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E Engvall

Publications and source records attributed to E Engvall.

At least 55 records · Page 3Linked to original sources

Laminin beta 2 chain and adhalin deficiency in the skeletal muscle of Walker-Warburg syndrome (cerebro-ocular dysplasia-muscular dystrophy).

Muscular dystrophy may be caused by disturbances in a number of muscle proteins that appear to be part of a chain of interacting molecules that includes cytoskeletal, cell membrane, and basement membrane components. We found that the skeletal muscle cells in two cases of Walker-Warburg syndrome were severely deficient in the laminin beta 2 chain and in adhalin. The findings indicate that these two proteins are key molecules in the interactive protein complex conferring muscle stability and cell survival.

Abnormalities, Multiple↗

Structure and function of basement membranes.

The importance of basement membranes in development and adult tissue function has been inferred from a number of observations. Cells migrate along basement membranes during development, basement membranes are required for the polarization of cells in both the embryo and the adult, and basement membranes serve as substrates for cell adhesion and migration during wound healing and nerve regeneration. The importance of basement membranes in adult tissue function has been directly demonstrated by the genetic diseases caused by mutations in the genes for structural basement membrane components. Examples of such diseases are Alport syndrome and junctional epidermolysis bullosa. Recently, defects in the major laminin variant in muscle, merosin, has been shown to be correlated with muscular dystrophies in man and animals. We are using the dystrophic mutant mouse dy, which lacks laminin-2, to analyze the function of laminin-2 in different tissues. Studies of laminin defects in animals and humans are expected to give new information on the function of basement membrane in general and on laminin in particular. Such information may give directions for future diagnosis and treatment of diseases involving basement membranes.

Aging↗

Defective muscle basement membrane and lack of M-laminin in the dystrophic dy/dy mouse.

M-laminin is a major member of the laminin family of basement membrane proteins. It is prominently expressed in striated muscle and peripheral nerve. M-laminin is deficient in patients with the autosomal recessive Fukuyama congenital muscular dystrophy but is normal in patients with the sex-linked Duchenne and Becker muscular dystrophies. We have examined M-laminin expression in mice with autosomal recessive muscular dystrophy caused by the mutation dy. The heavy chain of M-laminin was undetectable in skeletal muscle, heart muscle, and peripheral nerve by immunofluorescence and immunoblotting in homozygous dystrophic dy/dy mice but was normal in heterozygous and wild-type nondystrophic mice. Immunofluorescence confirmed the presence of other major basement membrane proteins in the dystrophic mice. Very low levels of M-laminin heavy chain mRNA were detected by Northern blotting of muscle and heart tissue from dy/dy mice, suggesting that M-laminin heavy-chain mRNA may be produced at very low levels or is unstable. Information about the chromosomal localization of the M heavy-chain in human and mouse suggests that a mutation in the M-chain gene causes the muscular dystrophy in dy/dy mice. The dy mouse may provide a model for autosomal muscular dystrophies in humans and facilitate studies of functions of M-laminin.

Animals↗

Differential expression of laminin isoforms and alpha 6-beta 4 integrin subunits in the developing human and mouse intestine.

The intestinal tissue is characterized by important morphogenetic movements during development as well as by a continuous dynamic crypt to villus epithelial cell migration leading to differentiation of specialized cells. In this study, we have examined the spatio-temporal distribution of laminin A and M chains as well as of alpha 6 and beta 4 integrin subunits in adult and developing human and mouse intestine by indirect immunofluorescence. Selective expression of the constituent polypeptides of laminin isoforms (A and M chains) was demonstrated. In the mature human intestine, A and M chains were found to be complementary, the M chain being restricted to the base of crypts and the A chain lining the villus basement membrane. In the developing human intestine, M chain expression was delayed as compared to that of A chain; as soon as the M chain was visualized, it exhibited the typical localization in the crypt basement membrane. A somewhat different situation was found in the adult mouse intestine, since both M and A chains were found in the crypts. During mouse intestinal development the delayed expression of the M chain as compared to that of the A chain was also obvious. The absence of M chain expression in mutant dy mouse did not impair intestinal morphogenesis nor cell differentiation. The expression of alpha 6 and beta 4 subunits was not coordinated. In both species the alpha 6 expression preceded that of beta 4. Furthermore, while beta 4 staining in adult mouse intestine was detected at the basal surface of all cells lining the crypt-villus, that of alpha 6 was mainly confined to the crypt cell compartment. An overall similarity of location between alpha 6 integrin subunit and laminin A chain at the epithelial/stromal interface was noted. These data indicate that the spatial and temporal distribution of laminin variants in the developing intestine may be characteristic for each species and that interactions of laminin variants with particular receptors may be important for induction and/or maintenance of differentiated cells.

