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Biomedical subjects

A Matus

Publications and source records attributed to A Matus.

At least 19 recordsLinked to original sources

Isoform specificity in the relationship of actin to dendritic spines.

Dendritic spines contain high concentrations of actin, but neither the isoforms involved nor the mechanism of accumulation is known. In situ hybridization with specific probes established that beta- and gamma-cytoplasmic actins are selectively expressed at high levels by spine-bearing neurons. Transfecting cultured hippocampal neurons with epitope-tagged actin isoforms showed that cytoplasmic beta- and gamma-cytoplasmic actins are correctly targeted to spines, whereas alpha-cardiac muscle actin, which is normally absent from neurons, formed aggregates in dendrites. The transfected actin cDNAs contained only coding domains, suggesting that spine targeting involves amino acid sequences in the proteins, an interpretation supported by experiments with chimeric cDNAs in which C-terminal actin sequences were found to be determinative in spine targeting. By contrast to actin, microtubule components, including tubulin and MAP2, were restricted to the dendritic shaft domain. The close association of cytoplasmic actins with spines together with their general involvement in cell surface motility further supports the idea that actin motility-based changes in spine shape may contribute to synaptic plasticity.

Actins

Domains of neuronal microtubule-associated proteins and flexural rigidity of microtubules.

Microtubules are flexible polymers whose mechanical properties are an important factor in the determination of cell architecture and function. It has been proposed that the two most prominent neuronal microtubule-associated proteins (MAPs), tau and MAP2, whose microtubule binding regions are largely homologous, make an important contribution to the formation and maintenance of neuronal processes, putatively by increasing the rigidity of microtubules. Using optical tweezers to manipulate single microtubules, we have measured their flexural rigidity in the presence of various constructs of tau and MAP2c. The results show a three- or fourfold increase of microtubule rigidity in the presence of wild-type tau or MAP2c, respectively. Unexpectedly, even low concentrations of MAPs promote a substantial increase in microtubule rigidity. Thus at approximately 20% saturation with full-length tau, a microtubule exhibits >80% of the rigidity observed at near saturating concentrations. Several different constructs of tau or MAP2 were used to determine the relative contribution of certain subdomains in the microtubule-binding region. All constructs tested increase microtubule rigidity, albeit to different extents. Thus, the repeat domains alone increase microtubule rigidity only marginally, whereas the domains flanking the repeats make a significant contribution. Overall, there is an excellent correlation between the strength of binding of a MAP construct to microtubules (as represented by its dissociation constant Kd) and the increase in microtubule rigidity. These findings demonstrate that neuronal MAPs as well as constructs derived from them increase microtubule rigidity, and that the changes in rigidity observed with different constructs correlate well with other biochemical and physiological parameters.

Adsorption

Cytoskeletal maturation in cultured hippocampal slices.

We have studied the expression of genes for neuronal microtubule-associated proteins in organotypic hippocampal slice cultures using immunoblotting and polymerase chain reaction combined with reverse transcription on a single-slice basis. We found that for microtubule-associated protein 2 and tau the same developmental transition from embryonic to adult splice variants occurs in the cultures as has been described previously in intact brain. This finding indicates that the maturation profile of these proteins is not determined by extrinsic inputs but by a cell-autonomous programme or local factors within the hippocampus. Our study corroborates previous data for the maturation of hippocampal slice cultures and is also the first biochemical analysis on the level of the neuronal cytoskeleton of this widely used model system for the hippocampus.

Animals

Role of actin in the organisation of brain postsynaptic densities.

Brain synaptic junctions are marked by a prominent dense-staining structure, the postsynaptic density (PSD), embedded in the postsynaptic membrane. Isolated PSDs contain a complex mixture of proteins among which the most abundant are the alpha subunit of calcium/calmodulin-dependent kinase II (CaMK II alpha) the membrane cytoskeletal proteins actin and spectrin and receptors for both excitatory and inhibitory neurotransmitters. We have investigated the relationship of these proteins to the junctional structure by extracting isolated PSDs with lithium diiodosalicylate (LIS). This selectively solubilized actin and spectrin while other prominent PSD proteins, such as CaMK II alpha, the AMPA- and NMDA-type glutamate receptors and GABA receptors, were not extracted at all. Electron microscopy revealed that LIS treatment caused some fragmentation of PSDs but that their basic lattice-like structure remained intact. These observations suggest that PSD structure is organised at two levels; a core component containing CaMK II alpha and neurotransmitter receptors which we have previously described as the postsynaptic junctional lattice and a peripheral actin-associated component that draws the lattice components together into the complete PSD structure.

