Fungal Genomics

at Utrecht University

General Properties

Protein IDOphun1|4766
Gene name
LocationContig_448:2038..5360
Strand+
Gene length (bp)3322
Transcript length (bp)3252
Coding sequence length (bp)3252
Protein length (aa) 1084

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PFAM Domains

PFAM Domain ID Short name Long name E-value Start End
PF09416 UPF1_Zn_bind RNA helicase (UPF2 interacting domain) 4.5E-73 90 240
PF13087 AAA_12 AAA domain 3.4E-59 654 850
PF13086 AAA_11 AAA domain 6.4E-23 445 546
PF13086 AAA_11 AAA domain 2.5E-31 544 647
PF18141 UPF1_1B_dom RNA helicase UPF1, 1B domain 1.8E-33 294 388
PF13604 AAA_30 AAA domain 5.3E-12 445 643
PF13245 AAA_19 AAA domain 1.3E-10 449 641
PF04851 ResIII Type III restriction enzyme, res subunit 4.6E-06 445 516

Swissprot hits

[Show all]
Swissprot ID Swissprot Description Start End E-value
sp|Q9EPU0|RENT1_MOUSE Regulator of nonsense transcripts 1 OS=Mus musculus GN=Upf1 PE=1 SV=2 79 1022 0.0E+00
sp|Q9HEH1|RENT1_NEUCR Regulator of nonsense transcripts 1 homolog OS=Neurospora crassa (strain ATCC 24698 / 74-OR23-1A / CBS 708.71 / DSM 1257 / FGSC 987) GN=2E4.130 PE=3 SV=1 1 1083 0.0E+00
sp|Q54I89|RENT1_DICDI Regulator of nonsense transcripts 1 OS=Dictyostelium discoideum GN=upf1 PE=3 SV=1 76 896 0.0E+00
sp|O76512|RENT1_CAEEL Regulator of nonsense transcripts 1 OS=Caenorhabditis elegans GN=smg-2 PE=1 SV=1 36 899 0.0E+00
sp|P30771|NAM7_YEAST ATP-dependent helicase NAM7 OS=Saccharomyces cerevisiae (strain ATCC 204508 / S288c) GN=NAM7 PE=1 SV=1 90 966 0.0E+00
[Show all]
[Show less]
Swissprot ID Swissprot Description Start End E-value
sp|Q9EPU0|RENT1_MOUSE Regulator of nonsense transcripts 1 OS=Mus musculus GN=Upf1 PE=1 SV=2 79 1022 0.0E+00
sp|Q9HEH1|RENT1_NEUCR Regulator of nonsense transcripts 1 homolog OS=Neurospora crassa (strain ATCC 24698 / 74-OR23-1A / CBS 708.71 / DSM 1257 / FGSC 987) GN=2E4.130 PE=3 SV=1 1 1083 0.0E+00
sp|Q54I89|RENT1_DICDI Regulator of nonsense transcripts 1 OS=Dictyostelium discoideum GN=upf1 PE=3 SV=1 76 896 0.0E+00
sp|O76512|RENT1_CAEEL Regulator of nonsense transcripts 1 OS=Caenorhabditis elegans GN=smg-2 PE=1 SV=1 36 899 0.0E+00
sp|P30771|NAM7_YEAST ATP-dependent helicase NAM7 OS=Saccharomyces cerevisiae (strain ATCC 204508 / S288c) GN=NAM7 PE=1 SV=1 90 966 0.0E+00
sp|Q9VYS3|RENT1_DROME Regulator of nonsense transcripts 1 homolog OS=Drosophila melanogaster GN=Upf1 PE=1 SV=2 85 928 0.0E+00
sp|Q98TR3|RENT1_TAKRU Putative regulator of nonsense transcripts 1 OS=Takifugu rubripes GN=rent1 PE=3 SV=1 79 983 0.0E+00
sp|Q9FJR0|RENT1_ARATH Regulator of nonsense transcripts 1 homolog OS=Arabidopsis thaliana GN=UPF1 PE=1 SV=2 90 901 0.0E+00
sp|Q92900|RENT1_HUMAN Regulator of nonsense transcripts 1 OS=Homo sapiens GN=UPF1 PE=1 SV=2 79 891 0.0E+00
sp|Q09820|RENT1_SCHPO ATP-dependent helicase upf1 OS=Schizosaccharomyces pombe (strain 972 / ATCC 24843) GN=upf1 PE=3 SV=2 84 913 0.0E+00
sp|O94247|HCS1_SCHPO DNA polymerase alpha-associated DNA helicase A OS=Schizosaccharomyces pombe (strain 972 / ATCC 24843) GN=hcs1 PE=3 SV=1 371 865 6.0E-62
sp|Q00416|SEN1_YEAST Helicase SEN1 OS=Saccharomyces cerevisiae (strain ATCC 204508 / S288c) GN=SEN1 PE=1 SV=2 368 872 3.0E-60
sp|P32644|ECM32_YEAST Putative ATP-dependent RNA helicase ECM32 OS=Saccharomyces cerevisiae (strain ATCC 204508 / S288c) GN=ECM32 PE=1 SV=1 371 869 1.0E-58
sp|Q92355|SEN1_SCHPO Helicase sen1 OS=Schizosaccharomyces pombe (strain 972 / ATCC 24843) GN=sen1 PE=1 SV=1 401 889 4.0E-57
sp|O94387|YGSA_SCHPO Uncharacterized ATP-dependent helicase C29A10.10c OS=Schizosaccharomyces pombe (strain 972 / ATCC 24843) GN=SPBC29A10.10c PE=3 SV=1 358 869 5.0E-57
sp|Q57568|Y104_METJA Uncharacterized ATP-dependent helicase MJ0104 OS=Methanocaldococcus jannaschii (strain ATCC 43067 / DSM 2661 / JAL-1 / JCM 10045 / NBRC 100440) GN=MJ0104 PE=3 SV=1 392 863 5.0E-56
sp|P34243|HCS1_YEAST DNA polymerase alpha-associated DNA helicase A OS=Saccharomyces cerevisiae (strain ATCC 204508 / S288c) GN=HCS1 PE=1 SV=1 381 855 7.0E-55
sp|Q0VGT4|ZGRF1_MOUSE Protein ZGRF1 OS=Mus musculus GN=Zgrf1 PE=1 SV=2 460 869 2.0E-52
sp|Q86YA3|ZGRF1_HUMAN Protein ZGRF1 OS=Homo sapiens GN=ZGRF1 PE=2 SV=3 460 869 5.0E-52
sp|Q60560|SMBP2_MESAU DNA-binding protein SMUBP-2 OS=Mesocricetus auratus GN=IGHMBP2 PE=1 SV=1 393 868 1.0E-51
sp|Q86AS0|Y4399_DICDI Probable helicase DDB_G0274399 OS=Dictyostelium discoideum GN=DDB_G0274399 PE=3 SV=1 486 888 3.0E-51
sp|Q8GYD9|SDE3_ARATH Probable RNA helicase SDE3 OS=Arabidopsis thaliana GN=SDE3 PE=1 SV=1 439 872 5.0E-51