Adult↗

Laminins.

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Animals↗

Murine muscular dystrophy caused by a mutation in the laminin alpha 2 (Lama2) gene.

The classic murine muscular dystrophy strain, dy, was first described almost 40 years ago. We have identified the molecular basis of an allele of dy, called dy2J, by detecting a mutation in the laminin alpha 2 chain gene--the first identified mutation in laminin-2. The G to A mutation in a splice site consensus sequence causes abnormal splicing and expression of multiple mRNAs. One mRNA is translated into an alpha 2 polypeptide with a deletion in domain VI. The truncated protein apparently lacks important qualities of the wild type protein and is unable to provide sufficient muscle stability.

Amino Acid Sequence↗

Human laminin M chain (merosin): complete primary structure, chromosomal assignment, and expression of the M and A chain in human fetal tissues.

The primary structure of the human laminin M chain was determined from cDNA clones isolated from human placental libraries. The clones covered a total of 6,942 bp, with 49-bp encoding a 5' end untranslated region and 6,893-bp coding for a translated sequence. The complete human laminin M chain contains a 22-residue signal peptide and 3,088 residues of the mature M chain. The M chain has a domain structure similar to that of the human and mouse A chains. The homology between the two human laminin heavy chains is highest in the short arm region and lowest in the long arm helical domain I + II. Northern blot analysis of human fetal tissues showed that the M chain was expressed in most tissues such as cardiac muscle, pancreas, lung, spleen, kidney, adrenal gland, skin, testis, meninges, choroid plexus, and some other regions of the brain, but not in liver, thymus, and bone. In situ hybridization localized the expression of the M chain gene to cells of mesenchymal origin. In contrast, expression of the A chain was observed only in kidney, testis, neuroretina and some region of brain as determined by Northern analyses. Epithelial and endothelial cells were negative for both M and A chain gene transcripts. The gene for the human M chain (LAMM) was localized to chromosome 6q22-->23.

Amino Acid Sequence↗

Cell adhesion in muscle.

1. Attachment to extracellular matrix is thought to be particularly important for striated muscle cells, since skeletal and heart muscle have to withstand considerably strong forces. 2. We have recently shown that a defect in a protein of the muscle basement membrane, M-laminin, is correlated with muscular dystrophy in human and mouse. The disease associated with defects in M-laminin is thus analogous to that caused by defects in the cytoskeletal protein, dystrophin, the Duchenne/Becker muscular dystrophy. 3. One may propose the hypothesis that a pathway of interacting proteins is required to connect the cytoskeleton of the muscle fiber to the extracellular matrix, and that a defect in any protein in this chain would result in severe impairment of muscle cell attachment with resulting muscle damage upon use of the muscle. The existence of such chains of proteins may be expected from known mutations in muscle proteins in Drosophila and Caenorhabditis elegans. Some of these mutations cause phenotypes resembling muscular dystrophy in mammals. 4. It will be important to identify all the proteins that are participants in muscle cell attachment, including receptors for M-laminin and proteins associated with these receptors.

Animals↗

Selective assembly of laminin variants by human carcinoma cells.

