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August 15, 1993The Journal of Cell Biology1,401 citationsOpen Access

A role for the dystrophin-glycoprotein complex as a transmembrane linker between laminin and actin

JEJM ErvastiKCKevin P. Campbell

Key Points

  • To determine whether the dystrophin-glycoprotein complex interacts directly with extracellular matrix components and actin to form a structural link across the muscle cell membrane.
  • Assayed binding interactions between purified dystrophin-glycoprotein complex components (specifically 156-kD dystroglycan) and extracellular matrix proteins using 125I-protein overlays and protein-Sepharose precipitation.
  • Tested biochemical parameters of laminin binding, including calcium dependence, ionic inhibition (NaCl), and inhibition by heparin or competing synthetic peptides (IKVAV, YIGSR, lactose).
  • Assessed complex association with F-actin via cosedimentation assays and evaluated dystroglycan presence across muscle and nonmuscle tissues.
  • The 156-kD dystroglycan specifically bound laminin in a calcium-dependent manner, inhibited by NaCl (IC50 = 250 mM) and heparin (IC50 = 100 μg/ml), but did not interact with fibronectin, collagen I, collagen IV, entactin, or heparan sulfate proteoglycan.
  • Laminin-Sepharose quantitatively precipitated the intact dystrophin-glycoprotein complex, and the complex cosedimented with F-actin without binding calcium or calmodulin.
  • Dystroglycan in nonmuscle tissues retained laminin-binding capacity, though other striated muscle-associated complex proteins were absent or less tightly associated.

Abstract

The dystrophin-glycoprotein complex was tested for interaction with several components of the extracellular matrix as well as actin. The 156-kD dystrophin-associated glycoprotein (156-kD dystroglycan) specifically bound laminin in a calcium-dependent manner and was inhibited by NaCl (IC50 = 250 mM) but was not affected by 1,000-fold (wt/wt) excesses of lactose, IKVAV, or YIGSR peptides. Laminin binding was inhibited by heparin (IC50 = 100 micrograms/ml), suggesting that one of the heparin-binding domains of laminin is involved in binding dystroglycan while negatively charged oligosaccharide moieties on dystroglycan were found to be necessary for its laminin-binding activity. No interaction between any component of the dystrophin-glycoprotein complex and fibronectin, collagen I, collagen IV, entactin, or heparan sulfate proteoglycan was detected by 125I-protein overlay and/or extracellular matrix protein-Sepharose precipitation. In addition, laminin-Sepharose quantitatively precipitated purified dystrophin-glycoprotein complex, demonstrating that the laminin-binding site is accessible when dystroglycan is associated with the complex. Dystroglycan of nonmuscle tissues also bound laminin. However, the other proteins of the striated muscle dystrophin-glycoprotein complex appear to be absent, antigenically dissimilar or less tightly associated with dystroglycan in nonmuscle tissues. Finally, we show that the dystrophin-glycoprotein complex cosediments with F-actin but does not bind calcium or calmodulin. Our results support a role for the striated muscle dystrophin-glycoprotein complex in linking the actin-based cytoskeleton with the extracellular matrix. Furthermore, our results suggest that dystrophin and dystroglycan may play substantially different functional roles in nonmuscle tissues.

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Cite This Study

Ervasti et al. (1993) studied this question.

synapsesocial.com/papers/69d5716175589c71d767e11bhttps://doi.org/10.1083/jcb.122.4.809
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