Structures and metal-ion-binding properties of the Ca2+-binding helix–loop–helix EF-hand motifs
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- 27 June 2007
- journal article
- review article
- Published by Portland Press Ltd. in Biochemical Journal
- Vol. 405 (2), 199-221
- https://doi.org/10.1042/bj20070255
Abstract
The ‘EF-hand’ Ca2+-binding motif plays an essential role in eukaryotic cellular signalling, and the proteins containing this motif constitute a large and functionally diverse family. The EF-hand is defined by its helix–loop–helix secondary structure as well as the ligands presented by the loop to bind the Ca2+ ion. The identity of these ligands is semi-conserved in the most common (the ‘canonical’) EF-hand; however, several non-canonical EF-hands exist that bind Ca2+ by a different co-ordination mechanism. EF-hands tend to occur in pairs, which form a discrete domain so that most family members have two, four or six EF-hands. This pairing also enables communication, and many EF-hands display positive co-operativity, thereby minimizing the Ca2+ signal required to reach protein saturation. The conformational effects of Ca2+ binding are varied, function-dependent and, in some cases, minimal, but can lead to the creation of a protein target interaction site or structure formation from a molten-globule apo state. EF-hand proteins exhibit various sensitivities to Ca2+, reflecting the intrinsic binding ability of the EF-hand as well as the degree of co-operativity in Ca2+ binding to paired EF-hands. Two additional factors can influence the ability of an EF-hand to bind Ca2+: selectivity over Mg2+ (a cation with very similar chemical properties to Ca2+ and with a cytoplasmic concentration several orders of magnitude higher) and interaction with a protein target. A structural approach is used in this review to examine the diversity of family members, and a biophysical perspective provides insight into the ability of the EF-hand motif to bind Ca2+ with a wide range of affinities.Keywords
This publication has 179 references indexed in Scilit:
- The crystal structure of the sorcin calcium binding domain provides a model of Ca2+-dependent processes in the full-length proteinJournal of Molecular Biology, 2002
- Structural dynamics in the C-terminal domain of calmodulin at low calcium levelsJournal of Molecular Biology, 1999
- Backbone dynamics and energetics of a Calmodulin domain mutant exchanging between closed and open conformationsJournal of Molecular Biology, 1999
- Ca 2+ /Mg 2+ exchange in parvalbumin and other EF-hand proteins. A theoretical study 1 1Edited by R. HuberJournal of Molecular Biology, 1999
- Solution Structure of (Cd2+)1-calbindin D9kReveals Details of the Stepwise Structural Changes along the Apo*rarr;(Ca2+)1II*rarr;(Ca2+)2I,IIBinding PathwayJournal of Molecular Biology, 1995
- Binding of calcium by calmodulin: influence of the calmodulin binding domain of the plasma membrane calcium pumpBiochemistry, 1992
- Ionic interactions with parvalbumins: Crystal structure determination of pike 4.10 parvalbumin in four different ionic environmentsJournal of Molecular Biology, 1991
- Molecular basis for co-operativity in Ca2+ binding to calbindin D9k: 1H nuclear magnetic resonance studies of (Cd2+)1-bovine calbindin D9kJournal of Molecular Biology, 1991
- Refined crystal structure of troponin C from turkey skeletal muscle at 2·0 Å resolutionJournal of Molecular Biology, 1988
- Allosteric proteins and cellular control systemsJournal of Molecular Biology, 1963