BACKGROUND: The laminins are heterotrimeric basement membrane glycoproteins. Eight subunits that can be assembled into laminins have been characterized and are known as: A, B1, B2, S, M, K, B2t, B1k laminin chains. Although many neoplastic cells secrete laminins and some of them even assemble basement membranes, the pattern of production of various laminin subunits remains to be explored. EXPERIMENTAL DESIGN: The expression of laminin was examined in several human carcinoma cells using a panel of specific cDNA probes as well as polyclonal and chain specific monoclonal antibodies. For this purpose a human laminin S chain 2 kb cDNA was isolated and characterized and used together with existing probes for laminin chains. RESULTS: All carcinoma cell lines had a high level of expression of three light chains (B1, S and B2) mRNA. In contrast, the heavy chains of laminin, A and M, were expressed in negligible amounts as detected by Northern blotting and PCR. The only exception was the HU-1 lung adenocarcinoma cell line which expressed significant quantities of laminin M chain mRNA and lower levels of laminin A chain mRNA. The presence in the HU-1 cells of translated polypeptides was demonstrated by immunofluorescence staining. The cells contained both B1 and S chain laminin in the cell layer, but preferentially secreted the B1 chain into the culture supernatant as shown by Western blotting. The 300 to 400 kDa M chain immunoreactive band was found in laminin secreted into the culture medium of HU-1 cells. Immunoprecipitation of biosynthetically labeled proteins showed that the M chain was synthesized as a complex with B chains. Little or no A chain laminin was detected in the culture medium supernatant. HU-1 cells also synthesized the newly described laminin variant, epiligrin which was secreted into the medium. Thus, the HU-1 cells secreted two laminin variants: M-B1-B12 laminin and epiligrin into the culture medium. Immunostaining of HU-1 nude mice tumors showed that tumor basement membranes contained M, B1, and B2 laminin and epiligrin immunoreactivity but apparently no S chain. CONCLUSIONS: All human carcinoma cell lines produced laminin chains B1, B2 and S, but no or little A or M. The only exception was the lung carcinoma cell line HU-1. Human HU-1 carcinoma cells in culture synthesize several homologous laminin chains and regulate the process of assembly, secretion and deposition of laminin variants into tumor basement membranes. These data indicate that the tumor cells vary among themselves with regards to laminin production and that some of them, like HU-1 may produce essentially all laminin chains simultaneously.

Amino Acid Sequence↗

Determination of integrins on cells by cell adhesion to antibodies.

An assay for the determination of relative concentrations of integrins on clonal cultured cells is described. Unpurified monoclonal antibodies to integrin subunits, present in ascites or hybridoma culture media, are immobilized on a plastic surface via goat antibodies to mouse IgG. Cell attachment to the integrin-coated substrate is quantitated after fixation and staining of the cells. The assay is specific and very sensitive; only cells with the relevant integrins attach to antibody-coated substrates and concentrations of antibody as low as 1-10 ng/ml are sufficient. Titrations of the antibodies on the solid phase allow the estimation of the relative amounts of integrins on different cell types. The results with this assay correlate well with results obtained by flow cytometry.

Antibodies, Monoclonal↗

Abnormal localization of laminin subunits in muscular dystrophies.

To address potential involvement of muscle basal lamina and membrane cytoskeleton proteins in the etiology of non-dystrophinopathy muscular dystrophies, we examined the immunostaining intensity and distribution of laminin subunits (A, B1, B2 and M), type IV collagen, dystrophin and spectrin in skeletal muscle biopsies from 64 myopathic patients (17 Fukuyama congenital muscular dystrophy: FCMD, 13 congenital muscular dystrophy unrelated to FCMD: other CMD, 16 Duchenne muscular dystrophy: DMD, and 18 other neuromuscular diseases. In FCMD muscle, we found a significant reduction of laminin M (merosin; a striated muscle specific basal lamina-associated protein) with approximately 26% of levels seen in controls by quantitative immunofluorescence. Other CMD and DMD muscles showed less dramatic reductions (78%, 80%, respectively). The localization of laminin M was also abnormal in FCMD muscle. Laminin B1 and B2 showed abnormalities similar to those observed with laminin M, but were less marked. Laminin A was only detected in rare regenerating fibers in control biopsies, whereas it was seen around most muscle fibers in FCMD patients, and in dystrophin deficient muscle fibers from DMD patients and its carrier. Staining intensity of type IV collagen in FCMD muscle was not significantly different from the other diseases. These findings may implicate a primary or central role for the basal lamina in FCMD muscle.

