Structural and Thermodynamic Studies on a Salt-bridge Triad in the NADP-binding Domain of Glutamate Dehydrogenase from Thermotoga maritima :  Cooperativity and Electrostatic Contribution to Stability † (original) (raw)

Electrostatic strengths of salt bridges in thermophilic and mesophilic glutamate dehydrogenase monomers

Buyong Ma

Proteins: Structure, Function and Genetics, 2000

View PDFchevron_right

Comparative Studies on Ion-pair Energetic, Distribution among Three Domains of Life: Archaea, Eubacteria and Eukarya.

Chittran Roy, Rajeev Kumar

Proteins, 2020

View PDFchevron_right

Close-Range Electrostatic Interactions in Proteins

sandeep kumar

ChemBioChem, 2002

View PDFchevron_right

The Stabilization Energy of the GLU-LYS Salt Bridge in the Protein/Water Environment: Correlated Quantum Chemical ab initio, DFT and Empirical Potential Studies

Karel Berka

Collection of Czechoslovak Chemical Communications, 2008

View PDFchevron_right

Salt-Bridge Energetics in Halophilic Proteins

Dr. Parth Sarthi Sen Gupta

View PDFchevron_right

Structural basis for the hyperthermostability of an archaeal glutaminase induced by post-translational succinimide formation

Asutosh Bellur

bioRxiv, 2021

View PDFchevron_right

Protein thermostability above 100 C: A key role for ionic interactions

Frank Robb

Proceedings of the …, 1998

View PDFchevron_right

Electrostatic contributions to the stability of hyperthermophilic proteins

Muhamad Aji

Journal of molecular biology, 1999

View PDFchevron_right

Ion Pairs Involved in Maintaining a Thermostable Structure of Glutamate Dehydrogenase from a Hyperthermophilic Archaeon

Raja Noor Zaliha Raja Abd Rahman

Biochemical and Biophysical Research Communications, 1998

View PDFchevron_right

The structure of Pyrococcus furiosus glutamate dehydrogenase reveals a key role for ion-pair networks in maintaining enzyme stability at extreme temperatures

Roberto Scandurra, Roberta Chiaraluce

Structure, 1995

View PDFchevron_right

Protein Thermostability above 100 degrees C: A Key Role for Ionic Interactions

Dennis Maeder

Proceedings of The National Academy of Sciences, 1998

View PDFchevron_right

Salt-Bridges in the Microenvironment of Stable Protein Structures

Rifat Islam

Bioinformation, 2020

View PDFchevron_right

Ionic network at the C-terminus of the ?-glycosidase from the hyperthermophilic archaeonSulfolobus solfataricus: Functional role in the quaternary structure thermal stabilization

Rossana Davino, Maria Ciaramella

Proteins: Structure, Function, and Genetics, 2002

View PDFchevron_right

The Efficiency of Different Salts to Screen Charge Interactions in Proteins: A Hofmeister Effect?

Raquel Godoy-ruiz

Biophysical Journal, 2004

View PDFchevron_right

Insights into the molecular basis of thermal stability from the analysis of ion‐pair networks in the Glutamate Dehydrogenase family

Frank Robb

European Journal …, 1998

View PDFchevron_right

Partial destabilization of native structure by a combination of heat and denaturant facilitates cold denaturation in a hyperthermophile protein

sanjeev chandrayan

Proteins-structure Function and Bioinformatics, 2008

View PDFchevron_right

Unusual effect of salts on the homodimeric structure of NADH oxidase from Thermus thermophilus in acidic pH

Erik Sedlák

Biochimica et Biophysica Acta (BBA) - Proteins and Proteomics, 2006

View PDFchevron_right

Urea and Guanidinium Chloride Denature Protein L in Different Ways in Molecular Dynamics Simulations

Guido Tiana

Biophysical Journal, 2008

View PDFchevron_right

Specificity of Ion-Protein Interactions: Complementary and Competitive Effects of Tetrapropylammonium, Guanidinium, Sulfate, and Chloride Ions

Christopher Dempsey

J Phys Chem B, 2009

View PDFchevron_right

Thermal unfolding and conformational stability of the recombinant domain II of glutamate dehydrogenase from the hyperthermophile Thermotoga maritima

Roberto Scandurra, Roberta Chiaraluce

Protein Engineering Design & Selection, 2000

View PDFchevron_right

Protonation and deprotonation enthalpies of guanine and adenine and implications for the structure and energy of their complexes with water: comparison with uracil, …

Chandra Mt

The Journal of …, 1999

View PDFchevron_right

Large Heat Capacity Change in a Protein−Monovalent Cation Interaction †

Enrico Di Cera

Biochemistry, 1996

View PDFchevron_right

Deciphering the Dynamics of Non-Covalent Interactions Affecting Thermal Stability of a Protein: Molecular Dynamics Study on Point Mutant of Thermus thermophilus Isopropylmalate Dehydrogenase

g narahari sastry

PloS one, 2015

View PDFchevron_right

Structure determination of the glutamate dehydrogenase from the hyperthermophile< i> Thermococcus litoralis and its comparison with that from< i> Pyrococcus furiosus

Frank Robb

1999

View PDFchevron_right

Stability of buried and networked salt-bridges (BNSB) in thermophilic proteins

Rifat Islam

Bioinformation

View PDFchevron_right

Charge Transfer and Polarization in Solvated Proteins from Ab Initio Molecular Dynamics

Todd Martinez

The Journal of Physical Chemistry Letters, 2011

View PDFchevron_right

Thermodynamic and kinetic stability of a large multi-domain enzyme from the hyperthermophile Aeropyrum pernix

Nils-kåre Birkeland

Extremophiles, 2010

View PDFchevron_right

Energetics of Protein Thermodynamic Cooperativity: Contributions of Local and Nonlocal Interactions

Hüseyin Kaya

2003

View PDFchevron_right

Relationship between Ion Pair Geometries and Electrostatic Strengths in Proteins

sandeep kumar

Biophysical Journal, 2002

View PDFchevron_right

Electrostatic Contributions to the Stability of Halophilic Proteins

muhamad zunanda aji

View PDFchevron_right

Short-Range Interactions of Globular Proteins at High Ionic Strengths

Sabrina Beretta

Macromolecules, 2000

View PDFchevron_right