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Efficient system for upstream mRNA trans-splicing to generate covalent, head-to-tail, protein multimers.
Mitsuhashi, Hiroaki; Homma, Sachiko; Beermann, Mary Lou; Ishimaru, Satoshi; Takeda, Hayato; Yu, Bryant K; Liu, Kevin; Duraiswamy, Swetha; Boyce, Frederick M; Miller, Jeffrey Boone.
Afiliação
  • Mitsuhashi H; Department of Applied, Biochemistry School of Engineering, Tokai University Kanagawa, Yokohama, 259-1207, Japan. hmitsuhashi@tsc.u-tokai.ac.jp.
  • Homma S; Department of Neurology, Boston University School of Medicine Boston, Massachusetts, 02118, USA.
  • Beermann ML; Department of Neurology, Boston University School of Medicine Boston, Massachusetts, 02118, USA.
  • Ishimaru S; Department of Applied, Biochemistry School of Engineering, Tokai University Kanagawa, Yokohama, 259-1207, Japan.
  • Takeda H; Department of Applied, Biochemistry School of Engineering, Tokai University Kanagawa, Yokohama, 259-1207, Japan.
  • Yu BK; Department of Neurology, Boston University School of Medicine Boston, Massachusetts, 02118, USA.
  • Liu K; Department of Neurology, Boston University School of Medicine Boston, Massachusetts, 02118, USA.
  • Duraiswamy S; Department of Neurology, Boston University School of Medicine Boston, Massachusetts, 02118, USA.
  • Boyce FM; Department of Neurology, Massachusetts General Hospital, Boston, Massachusetts, 02114, USA.
  • Miller JB; Department of Neurology, Boston University School of Medicine Boston, Massachusetts, 02118, USA. millerjb@bu.edu.
Sci Rep ; 9(1): 2274, 2019 02 19.
Article em En | MEDLINE | ID: mdl-30783185
ABSTRACT
We present a plasmid-based system in which upstream trans-splicing efficiently generates mRNAs that encode head-to-tail protein multimers. In this system, trans-splicing occurs between one of two downstream splice donors in the sequence encoding a C-terminal V5 epitope tag and an upstream splice acceptor in the 5' region of the pCS2(+) host plasmid. Using deletion and fusion constructs of the DUX4 protein as an example, we found that this system produced trans-spliced mRNAs in which coding regions from independent transcripts were fused in phase such that covalent head-to-tail protein multimers were translated. For a cDNA of ~450 bp, about half of the expressed proteins were multimeric, with the efficiency of trans-splicing and extent of multimer expression decreasing as cDNA length increased. This system generated covalent heterodimeric proteins upon co-transfections of plasmids encoding separate proteins and did not require a long complementary binding domain to position mRNAs for trans-splicing. This plasmid-based trans-splicing system is adaptable to multiple gene delivery systems, and it presents new opportunities for investigating molecular mechanisms of trans-splicing, generating covalent protein multimers with novel functions within cells, and producing mRNAs encoding large proteins from split precursors.
Assuntos

Texto completo: 1 Coleções: 01-internacional Base de dados: MEDLINE Assunto principal: Plasmídeos / RNA Mensageiro / Engenharia Genética / Trans-Splicing Limite: Humans Idioma: En Ano de publicação: 2019 Tipo de documento: Article

Texto completo: 1 Coleções: 01-internacional Base de dados: MEDLINE Assunto principal: Plasmídeos / RNA Mensageiro / Engenharia Genética / Trans-Splicing Limite: Humans Idioma: En Ano de publicação: 2019 Tipo de documento: Article