Submitted:
17 June 2026
Posted:
20 July 2026
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Abstract
Keywords:
1. Introduction
2. Materials and Methods
2.1. Correlation Dimension
2.2. Clustering
2.3. Decomposition of Global Dimension
2.4. A bound on the Excess Dimension
2.5. Protein Structures and Parameters
2.6. Threshold Determination
2.7. Validation on Synthetic Data with Known Fractal Dimension
3. Results
3.1. Prion Protein
3.2. Validation Set
3.3. Geometric Interpretation of
- the number of clusters ,
- their separation gap relative to the cluster size , and the clustering method.
3.4. Extensions to Multifractal Analysis
4. Discussion
5. Conclusions
- The global fibril dimension exceeds the intra-sheet average by (p < 0.05), indicating that fibril complexity originates primarily from inter-sheet organization.
- Validation on five protein systems (PrP, Aβ, α-synuclein, IAPP, XCL1) confirms that reliably signals hierarchical structure formation.
- The parameter discriminates Aβ morphotypes (2lmn: vs. 2lmp: ), demonstrating sensitivity to fibrillar architecture.
Author Contributions
Funding
Data Availability Statement
Acknowledgments
Conflicts of Interest
Abbreviations
| PDB | Protein Data Bank |
| RCSB | Research Collaboratory for Structural Bioinformatics |
| Aβ | Amyloid beta |
| IAPP | Islet amyloid polypeptide |
| PrP | Prion protein |
| XCL1 | Chemokine XCL1 |
| Cα | Alpha carbon |
| PCA | Principal Component Analysis |
| DBSCAN | Density-Based Spatial Clustering of Applications with Noise |
| MDTraj | Molecular Dynamics Trajectory analysis library |
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| PDB | Protein / state | Type | (Cα) | ||
| 1AMB, 1AMC | Aβ(1–40) monomer | monomer | 28 | – | — |
| 2KB8 | IAPP monomer | monomer | 37 | – | — |
| 1XQ8 | α-synuclein monomer | monomer | 140 | ||
| 2KDM | GA95/GB95 (compact) | α+β | 56 | – | — |
| 1J8I | XCL1 monomer | α+β | 93 | – | — |
| 2JP1 | XCL1 dimer | β-dimer | 120 | – | – |
| 2LMN | Aβ fibril (morphotype 1) | β-fibril | 384 | – | – |
| 2LMP | Aβ fibril (morphotype 2) | β-fibril | 576 | – | – |
| 6VW2 | IAPP fibril | β-fibril | 240 |
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