Interactions of primary fibroblasts and keratinocytes with extracellular matrix proteins: contribution of α2β1 integrin

Author:

Zhang Zhi-Gang12,Bothe Ingo12,Hirche Frank1,Zweers Manon1,Gullberg Donald3,Pfitzer Gabriele4,Krieg Thomas15,Eckes Beate1,Aumailley Monique25

Affiliation:

1. Department of Dermatology, Medical Faculty, University of Cologne, 50931 Cologne, Germany

2. Center for Biochemistry, Medical Faculty, University of Cologne, 50931 Cologne, Germany

3. Department of Biomedicine, Division of Physiology, University of Bergen, 5020 Bergen, Norway

4. Institute for Vegetative Physiology, Medical Faculty, University of Cologne, 50931 Cologne, Germany

5. Center for Molecular Medicine Cologne (CMMC), University of Cologne, 50931 Cologne, Germany

Abstract

The α2β1 integrin is a collagen-binding protein with very high affinity for collagen I. It also binds several other collagens and laminins and it is expressed by many cells, including keratinocytes and fibroblasts in the skin. In the past, α2β1 integrin was suggested to be responsible for cell attachment, spreading and migration on monomeric collagen I and contraction of three-dimensional collagen lattices. In view of these functions, normal development and fertility in integrin α2-deficient mice, which we generated by targeting the integrin α2 gene, came as a surprise. This suggested the existence of compensatory mechanisms that we investigate here using primary fibroblasts and keratinocytes isolated from wild-type and α2-deficient mice, antibodies blocking integrin function and downregulation of integrin α2 expression. The results show that the α2β1 integrin is absolutely required for keratinocyte adhesion to collagens whereas for fibroblasts other collagen-binding integrins partially back-up the lack of α2β1 in simple adhesion to collagen monomers. A prominent requirement for α2β1 integrins became apparent when fibroblasts executed mechanical tasks of high complexity in three-dimensional surroundings, such as contracting free-floating collagen gels and developing isometric forces in tethered lattices. The deficits observed for α2-deficient fibroblasts appeared to be linked to alterations in the distribution of force-bearing focal adhesions and deregulation of Rho-GTPase activation.

Publisher

The Company of Biologists

Subject

Cell Biology

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