Biospecific Binding of Carbonic Anhydrase to Mixed SAMs Presenting Benzenesulfonamide Ligands: A Model System for Studying Lateral Steric Effects

نویسندگان

  • Joydeep Lahiri
  • Lyle Isaacs
  • Bartosz Grzybowski
  • Jeffrey D. Carbeck
  • George M. Whitesides
چکیده

This work describes the binding of carbonic anhydrase (CA) to mixed self-assembled monolayers (SAMs) presenting benzenesulfonamide ligands at a surface consisting primarily of tri(ethylene glycol) [(EG)3OH] groups. Surface plasmon resonance (SPR) quantified the binding of CA to the benzenesulfonamide groups. Two factors influenced the binding of CA: (a) the density of benzenesulfonamide groups at the surface, and (b) the coverage of the surface with molecules of CA adsorbed to these benzenesulfonamide groups. At low mole-fractions of benzenesulfonamide groups in the mixed SAM where the binding of CA is highly (>90%) reversible, we observe: (a) an approximately 10-fold decrease in the observed bimolecular rate constant for association, kon,obs, during the binding of CA (as the fraction of the surface covered by adsorbed CA increases from ∼0.15 to ∼0.35, the value of kon,obs decreases from ∼40 × 103 M-1 s-1 to ∼4 × 103 M-1 s-1); (b) almost no corresponding changes in the observed unimolecular rate constant for dissociation (koff,obs ∼0.005 s-1) during the dissociation of CA from the surface. These observations establish that kon,obs is influenced by the extent of coverage of the surface with CA, but that koff,obs is not. At low surface densities of arylsulfonamide groups, one hypothesis that rationalizes these data is that the decrease in kon,obs reflects repulsive steric interactions between molecules of CA near the surface and those already adsorbed. Each molecule of biospecifically adsorbed CA shields proximal benzenesulfonamide ligands from binding to incoming molecules of CA, and decreases the surface density of these ligands that are accessible to CA, at a rate that increases nonlinearly with the quantity of CA already adsorbed.

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تاریخ انتشار 1999