Recombinant Human hepatitis A virus genotype IB Genome polyprotein, partial

Product Details

Purity
>85% (SDS-PAGE)
Uniprot NO.
Species
Human hepatitis A virus genotype IB (isolate MBB) (HHAV) (Human hepatitis A virus (isolate Human/Northern Africa/MBB/1978))
Source
Yeast
Expression Region
1-2227
Target Protein Sequence
MNMSRQGIFQ TVGSGLDHIL SLADIEEEQM IQSVDRTAVT GASYFTSVDQ SSVHTAEVGS HQVEPLRTSV DKPGSKKTQG EKFFLIHSAD WLTTHALFHE VAKLDVVKLL YNEQFAVQGL LRYHTYARFG IEIQVQINPT PFQQGGLICA MVPGDQSYGS IASLTVYPHG LLNCNINNVV RIKVPFIYTR GAYHFKDPQY PVWELTIRVW SELNIGTGTS AYTSLNVLAR FTDLELHGLT PLSTQMMRNE FRVSTTENVV NLSNYEDARA KMSFALDQED WKSDPSQGGG IKITHFTTWT SIPTLAAQFP FNASDSVGQQ IKVIPVDPYF FQMTNTNPDQ KCITALASIC QMFCFWRGDL VFDFQVFPTK YHSGRLLFCF VPGNELIDVS GITLKQATTA PCAVMDITGV QSTLRFRVPW ISDTPYRVNR YTKSAHQKGE YTAIGKLIVY CYNRLTSPSN VASHVRVNVY LSAINLECFA PLYHAMDVTT QVGDDSGGFS TTVSTEQNVP DPQVGITTMK DLKGKANRGK MDVSGVQAPV GAITTIEDPV LAKKVPETFP ELKPGESRHT SDHMSIYKFM GRSHFLCTFT FNSNNKEYTF PITLSSTSNP PHGLPSTLRW FFNLFQLYRG PLDLTIIIIG ATDVDGMAWF TPVGLAVDTP WVEKESALSI DYKTALGAVR FNTRRTGNIQ IRLPWYSYLY AVSGALDGLG DKTDSTFGLV SIQIANYNHS DEYLSFSCYL SVTEQSEFYF PRAPLNSNAM LSTESMMSRI AAGDLESSVD DPRSEEDKRF ESHIECRKPY KELRLEVGKQ RLKYAQEELS NEVLPPPRKK KGLFSQAKIS LFYTEEHEIM KFSWRGVTAD TRALRRFGFS LAAGRSVWTL EMDAGVLTGR LIRLNDEKWT EMKDDKIVSL IEKFTSNKYW SKVNFPHGML DLEEIAANSK DFPNMSETDL CFLLHWLNPK KINLADRMLG LSGVQEIKEQ GVGLIAECRT FLDSIAGTLK SMMFGFHHSV TVEIINTVLC FVKSGILLYV MQQLNQDEHS HIIGLLRVMN YVDIGCSVIS CGKVFSKMLE TVFNWQMDSR MMELRTQSFS NWLRDICSGI TIFKNFKDAI YWLYTKLNDF YEVNYGKKKD ILNILKDNQQ KIEKAIEEAD KFSILQIQDV EKFEQYQKGV DLIQKLRTVH SMAQVDPNLM VHLSPLRDCI ARVHQKLKNL GSINQAMVTR CEPVVCYLYG KRGGGKSLTS IALATKICKH YGVEPEKNIY TKPVASDYWD GYSGQLVCII DDIGQNTTDE DWSDFCQLVS GCPLRLNMAS LEEKGRHFSS PFIIATSNWS NPSPKTVYVK EAIDRRLHFK VEVNPASFSK NPHNDMLNVN LAKTNDAIKD MSCVDLIMDG HNVSLMDLLS SLVMTVEIRK QNMTAFMELW SQGISDDDND SAMAEFFQSF PSGEPSNSKL SGFFQSVTNH KWVAVGAAVG ILGVLVGGWF VYKHFSRKEE EPIPAEGVYH GVTKPKQVIK LDADPVESQS TLEIAGLVRK NLVQFGVGEK NGCVRWVMNA LGVKDDWLLV