq. SOURCE Littorina saxatilis ORGANISM Littorina saxatilis Eukaryota; Metazoa; Spiralia; Lophotrochozoa; Mollusca; Gastropoda; Caenogastropoda; Littorinimorpha; Littorinoidea; Littorinidae; Littorina. COMMENT MODEL REFSEQ: This record is predicted by automated computational analysis. This record is derived from a genomic sequence (NC_090250) annotated using gene prediction method: Gnomon. Also see: Documentation of NCBI's Annotation Process ##Genome-Annotation-Data-START## Annotation Provider :: NCBI RefSeq Annotation Status :: Full annotation Annotation Name :: GCF_037325665.1-RS_2024_12 Annotation Pipeline :: NCBI eukaryotic genome annotation pipeline Annotation Software Version :: 10.3 Annotation Method :: Gnomon; cmsearch; tRNAscan-SE Features Annotated :: Gene; mRNA; CDS; ncRNA Annotation Date :: 12/06/2024 ##Genome-Annotation-Data-END## FEATURES Location/Qualifiers source 1..11212 /organism="Littorina saxatilis" /mol_type="mRNA" /isolate="snail1" /isolation_source="shore boulder field crab ecotype" /db_xref="taxon:31220" /tissue_type="muscle from the foot" /dev_stage="adult" /geo_loc_name="Sweden" /collection_date="2017" /linkage_group="LG6" gene 1..11212 /gene="LOC138969207" /note="copper-transporting ATPase 1-like; Derived by automated computational analysis using gene prediction method: Gnomon. Supporting evidence includes similarity to: 11 Proteins" /db_xref="GeneID:138969207" CDS 327..5318 /gene="LOC138969207" /codon_start=1 /product="copper-transporting ATPase 1-like isoform X1" /protein_id="XP_070198044.1" /db_xref="GeneID:138969207" /translation="
MMYSRLHKTAQACEEEMEREAVLRLGQLTSADDAVTIQNLLTDQKGVVDAKVQYETREARVRYRPTETNPPILLGVLEDRAFSATIMDIQQSGDAASQKVAIDVDGMTCQSCVRNIEGNISHLDGVKDIHVSLENKQALVVFDASQTSASAVAEGISNMGFDAKVALGGDSGEQTRVIRVEGMTCQSCVRTIEGTMGSKQGISSIRVSLPDNQAIVRFNPCLISARQICEQIDDMGFDASLSDDEFAEIATRNKTPGSSRQCVISIGGMTCNSCVKNIESNISDKPGVKAIKVSLADQNGVVTYDPQIVKAAEIAEMIDDMGFDAKVAQQEDESLSDDEFAQIAARKAGGNGRKSCVISIQGMTCNSCVKNIESNIGAQPGILNIKVSLTDSNGVVTYDSKVTDPAKIAEMIDDMGFDAAVAQHDFPMGDQLANLNRSSNATQTCTISIEGMTCQSCVKKIESNMGNSAGIFSIKVSLADKNCQVDFDPAVVTPAQIGRMISDMGYRAFSLGDAAGTETQTVVVSIKGMTCQSCVNTIEGKLSEHPAVKSIHVSLSDETGTIMYDPSSATPKMLAEAIDDMGFDCAVQDGLKQDRGDQGKTIAHSASAVQMSSTGAVHFNKKVDEAGEFEKCFLTIKGMTCASCVANIERNINKIEGVKSILVSLMAQRAEVKFDPAYILPSQIANAVSDIGFNAKVNEAEGLGQGTVELTITGMTCASCVHLIQSNLLKRHGLLTASVALATSSGKFTFDTEICGPRDIIDAIKDMGFEAYLMTDDDKKAARYDHRDDIKRWRTSFLLSLIFGLPAMIVMIYFMFFYKPSEEGGEDHSNTTTTRPHKKSHKPQFMIADGLSLENLLMFILATPVQFIGGRYFYVQAYKAIKHGATNMDVLVVLATTISYLYSLIVVLVAMGLHERVSPITFFETTPMLMVFISLGRWLEHIAKGKTSEALAKLLSLQPSEAVLVTVDKENTILSEKIISVELVQRGDILKVVPGGKIPIDGKVVSGQSNCDESLITGESMPVSKKEGSTVIGGSINQHGTLLTEATHVGADTTLSQIVKLVEEAQTSKAPIQNLADKIAGIFVPIVCTLSTITLLGWVIAGYVDIKLIEEDFVDNGEVSKSEMIFEKAFQYAITVLSIACPCALGLATPTAVMVGTGVGALNGILIKGGEPLETTHKVRCIVFDKTGTVTHGVPRVARVSMFVTDSVCSFVKMIAICGTAEASSEHPIASAIVKYAKETLEAAVLGKTTDFKAVPGCGLKCKASGIESLLTGLDMDGVRNRRNKQGSLVIRIDSKSSQPSDSLHQALQIDDLAGAVAPATYEVLIGNREWMNRNGLTVTEEMDEVMTEHENQGHTAVLCTVDGVIVSMLAVADTVKSEAHVAIHELKKLVPEIILLTGDNKKTARAIAKQIGIKKVFAEVLPSHKVKKIRQLQAEGHKVAMVGDGVNDSPALAQADVGIAIGTGTDVAVEAADIVLMNSNLLDVFAAIKLSRKTVERIYMNFFFACLYNLLGIPIAAGVFVPWGLSLKPWMASAAMAASSVSVVVSSLGLKLFKKPKMKDLVTQEYHESYAKEQGLQGGVKESNKKSYNVKQTAGENVDDDEIAVYCGADVDAASRSGSRQGSLLSRLSNKIKSATNTPDQLSLLNNDDDLNMNEDSLSARV"