sp|E1BMP7|DNA2_BOVIN DNA replication ATP-dependent helicase/nuclease DNA2 OS=Bos taurus GN=DNA2 PE=3 SV=3 426 876 6.0E-51
sp|Q9EQN5|SMBP2_RAT DNA-binding protein SMUBP-2 OS=Rattus norvegicus GN=Ighmbp2 PE=1 SV=1 445 868 6.0E-51
sp|A2AKX3|SETX_MOUSE Probable helicase senataxin OS=Mus musculus GN=Setx PE=1 SV=1 442 874 6.0E-51
sp|B6SFA4|MAA3_ARATH Probable helicase MAGATAMA 3 OS=Arabidopsis thaliana GN=MAA3 PE=2 SV=1 490 880 2.0E-50
sp|Q7Z333|SETX_HUMAN Probable helicase senataxin OS=Homo sapiens GN=SETX PE=1 SV=4 442 926 5.0E-50
sp|P40694|SMBP2_MOUSE DNA-binding protein SMUBP-2 OS=Mus musculus GN=Ighmbp2 PE=1 SV=1 393 868 9.0E-50
sp|D3ZG52|DNA2_RAT DNA replication ATP-dependent helicase/nuclease DNA2 OS=Rattus norvegicus GN=Dna2 PE=3 SV=1 426 866 1.0E-49
sp|P38935|SMBP2_HUMAN DNA-binding protein SMUBP-2 OS=Homo sapiens GN=IGHMBP2 PE=1 SV=3 445 866 9.0E-49
sp|Q9BYK8|HELZ2_HUMAN Helicase with zinc finger domain 2 OS=Homo sapiens GN=HELZ2 PE=1 SV=6 445 892 4.0E-48
sp|P51530|DNA2_HUMAN DNA replication ATP-dependent helicase/nuclease DNA2 OS=Homo sapiens GN=DNA2 PE=1 SV=3 426 876 1.0E-47
sp|Q8QHA5|DNA2_XENLA DNA replication ATP-dependent helicase/nuclease DNA2 OS=Xenopus laevis GN=dna2 PE=1 SV=1 425 867 2.0E-47
sp|E9QAM5|HELZ2_MOUSE Helicase with zinc finger domain 2 OS=Mus musculus GN=Helz2 PE=1 SV=1 445 863 3.0E-47
sp|Q6ZQJ5|DNA2_MOUSE DNA replication ATP-dependent helicase/nuclease DNA2 OS=Mus musculus GN=Dna2 PE=1 SV=2 426 876 4.0E-47
sp|Q5ZKG3|DNA2_CHICK DNA replication ATP-dependent helicase/nuclease DNA2 OS=Gallus gallus GN=DNA2 PE=2 SV=2 425 876 9.0E-44
sp|Q9BXT6|M10L1_HUMAN Putative helicase Mov10l1 OS=Homo sapiens GN=MOV10L1 PE=2 SV=1 443 865 3.0E-43
sp|Q1LXK4|M10B1_DANRE Putative helicase mov-10-B.1 OS=Danio rerio GN=mov10b.1 PE=2 SV=2 271 881 1.0E-42
sp|Q99MV5|M10L1_MOUSE Putative helicase Mov10l1 OS=Mus musculus GN=Mov10l1 PE=1 SV=1 443 865 5.0E-42
sp|P23249|MOV10_MOUSE Putative helicase MOV-10 OS=Mus musculus GN=Mov10 PE=1 SV=2 446 868 1.0E-41
sp|Q9HCE1|MOV10_HUMAN Putative helicase MOV-10 OS=Homo sapiens GN=MOV10 PE=1 SV=2 446 868 2.0E-41
sp|Q0V8H6|MOV10_BOVIN Putative helicase MOV-10 OS=Bos taurus GN=MOV10 PE=2 SV=1 446 868 4.0E-41
sp|Q1LXK5|M10B2_DANRE Putative helicase mov-10-B.2 OS=Danio rerio GN=mov10b.2 PE=3 SV=1 426 859 1.0E-39
sp|Q5ZKD7|MOV10_CHICK Putative helicase MOV-10 OS=Gallus gallus GN=MOV10 PE=2 SV=1 444 868 2.0E-38
sp|Q6J5K9|ARMI_DROME Probable RNA helicase armi OS=Drosophila melanogaster GN=armi PE=1 SV=4 445 863 1.0E-33
sp|Q9URU2|DNA2_SCHPO DNA replication ATP-dependent helicase/nuclease dna2 OS=Schizosaccharomyces pombe (strain 972 / ATCC 24843) GN=dna2 PE=1 SV=2 424 863 8.0E-32
sp|P38859|DNA2_YEAST DNA replication ATP-dependent helicase/nuclease DNA2 OS=Saccharomyces cerevisiae (strain ATCC 204508 / S288c) GN=DNA2 PE=1 SV=1 428 853 9.0E-30
sp|Q9P2E3|ZNFX1_HUMAN NFX1-type zinc finger-containing protein 1 OS=Homo sapiens GN=ZNFX1 PE=2 SV=2 567 868 2.0E-28
sp|Q8R151|ZNFX1_MOUSE NFX1-type zinc finger-containing protein 1 OS=Mus musculus GN=Znfx1 PE=1 SV=3 567 868 2.0E-28
sp|F6QXW0|DNA2_XENTR DNA replication ATP-dependent helicase/nuclease DNA2 OS=Xenopus tropicalis GN=dna2 PE=3 SV=1 425 876 2.0E-27
sp|Q09449|YQ12_CAEEL Uncharacterized ATP-dependent helicase C05C10.2 OS=Caenorhabditis elegans GN=C05C10.2 PE=3 SV=1 431 863 3.0E-27
sp|O74465|HRR1_SCHPO Helicase required for RNAi-mediated heterochromatin assembly 1 OS=Schizosaccharomyces pombe (strain 972 / ATCC 24843) GN=hrr1 PE=1 SV=2 580 859 3.0E-25
sp|Q6DFV5|HELZ_MOUSE Probable helicase with zinc finger domain OS=Mus musculus GN=Helz PE=1 SV=2 395 864 4.0E-23
sp|P42694|HELZ_HUMAN Probable helicase with zinc finger domain OS=Homo sapiens GN=HELZ PE=1 SV=2 395 864 1.0E-22
sp|Q6NYU2|HELZ_DANRE Probable helicase with zinc finger domain OS=Danio rerio GN=helz PE=2 SV=1 604 864 2.0E-20
sp|O60306|AQR_HUMAN Intron-binding protein aquarius OS=Homo sapiens GN=AQR PE=1 SV=4 580 848 9.0E-20
sp|E9QAM5|HELZ2_MOUSE Helicase with zinc finger domain 2 OS=Mus musculus GN=Helz2 PE=1 SV=1 460 863 1.0E-19
sp|Q8CFQ3|AQR_MOUSE Intron-binding protein aquarius OS=Mus musculus GN=Aqr PE=1 SV=2 580 848 1.0E-19
sp|Q9BYK8|HELZ2_HUMAN Helicase with zinc finger domain 2 OS=Homo sapiens GN=HELZ2 PE=1 SV=6 435 882 1.0E-16
sp|O74465|HRR1_SCHPO Helicase required for RNAi-mediated heterochromatin assembly 1 OS=Schizosaccharomyces pombe (strain 972 / ATCC 24843) GN=hrr1 PE=1 SV=2 440 591 6.0E-11
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GO

