From mechanical resilience to active material properties in biopolymer networks

Federica Burla, Yuval Mulla, Bart E. Vos, Anders Aufderhorst-Roberts, Gijsje H. Koenderink

Research output: Contribution to JournalReview articleAcademicpeer-review

Abstract

The cells and tissues that make up our body manage contradictory mechanical demands. It is crucial for their survival to be able to withstand large mechanical loads, but it is equally crucial for them to produce forces and actively change shape during biological processes such as tissue growth and repair. The mechanics of cells and tissues is determined by scaffolds of protein polymers known as the cytoskeleton and the extracellular matrix, respectively. Experiments on model systems reconstituted from purified components combined with polymer physics concepts have already uncovered some of the mechanisms that underlie the paradoxical mechanics of living matter. Initial work focused on explaining universal features, such as the nonlinear elasticity of cells and tissues, in terms of polymer network models. However, there is a growing recognition that living matter exhibits many advanced mechanical functionalities that are not captured by these coarse-grained theories. Here, we review recent experimental and theoretical insights that reveal how the porous structure, structural hierarchy, transient crosslinking and mechanochemical activity of biopolymers confer resilience combined with the ability to adapt and self-heal. These physical concepts increase our understanding of cell and tissue biology and provide inspiration for advanced synthetic materials.
Original languageEnglish
Pages (from-to)249-263
JournalNature Reviews Physics
Volume1
Issue number4
DOIs
Publication statusPublished - 1 Apr 2019
Externally publishedYes

Funding

The authors thank K. Ganzinger for critically reading the manuscript, C. Martinez-Torres for help in acquiring the confocal microscopy image in Fig. 1c and F. C. MacKintosh and C. Broedersz for stimulating discussions about many of the topics covered in this Review. The authors gratefully acknowledge financial support from the European Research Council (Starting Grant no. 335672-MINICELL) and from the Industrial Partnership Programme Hybrid Soft Materials, which is carried out under an agreement between Unilever Research and Development B.V. and the Netherlands Organisation for Scientific Research (NWO).

FundersFunder number
Unilever Research and Development B.V.
European Research Council335672-MINICELL
Nederlandse Organisatie voor Wetenschappelijk Onderzoek

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