Adolescent↗

Laminin variants: why, where and when?

Laminin is a member of a family of proteins that are composed of three subunits, one heavy chain and two light chains. Five subunits in the laminin family have been cloned and sequenced so far. These include two heavy chains, the laminin A chain and the merosin M chain, and three light chains, B1, B2, and S. These five subunits can form four different laminin variants: A-B1-B2, A-S-B2, M-B1-B2, and M-S-B2, all having the B2 chain in common. Major basement membranes in tissues contain at least one of the four laminin variants. For example, the adult muscle and nerve basement membranes contain M-B1-B2, smooth muscle contains A-B1-B2, the myotendinous junction and the trophoblast basement membrane in the placenta contain M-S-B2, and blood vessels contain A-B1-B2 and/or A-S-B2. In the brain, the merosin M chain is present in association with neuronal fibers. The four members of the laminin family interact with cells in a similar manner. Thus, they promote outgrowth of neurites from neuronal cells and promote attachment and spreading of non-neuronal cells. The interaction of cells with laminins is mediated largely by integrin type receptors, including integrins alpha 1 beta 1, alpha 2 beta 1, alpha 3 beta 1, and alpha 6 beta 1. The expression of the different laminin-like proteins is developmentally regulated. The laminin A chain is the first heavy chain expressed.(ABSTRACT TRUNCATED AT 250 WORDS)

Animals↗

Expression of laminin isoforms by peripheral nerve-derived connective tissue cells in culture. Comparison with epitope distribution in normal human nerve and neural tumors in vivo.

BACKGROUND: Laminins are a family of multifunctional glycoproteins that play a role in various aspects of cell biology. Three different isoforms of laminin have been described, and each comprises a molecule consisting of three subunit polypeptides, the A, B1, B2, M or S chain. EXPERIMENTAL DESIGN: The expression pattern of laminin isoforms was studied by indirect immunofluorescence staining of human peripheral nerve in situ or cell cultures derived from such nerve by using monoclonal antibodies recognizing the subunit epitopes. RESULTS: Selective expression of the subunit polypeptides of laminin isoforms in endoneurium and perineurium was demonstrated. Specifically, an intense immunoreaction for A, B2 and S chain epitopes could be detected in perineurium, whereas endoneurium revealed the presence of B1, B2, M and S chains. Examination of the laminin isoform expression in perineurial cells, Schwann cells, and fibroblasts in cultures derived from normal human nerve indicated, however, that these cells under in vitro conditions were capable of expressing all five laminin chains. Cutaneous neurofibromas, tumors characterized by the presence of mixed cell populations consisting of Schwann cells, perineurial cells, and fibroblasts, demonstrated the expression of B1, B2 and M chain epitopes, whereas only a weak immunostaining could be detected with antibodies recognizing the A and S chains. Similar observations were made on schwannomas, a Schwann cell tumor. CONCLUSIONS: Collectively, the observations of this study attest to the plasticity of neural-derived connective tissue cells with respect to laminin isoform expression. Such plasticity may relate to the cell-cell and cell-matrix interactions during development of peripheral nerves and the potential for neural regeneration.

Adult↗

Merosin promotes cell attachment and neurite outgrowth and is a component of the neurite-promoting factor of RN22 schwannoma cells.