GO Term Description Terminal node
GO:0008270 zinc ion binding Yes
GO:0003677 DNA binding Yes
GO:0004386 helicase activity Yes
GO:0003724 RNA helicase activity Yes
GO:0000184 nuclear-transcribed mRNA catabolic process, nonsense-mediated decay Yes
GO:0016787 hydrolase activity Yes
GO:0003723 RNA binding Yes
GO:0005737 cytoplasm Yes
GO:0005524 ATP binding Yes
GO:0006139 nucleobase-containing compound metabolic process No
GO:0044260 cellular macromolecule metabolic process No
GO:0032559 adenyl ribonucleotide binding No
GO:0044248 cellular catabolic process No
GO:0043170 macromolecule metabolic process No
GO:0044265 cellular macromolecule catabolic process No
GO:0010629 negative regulation of gene expression No
GO:0019222 regulation of metabolic process No
GO:0006401 RNA catabolic process No
GO:0090304 nucleic acid metabolic process No
GO:0030554 adenyl nucleotide binding No
GO:0006402 mRNA catabolic process No
GO:0034655 nucleobase-containing compound catabolic process No
GO:0008152 metabolic process No
GO:0017076 purine nucleotide binding No
GO:0046914 transition metal ion binding No
GO:0032555 purine ribonucleotide binding No
GO:1901363 heterocyclic compound binding No
GO:0036094 small molecule binding No
GO:0003824 catalytic activity No
GO:0097367 carbohydrate derivative binding No
GO:0009987 cellular process No
GO:0140640 catalytic activity, acting on a nucleic acid No
GO:0006725 cellular aromatic compound metabolic process No
GO:1901361 organic cyclic compound catabolic process No
GO:0000956 nuclear-transcribed mRNA catabolic process No
GO:0060255 regulation of macromolecule metabolic process No
GO:0046872 metal ion binding No
GO:0097159 organic cyclic compound binding No
GO:0010468 regulation of gene expression No
GO:0044237 cellular metabolic process No
GO:0009056 catabolic process No
GO:0071704 organic substance metabolic process No
GO:0046700 heterocycle catabolic process No
GO:0005488 binding No
GO:0043169 cation binding No
GO:0003676 nucleic acid binding No
GO:1901360 organic cyclic compound metabolic process No
GO:0009892 negative regulation of metabolic process No
GO:0016071 mRNA metabolic process No
GO:0008186 ATP-dependent activity, acting on RNA No
GO:0044238 primary metabolic process No
GO:1901575 organic substance catabolic process No
GO:0044270 cellular nitrogen compound catabolic process No
GO:0016070 RNA metabolic process No
GO:0000166 nucleotide binding No
GO:0065007 biological regulation No
GO:0006807 nitrogen compound metabolic process No
GO:0050789 regulation of biological process No
GO:0003674 molecular_function No
GO:0140657 ATP-dependent activity No
GO:0035639 purine ribonucleoside triphosphate binding No
GO:0009057 macromolecule catabolic process No
GO:0043167 ion binding No
GO:0110165 cellular anatomical entity No
GO:0005575 cellular_component No
GO:0032553 ribonucleotide binding No
GO:0010605 negative regulation of macromolecule metabolic process No
GO:0140098 catalytic activity, acting on RNA No
GO:0048519 negative regulation of biological process No
GO:0034641 cellular nitrogen compound metabolic process No
GO:0008150 biological_process No
GO:0019439 aromatic compound catabolic process No
GO:0046483 heterocycle metabolic process No
GO:1901265 nucleoside phosphate binding No
GO:0043168 anion binding No