Actins

Transgenic expression of embryonic MAP2 in adult mouse brain: implications for neuronal polarization.

The major neuronal microtubule-associated protein MAP2 is selectively localized in dendrites, where its expression is under strong developmental regulation. To learn more about its potential effects on neuronal morphogenesis and its sorting within the neuronal cytoplasm, we have raised transgenic mice that express high levels of the embryonic form, MAP2c, in the adult brain. One transgenic line expressed higher levels of MAP2c than endogenous adult MAP2. This had no detectable effect on either the arrangement or morphology of neurons, suggesting that although MAP2c is necessary for neuronal morphogenesis it is not involved in its regulation. Like endogenous adult MAP2, transgenic MAP2c was present in dendrites but not axons, indicating that the signal responsible for its cytoplasmic sorting is contained within the 1.5 kb of its coding sequence. In situ hybridization with specific probes showed that transgenic MAP2c mRNA was limited to cell bodies. Thus, the dendritic localization of MAP2c protein cannot be the result of previous transport of its mRNA but must depend on a signal associated with the protein itself. Furthermore, because the amino acid sequence of MAP2c is present in all forms of MAP2, this signal is also contained within adult high-M(r) MAP2 protein. This raises the possibility that, rather than the conventional scheme of mRNA sorting preceding protein localization, the transport of adult MAP2 mRNA into dendrites could depend on it being part of a translation complex in which the targeting signal is on the nascent protein.

Animals

Application of novel vectors for GFP-tagging of proteins to study microtubule-associated proteins.

We describe the construction of pBact-NGFP and pBact-CGFP, two expression vectors that incorporate green fluorescent protein (GFP) as a fluorescent tag at the N- or C terminus of the produced protein. When transfected into recipient cells, GFP-tagged proteins can be visualised in the living cells using standard fluorescence microscopy techniques. Using these expression vectors, we have produced GFP-tagged versions of the neuronal microtubule-associated proteins (MAP), MAP2c and Tau34, in a number of different cell types. Both GFP-MAP2c and GFP-Tau34 were fluorescent and retained their ability to bind to microtubules. The pBact-NGFP and pBact-CGFP expression vectors represent a fast and convenient way to produce fluorescently tagged polypeptides of selected sequences encoding whole proteins or fragments for the analysis of function and dynamic events in living cells.

Animals

Cytoskeletal plasticity in cells expressing neuronal microtubule-associated proteins.

MAP2 and tau are the two most prominent neuron-specific microtubule-associated proteins. They have been implicated in the stabilization of microtubules and consequently of neurite morphology. To investigate their influence on microtubule dynamics, we have tagged both proteins with green fluorescent protein and expressed them in non-neuronal cells. Time-lapse recordings of living cells showed that MAP2 and tau did not significantly affect the rates of microtubule growth and shrinkage. Longer recordings revealed the growth and disappearance of MAP-induced microtubule bundles coinciding with changes in cell shape. This supports the idea that microtubule dynamics are influenced by the cortical cytoskeleton. The dynamics-preserving stabilization of microtubules by MAP2 and tau thus provides a molecular basis for the morphological plasticity reported to exist in established neurites.

Animals

Functional analysis of the MAP2 repeat domain.

