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Biomedical subjects

H Angliker

Publications and source records attributed to H Angliker.

28 records · Page 2Linked to original sources

Additional peptidyl diazomethyl ketones, including biotinyl derivatives, which affinity-label calpain and related cysteinyl proteinases.

Calpain, the calcium-activated cysteinyl proteinase, can be irreversibly inactivated by peptidyl diazomethyl ketones in which the peptide portion contains a penultimate leucine residue. Some new derivatives of this type have been synthesized and examined for their rates of inactivation of chicken gizzard and human platelet calpain. Two derivatives containing a C-terminal biotin residue, Biot-Aca-Leu-TyrCHN2 and Biot-Aca-Leu-Leu-TyrCHN2, have also been prepared in the expectation that their application to the study of the function of calpain and related proteases will prove fruitful.

Affinity Labels↗

Synthesis of histidine-containing dipeptide affinity-labelling agents. Relative inactivation rates of cathepsins B and L.

Peptidyl diazomethyl ketones and fluoromethyl ketones containing histidine in the C-terminal position were synthesized to determine their properties as proteinase inactivators. These were examined chiefly with derivatives of Z-Ala-His. The protection of histidine during conversion of the C-terminal residue to the diazomethyl ketone required unblocking conditions which avoid acid due to the lability of this function. This was achievable with a Cbz-imidazole derivative since aminolysis provided deblocking without disturbance of the diazomethyl ketone function. In the case of the fluoromethyl ketone synthesis using fluoroacetic anhydride (Dakin-West procedure), the desired product could be isolated without ring blocking. The Z-Ala-His products showed enhanced selectivity for inactivation of cathepsin B over L when compared to analogous dipeptide inhibitors.

Affinity Labels↗

Lysis of trypanosomes by peptidyl fluoromethyl ketones.

Peptidyl fluoromethyl ketones, improved reagents for inactivating cysteinyl and serine proteinases, have provided unexpected results when applied to intact trypanosomes. A lethal effect was observed but limited to the infectious phase of the parasitic growth cycle. Since the inhibitors are known only to act on proteases, the result implies the existence of a protease of critical importance during the infectious phase. A labelled inhibitor, Cbz-Ala-[3H]Phe-CH2F, indicated that the killing effect correlated with the labelling of a 68 kd protein in the trypomastigotes which we deduce is an essential protease.

Animals↗

Pseudoarginine: synthesis and properties of derivatives of delta-(1-imidazolyl)norvaline.

An analogue of arginine has been synthesized in which an imidazole ring occupies the position of the guanidino group of the natural amino acid. It was expected that peptides containing this amino acid when protonated might bind at enzymic sites specific for arginine, but that the pK of the imidazole ring, near 7, would facilitate entry of such peptides into cells, in contrast to peptides containing arginine. Other analogues of arginine can be visualized with a low side-chain pK, including isomers of the imidazole derivative which is the subject of this paper. These are viewed as 'pseudoarginines'. Our initial observations concern the properties of delta-(1-imidazolyl)norvaline in which a ring nitrogen atom is attached to norvaline, which thus becomes comparable to the guanidino delta-nitrogen. Its synthesis is described along with several derivatives examined as substrates or inhibitors. Potential ligands containing delta-(1-imidazolyl)norvaline (ImNva) did not give evidence of interaction with trypsin or plasma kallikrein, serine proteinases which bind arginine derivatives. However, clostripain, a bacterial cysteine proteinase specific for arginine, was readily inactivated by Cbz-Phe-ImNva-CH2F and the rate of inactivation showed an acid pH-dependence not observed, for example, in the inactivation of clostripain by Bz-Phe-LysCH2F.

Arginine↗

Inhibition of intraerythrocytic development of Plasmodium falciparum by proteinase inhibitors.

A group of inactivators of cysteinyl proteinases which function by covalent bond formation have been examined for their ability to inhibit the development of Plasmodium falciparum within red blood cells. The most effective of these caused inactivation of the parasite near 10(-8) M concentration. The range of inhibitory action varied with peptide structure in a manner characteristic of affinity labels for proteinases suggesting that the target of inhibition was an unidentified proteinase, probably of the cysteinyl type, but different from cathepsins B and L.

Animals↗

The inactivation of the cysteinyl exopeptidases cathepsin H and C by affinity-labelling reagents.

An attempt has been made to extend to the cysteinyl exopeptidases cathepsins H and C affinity-labelling approaches shown to be effective with cysteinyl endopeptidases such as cathepsins B and L and the calcium-activated proteinase. This involved the preparation of amino acid and dipeptide derivatives with unblocked N-termini to satisfy the aminopeptidase and dipeptidyl aminopeptidase characteristics of cathepsins H and C respectively. For covalent reactivity, the possibilities examined included diazomethanes (-CHN2), fluoromethanes (-CH2F) and dimethylsulphonium salt [-CH2S+(CH3)2]. A dipeptidylfluoromethane with a free amino group could not be prepared, perhaps due to inherent instability. Cathepsin H was inactivated by 1 microM-H2N-Phe-CH2F (the 'H2N' indicates a free unblocked amino group) (k2 = 1878 M-1.s-1); this reagent was without effect on cathepsins C and B, even at 100-fold this concentration. Analogous selectivity was shown by H2N-Ser(OBzl)-CHN2 and H2N-Phe-CH2S+(CH3)2, members of other classes of covalently binding reagents. For cathepsin C the dipeptide derivatives H2N-Gly-Phe-CHN2 and H2N-Phe-Ala-CH2S+(CH3)2 caused rapid inactivation near 10(-7) M. Higher concentrations inactivated cathepsins H and B, but the rates were slower by two to three orders of magnitude than for cathepsin C.