SignalP

[Help with interpreting these statistics]
SignalP signal predicted Location
(based on Ymax)
D score
(significance: > 0.45)
No 1 - 30 0.45

Transmembrane Domains

(None)

Transcription Factor Class

(None)

Expression data

No expression data available for this genome

Sequences

Type of sequenceSequence
Locus Download genbank file of locus
The gene with 5 kb flanks (if sufficient flanking sequence is available). For use in cloning design programs. NOTE: features (genes or exons) that are only partially contained within the sequence are completely excluded.
Protein >Ophun1|4766
MEGAFTHVGNHLISDSAAAINAGADDLSALDPDESLLFGNTGGRRRADDDDNQTETLEDEENDSLNSAPVEGMRG
MKLKDVNEEKQLPAHACTYCGIHSPASVVKCLTCNKWFCGARGNGSSTHIVNHLVRARHKEVQLHPESALGDTVL
ECYNCGTKNAFLLGFIPAKSDTVVVLLCRQPCAASTSNKDMNWDISRWEPLIEERAFLSWLVSPPSDAEQLRARH
ISVNTISRLEEMWKVDPDATAVDLEKASNIDDDPDPVLLRYEDPYHYQNIFGPLVKMESDYDKKLKEAQSEDGLT
VRWDYGLNNKHLVSFNLHKIESGDVKLAVGDEMRLRYNGELREPWEGVGYVIKIPNSQSDEVCLELRKNGNDKQV
PTELSHNFSADYVWKATSYDRMQLAMKTFAVEEMSVSGYIYYVLLGHEVQLQPIKPTQLKKWSAPGLPDLNQSQV
DAIKSVLQKPISLIQGPPGTGKTVTSATIIYHLAKTTGNQVLVCAPSNVAVDQLCERIHRTGLKVVRLTAKSRED
VESSVSFLALHEQVRMTDHNTELVKLSQLKADVGELSSQDEKKFKQLTKAAERDILHNADVVCCTCVGAGDPRLS
KMKFRNVLIDESTQSAEPECLIPLVLGCKQVVLVGDHKQLGPVIMNKKAAKAGLNQSLFERLIHLQLSPIRLKIQ
YRMHPCLSEFPSNMFYEGALQNGVTHEQRLRKDVDFPWPVADMPMMFWSNLGSEEISTSGTSYLNRTEASNVEKT
VTRFFRAGVKPSEIGVITPYEGQRSYIVTTMQNSGQFKKELYKEVEVASVDAFQGREKDFIVLSCVRSNENQGIG
FLSDPRRLNVALTRAKYGLVILGNPKVLSKHELWHSLLAHFKDRRCFVEGPLTNLQVCLLQFSRPKMSYRQKNNY
HSHYAPPGSYGNGRHNGAGGRDLDGGSMMSYIPDDVSSIQGSAFGGGAALNTSFPAMFSSFTPEQWPGLPGVTAP
GRGNKGRGRAAESVAGESVANSEMTETTTATSVIGGKGVGQGGVSLGAGLHDAVTGTRPVSYTQSDRLKQYVESN
GRMTHGGGYGRRYDDDEKSISTAFHSQIGGGYD*
Coding >Ophun1|4766
ATGGAAGGTGCATTTACACACGTGGGAAACCACCTCATCTCCGACTCGGCCGCCGCCATCAACGCCGGGGCCGAC
GATCTCTCTGCCCTTGACCCCGATGAGAGCCTTCTCTTCGGCAATACCGGCGGTCGACGTCGTGCCGATGATGAC
GACAACCAGACCGAGACTCTCGAAGATGAAGAGAACGATAGCCTCAACAGCGCCCCCGTCGAAGGGATGAGGGGC
ATGAAGCTCAAGGACGTCAACGAGGAAAAACAACTGCCGGCTCATGCTTGCACCTACTGCGGCATTCACTCTCCC
GCCTCCGTCGTCAAGTGCCTCACCTGCAACAAATGGTTCTGCGGCGCCAGAGGCAACGGCTCGTCCACCCACATC
GTCAACCACCTCGTCCGCGCAAGACACAAGGAGGTCCAGCTGCATCCCGAATCGGCACTCGGTGACACCGTTCTG
GAGTGCTACAATTGCGGTACAAAGAATGCCTTTCTACTCGGCTTTATCCCGGCAAAGTCGGACACGGTCGTCGTC
CTGCTGTGCCGCCAGCCCTGTGCCGCCAGCACGTCCAACAAGGACATGAACTGGGACATCTCGCGTTGGGAGCCC
CTCATCGAGGAGAGGGCCTTTTTGAGCTGGCTCGTCAGCCCGCCCTCGGACGCAGAGCAGCTTCGTGCCCGTCAC
