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The structure of the GemC1 coiled coil and its interaction with the Geminin family of coiled-coil proteins.

Christophe Caillat ,
Alexander Fish ,
Dafni Eleftheria Pefani ,
Stavros Taraviras ,
Zoi Lygerou ,
Anastassis Perrakis

Abstract

GemC1, together with Idas and Geminin, an important regulator of DNA-replication licensing and differentiation decisions, constitute a superfamily sharing a homologous central coiled-coil domain. To better understand this family of proteins, the crystal structure of a GemC1 coiled-coil domain variant engineered for better solubility was determined to 2.2 Å resolution. GemC1 shows a less typical coiled coil compared with the Geminin homodimer and the Geminin-Idas heterodimer structures. It is also shown that both in vitro and in cells GemC1 interacts with Geminin through its coiled-coil domain, forming a heterodimer that is more stable that the GemC1 homodimer. Comparative analysis of the thermal stability of all of the possible superfamily complexes, using circular dichroism to follow the unfolding of the entire helix of the coiled coil, or intrinsic tryptophan fluorescence of a unique conserved N-terminal tryptophan, shows that the unfolding of the coiled coil is likely to take place from the C-terminus towards the N-terminus. It is also shown that homodimers show a single-state unfolding, while heterodimers show a two-state unfolding, suggesting that the dimer first falls apart and the helices then unfold according to the stability of each protein. The findings argue that Geminin-family members form homodimers and heterodimers between them, and this ability is likely to be important for modulating their function in cycling and differentiating cells.

More about this publication

Acta crystallographica. Section D, Biological crystallography

Volume 71
Issue nr. Pt 11
Pages 2278-86
Publication date 01-11-2015

Full text links

Publisher website (DOI) 10.1107/S1399004715016892
Europe PubMed Central 26527144
Pubmed 26527144

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