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The Role of the DIF Motif of the DnaJ (Hsp40) Co-chaperone in the Regulation of the DnaK (Hsp70) Chaperone Cycle (CROSBI ID 124711)

Prilog u časopisu | izvorni znanstveni rad | međunarodna recenzija

Gogelja-Čajo, Gordana ; Horne, B. Erin ; Kelley, William L. ; Schwager, Francoise ; Georgopoulos, Costa ; Genevaux, Pierre The Role of the DIF Motif of the DnaJ (Hsp40) Co-chaperone in the Regulation of the DnaK (Hsp70) Chaperone Cycle // The Journal of biological chemistry, 281 (2006), 18; 12436-12444-x

Podaci o odgovornosti

Gogelja-Čajo, Gordana ; Horne, B. Erin ; Kelley, William L. ; Schwager, Francoise ; Georgopoulos, Costa ; Genevaux, Pierre

engleski

The Role of the DIF Motif of the DnaJ (Hsp40) Co-chaperone in the Regulation of the DnaK (Hsp70) Chaperone Cycle

To perform effectively as a molecular chaperone, DnaK (Hsp70) necessitates the assistance of its DnaJ (Hsp40) co-chaperone partner, which efficiently stimulates its intrinsically weak ATPase activity and facilitates its interaction with polypeptide substrates. In this study, we address the function of the conserved glycine- and phenylalanine-rich (G/F-rich) region of the Escherichia coli DnaJ in the DnaK chaperone cycle. We show that the G/F-rich region is critical for DnaJ co-chaperone functions in vivo and that despite a significant degree of sequence conservation among the G/F-rich regions of Hsp40 homologs from bacteria, yeast, or humans, functional complementation in the context of the E. coli DnaJ is limited. Furthermore, we found that the deletion of the whole G/F-rich region is mirrored by mutations in the conserved Asp-Ile/Val-Phe (DIF) motif contained in this region. Further genetic and biochemical analyses revealed that this amino acid triplet plays a critical role in regulation of the DnaK chaperone cycle, possibly by modulating a crucial step subsequent to DnaK-mediated ATP hydrolysis.

Escherichia coli; Molecular chaperone; Dna J; DnaK; DnaJ; Chaperone Cycle

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Podaci o izdanju

281 (18)

2006.

12436-12444-x

objavljeno

0021-9258

Povezanost rada

Biologija

Indeksiranost