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M Moos

Publications and source records attributed to M Moos.

86 records · Page 5Linked to original sources

Transient transfection of mammalian cells with DNA of the plant-pathogenic Ti-plasmid and expression of marker and resident sequences.

The large Ti-plasmid from Agrobacterium tumefaciens strain C58 has been used for transfection experiments with mammalian cells. In DNA from Tupaia baby fibroblasts Ti-plasmid sequences could be identified by filter hybridization as long as four weeks after transfection including two cell passages. The hybridization signals decreased rapidly after addition of the Ti-plasmid DNA-coprecipitate to the cells. The signals were often not detected any more after the first day, but were visible one week after transfection. Nuclei prepared from Ti-plasmid-transfected cells hybridized to pTi-specific RNA. With the chloramphenicol acetyl transferase-gene as marker no discrimination in DNA uptake was found between the Ti-plasmid and much smaller plasmids. According to the number of nuclei with homology to pTi-sequences it is assumed that about 0.2% of the cells carry Ti-plasmid DNA in the nucleus. Analysis of RNA isolated from cells transfected with cloned segments of the Ti-plasmid revealed that the T-DNA region of the Ti-plasmid was predominantly transcribed.

Animals↗

Identification of a cDNA clone specific for the neural cell adhesion molecule AMOG.

A cDNA clone of the neural cell adhesion molecule AMOG was isolated from a lambda gt10 library constructed from 8-day-old mouse brain poly(A) + RNA with a 17mer oligonucleotide probe designed from a nonapeptide sequence obtained from tryptic peptides of AMOG. The cDNA clone expressed as a fusion protein that is recognized by polyclonal AMOG antibodies; conversely, polyclonal antibodies prepared against the fusion protein react with AMOG. The clone contains the full sequence derived from the nonapeptide. Of all tissues tested, only brain expresses detectable levels of AMOG by ELISA and Northern blot analyses, indicating a high correlation in expression at the protein and mRNA levels. Both brain and astrocytes express a 3 kb long mRNA, which appears to be encoded by a single gene.

Adenosine Triphosphatases↗

Neural adhesion molecule L1 as a member of the immunoglobulin superfamily with binding domains similar to fibronectin.

Diverse glycoproteins of cell surfaces and extracellular matrices operationally termed 'adhesion molecules' are important in the specification of cell interactions during development, maintenance and regeneration of the nervous system. These adhesion molecules have distinct functions involving different cells at different developmental stages, but may cooperate when expressed together. Families of adhesion molecules which share common carbohydrate domains do exist, despite the structural and functional diversity of these glycoproteins. These include the Ca2+-independent neural adhesion molecules: N-CAM, myelin associated glycoprotein (MAG) and L1. L1 is involved in neuron-neuron adhesion, neurite fasciculation, outgrowth of neurites, cerebellar granule cell migration, neurite outgrowth on Schwann cells and interactions among epithelial cells of intestinal crypts. We show here that in addition to sharing carbohydrate epitopes with N-CAM and MAG, L1 is also a member of the immunoglobulin superfamily. It contains six C2 domains and also shares three type III domains with the extracellular matrix adhesion molecule fibronectin.

Amino Acid Sequence↗

Reproducible high yield sequencing of proteins electrophoretically separated and transferred to an inert support.

A method allowing initial sequencing yields of 60-85% to be consistently obtained from samples prepared by sodium dodecyl sulfate-polyacrylamide gel electrophoresis and electrophoretic transfer is described in detail. Conducting electrophoresis at a pH near neutrality is the single most important of the modifications made to earlier procedures, but pre-electrophoresis in the presence of glutathione or sodium thioglycolate and use of Immobilon polyvinylidene difluoride membranes all contribute to the success of the technique. When tryptophan was the NH2 terminus of a protein, the phenylthiohydantoin (PTH)-derivative recovered appeared to be an irreversible oxidation product if pre-electrophoresis was not performed. Following pre-electrophoresis, the PTH-derivative recovered co-migrated with that of unmodified tryptophan, and the recovery was higher. Recovery of methionine as its PTH-derivative was not affected by pre-electrophoresis suggesting that thioglycolate in the electrophoresis buffer during sample separation prevented or reversed oxidation of methionine sulfur but did not protect tryptophan.

Amino Acid Sequence↗

Investigation of the Bacillus cereus phosphonoacetaldehyde hydrolase. Evidence for a Schiff base mechanism and sequence analysis of an active-site peptide containing the catalytic lysine residue.