PSHAYKFEKD YEMMEFYFNR GGTYYSISAG NVVIQSLDVG FQDVVLMKVP TIPKFRDITQ HFIKKGDVPR ALNRLATLVT TVNGTPMLIS EGPLKMEEKA TYVHKKNDGT TVDLTVDQAW RGKGEGLPGM CGGALVSSNQ SIQNAILGIH VAGGNSILVA KLVTQEMFQN IDKKIESQRI MKVEFTQCSM NVVSKTLFRK SPIHHHIDKT MINFPAAMPF SKAEIDPMAM MLSKYSLPIV EEPEDYKEAS IFYQNKIVGK TQLVDDFLDL DMAITGAPGI DAINMDSSPG FPYVQERLTK RDLIWLDENG LLLGVHPRLA QRILFNTVMM ENCSDLDVVF TTCPKDELRP LEKVLESKTR AIDACPLDYT ILCRMYWGPA ISYFHLNPGF HTGVAIGIDP DCQWDELFKT MIRFGDVGLD LDFSAFDASL SPFMIREAGR IMSELSGTPS HFGTALMNTI IYSKHLLYNC CYHVCGSMPS GSPCTALLNS IINNVNLYYV FSKIFGKSPV FFCQALKILC YGDDVLIVFS RDVQIDNLDL IGQKIVDEFK KLGMTATSAD KNVPQLKPVS ELTFLKRSFN LVEDRIRPAI SEKTIWSLIA WQRSNAEFEQ NLENAQWFAF MHGYEFYQKF YYFVQSCLEK EMIEYRLKSY DWWRMRFYDQ CFICDLS
Note: The complete sequence may include tag sequence, target protein sequence, linker sequence and extra sequence that is translated with the protein sequence for the purpose(s) of secretion, stability, solubility, etc.
If the exact amino acid sequence of this recombinant protein is critical to your application, please explicitly request the full and complete sequence of this protein before ordering.
Protein Length
Partial
Tag Info
N-terminal His-tagged/Tag-Free
The tag type will be determined during production process. If you have specified tag type, please tell us and we will develop the specified tag preferentially.
Storage
The shelf life is related to many factors, storage state, buffer ingredients, storage temperature and the stability of the protein itself.
Generally, the shelf life of liquid form is 6 months at -20°C/-80°C. The shelf life of lyophilized form is 12 months at -20°C/-80°C.
Shelf Life
The shelf life is related to many factors, storage state, buffer ingredients, storage temperature and the stability of the protein itself.
Generally, the shelf life of liquid form is 6 months at -20°C/-80°C. The shelf life of lyophilized form is 12 months at -20°C/-80°C.
Notes
Repeated freezing and thawing is not recommended. Store working aliquots at 4°C for up to one week.