misc_feature 381..>623 /gene="LOC138969207" /note="Cation-transporting P-type ATPase [Inorganic ion transport and metabolism]; Region: ZntA; COG2217" /db_xref="CDD:441819" misc_feature 630..818 /gene="LOC138969207" /note="Heavy-metal-associated domain (HMA) is a conserved domain of approximately 30 amino acid residues found in a number of proteins that transport or detoxify heavy metals, for example, the CPx-type heavy metal ATPases and copper chaperones. HMA domain...; Region: HMA; cd00371" /db_xref="CDD:238219" misc_feature order(645..653,660..662) /gene="LOC138969207" /note="metal-binding site [ion binding]" /db_xref="CDD:238219" misc_feature 855..1046 /gene="LOC138969207" /note="Heavy-metal-associated domain (HMA) is a conserved domain of approximately 30 amino acid residues found in a number of proteins that transport or detoxify heavy metals, for example, the CPx-type heavy metal ATPases and copper chaperones. HMA domain...; Region: HMA; cd00371" /db_xref="CDD:238219" misc_feature order(873..881,888..890) /gene="LOC138969207" /note="metal-binding site [ion binding]" /db_xref="CDD:238219" misc_feature 1113..1304 /gene="LOC138969207" /note="Heavy-metal-associated domain (HMA) is a conserved domain of approximately 30 amino acid residues found in a number of proteins that transport or detoxify heavy metals, for example, the CPx-type heavy metal ATPases and copper chaperones. HMA domain...; Region: HMA; cd00371" /db_xref="CDD:238219" misc_feature order(1131..1139,1146..1148) /gene="LOC138969207" /note="metal-binding site [ion binding]" /db_xref="CDD:238219" misc_feature 1395..1586 /gene="LOC138969207" /note="Heavy-metal-associated domain (HMA) is a conserved domain of approximately 30 amino acid residues found in a number of proteins that transport or detoxify heavy metals, for example, the CPx-type heavy metal ATPases and copper chaperones. HMA domain...; Region: HMA; cd00371" /db_xref="CDD:238219" misc_feature order(1413..1421,1428..1430) /gene="LOC138969207" /note="metal-binding site [ion binding]" /db_xref="CDD:238219" misc_feature 1662..1850 /gene="LOC138969207" /note="Heavy-metal-associated domain (HMA) is a conserved domain of approximately 30 amino acid residues found in a number of proteins that transport or detoxify heavy metals, for example, the CPx-type heavy metal ATPases and copper chaperones. HMA domain...; Region: HMA; cd00371" /db_xref="CDD:238219" misc_feature order(1680..1688,1695..1697) /gene="LOC138969207" /note="metal-binding site [ion binding]" /db_xref="CDD:238219" misc_feature 1881..2078 /gene="LOC138969207" /note="Copper chaperone CopZ [Inorganic ion transport and metabolism]; Region: CopZ; COG2608" /db_xref="CDD:442020" misc_feature 2226..2414 /gene="LOC138969207" /note="Heavy-metal-associated domain (HMA) is a conserved domain of approximately 30 amino acid residues found in a number of proteins that transport or detoxify heavy metals, for example, the CPx-type heavy metal ATPases and copper chaperones. HMA domain...; Region: HMA; cd00371" /db_xref="CDD:238219" misc_feature order(2241..2249,2256..2258) /gene="LOC138969207" /note="metal-binding site [ion binding]" /db_xref="CDD:238219" misc_feature 2451..2642 /gene="LOC138969207" /note="Heavy-metal-associated domain (HMA) is a conserved domain of