ATATCGGTCAACACCATCAGCAGGCTCGAGGAGATGTGGAAGGTGGATCCTGATGCTACGGCCGTCGATCTCGAG
AAGGCCTCCAACATCGACGACGACCCCGATCCGGTGCTCCTGCGTTACGAAGATCCCTACCATTATCAAAACATA
TTTGGCCCCTTGGTCAAGATGGAATCCGACTATGACAAGAAGCTCAAGGAGGCGCAGTCGGAGGATGGCCTCACG
GTGCGCTGGGACTACGGCCTCAATAACAAGCACCTCGTCAGCTTCAACCTCCACAAGATCGAGTCCGGTGACGTC
AAACTCGCCGTCGGTGACGAGATGCGACTGCGCTACAACGGCGAGCTCCGCGAGCCTTGGGAGGGCGTGGGCTAC
GTCATCAAGATTCCCAACAGCCAGTCTGACGAAGTGTGTCTGGAGCTTCGCAAGAACGGAAACGATAAGCAGGTG
CCCACGGAGCTCTCGCACAACTTCTCGGCCGACTACGTCTGGAAGGCCACGTCGTACGACCGCATGCAGCTCGCC
ATGAAGACGTTTGCCGTCGAGGAGATGAGCGTCTCGGGCTACATTTACTACGTTCTCCTCGGCCACGAGGTGCAG
CTTCAGCCCATCAAGCCGACGCAGCTGAAGAAGTGGTCGGCTCCGGGATTACCGGACCTTAACCAGAGTCAGGTG
GACGCCATCAAGTCGGTGCTGCAGAAGCCCATCAGCCTGATTCAAGGTCCGCCTGGCACGGGCAAGACGGTGACG
TCGGCCACCATCATCTACCACCTGGCCAAGACGACGGGCAACCAGGTGCTCGTGTGCGCGCCCTCCAACGTGGCC
GTCGACCAGCTCTGCGAGCGTATCCATAGAACGGGGCTCAAAGTGGTGCGTCTCACGGCCAAATCGCGCGAGGAC
GTCGAGTCGTCGGTCAGTTTCTTGGCTCTGCACGAGCAAGTGCGCATGACGGATCACAACACGGAGCTCGTCAAG
CTGTCGCAACTCAAGGCAGACGTGGGCGAGTTGTCGAGCCAGGATGAGAAGAAGTTCAAGCAGCTCACCAAGGCG
GCCGAGCGCGATATCCTCCACAACGCCGATGTCGTCTGCTGCACCTGCGTCGGAGCCGGCGACCCGCGTCTGTCC
AAGATGAAGTTCCGCAATGTGCTGATCGACGAGTCGACGCAGTCGGCAGAGCCCGAGTGCTTGATCCCGCTGGTG
CTCGGCTGCAAGCAGGTGGTGCTGGTTGGCGACCATAAGCAGCTGGGGCCCGTCATCATGAACAAGAAGGCGGCC
AAGGCCGGACTGAACCAGTCGCTGTTTGAGCGTCTGATTCACCTGCAGCTGTCGCCGATTCGACTCAAGATCCAG
TACCGCATGCACCCGTGTCTGTCCGAGTTCCCCTCCAACATGTTTTACGAGGGCGCGCTTCAGAACGGTGTCACG
CATGAACAGCGGCTCCGCAAGGACGTCGACTTTCCCTGGCCCGTTGCCGACATGCCCATGATGTTCTGGTCCAAC
CTCGGCAGCGAGGAGATTTCGACGTCGGGCACGTCGTACCTCAACCGCACCGAGGCGTCCAACGTGGAGAAGACG
GTGACGCGATTCTTCCGCGCCGGCGTCAAGCCCAGCGAAATTGGCGTCATCACTCCGTACGAGGGCCAGCGCAGC
TACATTGTGACGACGATGCAGAACTCGGGCCAGTTCAAGAAGGAACTGTACAAGGAGGTCGAGGTGGCGTCCGTT
GACGCCTTTCAGGGCCGTGAGAAGGACTTCATCGTGCTCTCGTGCGTGCGCTCCAACGAGAACCAGGGCATCGGT
TTCCTATCGGATCCGCGTCGGCTCAACGTGGCGCTGACGCGGGCCAAGTACGGGCTGGTGATTCTGGGCAACCCC
AAGGTGCTGTCCAAGCACGAGCTCTGGCACAGCCTCTTGGCGCACTTTAAAGACCGCAGATGCTTCGTCGAGGGA
CCCCTGACCAATCTCCAGGTGTGCTTGCTCCAGTTCAGCCGGCCCAAGATGAGCTACCGGCAGAAAAACAACTAC
CACTCGCACTACGCTCCTCCCGGCAGCTACGGCAACGGGCGGCACAATGGCGCGGGTGGACGCGACCTGGACGGG
GGTTCGATGATGTCGTACATACCGGACGACGTGTCGTCGATCCAGGGATCGGCCTTTGGCGGCGGAGCGGCGCTC
AACACGTCCTTTCCCGCCATGTTCTCGAGCTTCACGCCGGAGCAGTGGCCGGGCTTGCCCGGGGTGACGGCACCC
GGACGCGGAAACAAGGGCCGCGGGCGGGCGGCGGAGAGTGTGGCGGGCGAGAGCGTGGCCAACTCGGAGATGACG