The neuronal microtubule-associated protein MAP2 binds to microtubules via a domain near its C terminus containing a set of 3 or 4 imperfect repeats of a 31 amino acid motif. Using naturally occurring and mutated forms of the molecule containing between 1 and 4 repeats we have examined the contribution that these repeats make to MAP2 function and explored the significance of their repetition. The experiments utilised the short 3- and 4-repeat splice variants MAP2c and MAP2d that are expressed in developing neurons and in glia respectively, and mutant 1- and 2-repeat versions that were produced by using in vitro mutagenesis to remove further 31 amino acid units while leaving the rest of the molecule unaltered. The properties of these MAP2 variants were compared both with respect to their influence on microtubules in transfected non-neuronal cells and their ability to promote microtubule assembly in vitro. We found that each of the known effects of MAP2, including the bundling of microtubules and induction of process formation in living cells, are expressed by the 1-repeat form MAP2c3, which contains only the third repeat (R3). A second 1-repeat form, MAP2c4, which contains only R4, interacts more weakly with tubulin in vitro and does not bind to microtubules in transfected cells. The microtubule-related properties of MAP2 thus arise mainly from a single predominant repeat unit, R3. In vitro assembly experiments showed that the primary effect of all the repeats is to lower the critical concentration of tubulin required for microtubule assembly but that they differ greatly in potency. The results did not reveal a separate function related to the repetition of the repeat motifs, but instead suggest that its purpose is to tailor the efficiency of MAP2 to the cellular environment in which it has to function.

Amino Acid Sequence

The effect of a herbicide--sodium salt of 2,4-dichlorophenoxyacetic acid on guerin carcinoma.

The effect of sodium salt of 2,4-dichlorophenoxyacetic acid, being an active component of herbicide "PIELIK", upon the development of Guerin carcinoma implanted in male Wistar rats, was studied. 192 animals were divided in to 6 equal groups: I-animals which obtained physiological salt solution; II-rats exposed to the herbicide in postlactational period; III-animals with Guerin carcinoma, non exposed to the herbicide; IV- rats exposed to the herbicide in postlactational period+Guerin carcinoma; V-animals exposed to the herbicide from prenatal period to the end of an experiment, without Guerin carcinoma; VI-the same as in V group, but with Guerin carcinoma. The effect of the herbicide on tumor growth dynamism (diameters and mass), degree of tumour malignancy (metastases to lymph nodes), animals survival time and morfological changes in the primary tumour and in metastases was evaluated. Basing of the results obtained, it was stated that this herbicide accelerates the development of Guerin carcinoma and reduces the survival time in the rats exposed to it in the prenatal and postnatal period. However, it does not significantly influence the growth of the carcinoma in the rats exposed only in the postlactational period.

2,4-Dichlorophenoxyacetic Acid

Stiff microtubules and neuronal morphology.

Neuronal processes contain high concentrations of two related microtubule-associated proteins, MAP2 and tau. When MAP2 is expressed in non-neuronal cells the microtubules appear to be stiffer than those in control cells that do not express MAP2. A stiffening effect of MAP2 is further suggested by recent experiments with microtubules reassembled in vitro and by the fact that, under appropriate circumstances, MAP2-expressing cells can be induced to form processes that are long and cylindrical. Both MAP2 and tau contain homologous microtubule-binding domains, consisting of three or four repeats of an 18 amino acid sequence, which we believe are responsible for the stiffening effect. Our hypothesis is that each repeat binds to a neighbouring tubulin subunit in the wall of the microtubule, tethering them together and reducing their freedom of movement relative to one another. Based on these considerations, we suggest that MAP2 and tau may contribute to the support of neuronal processes by making the microtubules they contain longer, more stable and stiffer than those in non-neuronal cells.

Animals

Regenerating sciatic nerve axons contain the adult rather than the embryonic pattern of microtubule associated proteins.

Microtubule associated proteins play a central role in the control of axon growth. We have used immunohistochemical techniques to establish which microtubule-associated proteins are present in the rat hindlimb spinal cord, dorsal root ganglia and peripheral nerves during axonal growth during embryogenesis, in adulthood, and during regeneration of crushed sciatic nerves. During embryogenesis microtubule-associated protein-1b and tau are present in all neurons and axons, microtubule-associated protein-2 is present in neurons but not in axons, and there is no microtubule-associated protein-1a. In adults, microtubule-associated protein-1a and microtubule-associated protein-1b are present in all sciatic nerve axons and in motor and dorsal root ganglion neurons. Tau, in its adult form, is present in many fine probably sensory axons, but not in most larger axons, and in motor and sensory neurons. Microtubule-associated protein-2 is present only in neurons. During regeneration the pattern of microtubule-associated protein expression retains the adult pattern. All regenerating axons contain microtubule-associated protein-1a and microtubule-associated protein-1b, none contain microtubule-associated protein-2, and a subset of fine axons contain tau. There is no detectable change in microtubule-associated protein expression by motoneurons. While axons are clearly able to regenerate without either microtubule-associated protein-2 or tau, tau containing axons appear to regenerate faster than those which lack it. It is possible that the failure of neurons to recapitulate the embryonic pattern of microtubule-associated protein expression during regeneration could be a reason why regenerative axon growth is slower and less vigorous than axon growth in embryos.

