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Updated: Aug 7, 2026

Determination of the Gas-phase Acidities of Oligopeptides
Published on: June 24, 2013
Orthosteric Control of Acidity Through Sulfate Binding in a Neutral Cyclo[8]pyrrole
Katarzyna Ślusarek-Zając1, Emilia Ganczar1, Tadeusz Lis1
1Wydział Chemii, Uniwersytet Wrocławski, Wrocław, Poland.
Abstract:
Acid-base equilibria can be shifted when binding events alter the local electrostatic and hydrogen-bonding environment of an ionizable site. Implementing such binding-linked acidity changes in a discrete synthetic system would enable regulation of proton activity without changing molecular composition or solvent. Here we describe a new naphthalimide-fused analogue of cyclo[8]pyrrole in which anion recognition dramatically shifts protonation equilibria. Whereas established cyclo[8]pyrroles preferentially form globally aromatic dications, the electron-deficient macrocycle shows an unusual preference for a persistent neutral redox state, while simultaneously revealing exceptionally high Brønsted acidity in organic solvents. The neutral macrocycle retains key anion-recognition characteristics of dicationic cyclo[8]pyrroles, including strong sulfate affinity. Sulfate binding increases the effective first pKa in DMSO by roughly four units, providing an orthosteric, anion-actuated acid switch and expanding the design space of switchable acidity beyond host-guest pKa shifts and light-addressable photoacids.
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