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Tytuł pozycji:

Temperature and guanidine hydrochloride dependence of the structural stability of ribonuclease T1.

Tytuł:
Temperature and guanidine hydrochloride dependence of the structural stability of ribonuclease T1.
Autorzy:
Plaza del Pino IM; Department of Biology, Johns Hopkins University, Baltimore, Maryland 21218.
Pace CN
Freire E
Źródło:
Biochemistry [Biochemistry] 1992 Nov 17; Vol. 31 (45), pp. 11196-202.
Typ publikacji:
Journal Article; Research Support, Non-U.S. Gov't; Research Support, U.S. Gov't, P.H.S.
Język:
English
Imprint Name(s):
Original Publication: Washington, American Chemical Society.
MeSH Terms:
Guanidines/*chemistry
Ribonuclease T1/*chemistry
Aspergillus/enzymology ; Calorimetry, Differential Scanning ; Guanidine ; Hot Temperature ; Hydrogen-Ion Concentration ; Kinetics ; Protein Folding
Grant Information:
GM37911 United States GM NIGMS NIH HHS; NS24520 United States NS NINDS NIH HHS; RR04328 United States RR NCRR NIH HHS; etc.
Substance Nomenclature:
0 (Guanidines)
EC 3.1.27.3 (Ribonuclease T1)
JU58VJ6Y3B (Guanidine)
Entry Date(s):
Date Created: 19921117 Date Completed: 19921224 Latest Revision: 20190613
Update Code:
20240104
DOI:
10.1021/bi00160a033
PMID:
1445858
Czasopismo naukowe
The thermal unfolding of ribonuclease T1 has been studied by high-sensitivity differential scanning calorimetry as a function of temperature, [GuHCl], and scanning rate. The destabilizing effect of GuHCl has revealed that the kinetics of the unfolding transition become extremely slow as the transition temperature decreases. At pH 5.3 and zero GuHCl, the unfolding transition is centered at 59.1 degrees C; upon increasing the GuHCl concentration, the transition occurs at lower temperatures and exhibits progressively slower kinetics; so, for example, at 3 M GuHCl, the transition temperature is 40.6 degrees C and is characterized by a time constant close to 10 min. Under all conditions studied (pH 5.3, pH 7.0, [GuHCl] < 3 M), the transition is thermodynamically reversible. The slow kinetics of the transition induce significant distortions in the shape of the transition profiles that can be mistakenly interpreted as deviations from a two-state mechanism. Determination of the thermodynamic parameters from the calorimetric data has required the development of an analytical formalism that explicitly includes the thermodynamics as well as the kinetics of the transition. Using this formalism, it is shown that a two-state slow-kinetics model is capable of accurately describing the structural stability of ribonuclease T1 as a function of temperature, GuHCl concentration, and scanning rate. Multidimensional analysis of the calorimetric data has been used to estimate the intrinsic thermodynamic parameters for protein stability, the interaction parameters with GuHCl, and the time constant for the unfolding transition and its temperature dependence.

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