Customer Reviews and Q&A

 Customer Reviews

Target Background

Function(From Uniprot)
Capsid proteins VP1, VP2, and VP3 form a closed capsid enclosing the viral positive strand RNA genome. All these proteins contain a beta-sheet structure called beta-barrel jelly roll. Together they form an icosahedral capsid (T=3) composed of 60 copies of each VP1, VP2, and VP3, with a diameter of approximately 300 Angstroms. VP1 is situated at the 12 fivefold axes, whereas VP2 and VP3 are located at the quasi-sixfold axes. The naked capsid interacts with the host receptor HAVCR1 to provide virion attachment to and probably entry into the target cell.; Capsid proteins VP1, VP2, and VP3 form a closed capsid enclosing the viral positive strand RNA genome. All these proteins contain a beta-sheet structure called beta-barrel jelly roll. Together they form an icosahedral capsid (T=3) composed of 60 copies of each VP1, VP2, and VP3, with a diameter of approximately 300 Angstroms. VP1 is situated at the 12 fivefold axes, whereas VP2 and VP3 are located at the quasi-sixfold axes. The naked capsid interacts with the host receptor HAVCR1 to provide virion attachment to and probably entry into the target cell.; Capsid proteins VP1, VP2, and VP3 form a closed capsid enclosing the viral positive strand RNA genome. All these proteins contain a beta-sheet structure called beta-barrel jelly roll. Together they form an icosahedral capsid (T=3) composed of 60 copies of each VP1, VP2, and VP3, with a diameter of approximately 300 Angstroms. VP1 is situated at the 12 fivefold axes, whereas VP2 and VP3 are located at the quasi-sixfold axes. The naked capsid interacts with the host receptor HAVCR1 to provide virion attachment to and probably entry into the target cell.; VP0 precursor is a component of the immature procapsids.; Plays a role in the assembly of the 12 pentamers into an icosahedral structure. Has not been detected in mature virions, supposedly owing to its small size.; Precursor component of immature procapsids that corresponds to an extended form of the structural protein VP1. After maturation, possibly by the host Cathepsin L, the assembly signal 2A is cleaved to give rise to the mature VP1 protein.; Functions as a viroporin. Affects membrane integrity and causes an increase in membrane permeability. Involved in host intracellular membrane rearrangements probably to give rise to the viral factories. Does not disrupt calcium homeostasis or glycoprotein trafficking. Antagonizes the innate immune response of the host by suppressing IFN-beta synthesis, which it achieves by interfering with the DDX58/IFIH1 (RIG-I/MDA5) pathway.; Affects membrane integrity and causes an increase in membrane permeability.; Associates with and induces structural rearrangements of intracellular membranes. Displays RNA-binding activity.; The precursor 3ABC is targeted to the mitochondrial membrane where protease 3C activity cleaves and inhibits the host antiviral protein MAVS, thereby disrupting activation of IRF3 through the IFIH1/MDA5 pathway. In vivo, the protease activity of 3ABC precursor is more efficient in cleaving the 2BC precursor than that of protein 3C. The 3ABC precursor may therefore play a role in the proteolytic processing of the polyprotein. Possible viroporin.; Interacts with the 3CD precursor and with RNA structures found at both the 5'- and 3'-termini of the viral genome. Since the 3AB precursor contains the hydrophobic domain 3A, it probably anchors the whole viral replicase complex to intracellular membranes on which viral RNA synthesis occurs.; May serve as membrane anchor to the 3AB and 3ABC precursors via its hydrophobic domain. May interact with RNA.; Acts as a primer for viral RNA replication and remains covalently bound to viral genomic RNA. VPg is uridylylated prior to priming replication into VPg-pUpU. The VPg-pUpU is then used as primer on the genomic RNA poly(A) by the RNA-dependent RNA polymerase to replicate the viral genome.; Cysteine protease that generates mature viral proteins from the precursor polyprotein. In addition to its proteolytic activity, it binds to viral RNA, and thus influences viral genome replication. RNA and substrate bind cooperatively to the protease. Cleaves IKBKG/NEMO to impair innate immune signaling. Cleaves host PABPC1 which may participate in the switch of viral translation to RNA synthesis.; Interacts with the 3AB precursor and with RNA structures found at both the 5'- and 3'-termini of the viral genome. Disrupts TLR3 signaling by degrading the host adapter protein TICAM1/TRIF.; RNA-directed RNA polymerase 3D-POL replicates genomic and antigenomic RNA by recognizing replications specific signals.
Subcellular Location
[Capsid protein VP2]: Virion. Host endosome, host multivesicular body.; [Capsid protein VP3]: Virion. Host endosome, host multivesicular body.; [Capsid protein VP1]: Virion. Host endosome, host multivesicular body.; [Capsid protein VP4]: Virion.; [Protein 2B]: Host membrane; Peripheral membrane protein.; [Protein 2C]: Host membrane; Single-pass membrane protein.; [Protein 3ABC]: Host membrane; Single-pass membrane protein. Host mitochondrion outer membrane; Single-pass membrane protein.; [Protein 3AB]: Host membrane; Single-pass membrane protein.; [Protein 3A]: Host membrane; Single-pass membrane protein.; [Viral protein genome-linked]: Virion.; [Protease 3C]: Host cytoplasm.; [RNA-directed RNA polymerase 3D-POL]: Host cytoplasmic vesicle membrane; Peripheral membrane protein; Cytoplasmic side.
Protein Families
Picornaviridae polyprotein family
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