GAGACGACGACGGCGACGAGCGTCATCGGCGGCAAGGGAGTCGGTCAGGGCGGCGTCAGCCTCGGGGCCGGGCTC
CACGATGCGGTGACGGGGACGCGGCCCGTTTCCTACACGCAGAGCGACCGGCTGAAGCAGTACGTCGAAAGCAAC
GGGCGCATGACGCACGGCGGCGGATACGGACGACGGTACGACGACGACGAGAAGAGCATCAGCACGGCCTTTCAC
AGTCAGATAGGCGGCGGCTATGACTGA
Transcript >Ophun1|4766
ATGGAAGGTGCATTTACACACGTGGGAAACCACCTCATCTCCGACTCGGCCGCCGCCATCAACGCCGGGGCCGAC
GATCTCTCTGCCCTTGACCCCGATGAGAGCCTTCTCTTCGGCAATACCGGCGGTCGACGTCGTGCCGATGATGAC
GACAACCAGACCGAGACTCTCGAAGATGAAGAGAACGATAGCCTCAACAGCGCCCCCGTCGAAGGGATGAGGGGC
ATGAAGCTCAAGGACGTCAACGAGGAAAAACAACTGCCGGCTCATGCTTGCACCTACTGCGGCATTCACTCTCCC
GCCTCCGTCGTCAAGTGCCTCACCTGCAACAAATGGTTCTGCGGCGCCAGAGGCAACGGCTCGTCCACCCACATC
GTCAACCACCTCGTCCGCGCAAGACACAAGGAGGTCCAGCTGCATCCCGAATCGGCACTCGGTGACACCGTTCTG
GAGTGCTACAATTGCGGTACAAAGAATGCCTTTCTACTCGGCTTTATCCCGGCAAAGTCGGACACGGTCGTCGTC
CTGCTGTGCCGCCAGCCCTGTGCCGCCAGCACGTCCAACAAGGACATGAACTGGGACATCTCGCGTTGGGAGCCC
CTCATCGAGGAGAGGGCCTTTTTGAGCTGGCTCGTCAGCCCGCCCTCGGACGCAGAGCAGCTTCGTGCCCGTCAC
ATATCGGTCAACACCATCAGCAGGCTCGAGGAGATGTGGAAGGTGGATCCTGATGCTACGGCCGTCGATCTCGAG
AAGGCCTCCAACATCGACGACGACCCCGATCCGGTGCTCCTGCGTTACGAAGATCCCTACCATTATCAAAACATA
TTTGGCCCCTTGGTCAAGATGGAATCCGACTATGACAAGAAGCTCAAGGAGGCGCAGTCGGAGGATGGCCTCACG
GTGCGCTGGGACTACGGCCTCAATAACAAGCACCTCGTCAGCTTCAACCTCCACAAGATCGAGTCCGGTGACGTC
AAACTCGCCGTCGGTGACGAGATGCGACTGCGCTACAACGGCGAGCTCCGCGAGCCTTGGGAGGGCGTGGGCTAC
GTCATCAAGATTCCCAACAGCCAGTCTGACGAAGTGTGTCTGGAGCTTCGCAAGAACGGAAACGATAAGCAGGTG
CCCACGGAGCTCTCGCACAACTTCTCGGCCGACTACGTCTGGAAGGCCACGTCGTACGACCGCATGCAGCTCGCC
ATGAAGACGTTTGCCGTCGAGGAGATGAGCGTCTCGGGCTACATTTACTACGTTCTCCTCGGCCACGAGGTGCAG
CTTCAGCCCATCAAGCCGACGCAGCTGAAGAAGTGGTCGGCTCCGGGATTACCGGACCTTAACCAGAGTCAGGTG
GACGCCATCAAGTCGGTGCTGCAGAAGCCCATCAGCCTGATTCAAGGTCCGCCTGGCACGGGCAAGACGGTGACG
TCGGCCACCATCATCTACCACCTGGCCAAGACGACGGGCAACCAGGTGCTCGTGTGCGCGCCCTCCAACGTGGCC
GTCGACCAGCTCTGCGAGCGTATCCATAGAACGGGGCTCAAAGTGGTGCGTCTCACGGCCAAATCGCGCGAGGAC
GTCGAGTCGTCGGTCAGTTTCTTGGCTCTGCACGAGCAAGTGCGCATGACGGATCACAACACGGAGCTCGTCAAG
CTGTCGCAACTCAAGGCAGACGTGGGCGAGTTGTCGAGCCAGGATGAGAAGAAGTTCAAGCAGCTCACCAAGGCG
GCCGAGCGCGATATCCTCCACAACGCCGATGTCGTCTGCTGCACCTGCGTCGGAGCCGGCGACCCGCGTCTGTCC
AAGATGAAGTTCCGCAATGTGCTGATCGACGAGTCGACGCAGTCGGCAGAGCCCGAGTGCTTGATCCCGCTGGTG
CTCGGCTGCAAGCAGGTGGTGCTGGTTGGCGACCATAAGCAGCTGGGGCCCGTCATCATGAACAAGAAGGCGGCC
AAGGCCGGACTGAACCAGTCGCTGTTTGAGCGTCTGATTCACCTGCAGCTGTCGCCGATTCGACTCAAGATCCAG