Reaction of Bacillus cereus phosphonoacetaldehyde hydrolase (phosphonatase) with phosphonoacetaldehyde or acetaldehyde in the presence of NaBH4 resulted in complete loss of enzymatic activity. Treatment of phosphonatase with NaBH4 in the absence of substrate or product had no effect on catalysis. Inactivation of phosphonatase with [3H]NaBH4 and phosphonoacetaldehyde, NaBH4 and [14C]acetaldehyde, or NaBH4 and [2-3H]phosphonoacetaldehyde produced in each instance radiolabeled enzyme. The nature of the covalent modification was investigated by digesting the radiolabeled enzyme preparations with trypsin and by separating the tryptic peptides with HPLC. Analysis of the peptide fractions revealed that incorporation of the 3H- or 14C-radiolabel into the protein was reasonably selective for an amino acid residue found in a peptide fragment observed in each of the three trypsin digests. Sequence analysis of the 3H-labeled peptide fragment isolated from the digest of the [2-3H]phosphonoacetaldehyde/NaBH4-treated enzyme identified N epsilon-ethyllysine as the radiolabeled amino acid. The ability of the phosphonatase competitive inhibitor (Ki = 230 +/- 20 microM) acetonylphosphonate to protect the enzyme from phosphonoacetaldehyde/NaBH4-induced inactivation suggested that the reactive lysine residue is located in the enzyme active site. Comparison of the relative effectiveness of phosphonoacetaldehyde and acetaldehyde as phosphonatase inactivators showed that the N-ethyllysine imine that is reduced by the NaBH4 is derived from the corresponding N-(phosphonoethyl) imine. On the basis of these findings, a catalytic mechanism for for phosphonatase is proposed in which phosphonoacetaldehyde is activated for P-C bond cleavage by formation of a Schiff base with an active-site lysine. Accordingly, an N-ethyllsysine enamine rather than the high-energy acetaldehyde enolate anion is displaced from the phosphorus.

Acetaldehyde↗

Cyclic AMP opposes IP3-induced calcium release from permeabilized human platelets.

Platelets permeabilized by means of a high voltage electric field demonstrated time- and ATP-dependent uptake of 45Ca++. Submicromolar concentrations of inositol-1,4,5-trisphosphate (IP3) caused a rapid release of 45Ca++ which was followed by a slower reuptake. Adenosine 3':5'-cyclic monophosphate (cAMP) did not affect 45Ca++ uptake but did reduce IP3-mediated calcium release in a concentration-dependent manner over the range of 1-100 microM. Because cAMP concentrations in this range occur following exposure of platelets to prostacyclin and other agents which interfere with platelet function, it is proposed that cAMP-mediated inhibition of the action of IP3 may play a role in the antithrombotic activity of compounds believed to elevate levels of this cyclic nucleotide.

Blood Platelets↗

Identification of cDNA clones of the mouse neural cell adhesion molecule L1.

Two cDNA clones of the neural cell adhesion molecule L1 (Mr 200,000) were isolated using lambda gt10 and lambda gt11 libraries constructed from postnatal day 8 mouse brain poly(A)+ RNA. Clone K21 was selected and identified using immunoaffinity purified polyclonal antibodies. It was then used to isolate a secondary clone (K21-1), which hybridized with an oligonucleotide probe synthesized by reverse translation of the aminoterminal sequence of the 80 kDa carboxyterminal proteolytic fragment of L1. Blot hybridization analysis indicated that L1 is encoded by a single gene and transcribed by a single 6 kb mRNA which is present only in cells or tissues known to express L1.

Animals↗

Structure of two human beta-actin-related processed genes one of which is located next to a simple repetitive sequence.

From a human gene library we have isolated and sequenced a beta-actin-like pseudogene, H beta Ac-psi 2, which lacks intervening sequences and contains several mutations resulting in frame-shifts, stop codons and in a departure from the known beta-actin protein sequence. We have also extended our sequence work on the intronless human beta-actin-related pseudogene H beta Ac-psi 1 described previously and we find that both genes are processed genes ending in a poly(dA) tract and flanked by direct repeats. The gene H beta Ac-psi 2 is preceded by a 230-bp region in which the simple sequence 5'-GAAA-3' is repeated greater than 40 times. This satellite-like sequence is highly repetitive in the human genome.

Actins↗

The nucleotide sequences of the actin genes from Saccharomyces carlsbergensis and Saccharomyces cerevisiae are identical except for their introns.

The actin gene from yeast Saccharomyces carlsbergensis was cloned in Escherichia coli and its complete nucleotide structure was determined. A comparison of its DNA sequence with that of the related yeast species Saccharomyces cerevisiae revealed that the coding as well as the 5'- and 3'-untranslated regions are identical. The intron, although at the same location in the two genes, differs in three positions. There is one deletion (or insertion), one transition, and one transversion. These are clustered within and around an oligo(dA) stretch of 14 (or 13) residues. Our observations identify the intron as the fastest evolving segment of this eukaryotic gene.

Actins↗