Affinity Labels↗

Synthesis and properties of peptidyl derivatives of arginylfluoromethanes.

Two peptide derivatives of arginylfluoromethane (Arg-CH2F), namely Bz(benzoyl)-Phe-ArgCH2F and D-Phe-Pro-Arg-CH2F, have been synthesized by extension of available methods, i.e. the Dakin-West reaction [Rasnick (1985) Anal. Biochem. 149, 461-465] or synthesis of a phthaloyl-blocked C-terminal fluoromethane [Rauber, Angliker, Walker & Shaw (1986) Biochem. J. 239, 633-640; Angliker, Wikström, Rauber & Shaw (1987) Biochem. J. 241, 871-875] with subsequent elongation. The guanidino group of arginine was protected as the bis-Cbz (benzyloxycarbonyl) derivative. The products were examined as active-site-directed inhibitors of some trypsin-related serine proteinases as well as a pair of cysteine proteinases. The results extend previous observations that the rate of alkylation of serine proteinases by fluoromethanes may be considerably slower than by chloromethanes. As expected, the amino acid sequence of the inhibitors influenced their relative effectiveness. Thus the rate of inactivation of a number of trypsin-like proteinases by D-Phe-Pro-Arg-CH2F varied by more than two orders of magnitude.

Hydrocarbons, Fluorinated↗

The synthesis of lysylfluoromethanes and their properties as inhibitors of trypsin, plasmin and cathepsin B.

The synthesis of two lysylfluoromethanes is described by an extension of the synthesis method of Rauber, Angliker, Walker & Shaw [(1986) Biochem. J. 239, 633-640]. Ala-Phe-Lys-CH2F was found to be an active-centre-directed inhibitor of plasmin and trypsin, as is the corresponding chloromethane. However, the rate of covalent-bond formation is about an order of magnitude lower at 25 degrees C for the fluoro derivative. It was, in addition, an extremely effective inactivator of cathepsin B at pH 5.4 and 6.4. The chemical reactivity of fluoromethanes was compared with that of chloromethanes as alkylators of GSH. At pH 7.4 and 37 degrees C, a fluoromethane has 1/500th the reactivity of a chloromethane. A comparison of the rates of reaction of the fluoromethane with cathepsin B and with GSH at pH 6.4 revealed an enhancement of 10(8)-fold for the alkylation of the enzyme, ascribable largely to a proximity effect.

Alkylation↗

The synthesis of peptidylfluoromethanes and their properties as inhibitors of serine proteinases and cysteine proteinases.

A synthesis of peptidylfluoromethanes is described that utilizes the conversion of phthaloyl amino acids into their fluoromethane derivatives. These can be deblocked and elongated. The inactivation of chymotrypsin by Cbz-Phe-CH2F (benzyloxycarbonylphenylalanylfluoromethane) was found to be considerably slower than that of the analogous chloromethane. The fluoromethane analogue inactivates chymotrypsin with an overall rate constant that is 2% of that observed for the inactivation of the enzyme with the chloromethane. However, the result is the same. The reagent complexes in a substrate-like manner, with Ki = 1.4 X 10(-4) M, and alkylates the active-centre histidine residue. Cbz-Phe-Phe-CH2F and Cbz-Phe-Ala-CH2F were investigated as inactivators of the cysteine proteinase cathepsin B. The difference in reactivity between fluoromethyl ketones and chloromethyl ketones is less pronounced in the case of the cysteine proteinase than for the serine proteinase. Covalent bond formation takes place in this case also, as demonstrated by the use of a radiolabelled reagent.

Cathepsin B↗

Peptidyl fluoromethyl ketones as thiol protease inhibitors.

The fluoromethyl ketone derivatives of peptides are now available through several synthetic approaches and can be examined with respect to their properties as protease inhibitors. It had been expected that the fluoro atom might be too inert for nucleophilic displacement and that irreversible inactivation might not be achievable by this type of derivative in contrast to chloromethyl ketones. However, with serine and cysteinyl proteases, alkylation of the enzyme does take place although the rates are not similar to those of the chloromethyl ketones. Of the two classes, thiol proteases are more readily inactivated and the fluoromethyl ketones are almost as effective as the chloromethyl ketones. Our observations confirm and extend those of Rasnick (Anal. Biochem. 149, 461-465 (1985)). The structure of the peptidyl portion of the reagent controls specificity of inhibition in the typical manner of affinity-labels for proteases. However, fluoromethyl ketones are considerably less reactive to nucleophiles such as the thiol group of glutathione, than chloromethyl ketones and, therefore, this new class of inhibitors may provoke fewer side reactions when used in biological studies.

Amino Acids↗