Animals

Bundling of microtubules in transfected cells does not involve an autonomous dimerization site on the MAP2 molecule.

We have searched for putative dimerization sites in microtubule-associated protein 2 (MAP2) that may be involved in the bundling of microtubules. An overlapping series of fragments of the embryonic form MAP2c were created and immunologically "tagged" with an 11 amino acid sequence from human c-myc. Nonneuronal cells were transfected simultaneously with one of these myc-tagged fragments and with full-length native MAP2c. Immunolabeling with site-specific antibodies allowed the two transgene products to be located independently within the cytoplasm of a single double-transfected cell. All transfected cells contained bundled microtubules to which the full-length native MAP2 was bound. The distribution of the tagged MAP2 fragment relative to these MAP2-induced bundles was determined by the anti-myc staining. None of the fragments tested, representing all of the MAP2c sequence in overlapping pieces, were associated with MAP2-induced microtubule bundles. These results suggest that MAP2-induced bundle formation in cells does not involve an autonomous dimerization site within the MAP2 sequence.

Animals

Sequence analysis of MAP2 function in living cells.

Microtubule-associated protein 2 (MAP2) is an abundant neuron-specific protein that binds to microtubules through a domain near its carboxyl terminus that contains either three or four similar repeats of a 31 amino acid motif. When expressed in non-neuronal cells by transfection MAP2 stabilises microtubules and induces their rearrangement into long bundles that are capable of supporting process outgrowth. To investigate which elements in the MAP2 sequence are involved in these functions we have constructed a series of deletion mutants of the short embryonic form of MAP2, MAP2c, and transfected them into non-neuronal cells. This showed that the strength of binding to microtubules increased with the number of repeats present in the construct. However, the repeat domain itself was insufficient for microtubule binding, which required in addition contiguous sequences either amino-terminal or carboxyl-terminal to the repeats themselves. Particularly on the amino-terminal side of the repeats, where there is a proline-rich domain, step-wise increases in the length of neighbouring sequence produced a gradual increase in microtubule binding. The apparent strength of binding to microtubules produced by mutant MAP2 forms was further correlated with the degree of bundling they induced as well as with the ability of the resulting microtubules to support process outgrowth. These results indicate that the interaction of MAP2 with microtubules is mediated by the combined action of several weak binding sites, including each of the repeat motifs and elements in the sequences on either side of them, whose additive effect produces the strong binding of the native MAP2 molecule. The results further indicate that both the bundling and stiffening of microtubules by MAP2 are correlated with the strength of its binding to them and suggest that these properties are a direct result of microtubule stabilisation.

Animals

Identification of a novel microtubule-binding domain in microtubule-associated protein 1A (MAP1A).

Several microtubule-associated proteins (MAPs) have been shown to bind to microtubules via short sequences with repeated amino acids motifs. A microtubule-binding domain has hitherto not been defined for the adult brain microtubule-associated protein 1A (MAP1A). We have searched for a microtubule-binding domain by expressing different protein regions of MAP1A in cultured cell lines using cDNA constructs. One construct included an area with homology to the microtubule-binding domain of MAP1B (Noble et al. (1989) J. Cell Biol. 109, 437-448), but this did not bind to microtubules in transfected cells. Further investigation of other areas of MAP1A revealed a protein domain, capable of autonomously binding to microtubules, which bears no homology to any previously described microtubule-binding sequence. This MAP1A domain is rich in charged amino acids, as are other mammalian microtubule-binding domains, but unlike them has no identifiable sequence repeats. Whereas all previously described mammalian microtubule-binding domains are basic, this novel microtubule-binding domain of MAP1A is acidic. The expression of this polypeptide in cultured cell lines led to a rearrangement of the microtubules in a pattern distinct from that produced by MAP2 or tau, and increased their resistance to treatment with the microtubule depolymerising agent nocodazole. When the MAP1A microtubule-binding domain was co-expressed in cultured cell lines together with MAP2c, the MAP1A microtubule-binding domain was able to bind to the MAP2c-induced microtubule bundles. These results suggest that different microtubule-binding sequences have a common ability to stabilise microtubules but differ in their influence on microtubule arrangement in the cell. This may be significant in neurons, where microtubule-associated proteins with different microtubule-binding sequences are expressed in different cell compartments and at different times during development.

