Laminin assembles into separate basement membrane and fibrillar matrices in Schwann cells

Laminins are important for Schwann cell basement membrane assembly and axonal function. In this study, we found that exogenous laminin-1, like neuromuscular laminins-2/4, formed two distinct extracellular matrices on Schwann cell surfaces, each facilitated by laminin polymerization. Assembly of one,...

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Veröffentlicht in:Journal of cell science 2002-03, Vol.115 (Pt 5), p.1005-1015
Hauptverfasser: Tsiper, Maria V, Yurchenco, Peter D
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description Laminins are important for Schwann cell basement membrane assembly and axonal function. In this study, we found that exogenous laminin-1, like neuromuscular laminins-2/4, formed two distinct extracellular matrices on Schwann cell surfaces, each facilitated by laminin polymerization. Assembly of one, a densely-distributed reticular matrix, was accompanied by a redistribution of cell-surface dystroglycan and cytoskeletal utrophin into matrix-receptor-cytoskeletal complexes. The other, a fibrillar matrix, accumulated in separate zones associated with pre-existing beta1-integrin arrays. The laminin-1 fragment E3 (LG-modules 4-5), which binds dystroglycan and heparin, inhibited reticular-matrix formation. By contrast, beta1-integrin blocking antibody (Ha2/5) prevented fibrillar assembly. Ultrastructural analysis revealed that laminin treatment induced the formation of a linear electron-dense extracellular matrix (lamina densa) separated from plasma membrane by a narrow lucent zone (lamina lucida). This structure was considerably reduced with non-polymerizing laminin, fully blocked by E3, and unaffected by Ha2/5. Although it formed in the absence of type IV collagen, it was nonetheless able to incorporate this collagen. Finally, cell competency to bind laminin and form a basement membrane was passage-dependent. We postulate that laminin induces the assembly of a basement membrane on competent cell surfaces probably mediated by anchorage through LG 4-5. Upon binding, laminin interacts with dystroglycan, mobilizes utrophin, and assembles a 'nascent' basement membrane, independent of integrin, that is completed by incorporation of type IV collagen. However, the fibrillar beta1-integrin dependent matrix is unlikely to be precursor to basement membrane.
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In this study, we found that exogenous laminin-1, like neuromuscular laminins-2/4, formed two distinct extracellular matrices on Schwann cell surfaces, each facilitated by laminin polymerization. Assembly of one, a densely-distributed reticular matrix, was accompanied by a redistribution of cell-surface dystroglycan and cytoskeletal utrophin into matrix-receptor-cytoskeletal complexes. The other, a fibrillar matrix, accumulated in separate zones associated with pre-existing beta1-integrin arrays. The laminin-1 fragment E3 (LG-modules 4-5), which binds dystroglycan and heparin, inhibited reticular-matrix formation. By contrast, beta1-integrin blocking antibody (Ha2/5) prevented fibrillar assembly. Ultrastructural analysis revealed that laminin treatment induced the formation of a linear electron-dense extracellular matrix (lamina densa) separated from plasma membrane by a narrow lucent zone (lamina lucida). This structure was considerably reduced with non-polymerizing laminin, fully blocked by E3, and unaffected by Ha2/5. Although it formed in the absence of type IV collagen, it was nonetheless able to incorporate this collagen. Finally, cell competency to bind laminin and form a basement membrane was passage-dependent. We postulate that laminin induces the assembly of a basement membrane on competent cell surfaces probably mediated by anchorage through LG 4-5. Upon binding, laminin interacts with dystroglycan, mobilizes utrophin, and assembles a 'nascent' basement membrane, independent of integrin, that is completed by incorporation of type IV collagen. 