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D Klemm

Publications and source records attributed to D Klemm.

At least 19 recordsLinked to original sources

Copper(II) complexes of aminocarbohydrate beta-ketoenaminic ligands: efficient catalysts in catechol oxidation.

Copper(II) complexes of tridentate dianionic beta-ketoenaminic ligands derived from differently functionalized amino-deoxyglucoses were synthesized and characterized with respect to their structural, spectroscopic, and catalytic properties. The (probably dimeric) complex [1,2-O-isopropylidene-6-N-(3-acetyl-2-oxobut-3-enyl)amino-6-deoxyglucofuranoso)copper(II) Cu(3a) was a highly efficient catalyst for the catechol-oxidase-like oxidation of 3,5-di-tert-butylcatechol (dtbc) into 3,5-ditert-butylquinone (dtbq) by molecular oxygen (kcat=2.63s(-1)). In contrast to this magnetically "normal" complex Cu(3a), the analogous dinuclear complex [[Cu(2a)]2], derived from the isomeric amino sugar 5-amino-5-deoxyglucofuranose, forms six-membered chelate rings with the sugar moiety and has very strong antiferromagnetic-coupled copper atoms (resulting in a diamagnetic ground state). It has a rather insignificant activity (kcat < 10(-3)s(-1)). The ligand H2 1a, derived from a (protected) 6-amino-6-deoxyglucopyranose, forms a trinuclear complex [[Cu(1a)]]2.Cu(OAc)2] in which two basic formula units are bridged by one copper acetate. This compound and the complex derived from an (isomeric) aminodeoxyglucopyranose ([Cu(4a)]: kcat approximately equals 0.03 s(-1)) show moderate activity. All complexes with a peripheral ethoxycarbonyl group instead of the acetyl substituent R2, Cu(1b)-Cu(3b) and Cu(4c), are inactive. The complexes derived from 2-hydroxocyclohexylamine, Cu(5a) and Cu(5c), which were used as models of the active complex Cu(3a), have the typical "cubane-like" tetranuclear structure known from many copper complexes with derivatives of saturated 2-aminoalcohols. They are inactive with respect to the activation of dioxygen.

Amino Sugars↗

Regioselective functionalization of starch: synthesis and 1H NMR characterization of 6-O-silyl ethers.

A high regioselective 6-O silylation of starch by using thexyldimethylchlorosilane (TDSCl, chlorodimethyl-(2,3-dimethylbut-2-yl)silane) as bulky silylating agent in the reaction system N-methylpyrrolidone (NMP)/ammonia was carried out and investigated. The control of the degree of substitution (DSSi), the control of the regioselectivity, and the control of the reaction pathway are described in detail. After peracetylation of the silyl ethers of starch, the distribution of the silyl and acetyl substituents was characterized not only in the anhydroglucose repeating units (AGU) but also in the nonreducing end groups (NEG) by means of multidimensional 1H NMR techniques. In both cases, the silyl substituents were detected exclusively in the 6-O position, and the acetyl groups in the 2-O and 3-O positions of the AGU and in the 2-O, 3-O, and 4-O positions of the NEG, respectively. The described 6-O-thexyldimethylsilyl (TDS) units are potentially protecting groups of the primary OH position of starches.

Acetylation↗

New artificial siderophores based on a monosaccharide scaffold.

New artificial catecholate siderophores with methyl alpha-D-glucopyranoside as scaffold were synthesized. The dihydroxy- or di(acetoxy)benzoyl moieties were attached either directly or via aminopropyl spacer groups, to the carbohydrate scaffold. The siderophore activity of the prepared siderophore analogs was examined by a growth promotion assay using various Gram-negative bacteria and mycobacteria and by the CAS-assay.

Gram-Negative Bacteria↗

A novel efficient enzyme-immobilization reaction on NH2 polymers by means of L-ascorbic acid.

A new enzyme-immobilization reaction by means of L-ascorbic acid (ASA) is described using NH(2) polymers based on cellulose or poly(vinyl alcohol) with the example of oxidoreductase enzymes. In this way, enzyme proteins such as glucose oxidase (GOD), glutamate oxidase, lactate oxidase, urate oxidase and peroxidase can be covalently fixed with a high surface loading to ultrathin and transparent NH(2)-polymer films if their surfaces are previously treated with an ASA solution, in, for example, N,N-dimethyl acetamide, DMSO or methanol. ASA then obviously reacts like a diketo compound with amino groups of the NH(2)-polymer film and enzyme protein, forming dehydroascorbic acid derivatives with neighbouring Schiff's-base structures. In a subsequent fragmentation reaction, the latter presumably form stable oxalic acid diamide derivatives as coupling structures between enzyme protein and NH(2)-polymer film, as suggested by results from investigations of the ASA reaction with n-butylamine. The immobilized enzymes can be stored at 4 degrees C in bidistilled water for at least 1 month without becoming detached from the NH(2)-polymer film and without diminished enzyme activity. The apparent K(m) values of the immobilized enzymes are in part clearly smaller than those of the dissolved enzymes or those found in other immobilization processes such as the diazo coupling or the bifunctional glutardialdehyde reaction. For example, the K(m) value of the immobilized GOD with different NH(2) polymers as the matrix structure is smaller by a factor of approx. 20 than that of the dissolved enzyme.

Acetamides↗

Formation, derivatization and applications of bacterial cellulose.

Acetobacter xylinum produces highly crystalline cellulose extracellularly using glucose as a carbon source. The polymer formed is free of other biogenic compounds, separable in a simple way and characterized by its high water-absorption capacity. Stepwise solvent exchange from water to unpolar solvents leads to a drastic decrease of the water content of the bacterial cellulose without decrease of the highly swollen and activated state. Heterogeneous as well as homogeneous derivatizations, e.g. carboxymethylation, silylation and acetylation, were performed on the wet or dried biopolymer. Furthermore, different methods for formation of hollow fibres during biosynthesis were investigated. Such tubes may have applications as biocompatible material in medicine.

Absorption↗

Insulin inhibits dephosphorylation of adenosine 3',5'-monophosphate response element-binding protein/activating transcription factor-1: effect on nuclear phosphoserine phosphatase-2a.

We examined the effects of insulin on the phosphorylation state of cAMP response element-binding protein (CREB) in normal rat adipocytes. Insulin increased in vivo phosphorylation of CREB by 40%. Although both phosphoprotein phosphatase-1 and -2A dephosphorylate CREB and activating transcription factor-1, insulin action appears to be mediated via its strong inhibitory effect on nuclear phosphatase-2A (PP-2A) activity. Using in vitro protein kinase-A-phosphorylated activating transcription factor-1 as a substrate, we found that insulin inhibited nuclear PP-2A activity by 80% (P < 0.001), which represents approximately 50% of the total nuclear phosphatase activity. Greater than 50% of the effect of insulin was observed at 0.3 nM and 2 min of exposure. These findings are the first indicator that a signal initiated by a cell surface tyrosine kinase receptor may regulate nuclear PP-2A activity and thereby affect the phosphorylation state of transcription factors.

Activating Transcription Factor 1↗