4hs5

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Frataxin from Psychromonas ingrahamii as a model to study stability modulation within CyaY protein familyFrataxin from Psychromonas ingrahamii as a model to study stability modulation within CyaY protein family

Structural highlights

4hs5 is a 2 chain structure with sequence from Psychromonas ingrahamii 37. Full crystallographic information is available from OCA. For a guided tour on the structure components use FirstGlance.
Method:X-ray diffraction, Resolution 1.45Å
Resources:FirstGlance, OCA, PDBe, RCSB, PDBsum, ProSAT

Function

CYAY_PSYIN

Publication Abstract from PubMed

Adaptation of life to low temperatures influences both protein stability and flexibility. Thus, proteins from psychrophilic organisms are excellent models to study relations between these properties. Here we focused on frataxin from Psychromonas ingrahamii (pFXN), an extreme psychrophilic sea ice bacterium that can grow at temperatures as low as -12 degrees C. This alpha/beta protein is highly conserved and plays a key role in iron homeostasis as an iron chaperone. In contrast to other frataxin homologs, chemical and temperature unfolding experiments showed that the thermodynamic stability of pFXN is strongly modulated by pHs: ranging from 5.5+/-0.9 (pH6.0) to 0.9+/-0.3kcalmol-1 (pH8.0). This protein was crystallized and its X-ray structure solved at 1.45A. Comparison of B-factor profiles between Escherichia coli and P. ingrahamii frataxin variants (51% of identity) suggests that, although both proteins share the same structural features, their flexibility distribution is different. Molecular dynamics simulations showed that protonation of His44 or His67 in pFXN lowers the mobility of regions encompassing residues 20-30 and the C-terminal end, probably through favorable electrostatic interactions with residues Asp27, Glu42 and Glu99. Since the C-terminal end of the protein is critical for the stabilization of the frataxin fold, the predictions presented may be reporting on the microscopic origin of the decrease in global stability produced near neutral pH in the psychrophilic variant. We propose that suboptimal electrostatic interactions may have been an evolutionary strategy for the adaptation of frataxin flexibility and function to cold environments.

Frataxin from Psychromonas ingrahamii as a model to study stability modulation within the CyaY protein family.,Roman EA, Faraj SE, Cousido-Siah A, Mitschler A, Podjarny A, Santos J Biochim Biophys Acta. 2013 Feb 19. pii: S1570-9639(13)00078-2. doi:, 10.1016/j.bbapap.2013.02.015. PMID:23429177[1]

From MEDLINE®/PubMed®, a database of the U.S. National Library of Medicine.

See Also

References

  1. Roman EA, Faraj SE, Cousido-Siah A, Mitschler A, Podjarny A, Santos J. Frataxin from Psychromonas ingrahamii as a model to study stability modulation within the CyaY protein family. Biochim Biophys Acta. 2013 Feb 19. pii: S1570-9639(13)00078-2. doi:, 10.1016/j.bbapap.2013.02.015. PMID:23429177 doi:10.1016/j.bbapap.2013.02.015

4hs5, resolution 1.45Å

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