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In this study, we found that exogenous laminin-1, like neuromuscular laminins-2/4, formed two distinct extracellular matrices on Schwann cell surfaces, each facilitated by laminin polymerization. Assembly of one, a densely-distributed reticular matrix, was accompanied by a redistribution of cell-surface dystroglycan and cytoskeletal utrophin into matrix-receptor-cytoskeletal complexes. The other, a fibrillar matrix, accumulated in separate zones associated with pre-existing beta1-integrin arrays. The laminin-1 fragment E3 (LG-modules 4-5), which binds dystroglycan and heparin, inhibited reticular-matrix formation. By contrast, beta1-integrin blocking antibody (Ha2/5) prevented fibrillar assembly. Ultrastructural analysis revealed that laminin treatment induced the formation of a linear electron-dense extracellular matrix (lamina densa) separated from plasma membrane by a narrow lucent zone (lamina lucida). 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However, the fibrillar beta1-integrin dependent matrix is unlikely to be precursor to basement membrane.</description><subject>Animals</subject><subject>Animals, Newborn</subject><subject>Axons - metabolism</subject><subject>Axons - ultrastructure</subject><subject>Basement Membrane - metabolism</subject><subject>Basement Membrane - ultrastructure</subject><subject>Cells, Cultured</subject><subject>Collagen Type IV - metabolism</subject><subject>Collagen Type IV - ultrastructure</subject><subject>Cytoskeletal Proteins - metabolism</subject><subject>Cytoskeletal Proteins - ultrastructure</subject><subject>Dystroglycans</subject><subject>Extracellular Matrix - metabolism</subject><subject>Extracellular Matrix - ultrastructure</subject><subject>Laminin - metabolism</subject><subject>Laminin - pharmacology</subject><subject>Laminin - ultrastructure</subject><subject>Membrane Glycoproteins - metabolism</subject><subject>Membrane Glycoproteins - ultrastructure</subject><subject>Microscopy, Electron</subject><subject>Polymers - metabolism</subject><subject>Protein Binding - physiology</subject><subject>Rats</subject><subject>Rats, Sprague-Dawley</subject><subject>Reticulin - metabolism</subject><subject>Reticulin - ultrastructure</subject><subject>Schwann Cells - metabolism</subject><subject>Schwann Cells - ultrastructure</subject><issn>0021-9533</issn><issn>1477-9137</issn><fulltext>true</fulltext><rsrctype>article</rsrctype><creationdate>2002</creationdate><recordtype>article</recordtype><sourceid>EIF</sourceid><recordid>eNpFkM1LAzEQxYMotlavHiUnb7tmkk2zOUrxCwoe1IOnkM0mmLLJ1mSL-N-basHTDPPeGx4_hC6B1EAberMxuQbgNa-BEH6E5tAIUUlg4hjNCaFQSc7YDJ3lvCGECCrFKZoBtKJoco7e1zr46CPWOdvQDTZjH6cRZ7vVSU8Wd7rcbZxwKHLS0WIde-x8l_ww6ISDnpI3vzH8Yj6-dIzY2GHI5-jE6SHbi8NcoLf7u9fVY7V-fnha3a4rw5Ziqgxftq5pnWwkBeIaayjTsqeCcsPLLqyBnjqnJbXUNLJnVjTStQwEN-0S2AJd__3dpvFzZ_Okgs_7BqXruMtKACekpaQY6z-jSWPOyTq1TT7o9K2AqD1MVWCqAlNxtYdZAleHz7su2P7ffqDHfgCPb3CW</recordid><startdate>20020301</startdate><enddate>20020301</enddate><creator>Tsiper, Maria V</creator><creator>Yurchenco, Peter D</creator><scope>CGR</scope><scope>CUY</scope><scope>CVF</scope><scope>ECM</scope><scope>EIF</scope><scope>NPM</scope><scope>AAYXX</scope><scope>CITATION</scope><scope>7X8</scope></search><sort><creationdate>20020301</creationdate><title>Laminin assembles into separate basement membrane and fibrillar matrices in Schwann cells</title><author>Tsiper, Maria V ; Yurchenco, Peter D</author></sort><facets><frbrtype>5</frbrtype><frbrgroupid>cdi_FETCH-LOGICAL-c367t-c568f48f949210f4ec23a9d2725c5c237ec1d2ffa92e2c49d3e749f83175c8613</frbrgroupid><rsrctype>articles</rsrctype><prefilter>articles</prefilter><language>eng</language><creationdate>2002</creationdate><topic>Animals</topic><topic>Animals, Newborn</topic><topic>Axons - metabolism</topic><topic>Axons - ultrastructure</topic><topic>Basement Membrane - metabolism</topic><topic>Basement Membrane - ultrastructure</topic><topic>Cells, Cultured</topic><topic>Collagen Type