In Silico Design of Heterogeneous Microvascular Trees Using Generative Adversarial Networks and Constrained Constructive Optimization

Author:

Pan Qing1ORCID,Shen Huanghui1,Li Peilun2ORCID,Lai Biyun1,Jiang Akang1,Huang Wenjie1,Lu Fei1,Peng Hong1,Fang Luping1,Kuebler Wolfgang M.3,Pries Axel R.34ORCID,Ning Gangmin2

Affiliation:

1. College of Information Engineering Zhejiang University of Technology Hangzhou China

2. Department of Biomedical Engineering, Key Laboratory of Biomedical Engineering of MOE Zhejiang University Hangzhou China

3. Institute of Physiology, Charité Universitätsmedizin Berlin, Corporate Member of Freie Universität Berlin Humboldt‐Universität zu Berlin Berlin Germany

4. Department of Medicine, Faculty of Medicine and Dentistry Danube Private University Krems Austria

Abstract

ABSTRACTObjectiveDesigning physiologically adequate microvascular trees is of crucial relevance for bioengineering functional tissues and organs. Yet, currently available methods are poorly suited to replicate the morphological and topological heterogeneity of real microvascular trees because the parameters used to control tree generation are too simplistic to mimic results of the complex angiogenetic and structural adaptation processes in vivo.MethodsWe propose a method to overcome this limitation by integrating a conditional deep convolutional generative adversarial network (cDCGAN) with a local fractal dimension‐oriented constrained constructive optimization (LFDO‐CCO) strategy. The cDCGAN learns the patterns of real microvascular bifurcations allowing for their artificial replication. The LFDO‐CCO strategy connects the generated bifurcations hierarchically to form microvascular trees with a vessel density corresponding to that observed in healthy tissues.ResultsThe generated artificial microvascular trees are consistent with real microvascular trees regarding characteristics such as fractal dimension, vascular density, and coefficient of variation of diameter, length, and tortuosity.ConclusionsThese results support the adoption of the proposed strategy for the generation of artificial microvascular trees in tissue engineering as well as for computational modeling and simulations of microcirculatory physiology.

Funder

National Natural Science Foundation of China

Deutsche Forschungsgemeinschaft

Publisher

Wiley

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