Perlin Noise Generation of Physiologically Realistic Patterns of Fibrosis
Jakes, D.; Burrage, K.; Drovandi, C. C.; Burrage, P.; Bueno-Orovio, A.; dos Santos, R. W.; Rodriguez, B.; Lawson, B. A. J.
Show abstract
Fibrosis, the pathological excess of fibroblast activity, is a significant health issue that hinders the function of many organs in the body, in some cases fatally. However, the severity of fibrosis-derived conditions depends on both the positioning of fibrotic affliction, and the microscopic patterning of fibroblast-deposited matrix proteins within afflicted regions. Variability in an individuals manifestation of a type of fibrosis is an important factor in explaining differences in symptoms, optimum treatment and prognosis, but a need for ex vivo procedures and a lack of experimental control over conflating factors has meant this variability remains poorly understood. In this work, we present a computational methodology for the generation of patterns of fibrosis microstructure, demonstrating the technique using histological images of four types of cardiac fibrosis. Our generator and automated tuning method prove flexible enough to capture each of these very distinct patterns, allowing for rapid generation of new realisations for high-throughput computational studies. We also demonstrate via simulation, using the generated fibrotic patterns, the importance of micro-scale variability by showing significant differences in electrophysiological impact even within a single class of fibrosis.
Matching journals
The top 3 journals account for 50% of the predicted probability mass.
Similar papers in this journal
- Systematic computational assessment of atrial function impairment due to fibrotic remodeling in electromechanical properties 94%
- From imaging to computational domains for physics-driven molecular biology simulations: Hindered diffusion in platelet masses 93%
- Shape-to-graph Mapping Method for Efficient Characterization and Classification of Complex Geometries in Biological Images 93%
Similar papers in this journal
- A simple approach for image-based modelling of the heart that enables robust simulation of highly heterogeneous electrical excitation. 95%
- Persistent homology analysis distinguishes pathological bone microstructure in non-linear microscopy images 94%
- A comprehensive stroke risk assessment by combining atrial computational fluid dynamics simulations and functional patient data 94%
Similar papers in this journal
- Model order reduction for left ventricular mechanics via congruency training 95%
- Identifying locations susceptible to micro-anatomical reentry using a spatial network representation of atrial fibre maps 95%
- The Ithildin library for efficient numerical solution of anisotropic reaction-diffusion problems in excitable media 93%
Similar papers in this journal
- A statistical framework to assess cross-frequency coupling while accounting for modeled confounding effects 94%
- Drift and termination of spiral waves in optogenetically-modified cardiac tissue at sub-threshold illumination 92%
- Granger causality analysis for calcium transients in neuronal networks: challenges and improvements 92%
"Similar papers" are the closest papers from that journal in the model's embedding space. They show what the match is built on, but the ranking comes mostly from a classifier over the whole training set, not from these examples alone.