Amino Acid Sequence

A novel strategy for the immunological tagging of cDNA constructs.

We describe the construction of pBact-myc, an expression vector that incorporates an immunological 'tag' into the produced polypeptide. When transfected into recipient cell lines, tagged protein fragments derived from any source can be visualised using a single monoclonal antibody (mAb). The neuronal-associated protein 2c (MAP2c) was tagged with a sequence encoding a peptide from the human c-myc gene. The preservation of normal function of the tagged protein was shown by transfecting it into cultured cell lines. No difference in binding ability to cellular microtubules could be observed between the myc-tagged MAP2c and the wild-type forms, and both produced the same characteristic changes in microtubule organisation. This approach is being used to study the biological function of selected fragments of MAP2c and other MAP-encoding genes. The pBact-myc expression vector represents a fast and convenient way to produce tagged polypeptides of selected sequences encoding whole proteins or fragments, for the analysis of their function in living cells.

Amino Acid Sequence

Microtubule-associated protein 2 and the organization of cellular microtubules.

Microtubule-associated proteins (MAPs) are prominent components of the neuronal cytoskeleton that can promote microtubule formation and whose expression is under strong developmental regulation. They are thought to be involved in organizing the structure of microtubule fascicles in axons and dendrites, although whether they form active cross-links between microtubules or serve as strut-like spacer elements has yet to be resolved. In the experiments reported here we explored their influence on microtubules by expressing them in non-neuronal cells using DNA transfection techniques. We confirm earlier reports that microtubule-associated proteins of the MAP2/tau class can induce bundling of microtubules. In addition we find that MAP2 causes the rearrangement of microtubules in the cytoplasm in a manner that is dependent on the length of the microtubule bundles. Short bundles are straight and run across the cytoplasm whereas long bundles form a marginal band-like array at the periphery. We suggest that the latter arrangement is produced when microtubule bundles that are too long to fit inside the diameter of the cell bend under the restraining influence of the cortical cytoskeleton. In confirmation of this, we show that when the cortical actin network is depolymerized by cytochalasin B the MAP2-containing microtubule bundles push out cylindrical extensions from the cell surface. These results suggest that the induction of stiff microtubules bundles by MAP2, coupled with a breach in the cortical actin network, can confer two of the properties characteristic of neuronal processes; their cylindrical form and the presence of fasciculated microtubules.

Cytochalasin B

Attenuation of microtubule-associated protein 1B expression by antisense oligodeoxynucleotides inhibits initiation of neurite outgrowth.

Microtubule-associated protein 1B, formerly also known as microtubule-associated protein 5, is the first structural microtubule accessory protein to appear in outgrowing axons. In PC12 pheochromocytoma cells microtubule-associated protein 1B levels increase several-fold after the addition of nerve growth factor and this increase is correlated with the initiation of process formation. To determine whether microtubule-associated protein 1B is essential for neurite outgrowth, we used antisense oligodeoxynucleotides to inhibit its expression in nerve growth factor-treated PC12 cells in the rat. The application of several different antisense oligodeoxynucleotides to the microtubule-associated protein 1B mRNA sequence inhibited both microtubule-associated protein 1B expression and neurite extension. Specificity was shown by the lack of effect of control sense oligonucleotides and by the lack of effect of the microtubule-associated protein 1B antisense oligodeoxynucleotides on the expression of either tubulin or microtubule-associated protein 3, another microtubule-associated protein whose synthesis is stimulated by nerve growth factor treatment of PC12 cells. After removal of the antisense oligodeoxynucleotides, microtubule-associated protein 1B expression recovered to normal levels and the cells grew normal neurites with the timing and morphological characteristics of normal nerve growth factor-induced outgrowth, indicating that the blockade was not because of non-specific toxic effects. These results indicate that microtubule-associated protein 1B is an essential component of the molecular mechanism underlying the formation of neuronal processes.

Animals