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Recombinant Human 28S ribosomal protein S25, mitochondrial (MRPS25)

ACP24595

Number
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High Purity LevelsPrecision and ReliabilityCustomization Options

Specifications


Cat.No ACP24595 Target NameMRPS25
Target SynonymsMRPS25; RPMS25; 28S ribosomal protein S25; mitochondrial; MRP-S25; S25mt; Mitochondrial small ribosomal subunit protein mS25FormLyophilized powder
Expression SystemCustom Production. Please inquire and provide the desire expression system.Expression Range1-173
Protein LengthFull length proteinPurity>85% (SDS-PAGE)
Storage Buffer5%-50% glycerol. Lyophilized powder form: the buffer before lyophilization is Tris/PBS-based buffer, 6% Trehalose, Liquid form: default storage buffer is Tris/PBS-based buffer, pH 8.0.

Immunogen Information


Target SpeciesHumanUniprot IDP82663
Background Information
  • Uniprot Id

    P82663

  • Target Species

    Human

  • Target Name

    MRPS25

  • Target Full Name

    Small ribosomal subunit protein mS25

  • Target Subcellular Location

    Mitochondrion.

  • Target Protein Families

    Mitochondrion-specific ribosomal protein mS25 family

  • Target Synonyms

    MRPS25; RPMS25; 28S ribosomal protein S25; mitochondrial; MRP-S25; S25mt; Mitochondrial small ribosomal subunit protein mS25

  • Target Background

    Mammalian mitochondrial ribosomal proteins are encoded by nuclear genes and help in protein synthesis within the mitochondrion. Mitochondrial ribosomes (mitoribosomes) consist of a small 28S subunit and a large 39S subunit. They have an estimated 75% protein to rRNA composition compared to prokaryotic ribosomes, where this ratio is reversed. Another difference between mammalian mitoribosomes and prokaryotic ribosomes is that the latter contain a 5S rRNA. Among different species, the proteins comprising the mitoribosome differ greatly in sequence, and sometimes in biochemical properties, which prevents easy recognition by sequence homology. This gene encodes a 28S subunit protein. A pseudogene corresponding to this gene is found on chromosome 4. Alternative splicing results in multiple transcript variants.

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