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1.
Chem Sci ; 8(8): 5764-5768, 2017 Aug 01.
Article in English | MEDLINE | ID: mdl-28989616

ABSTRACT

Visualizing disease heterogeneity remains a challenging task since most imaging agents are targeted to a single receptor. We describe the development of an MR platform able to report on multiple molecular events. Enzyme activation and enhanced cellular uptake of this modular probe make it suitable for subsequent targeted-reporter imaging applications.

2.
Langmuir ; 24(20): 11556-61, 2008 Oct 21.
Article in English | MEDLINE | ID: mdl-18808161

ABSTRACT

We report the application of recently developed microscopic models to estimate the apparent kinetic and thermodynamic parameters in a single molecule force spectroscopy study of the carbonic anhydrase enzyme and a complementary sulfonamide inhibitor. The most probable rupture force for the enzyme-inhibitor interaction shows a nonlinear dependency on the log-loading rate. Estimates for the kinetic and thermodynamic parameters were obtained by fitting the nonlinear dependency to linear cubic potential and cusp potential models and compared to the standard Bell-Evans model. The reliability of the estimated parameters was verified by modeling the experimental rupture force distributions by the theoretically predicted distributions at rupture. We also report that linkers that are attached to the enzyme and inhibitor show appreciable effects on the apparent kinetic and thermodynamic parameters.


Subject(s)
Carbonic Anhydrase II/chemistry , Enzyme Inhibitors/chemistry , Enzymes/chemistry , Microscopy, Atomic Force/methods , Animals , Biophysics/methods , Cattle , Enzymes, Immobilized/chemistry , Kinetics , Models, Chemical , Models, Statistical , Molecular Structure , Static Electricity , Surface Properties , Thermodynamics
3.
Langmuir ; 23(25): 12561-5, 2007 Dec 04.
Article in English | MEDLINE | ID: mdl-17973506

ABSTRACT

In this communication, we report on the interaction landscape of an active site-specific enzyme-inhibitor complex by single-molecule force spectroscopy. Electrostatic immobilization was employed to orient a carbonic anhydrase enzyme on a positively charged surface so its active site is pointing upward. This approach to immobilization effectively increases the number of specific interactions measured between the zinc ion of the active site on carbonic anhydrase and a sulfonamide inhibitor tethered to an atomic force microscope (AFM) probe. Further, it reduces the time required for data collection and thereby minimizes the possible mechanical damage to the probe and contamination of the enzyme surface. The rupture force measured at various loading rates is interpreted in terms of a single energy barrier for the carbonic anhydrase enzyme-sulfonamide inhibitor complex from which the kinetic and thermodynamic parameters were estimated on the basis of microscopic models and were compared to the Bell-Evans model. The dissociation rate for the enzyme-inhibitor complex was found to be significantly faster (~35 times) than the natural spontaneous dissociation rate.


Subject(s)
Carbonic Anhydrase Inhibitors/chemistry , Carbonic Anhydrases/chemistry , Microscopy, Atomic Force/methods , Sulfonamides/chemistry , Binding Sites , Carbonic Anhydrase Inhibitors/pharmacology , Carbonic Anhydrases/drug effects , Kinetics , Molecular Structure , Sulfonamides/pharmacology , Thermodynamics
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