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Samantha Lien

Publications and source records attributed to Samantha Lien.

4 recordsLinked to original sources

A substrate-phage approach for investigating caspase specificity.

We have developed a substrate-phage approach for examining the substrate specificities of an important group of proteases involved in apoptosis--the caspases. After establishing selection conditions with caspases-3 and caspase-8 vs control substrate-phage, we sorted X4 and X6 diversity libraries, identified consensus motifs that agree with previously defined caspase substrate motifs, confirmed the selection of active substrates using synthetic peptide rate assays under a range of buffer conditions, and compared kinetic parameters for selected substrates. The libraries produced some variations on the canonical motifs. From caspase-3 selections, a phage-derived synthetic peptide, DLVD, was hydrolyzed up to 170% faster than the canonical substrate DEVD. The P4 Asp residue was essential for good protease-sensitivity, but even substrates with substitutions at P4 were selected by phage and shown to be hydrolyzed. Caspase-8 selections, as expected, yielded predominantly clones containing a Glu at P3. In this case, the most frequent phage-derived peptide, LEVD, was cleaved at a rate of only 20% of the canonical caspase-8 substrate LETD. However, based on substitutions observed in the phage selectants at P4, a substrate peptide, AETD, was designed and shown to be hydrolyzed up to 160% faster than LETD. We consider factors that may contribute to differences in caspase substrate-phage selections vs synthetic peptide studies on the caspases, and suggest that the two approaches may offer complementary information.

Amino Acid Motifs↗

Isolating substrates for an engineered alpha-lytic protease by phage display.

Panning of a substrate phage library with an alpha-lytic protease mutant showed that substrate phage display can be used to isolate sequences with improved protease sensitivity even for proteases of relatively broad specificity. Two panning experiments were performed with an engineered alpha-lytic protease mutant known to have a preference for cleavage after His or Met residues. Both experiments led to the isolation of protease-sensitive phage containing linker sequences in which His and Met residues were enriched compared with the initial library. Despite the relatively hydrophobic substrate binding site of the enzyme, the predominant protease-sensitive sequence isolated from the second library panning had the sequence Asp-Ser-Thr-Met. Kinetic studies showed that this sequence was cleaved up to 4.5-fold faster than rationally designed positive controls. Protease-resistant phage particles were also selected and characterized, with the finding that Gly and Pro appeared frequently at the putative P4 positions, whereas Asp dominated the putative P1 position.

Amino Acid Motifs↗

The polymorphic human glutathione transferase T1-1, the most efficient glutathione transferase in the denitrosation and inactivation of the anticancer drug 1,3-bis(2-chloroethyl)-1-nitrosourea.

A member of the Theta class of human glutathione transferases (GST T1-1) was found to display the greatest catalytic activity towards the cytostatic drug 1,3-bis(2-chloroethyl)-1-nitrosourea (BCNU) of the GSTs studied. In this investigation (the most extensive to date), enzymes from four classes of the soluble human GSTs were heterologously expressed, purified, and kinetically characterized. From the 12 enzymes examined, only GST M2-2, GST M3-3 and GST T1-1 had significant activities with BCNU. This establishes that the activity is not a characteristic of a particular class of GSTs. Although GST M3-3 was previously reported to have the greatest activity with BCNU, the current investigation demonstrates that GST M2-2 is equally active and that GST T1-1 has an approximately 20-fold higher specific activity than either of the Mu class enzymes. A more rigorous kinetic analysis of GST T1-1 gave the following parameters with BCNU: a k(cat) of 0.035 +/-0.003s(-1) and a K(M) of 1.0 +/- 0.1mM. The finding that GST T1-1 has the highest activity towards BCNU is significant since GST T1-1 is expressed in the brain, a common target for BCNU treatment. Furthermore, the existence of a GST T1-1 null allele in up to 60% in some populations, may influence both the sensitivity of tumors to chemotherapy and the severity of adverse side-effects in patients treated with this agent.

Amino Acids↗