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Updated: Oct 10, 2026

Using Solution NMR to Characterize Biomolecular Condensates Under Biphasic Conditions
Published on: April 17, 2026
From dyadic pH indicators to Congo Red: a stepwise singular-value analysis of increasingly overlapping chemical
Yuta Tanaka1, Wataru Kuwashima1, Tsubasa Iijima1
1Faculty of Pharmaceutical Sciences, Tokyo University of Science, 6-3-1 Niijuku, Katsushika, Tokyo 125-8585, Japan.
Abstract:
Congo Red (CR) is the classical histological stain for amyloid, used for a century to diagnose amyloidosis and characterize fibrils in vitro; understanding its molecular behavior therefore matters well beyond its use as a pH indicator. Yet its acid-base speciation-which governs that behavior-has been treated only approximately, as a single apparent pKa, as though it were an ordinary indicator dye. It is not. Its pH-dependent electronic spectra cannot be accounted for by acid-base equilibria alone: superimposed on two near-degenerate acid dissociations is a self-association transition that continuously shifts the absorption maximum, violating the precondition on which spectral decomposition rests. To reach this system, we analyzed a graded series of halochromic dyes by singular value decomposition (SVD), each introducing one source of complexity and supplying a key for the next. Malachite Green proved decisive, showing that the number of spectral components can exceed the number of chemically possible acid-base species when a structural (tautomeric) equilibrium occurs within a single charge state-an insight without which the CR spectra cannot be read. Carrying these keys forward, we find that CR's resistance to conventional analysis is not a failure but a positive diagnosis: only in a three-dimensional score space do its two near-degenerate acid dissociations separate from the low-pH self-association transition that sets it apart from other indicators. Throughout, SVD counts the entities and chemical reasoning names them; the aim is not to determine pKa values but to understand why CR is exceptional.
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