The Chaperone-Like Protein HYPK Acts Together with NatA in Cotranslational N-Terminal Acetylation and Prevention of Huntingtin Aggregation

Author:

Arnesen Thomas123,Starheim Kristian K.123,Van Damme Petra45,Evjenth Rune1,Dinh Huyen1,Betts Matthew J.6,Ryningen Anita7,Vandekerckhove Joël45,Gevaert Kris45,Anderson Dave8

Affiliation:

1. Department of Molecular Biology, University of Bergen, N-5020 Bergen, Norway

2. Department of Surgical Sciences, University of Bergen, N-5020 Bergen, Norway

3. Department of Surgery, Haukeland University Hospital, N-5021 Bergen, Norway

4. Department of Medical Protein Research, VIB, B-9000 Ghent, Belgium

5. Department of Biochemistry, Ghent University, B-9000 Ghent, Belgium

6. EMBL, Meyerhofstrasse 1, 69117 Heidelberg, Germany

7. Department of Medicine, Haukeland University Hospital, N-5021 Bergen, Norway

8. Institute of Molecular Biology, University of Oregon, Eugene, Oregon 97403-1229

Abstract

ABSTRACT The human NatA protein N α -terminal-acetyltransferase complex is responsible for cotranslational N-terminal acetylation of proteins with Ser, Ala, Thr, Gly, and Val N termini. The NatA complex is composed of the catalytic subunit hNaa10p (hArd1) and the auxiliary subunit hNaa15p (hNat1/NATH). Using immunoprecipitation coupled with mass spectrometry, we identified endogenous HYPK, a Huntingtin (Htt)-interacting protein, as a novel stable interactor of NatA. HYPK has chaperone-like properties preventing Htt aggregation. HYPK, hNaa10p, and hNaa15p were associated with polysome fractions, indicating a function of HYPK associated with the NatA complex during protein translation. Knockdown of both h NAA10 and h NAA15 decreased HYPK protein levels, possibly indicating that NatA is required for the stability of HYPK. The biological importance of HYPK was evident from HYPK -knockdown HeLa cells displaying apoptosis and cell cycle arrest in the G 0 /G 1 phase. Knockdown of HYPK or h NAA10 resulted in increased aggregation of an Htt-enhanced green fluorescent protein (Htt-EGFP) fusion with expanded polyglutamine stretches, suggesting that both HYPK and NatA prevent Htt aggregation. Furthermore, we demonstrated that HYPK is required for N-terminal acetylation of the known in vivo NatA substrate protein PCNP. Taken together, the data indicate that the physical interaction between HYPK and NatA seems to be of functional importance both for Htt aggregation and for N-terminal acetylation.

Publisher

American Society for Microbiology

Subject

Cell Biology,Molecular Biology

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