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9ZDY

Human TTR-C10A at pH 4

Summary for 9ZDY
Entry DOI10.2210/pdb9zdy/pdb
EMDB information74078
DescriptorTransthyretin (1 entity in total)
Functional Keywordsthyroxine transporter, transport protein
Biological sourceHomo sapiens (human)
Total number of polymer chains4
Total formula weight58949.75
Authors
Schaefer, J.H.,Lander, G.C. (deposition date: 2025-11-26, release date: 2026-09-16)
Primary citationJager, M.,Schafer, J.H.,Lander, G.C.,Powers, E.T.,Gruebele, M.,Kelly, J.W.
Transthyretin can denature by an alternative pathway.
Proc.Natl.Acad.Sci.USA, 123:e2536532123-e2536532123, 2026
Cited by
PubMed Abstract: Transthyretin (TTR) is a kinetically stable protein in the bloodstream, cerebrospinal fluid, and in the eye, whose aggregation causes a prominent human amyloid disease, TTR amyloidosis (ATTR). Dissociation of the wild-type TTR tetramer into metastable dimers is rate-limiting for aggregation at acidic pH and unfolding in denaturant solutions at neutral pH. However, this "canonical dimer" pathway of denaturation is not the only one accessible under conditions possibly relevant to amyloid disease. At pH-values reached in the late endosome and lysosome (pH 4.0 to 5.0), as well as with perturbing mutations at neutral pH, a second denaturation pathway becomes accessible involving a more expanded transition state. This "alternative unfolding" pathway is evident via a characteristic switch to a steeper slope in the plot of the log-transformed unfolding rate constant vs. the urea concentration. Using mutations, we identify globally distributed locations in the protein that are sensitive to pathway-switching and correlate them with structural information. We show that flux along the alternative denaturation pathway becomes kinetically competitive in a subset of variants under mildly acidic conditions. A small-molecule kinetic stabilizer of TTR decreases flux along the canonical denaturation pathway, and exhibits reduced influence on denaturation by the alternative pathway. We present a "universal" plot allowing classification of TTR mutants to either pathway, and suggest a mechanism by which the two pathways operate. We speculate that the existence of an alternative unfolding pathway could allow for rapid protein degradation and turnover of kinetically stable TTR under acidic conditions in the autolysosome.
PubMed: 42709794
DOI: 10.1073/pnas.2536532123
PDB entries with the same primary citation
Experimental method
ELECTRON MICROSCOPY (3.9 Å)
Structure validation

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