Computational model of damage-induced growth in soft biological tissues considering the mechanobiology of healing

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dc.identifier.uri http://dx.doi.org/10.15488/12345
dc.identifier.uri https://www.repo.uni-hannover.de/handle/123456789/12444
dc.contributor.author Gierig, Meike
dc.contributor.author Wriggers, Peter
dc.contributor.author Marino, Michele
dc.date.accessioned 2022-06-27T04:36:59Z
dc.date.available 2022-06-27T04:36:59Z
dc.date.issued 2021
dc.identifier.citation Gierig, M.; Wriggers, P.; Marino, M.: Computational model of damage-induced growth in soft biological tissues considering the mechanobiology of healing. In: Biomechanics and Modeling in Mechanobiology 20 (2021), Nr. 4, S. 1297-1315. DOI: https://doi.org/10.1007/s10237-021-01445-5
dc.description.abstract Healing in soft biological tissues is a chain of events on different time and length scales. This work presents a computational framework to capture and couple important mechanical, chemical and biological aspects of healing. A molecular-level damage in collagen, i.e., the interstrand delamination, is addressed as source of plastic deformation in tissues. This mechanism initiates a biochemical response and starts the chain of healing. In particular, damage is considered to be the stimulus for the production of matrix metalloproteinases and growth factors which in turn, respectively, degrade and produce collagen. Due to collagen turnover, the volume of the tissue changes, which can result either in normal or pathological healing. To capture the mechanisms on continuum scale, the deformation gradient is multiplicatively decomposed in inelastic and elastic deformation gradients. A recently proposed elasto-plastic formulation is, through a biochemical model, coupled with a growth and remodeling description based on homogenized constrained mixtures. After the discussion of the biological species response to the damage stimulus, the framework is implemented in a mixed nonlinear finite element formulation and a biaxial tension and an indentation tests are conducted on a prestretched flat tissue sample. The results illustrate that the model is able to describe the evolutions of growth factors and matrix metalloproteinases following damage and the subsequent growth and remodeling in the respect of equilibrium. The interplay between mechanical and chemo-biological events occurring during healing is captured, proving that the framework is a suitable basis for more detailed simulations of damage-induced tissue response. © 2021, The Author(s). eng
dc.language.iso eng
dc.publisher Berlin ; Heidelberg ; New York, NY : Springer
dc.relation.ispartofseries Biomechanics and Modeling in Mechanobiology 20 (2021), Nr. 4
dc.rights CC BY 4.0 Unported
dc.rights.uri https://creativecommons.org/licenses/by/4.0/
dc.subject Damage-induced growth eng
dc.subject Homogenized constrained mixtures eng
dc.subject Mechanobiology of healing eng
dc.subject Soft biological tissue mechanics eng
dc.subject Biochemistry eng
dc.subject Bioinformatics eng
dc.subject Collagen eng
dc.subject Histology eng
dc.subject Chemical and biologicals eng
dc.subject Computational framework eng
dc.subject Deformation gradients eng
dc.subject Elasto-plastic formulation eng
dc.subject Growth and remodeling eng
dc.subject Matrix metalloproteinases eng
dc.subject Non-linear finite elements eng
dc.subject Soft biological tissue eng
dc.subject Tissue eng
dc.subject collagen eng
dc.subject elastin eng
dc.subject growth factor eng
dc.subject matrix metalloproteinase eng
dc.subject collagen eng
dc.subject matrix metalloproteinase eng
dc.subject biological model eng
dc.subject biomechanics eng
dc.subject collagen fiber eng
dc.subject computer model eng
dc.subject finite element analysis eng
dc.subject healing eng
dc.subject simulation eng
dc.subject soft tissue injury eng
dc.subject tension eng
dc.subject tissue growth eng
dc.subject biomechanics eng
dc.subject biophysics eng
dc.subject chemistry eng
dc.subject computer simulation eng
dc.subject elasticity eng
dc.subject mechanical stress eng
dc.subject metabolism eng
dc.subject wound healing eng
dc.subject Biomechanical Phenomena eng
dc.subject Biophysics eng
dc.subject Collagen eng
dc.subject Computer Simulation eng
dc.subject Elasticity eng
dc.subject Finite Element Analysis eng
dc.subject Humans eng
dc.subject Matrix Metalloproteinases eng
dc.subject Stress, Mechanical eng
dc.subject Wound Healing eng
dc.subject.ddc 570 | Biowissenschaften, Biologie ger
dc.subject.ddc 540 | Chemie ger
dc.title Computational model of damage-induced growth in soft biological tissues considering the mechanobiology of healing
dc.type Article
dc.type Text
dc.relation.essn 1617-7940
dc.relation.doi https://doi.org/10.1007/s10237-021-01445-5
dc.bibliographicCitation.issue 4
dc.bibliographicCitation.volume 20
dc.bibliographicCitation.firstPage 1297
dc.bibliographicCitation.lastPage 1315
dc.description.version publishedVersion
tib.accessRights frei zug�nglich


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