The laminin-like protein merosin was purified from human placenta in intact form and as pepsin fragments and compared to laminin in heparin affinity chromatography and cell binding assays. Intact merosin and a small fragment of merosin comprising the last two repeats of the heavy chain g domain bind to heparin. Intact merosin and large pepsin fragments of merosin, but not the small C-terminal fragment, mediate the attachment and spreading of several types of cells and promote neurite outgrowth from neuronal cells similar to laminin and its corresponding fragments. Cells with various integrin-type receptors for laminin attached equally well to merosin and laminin, suggesting that several of the known laminin binding receptors also bind to merosin. Antibodies to the beta 1 subunit of integrins inhibited neurite outgrowth on merosin as well as on laminin, confirming the involvement of integrin-mediated interaction of cells with both merosin and laminin. Schwannoma cells, which have previously been shown to produce a laminin-like, neurite-promoting factor, synthesize merosin in vivo and in vitro as shown by protein and mRNA analysis. The results suggest that merosin, which is the more abundant basement membrane protein in the laminin family, has properties very similar to laminin despite differences in the structure of the heavy chain. Furthermore, merosin may be identical to or a component of the neurite-promoting factors previously reported from heart, muscle, and Schwann cells.

Base Sequence↗

Proteolytic processing of endogenous and recombinant beta 4 integrin subunit.

The alpha 6 beta 4 integrin is a receptor involved in the interaction of epithelial cells with basement membranes. This integrin is unique among the known integrins in that its beta 4 subunit has a large cytoplasmic domain. The function of this cytoplasmic domain is not known. In this paper we show that the beta 4 subunit undergoes proteolytic processing in cultured cells and provide evidence that this also happens in tissues. Immunoprecipitation experiments indicated that the cytoplasmic domain of beta 4 is susceptible to a calcium-dependent protease present in cellular extracts. In vitro assays with purified calpain showed that this enzyme can cleave beta 4 at two distinct sites in the cytoplasmic domain, generating truncated molecules of 165 and 130 kD. Immunoblotting experiments performed on cultured epithelial cells using an antibody to a peptide modeled after the COOH-terminus of the beta 4 subunit showed 70-kD fragments and several fragments of molecular masses between 185 and 115 kD. Similar fragments were detected in CHO cells transfected with the full-length beta 4 cDNA, but not in control transfected cells or in cells transfected with a mutant cDNA lacking the epitope of the cytoplasmic peptide antibody. The sizes of the fragments indicated that both the intracellular and extracellular domains of beta 4 are proteolytically processed. To examine the processing of the beta 4 subunit in epithelial tissues in vivo, human skin frozen sections were stained with antibodies to the ectodomain or the cytoplasmic domain of beta 4. The distinct staining patterns obtained with the two types of antibodies provided evidence that beta 4 is proteolytically processed in vivo in skin. Analogous experiments performed on sections of the cornea suggested that beta 4 is not proteolytically processed at a detectable level in this tissue. Thus, cleavage of the beta 4 subunit occurs in a tissue-specific fashion. These results suggest a potential mechanism of modulating the activities of the alpha 6 beta 4 integrin.

Amino Acid Sequence↗

Laminin A, B1, B2, S and M subunits in the postnatal rat liver development and after partial hepatectomy.

The expression of laminin subunits (A, B1, B2, S and M) in the perisinusoidal space of the rat liver was studied in early postnatal life, in the adult, and after partial hepatectomy. In the perisinusoidal space of the normal adult rat, laminin was detected with polyclonal antibodies only in small streaks of basement membranes extending from the portobiliary tract and to a lesser degree from the central vein. Occasionally, droplets of laminin immunoreactivity were also found along the intervening portions of the perisinusoidal spaces. All morphologically identifiable basement membranes of the rat liver (biliary ducts and blood vessels) irrespective of the age of animals exhibited B1, B2 and S immunoreactivity. Laminin A was restricted to the larger blood vessels and could not be detected in the biliary ducts. In the adult rat, immunoreactivity for the A-like M subunit was absent except for some negligible immunostaining of the blood vessels. In the neonatal rat strong linear laminin immunoreactivity was present in the perisinusoidal spaces throughout the entire lobule. Structurally, this laminin is not organized into a basement membrane as defined by electron microscopy. The perisinusoidal laminin was reactive with antibodies to B1, B2, S and M but the A subunit was absent. Sequential immunohistochemical studies of progressively older animals revealed that B1, B2, S and M immunoreactivity was weak in the perisinusoidal spaces before birth but during the postnatal life distinct linear immunoreactivities appeared. Most intense immunoreactivity was present at 1 to 2 weeks after birth. The perisinusoidal laminin gradually disappeared in growing animals and by 6 to 8 weeks basically no laminin could be detected in this location. By Northern blot analysis increased levels of B1 and B2 were detected in neonatal rats as compared to adult rats. S-laminin mRNA could readily be demonstrated in neonatal rat livers by Northern blot analysis, whereas A and M could not. Expression of S and M-laminin transcripts were demonstrated by polymerase chain reaction, but we were unable to obtain a laminin A product. After partial hepatectomy a transient laminin immunoreactivity, comparable to that in the neonatal rats, was detected in the perisinusoidal spaces. Laminin was most prominent 3 days after resection and reacted with antibodies to B1, B2, S and M. No A subunit could be detected in this extracellular matrix.(ABSTRACT TRUNCATED AT 400 WORDS)

