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The kinase domain of titin controls muscle gene expression and protein turnover

Lange, S (author)
Xiang, FQ (author)
Karolinska Institutet
Yakovenko, A (author)
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Vihola, A (author)
Hackman, P (author)
Rostkova, E (author)
Kristensen, J (author)
Brandmeier, B (author)
Franzen, G (author)
Hedberg, B (author)
Gunnarsson, LG (author)
Hughes, SM (author)
Marchand, S (author)
Sejersen, T (author)
Karolinska Institutet
Richard, I (author)
Edstrom, L (author)
Ehler, E (author)
Udd, B (author)
Gautel, M (author)
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 (creator_code:org_t)
American Association for the Advancement of Science (AAAS), 2005
2005
English.
In: Science (New York, N.Y.). - : American Association for the Advancement of Science (AAAS). - 1095-9203 .- 0036-8075. ; 308:5728, s. 1599-1603
  • Journal article (peer-reviewed)
Abstract Subject headings
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  • The giant sarcomeric protein titin contains a protein kinase domain (TK) ideally positioned to sense mechanical load. We identified a signaling complex where TK interacts with the zinc-finger protein nbr1 through a mechanically inducible conformation. Nbr1 targets the ubiquitin-associated p62/SQSTM1 to sarcomeres, and p62 in turn interacts with MuRF2, a muscle-specific RING-B-box E3 ligase and ligand of the transactivation domain of the serum response transcription factor (SRF). Nuclear translocation of MuRF2 was induced by mechanical inactivity and caused reduction of nuclear SRF and repression of transcription. A human mutation in the titin protein kinase domain causes hereditary muscle disease by disrupting this pathway.

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