Collagen VI and WARP are extracellular structural macromolecules present in cartilage and associated with BM suprastructures in non-skeletal tissues. We have previously shown that in WARP-deficient mice, collagen VI is specifically reduced in regions of the peripheral nerve ECM where WARP is expressed, suggesting that both macromolecules are part of the same suprastructure. The object of this study was to conduct a detailed analysis of WARP-collagen VI interactions in vitro in cartilage, a tissue rich in WARP and collagen VI. Immunohistochemical analysis of mouse and human articular cartilage showed that WARP and collagen VI co-localize in the pericellular matrix of superficial zone articular chondrocytes. EM analysis on extracts of human articular cartilage showed that WARP associates closely with collagen VI-containing suprastructures. Additional evidence of an interaction is provided by immunogold EM and immunoblot analysis showing that WARP was present in collagen VI-containing networks isolated from cartilage. Further characterization were done by solid phase binding studies and reconstitution experiments using purified recombinant WARP and isolated collagen VI. Collagen VI binds to WARP with an apparent Kd of approximately 22 nM and the binding site(s) for WARP resides within the triple helical domain since WARP binds to both intact collagen VI tetramers and pepsinized collagen VI. Together, these data confirm and extend our previous findings by demonstrating that WARP and collagen VI form high affinity associations in vivo in cartilage. We conclude that WARP is ideally placed to function as an adapter protein in the cartilage pericellular matrix.
References
[1]
Allen J, Brachvogel B, Farlie P, Fitzgerald J, Bateman J (2008) The extracellular matrix protein WARP is a novel component of a dinstinct subset of basement membranes. Matrix Biology 27: 295–305.
[2]
Allen JM, Bateman JF, Hansen U, Wilson R, Bruckner P, et al. (2006) WARP is a novel multimeric component of the chondrocyte pericellular matrix that interacts with perlecan. J Biol Chem 281: 7341–7349.
[3]
Allen JM, Zamurs L, Brachvogel B, Schlotzer-Schrehardt U, Hansen U, et al. (2009) Mice lacking the extracellular matrix protein WARP develop normally but have compromised peripheral nerve structure and function. J Biol Chem 284: 12020–12030.
[4]
Fitzgerald J, Ting ST, Bateman JF (2002) WARP is a new member of the von Willebrand factor A-domain superfamily of extracellular matrix proteins. FEBS Lett 517: 61–66.
[5]
Chu ML, Mann K, Deutzmann R, Pribula-Conway D, Hsu-Chen CC, et al. (1987) Characterization of three constituent chains of collagen type VI by peptide sequences and cDNA clones. EurJBiochem 168: 309–317.
[6]
Chu ML, Pan TC, Conway D, Kuo HJ, Glanville RW, et al. (1989) Sequence analysis of alpha 1(VI) and alpha 2(VI) chains of human type VI collagen reveals internal triplication of globular domains similar to the A domains of von Willebrand factor and two alpha 2(VI) chain variants that differ in the carboxy terminus. EMBO J 8: 1939–1946.
[7]
Chu ML, Zhang RZ, Pan TC, Stokes D, Conway D, et al. (1990) Mosaic structure of globular domains in the human type VI collagen alpha 3 chain: similarity to von Willebrand factor, fibronectin, actin, salivary proteins and aprotinin type protease inhibitors. EMBO J 9: 385–393.
[8]
Gara SK, Grumati P, Urciuolo A, Bonaldo P, Kobbe B, et al. (2008) Three novel collagen VI chains with high homology to the alpha3 chain. J Biol Chem 283: 10658–10670.
[9]
Fitzgerald J, Rich C, Zhou FH, Hansen U (2008) Three novel collagen VI chains, alpha4(VI), alpha5(VI), and alpha6(VI). J Biol Chem 283: 20170–20180.
[10]
Furthmayr H, Wiedemann H, Timpl R, Odermatt E, Engel J (1983) Electron-microscopical approach to a structural model of intima collagen. BiochemJ 211: 303–311.
[11]
Chu ML, Conway D, Pan TC, Baldwin C, Mann K, et al. (1988) Amino acid sequence of the triple-helical domain of human collagen type VI. JBiolChem 263: 18601–18606.