Amino Acid Sequence↗

Structure of laminin variants. The 300-kDa chains of murine and bovine heart laminin are related to the human placenta merosin heavy chain and replace the a chain in some laminin variants.

A variant of laminin has previously been isolated from murine heart and shown to be distinct from laminin purified from a traditional source, the murine Engelbreth-Holm-Swarm (EHS) tumor (Paulsson, M., and Saladin, K. (1989) J. Biol. Chem. 264, 18726-18732). It contains a novel polypeptide chain designated as 300 kDa, which is not found in laminin from the EHS tumor. In the present study, heart laminin was purified from bovine tissue and shown to be structurally and immunochemically closely related to the murine protein. Further, heart laminins were compared with merosin, a laminin-like protein isolated from human placenta (Ehrig, K., Leivo, I., Argraves, W. S., Ruoslahti, E., and Engvall, E. (1990) Proc. Natl. Acad. Sci. U.S.A. 87, 3264-3268). The 300-kDa chain of bovine heart laminin cross-reacted with the heavy chain of merosin, showing that these polypeptides are closely related, albeit from different species. Heart laminin is more resistant to proteolysis than laminin derived from the EHS tumor. A large fragment could be prepared by digestion with thermolysin, which consisted of an almost intact long arm structure and variably long, residual short arm structures. Analysis of its structure shows that the 300-kDa heavy chain is disulfide-bonded to the B1 and B2 chains in the center of the laminin cross and forms the long arm together with these chains. It thereby replaces the A chain, well known from tumor sources, in the laminin structure.

Amino Acid Sequence↗

Molecular cloning of the cDNA encoding human laminin A chain.

Laminin is a large basement membrane glycoprotein composed of three subunits designated the A, B1, and B2. We report here the isolation and nucleotide sequence of human laminin A chain cDNA. The nucleotide sequence spans 9505 bases and has an open reading frame encoding 3075-amino acids. The sequence covers a 77-nucleotide long 5' untranslated region and a 190-nucleotide long 3' sequence in front of the poly (A)+ tail. In analogy with the mouse A chain sequence, the deduced human amino acid sequence contains eight-distinct domains of four-globular regions, three-cysteine-rich domains and an alpha-helical region, which is though to interact with the B chains of laminin. The deduced amino acid sequence is 14-amino acids shorter than the mouse A chain sequence. Seven of these amino acids are located in the putative signal sequence. The overall identity between the sequences from the two species is 78%. The carboxylterminal globular (G) domain contains five homologous subdomains characterized by a conserved seven-amino acid repeat within each subdomain. Both human and mouse A chain are about 39% identical to the G domain of merosin, a recently discovered A chain homologue. Unlike the mouse A chain, the human A chain contains a potential cell binding sequence (RGD) in this domain. The RGD sequence that is thought to be a cryptic cell attachment site in the amino-terminal domain IIIb of mouse laminin is not conserved in the human sequence.

Amino Acid Sequence↗