Cryo-EM structure of TGFBIp fibrils driven by a corneal dystrophy–linked mutation enables design of peptide inhibitors of aggregation

Corneal dystrophy is a heterogeneous group of diseases which manifests clinically by progressive corneal opacity and diminishing visual acuity. A group of corneal dystrophies are linked to autosomal dominant mutations in transforming growth factor β-induced protein (TGFBIp) and characterized by extracellular amyloid-positive deposits of unknown molecular structure. Here, we determined the cryogenic-electron microscopy (cryo-EM) structure of amyloid fibrils formed by the TGFBIp FAS1-4 domain with corneal dystrophy-linked mutation V624M. The L569 to N609 fibril core, which includes the Y571-R588 segment enriched in patient corneal deposits, forms symmetrical protofilaments with internal solvent channels. Leveraging this structure, we designed peptide inhibitors intended to bind onto fibril ends to block elongation, targeting the unequal growth of symmetrical protofilaments. Our G1 and H4 inhibitors exhibit concentration-dependent reduction of TGFBIp FAS1-4 aggregation as assessed by Thioflavin T, solubility fractionation, and electron microscopy. Our work illustrates how fibril structures can guide rational inhibitor design and suggests the targeting of protein aggregates as a therapeutic approach for corneal and ocular diseases.

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Publication Details

Journal
Proceedings of the National Academy of Sciences
Published
2026-09-08
DOI
https://doi.org/10.1073/pnas.2607937123
Primary Topic
Connective tissue disorders research
Type
article
Field-Weighted Citation Impact
0.00

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article

Cryo-EM structure of TGFBIp fibrils driven by a corneal dystrophy–linked mutation enables design of peptide inhibitors of aggregation

Duilio Cascio, Carolyn J. Hu, Łukasz Salwiński, Xinyi Cheng et al.
Proceedings of the National Academy of Sciences
Connective tissue disorders research
article

Cryo-EM structure of TGFBIp fibrils driven by a corneal dystrophy–linked mutation enables design of peptide inhibitors of aggregation

Duilio Cascio, Carolyn J. Hu, Łukasz Salwiński, Xinyi Cheng, David R. Boyer, M.R. Sawaya, Yi Xiao Jiang, Liisa Lutter, David Eisenberg, P. Ge, Filipe A. Melo, Conrad Wang, Hillary Hernandez
article en

Abstract

Corneal dystrophy is a heterogeneous group of diseases which manifests clinically by progressive corneal opacity and diminishing visual acuity. A group of corneal dystrophies are linked to autosomal dominant mutations in transforming growth factor β-induced protein (TGFBIp) and characterized by extracellular amyloid-positive deposits of unknown molecular structure. Here, we determined the cryogenic-electron microscopy (cryo-EM) structure of amyloid fibrils formed by the TGFBIp FAS1-4 domain with corneal dystrophy-linked mutation V624M. The L569 to N609 fibril core, which includes the Y571-R588 segment enriched in patient corneal deposits, forms symmetrical protofilaments with internal solvent channels. Leveraging this structure, we designed peptide inhibitors intended to bind onto fibril ends to block elongation, targeting the unequal growth of symmetrical protofilaments. Our G1 and H4 inhibitors exhibit concentration-dependent reduction of TGFBIp FAS1-4 aggregation as assessed by Thioflavin T, solubility fractionation, and electron microscopy. Our work illustrates how fibril structures can guide rational inhibitor design and suggests the targeting of protein aggregates as a therapeutic approach for corneal and ocular diseases.

Proceedings of the National Academy of SciencesVol. 123(37)
Abterra Biosciences (United States) (US), Quantitative BioSciences (US), Proteogenomics Research Institute for Systems Medicine (US), University of California, Berkeley (US)
Foundation for the National Institutes of Health, National Institutes of Health, National Institute of General Medical Sciences, Common Fund
Openalex Percentile: Top 11%
Connective tissue disorders research
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