[12]
Ishikawa H, Sugie K, Murayama K, Ito M, Minami N, et al. (2002) Ullrich disease: collagen VI deficiency: EM suggests a new basis for muscular weakness. Neurology 59: 920–923.
[13]
Niiyama T, Higuchi I, Suehara M, Hashiguchi T, Shiraishi T, et al. (2002) Electron microscopic abnormalities of skeletal muscle in patients with collagen VI deficiency in Ullrich's disease. Acta Neuropathol 104: 67–71.
[14]
Wilusz RE, Defrate LE, Guilak F (2012) A biomechanical role for perlecan in the pericellular matrix of articular cartilage. Matrix Biol
[15]
Kuo H-J, Maslen CL, Keene DR, Glanville RW (1997) Type VI collagen anchors endothelial basement membranes by interacting with type IV collagen. JBiolChem 272: 26522–26529.
[16]
Hanssen E, Reinboth B, Gibson MA (2003) Covalent and non-covalent interactions of betaig-h3 with collagen VI. Beta ig-h3 is covalently attached to the amino-terminal region of collagen VI in tissue microfibrils. J Biol Chem 278: 24334–24341.
[17]
Burg MA, Tillet E, Timpl R, Stallcup WB (1996) Binding of the NG2 proteoglycan to type VI collagen and other extracellular matrix molecules. JBiolChem 271: 26110–26116.
[18]
Keene DR, Ridgway CC, Iozzo RV (1998) Type VI microfilaments interact with a specific region of banded collagen fibrils in skin. J Histochem Cytochem 46: 215–220.
[19]
Wiberg C, Hedbom E, Khairullina A, Lamande SR, Oldberg A, et al. (2001) Biglycan and decorin bind close to the n-terminal region of the collagen VI triple helix. J Biol Chem 276: 18947–18952.
[20]
Poole CA, Ayad S, Schofield JR (1988) Chondrons from articular cartilage: I. Immunolocalization of type VI collagen in the pericellular capsule of isolated canine tibial chondrons. JCell Sci 90: 635–643.
[21]
Kvist AJ, Nystrom A, Hultenby K, Sasaki T, Talts JF, et al. (2008) The major basement membrane components localize to the chondrocyte pericellular matrix–a cartilage basement membrane equivalent? Matrix Biol 27: 22–33.
[22]
Wilusz RE, Defrate LE, Guilak F (2012) Immunofluorescence-guided atomic force microscopy to measure the micromechanical properties of the pericellular matrix of porcine articular cartilage. J R Soc Interface
[23]
Alexopoulos LG, Youn I, Bonaldo P, Guilak F (2009) Developmental and osteoarthritic changes in Col6a1-knockout mice: biomechanics of type VI collagen in the cartilage pericellular matrix. Arthritis Rheum 60: 771–779.
[24]
Melrose J, Roughley P, Knox S, Smith S, Lord M, et al. (2006) The structure, location, and function of perlecan, a prominent pericellular proteoglycan of fetal, postnatal, and mature hyaline cartilages. J Biol Chem 281: 36905–36914.
[25]
Kassner A, Hansen U, Miosge N, Reinhardt DP, Aigner T, et al. (2003) Discrete integration of collagen XVI into tissue-specific collagen fibrils or beaded microfibrils. Matrix Biol 22: 131–143.
[26]
Spissinger T, Engel J (1995) Type VI collagen beaded microfibrils from bovine cornea depolymerize at acidic pH, and depolymerization and polymerization are not influenced by hyaluronan. Matrix Biology 14: 499–505.
[27]
Wiberg C, Klatt AR, Wagener R, Paulsson M, Bateman JF, et al. (2003) Complexes of matrilin-1 and biglycan or decorin connect collagen VI microfibrils to both collagen II and aggrecan. J Biol Chem 278: 37698–37704.
[28]
Villone D, Fritsch A, Koch M, Bruckner-Tuderman L, Hansen U, et al. (2008) Supramolecular interactions in the dermo-epidermal junction zone: anchoring fibril-collagen VII tightly binds to banded collagen fibrils. J Biol Chem 283: 24506–24513.
[29]
Tillet E, Wiedemann H, Golbik R, Pan T-C, Zhang R-Z, et al. (1994) Recombinant expression and structural and binding properties of α1(VI) and α2(VI) chains of human collagen type VI. EurJBiochem 221: 177–185.