TACCGCATGCACCCGTGTCTGTCCGAGTTCCCCTCCAACATGTTTTACGAGGGCGCGCTTCAGAACGGTGTCACG
CATGAACAGCGGCTCCGCAAGGACGTCGACTTTCCCTGGCCCGTTGCCGACATGCCCATGATGTTCTGGTCCAAC
CTCGGCAGCGAGGAGATTTCGACGTCGGGCACGTCGTACCTCAACCGCACCGAGGCGTCCAACGTGGAGAAGACG
GTGACGCGATTCTTCCGCGCCGGCGTCAAGCCCAGCGAAATTGGCGTCATCACTCCGTACGAGGGCCAGCGCAGC
TACATTGTGACGACGATGCAGAACTCGGGCCAGTTCAAGAAGGAACTGTACAAGGAGGTCGAGGTGGCGTCCGTT
GACGCCTTTCAGGGCCGTGAGAAGGACTTCATCGTGCTCTCGTGCGTGCGCTCCAACGAGAACCAGGGCATCGGT
TTCCTATCGGATCCGCGTCGGCTCAACGTGGCGCTGACGCGGGCCAAGTACGGGCTGGTGATTCTGGGCAACCCC
AAGGTGCTGTCCAAGCACGAGCTCTGGCACAGCCTCTTGGCGCACTTTAAAGACCGCAGATGCTTCGTCGAGGGA
CCCCTGACCAATCTCCAGGTGTGCTTGCTCCAGTTCAGCCGGCCCAAGATGAGCTACCGGCAGAAAAACAACTAC
CACTCGCACTACGCTCCTCCCGGCAGCTACGGCAACGGGCGGCACAATGGCGCGGGTGGACGCGACCTGGACGGG
GGTTCGATGATGTCGTACATACCGGACGACGTGTCGTCGATCCAGGGATCGGCCTTTGGCGGCGGAGCGGCGCTC
AACACGTCCTTTCCCGCCATGTTCTCGAGCTTCACGCCGGAGCAGTGGCCGGGCTTGCCCGGGGTGACGGCACCC
GGACGCGGAAACAAGGGCCGCGGGCGGGCGGCGGAGAGTGTGGCGGGCGAGAGCGTGGCCAACTCGGAGATGACG
GAGACGACGACGGCGACGAGCGTCATCGGCGGCAAGGGAGTCGGTCAGGGCGGCGTCAGCCTCGGGGCCGGGCTC
CACGATGCGGTGACGGGGACGCGGCCCGTTTCCTACACGCAGAGCGACCGGCTGAAGCAGTACGTCGAAAGCAAC
GGGCGCATGACGCACGGCGGCGGATACGGACGACGGTACGACGACGACGAGAAGAGCATCAGCACGGCCTTTCAC
AGTCAGATAGGCGGCGGCTATGACTGA
Gene >Ophun1|4766
ATGGAAGGTGCATTTACACACGTGGGAAACCACCTCATCTCCGACTCGGCCGCCGCCATCAACGCCGGGGCCGAC
GATCTCTCTGCCCTTGACCCCGATGAGAGCCTTCTCTTCGGCAATACCGGCGGTCGACGTCGTGCCGATGATGAC
GACAACCAGACCGAGACTCTCGAAGATGAAGAGAACGATAGCCTCAACAGCGCCCCCGTCGAAGGGATGAGGGGC
ATGAAGCTCAAGGACGTCAACGAGGAAAAACAACTGCCGGCTCATGCTTGCACGTAAGTGGTGTCAAGCCCGTGT
CTCTGGTGTGACACGTTTTACGAACGAGTTCTGATTCTTTCTCGATAGCTACTGCGGCATTCACTCTCCCGCCTC
CGTCGTCAAGTGCCTCACCTGCAACAAATGGTTCTGCGGCGCCAGAGGCAACGGCTCGTCCACCCACATCGTCAA
CCACCTCGTCCGCGCAAGACACAAGGAGGTCCAGCTGCATCCCGAATCGGCACTCGGTGACACCGTTCTGGAGTG
CTACAATTGCGGTACAAAGAATGCCTTTCTACTCGGCTTTATCCCGGCAAAGTCGGACACGGTCGTCGTCCTGCT
GTGCCGCCAGCCCTGTGCCGCCAGCACGTCCAACAAGGACATGAACTGGGACATCTCGCGTTGGGAGCCCCTCAT
CGAGGAGAGGGCCTTTTTGAGCTGGCTCGTCAGCCCGCCCTCGGACGCAGAGCAGCTTCGTGCCCGTCACATATC
GGTCAACACCATCAGCAGGCTCGAGGAGATGTGGAAGGTGGATCCTGATGCTACGGCCGTCGATCTCGAGAAGGC
CTCCAACATCGACGACGACCCCGATCCGGTGCTCCTGCGTTACGAAGATCCCTACCATTATCAAAACATATTTGG
CCCCTTGGTCAAGATGGAATCCGACTATGACAAGAAGCTCAAGGAGGCGCAGTCGGAGGATGGCCTCACGGTGCG
CTGGGACTACGGCCTCAATAACAAGCACCTCGTCAGCTTCAACCTCCACAAGATCGAGTCCGGTGACGTCAAACT
CGCCGTCGGTGACGAGATGCGACTGCGCTACAACGGCGAGCTCCGCGAGCCTTGGGAGGGCGTGGGCTACGTCAT