IV - metabolism</topic><topic>Collagen Type IV - ultrastructure</topic><topic>Cytoskeletal Proteins - metabolism</topic><topic>Cytoskeletal Proteins - ultrastructure</topic><topic>Dystroglycans</topic><topic>Extracellular Matrix - metabolism</topic><topic>Extracellular Matrix - ultrastructure</topic><topic>Laminin - metabolism</topic><topic>Laminin - pharmacology</topic><topic>Laminin - ultrastructure</topic><topic>Membrane Glycoproteins - metabolism</topic><topic>Membrane Glycoproteins - ultrastructure</topic><topic>Microscopy, Electron</topic><topic>Polymers - metabolism</topic><topic>Protein Binding - physiology</topic><topic>Rats</topic><topic>Rats, Sprague-Dawley</topic><topic>Reticulin - metabolism</topic><topic>Reticulin - ultrastructure</topic><topic>Schwann Cells - metabolism</topic><topic>Schwann Cells - ultrastructure</topic><toplevel>peer_reviewed</toplevel><toplevel>online_resources</toplevel><creatorcontrib>Tsiper, Maria V</creatorcontrib><creatorcontrib>Yurchenco, Peter D</creatorcontrib><collection>Medline</collection><collection>MEDLINE</collection><collection>MEDLINE (Ovid)</collection><collection>MEDLINE</collection><collection>MEDLINE</collection><collection>PubMed</collection><collection>CrossRef</collection><collection>MEDLINE - Academic</collection><jtitle>Journal of cell science</jtitle></facets><delivery><delcategory>Remote Search Resource</delcategory><fulltext>fulltext</fulltext></delivery><addata><au>Tsiper, Maria V</au><au>Yurchenco, Peter D</au><format>journal</format><genre>article</genre><ristype>JOUR</ristype><atitle>Laminin assembles into separate basement membrane and fibrillar matrices in Schwann cells</atitle><jtitle>Journal of cell science</jtitle><addtitle>J Cell Sci</addtitle><date>2002-03-01</date><risdate>2002</risdate><volume>115</volume><issue>Pt 5</issue><spage>1005</spage><epage>1015</epage><pages>1005-1015</pages><issn>0021-9533</issn><eissn>1477-9137</eissn><abstract>Laminins are important for Schwann cell basement membrane assembly and axonal function. 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This structure was considerably reduced with non-polymerizing laminin, fully blocked by E3, and unaffected by Ha2/5. Although it formed in the absence of type IV collagen, it was nonetheless able to incorporate this collagen. Finally, cell competency to bind laminin and form a basement membrane was passage-dependent. We postulate that laminin induces the assembly of a basement membrane on competent cell surfaces probably mediated by anchorage through LG 4-5. Upon binding, laminin interacts with dystroglycan, mobilizes utrophin, and assembles a 'nascent' basement membrane, independent of integrin, that is completed by incorporation of type IV collagen. However, the fibrillar beta1-integrin dependent matrix is unlikely to be precursor to basement membrane.</abstract><cop>England</cop><pmid>11870219</pmid><doi>10.1242/jcs.115.5.1005</doi><tpages>11</tpages><oa>free_for_read</oa></addata></record>
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source MEDLINE; Elektronische Zeitschriftenbibliothek - Frei zugängliche E-Journals; Company of Biologists
subjects Animals
Animals, Newborn
Axons - metabolism
Axons - ultrastructure
Basement Membrane - metabolism
Basement Membrane - ultrastructure
Cells, Cultured
Collagen Type IV - metabolism
Collagen Type IV - ultrastructure
Cytoskeletal Proteins - metabolism
Cytoskeletal Proteins - ultrastructure
Dystroglycans
Extracellular Matrix - metabolism
Extracellular Matrix - ultrastructure
Laminin - metabolism
Laminin - pharmacology
Laminin - ultrastructure
Membrane Glycoproteins - metabolism
Membrane Glycoproteins - ultrastructure
Microscopy, Electron
Polymers - metabolism
Protein Binding - physiology
Rats
Rats, Sprague-Dawley
Reticulin - metabolism
Reticulin - ultrastructure
Schwann Cells - metabolism
Schwann Cells - ultrastructure
title Laminin assembles into separate basement membrane and fibrillar matrices in Schwann cells
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