approximately 30 amino acid residues found in a number of proteins that transport or detoxify heavy metals, for example, the CPx-type heavy metal ATPases and copper chaperones. HMA domain...; Region: HMA; cd00371" /db_xref="CDD:238219" misc_feature order(2469..2477,2484..2486) /gene="LOC138969207" /note="metal-binding site [ion binding]" /db_xref="CDD:238219" misc_feature 2715..4919 /gene="LOC138969207" /note="P-type heavy metal-transporting ATPase, similar to human copper-transporting ATPases, ATP7A and ATP7B; Region: P-type_ATPase_Cu-like; cd02094" /db_xref="CDD:319783" misc_feature order(3747..3749,3753..3755,4851..4853) /gene="LOC138969207" /note="putative Cu binding site [ion binding]; other site" /db_xref="CDD:319783" misc_feature order(3879..3887,4089..4091,4302..4310,4398..4400, 4518..4526,4584..4586,4593..4595,4602..4604,4659..4661, 4668..4670) /gene="LOC138969207" /note="putative ATP binding site [chemical binding]; other site" /db_xref="CDD:319783" polyA_site 11212 /gene="LOC138969207" /experiment="COORDINATES: polyA evidence [ECO:0006239]" ORIGIN
cctgcttggcggactttttcgcgaaccttctttgctgcaatgcagggactcgcgtattgatcgtcagtgactcagcagtccaccagacaaagtccgccagcggcgtgtggatcgctcactctgtggattctcgtgattggttgaaaatgtgccatcgttccttttttagtaatgaggaaaagtccgccacgtaatatgtagtccacaatttgcgttctagcccacttcgtaaagcgtccagagtgtgtgctcataacaactattacagtgcaggatctttgtgcgttcctggttcagctttccagtgattcgagcgattcagttgtatgatgtattctagactccacaagacggcccaggcatgcgaagaggagatggagagggaggcagtactgcgactaggtcagctgaccagcgctgacgatgcagtgaccatccaaaacttgttgaccgatcagaaaggcgttgtggacgccaaggtgcagtatgagacgagagaggcgcgtgtgaggtacaggcccacagagaccaaccccccgatcttgctgggtgtgctggaagaccgcgcgttctcagccaccatcatggacattcagcagtctggagacgccgcctcacagaaggtggccatcgacgttgacggcatgacctgccagtcgtgtgtgcgcaacattgagggcaacatctcacaccttgacggggtcaaggacatccacgtgtcgctggagaacaagcaggccctggtggtcttcgacgcgtcccagacgtcagccagcgccgtggcggaagggatcagtaacatgggattcgacgccaaggtggctttgggaggggactctggggaacaaacaagagtgattcgagtggagggcatgacctgccagtcctgcgtacgcaccatcgagggcaccatgggaagcaagcagggcatcagcagcattcgagtcagcttgcccgacaaccaggccatcgtacggttcaatccctgcctgatatctgcccggcagatttgtgaacagattgatgatatgggctttgatgcttctctcagtgacgatgaatttgcggaaattgcaactcggaataagacgccaggcagcagcaggcagtgtgtgatcagcattggaggaatgacgtgtaactcttgcgtgaagaacattgagtccaacatcagcgacaaaccaggggtcaaggccatcaaggtgtccttggctgaccagaacggtgtggtgacctacgaccctcagatcgtgaaggcggctgagatcgctgaaatgattgacgacatgggctttgacgctaaggtggctcagcaggaggatgagagcctgagtgacgatgagtttgcccagattgccgccaggaaggcaggagggaacggacgcaagtcttgtgtcatcagcattcagggcatgacgtgcaactcatgtgtgaagaacattgagtccaacatcggtgctcagccaggcatcctcaacatcaaagtgtccttgacagactctaatggcgtggtgacctatgacagcaaggtcacggatccagcgaagatcgctgaaatgattgatgacatggggtttgacgctgcagtggcccagcatgactttcccatgggtgaccagctggccaatctcaaccgttcgagcaacgccactcagacttgcaccatcagcatcgagggaatgacctgccagtcatgcgtgaaaaagattgaaagcaacatgggcaattcagcgggcatcttcagcatcaaagtgtctctcgctgacaagaactgtcaggtggattttgaccccgcagtggtgactcccgcccagatcgggcgaatgatttctgacatgggatacagagcgttttctcttggagacgcagcggggacagaaacacagacagtggtcgtatccatcaagggcatgacctgccagtcctgcgtcaacaccatcgagggcaaactgtcggaacacccggctgtcaagagtatccatgtgtcgctgtctgatgagacggggacaataatgtacgaccccagcagtgccacgcctaagatgctggctgaagccatcgatgacatgggattcgactgtgctgtgcaagatggcctcaaacaggacaggggagaccagggaaagacaattgctcattctgcgagtgcggttcaaatgagcagcactggcgctgtacacttcaacaaaaaagtggacgaggccggtgaattcgagaaatgcttcctcaccatcaagggcatgacctgtgcatcctgcgtcgccaacatcgagagaaacatcaataaaattgaaggcgtgaaaagtatcctggtgtccctgatggcacagagggcagaggtcaagtttgaccccgcctacatccttccctcacaaatcgccaacgcagtctccgacattggcttcaacgccaaggtcaacgaggcagagggactgggacaaggcactgtggaactaacaatcacaggcatgacgtgcgcatcatgtgttcacctgatccagagcaatttgttaaaacgccatggtcttctgacggcgtctgttgctttagccacctcttctggaaagttcacctttgacaccgagatctgcgggcccagagacatcattgacgccattaaggatatggggtttgaggcgtacctaatgacagatgatgacaagaaggccgctcgctacgatcacagggatgatatcaaacgatggagaacgtcgttcctgttgtcgctgatcttcgggctgccagccatgatagtgatgatctacttcatgtttttctacaaaccttcggaggagggaggggaggatcacagcaacaccaccaccacccgcccccacaagaagtcccacaagcctcagttcatgatcgctgatggcttgtccttggaaaatctcctcatgtttatcttggccacacctgtgcagttcatcggtggacgatacttctacgtccaagcgtacaaggcgataaaacacggagcgaccaacatggatgttctggttgtcctggcaaccaccatctcctacctgtattccttgattgtggttctggtggccatggggctgcacgagagagtttcacccatcactttctttgagaccacgcctatgttgatggtcttcatttcccttggcagatggctggaacatattgctaagggcaagaccagcgaagccctggccaagctgctatcactacagccatcagaagcggtgctggtgacggtggacaaggagaacaccatcctgtcggagaagatcatcagtgtggagctggtgcagcgcggtgacatcctcaaggtggtgccgggcggcaagatccccatcgacggcaaggtggtcagcggtcaatctaactgcgacgagtctctcatcacgggggagagcatgcctgtgtccaaaaaggaagggtccaccgtgattggtggcagtatcaaccagcacggcactctgctgacggaagcaacacacgttggggccgacaccacactctcacagattgtcaagctggtggaagaagcacagacatctaaggcccctattcagaatctggcagacaagatagctggtatctttgtgcctattgtgtgtacgctgtccactatcacgctgctgggctgggtcatcgctggatatgtggacattaaactcattgaagaagactttgtggacaacggagaagtgtcaaagagcgagatgatcttcgagaaggcgttccagtacgccatcacggtgctgagcatcgcctgtccctgtgccctcgggctggccacacccactgctgtcatggtggggacaggggtcggggcactcaacggcattctcatcaagggaggcgagccgctagaaaccacacacaaggtgcgttgcatcgtgtttgacaagactggcacagtaacacacggcgtgccccgagttgcgcgtgtgtccatgtttgtgacagactcggtgtgttctttcgtcaagatgatcgcaatctgtggcactgctgaggccagcagtgaacaccccatcgcttctgctatcgtcaagtatgccaaggagactctagaggcagcggtgctgggcaaaacgacagacttcaaggctgtgccagggtgcggcctcaagtgcaaggcgtccgggatcgaatccctgctgacggggctggacatggacggtgtgaggaaccgccgcaacaagcagggcagtttggtcatccgcatcgactccaagtccagtcagccgtccgacagtctgcaccaggccttgcagattgacgatctggcgggagcagtggcaccggcaacgtacgaagtgctgatcggaaaccgggagtggatgaatcgaaacggtctgacggtgacagaggaaatggatgaggtgatgacagagcatgagaatcagggtcatactgcagttctctgcactgttgatggtgtgattgtttccatgctggcggtagcagacacagtcaagtcggaggcccatgttgccatccatgagctgaagaagttggtgccagagattatcctcctgacgggcgacaacaagaaaacggcacgggccattgctaagcagattggaataaagaaggtgtttgcggaggtgttgccatcccacaaggtgaagaagattcgtcagctgcaggcagagggtcacaaggtggccatggttggagacggagtgaatgattcgccggccctagctcaggctgacgtcggcatcgctataggcactggcactgacgtggctgtggaggctgccgacattgttctcatgaatagcaacctcttggatgttttcgctgccattaaactgtcaagaaaaacagttgaacgcatctatatgaacttcttctttgcctgtctctacaacttacttggcatccccattgctgctggagtgtttgtaccttggggcctgtccctcaaaccctggatggcttccgctgctatggcagcctcctctgtctctgtcgtggtctcgtctctgggtctcaaattgttcaaaaagcccaag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//
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@meso_cacase at
DBCLS
This page is licensed under a
Creative Commons Attribution 4.0 International License (CC BY 4.0).
If you use GGRNA in your work, please cite:
Naito Y, Bono H. (2012)
GGRNA: an ultrafast, transcript-oriented search engine for genes and transcripts.
Nucleic Acids Res., 40, W592-W596.
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