CAAGATTCCCAACAGCCAGTCTGACGAAGTGTGTCTGGAGCTTCGCAAGAACGGAAACGATAAGCAGGTGCCCAC
GGAGCTCTCGCACAACTTCTCGGCCGACTACGTCTGGAAGGCCACGTCGTACGACCGCATGCAGCTCGCCATGAA
GACGTTTGCCGTCGAGGAGATGAGCGTCTCGGGCTACATTTACTACGTTCTCCTCGGCCACGAGGTGCAGCTTCA
GCCCATCAAGCCGACGCAGCTGAAGAAGTGGTCGGCTCCGGGATTACCGGACCTTAACCAGAGTCAGGTGGACGC
CATCAAGTCGGTGCTGCAGAAGCCCATCAGCCTGATTCAAGGTCCGCCTGGCACGGGCAAGACGGTGACGTCGGC
CACCATCATCTACCACCTGGCCAAGACGACGGGCAACCAGGTGCTCGTGTGCGCGCCCTCCAACGTGGCCGTCGA
CCAGCTCTGCGAGCGTATCCATAGAACGGGGCTCAAAGTGGTGCGTCTCACGGCCAAATCGCGCGAGGACGTCGA
GTCGTCGGTCAGTTTCTTGGCTCTGCACGAGCAAGTGCGCATGACGGATCACAACACGGAGCTCGTCAAGCTGTC
GCAACTCAAGGCAGACGTGGGCGAGTTGTCGAGCCAGGATGAGAAGAAGTTCAAGCAGCTCACCAAGGCGGCCGA
GCGCGATATCCTCCACAACGCCGATGTCGTCTGCTGCACCTGCGTCGGAGCCGGCGACCCGCGTCTGTCCAAGAT
GAAGTTCCGCAATGTGCTGATCGACGAGTCGACGCAGTCGGCAGAGCCCGAGTGCTTGATCCCGCTGGTGCTCGG
CTGCAAGCAGGTGGTGCTGGTTGGCGACCATAAGCAGCTGGGGCCCGTCATCATGAACAAGAAGGCGGCCAAGGC
CGGACTGAACCAGTCGCTGTTTGAGCGTCTGATTCACCTGCAGCTGTCGCCGATTCGACTCAAGATCCAGTACCG
CATGCACCCGTGTCTGTCCGAGTTCCCCTCCAACATGTTTTACGAGGGCGCGCTTCAGAACGGTGTCACGCATGA
ACAGCGGCTCCGCAAGGACGTCGACTTTCCCTGGCCCGTTGCCGACATGCCCATGATGTTCTGGTCCAACCTCGG
CAGCGAGGAGATTTCGACGTCGGGCACGTCGTACCTCAACCGCACCGAGGCGTCCAACGTGGAGAAGACGGTGAC
GCGATTCTTCCGCGCCGGCGTCAAGCCCAGCGAAATTGGCGTCATCACTCCGTACGAGGGCCAGCGCAGCTACAT
TGTGACGACGATGCAGAACTCGGGCCAGTTCAAGAAGGAACTGTACAAGGAGGTCGAGGTGGCGTCCGTTGACGC
CTTTCAGGGCCGTGAGAAGGACTTCATCGTGCTCTCGTGCGTGCGCTCCAACGAGAACCAGGGCATCGGTTTCCT
ATCGGATCCGCGTCGGCTCAACGTGGCGCTGACGCGGGCCAAGTACGGGCTGGTGATTCTGGGCAACCCCAAGGT
GCTGTCCAAGCACGAGCTCTGGCACAGCCTCTTGGCGCACTTTAAAGACCGCAGATGCTTCGTCGAGGGACCCCT
GACCAATCTCCAGGTGTGCTTGCTCCAGTTCAGCCGGCCCAAGATGAGCTACCGGCAGAAAAACAACTACCACTC
GCACTACGCTCCTCCCGGCAGCTACGGCAACGGGCGGCACAATGGCGCGGGTGGACGCGACCTGGACGGGGGTTC
GATGATGTCGTACATACCGGACGACGTGTCGTCGATCCAGGGATCGGCCTTTGGCGGCGGAGCGGCGCTCAACAC
GTCCTTTCCCGCCATGTTCTCGAGCTTCACGCCGGAGCAGTGGCCGGGCTTGCCCGGGGTGACGGCACCCGGACG
CGGAAACAAGGGCCGCGGGCGGGCGGCGGAGAGTGTGGCGGGCGAGAGCGTGGCCAACTCGGAGATGACGGAGAC
GACGACGGCGACGAGCGTCATCGGCGGCAAGGGAGTCGGTCAGGGCGGCGTCAGCCTCGGGGCCGGGCTCCACGA
TGCGGTGACGGGGACGCGGCCCGTTTCCTACACGCAGAGCGACCGGCTGAAGCAGTACGTCGAAAGCAACGGGCG
CATGACGCACGGCGGCGGATACGGACGACGGTACGACGACGACGAGAAGAGCATCAGCACGGCCTTTCACAGTCA
GATAGGCGGCGGCTATGACTGA

© 2022 - Robin Ohm - Utrecht University - The Netherlands

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