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Pang-Chui Shaw

Publications and source records attributed to Pang-Chui Shaw.

22 records · Page 2Linked to original sources

Trichosanthin induces leakage and membrane fusion of liposome.

Trichosanthin (TCS) is a ribosome inactivating protein with multiple pharmacological properties. Here the interaction between TCS and a phospholipid bilayer is investigated to provide evidence for membrane translocation mechanism of TCS. The results show that TCS can destabilize liposomes made by phospholipids with negatively charged head group. The destabilization effect is pH-dependent and happens only under acidic conditions. Membrane fusion is also seen to accompany the destabilizing process. The interaction between a phospholipid bilayer and C7, a mutant of TCS with 7 residues at its C-terminus deleted, has been investigated. Deleting the C-terminus almost completely abolishes the destabilizing effect of TCS on the phospholipid bilayer, which implicates the C-terminus in the interaction between trichosanthin and the membrane.

Amino Acid Sequence↗

Substrate binding and catalysis in trichosanthin occur in different sites as revealed by the complex structures of several E85 mutants.

Trichosanthin (TCS) is a type I ribosome-inactivating protein (RIP) which possesses rRNA N-glycosidase activity. In recent years, its immunomodulatory, anti-tumor and anti-HIV properties have been revealed. Here we report the crystal structures of several E85 mutant TCS complexes with adenosine-5'-monophosphate (AMP) and adenine. In E85Q TCS/AMP and E85A TCS/AMP, near the active site of the molecule and parallel to the aromatic ring of Tyr70, an AMP molecule is bound to the mutant without being hydrolyzed. In the E85R TCS/adenine complex, the hydrolyzed product adenine is located in the active pocket where it occupies a position similar to that in the TCS/NADPH complex. Significantly, AMP is bound in a position different to that of adenine. In comparison with these structures, we suggest that there are at least two subsites in the active site of TCS, one for initial substrate recognition as revealed by the AMP site and another for catalysis as represented by the NADPH site. Based on these complex structures, the function of residue 85 and the mechanism of catalysis are proposed.

Adenine↗

Generation of a sequence characterized amplified region probe for authentication of crocodilian species.

A 209-base pair (bp) crocodilian-specific sequence characterized amplified region (SCAR) was identified from a 425-bp randomly amplified polymorphic DNA (RAPD) fragment. The 209-bp SCAR was produced from amplifications of DNA extracted from fresh and/or dry meat samples from at least three species of Crocodylus, Caiman crocodylus, and Alligator mississippiensis. No amplification was observed from DNA of other common animal species. The use of SCAR opens the way for quick authentication of crocodilian samples for conservation biology and trade regulation.

Alligators and Crocodiles↗

Expression of glycogen synthase kinase-3 isoforms in mouse tissues and their transcription in the brain.

Glycogen synthase kinase-3alpha and -3beta (GSK-3alpha and -3beta) are multi-substrate, serine/threonine-specific kinases that can phosphorylate microtubule-associated protein tau and other neuronal proteins. In this study, the expression level and mRNA distribution of two GSK-3 isoforms, GSK-3alpha and -3beta in mice were investigated. Northern blot analyses indicated that GSK-3alpha mRNA is encoded by a 2.5-kb transcript in adult tissues, whereas a 4.1-kb transcript was found in neonatal tissues. The GSK-3beta mRNA is encoded by a 1.6-kb transcript in the testis and a 7.6-kb transcript in the brain, and in many other adult tissues, but not neonatal tissues. Western blot analyses demonstrated that GSK-3beta protein was mainly expressed in the brain and heart, whereas GSK-3alpha was highly expressed in the brain, heart, and testis. A non-radioactive in situ hybridization study using specific digoxigenin-labeled RNA probes showed that GSK-3alpha and -3beta mRNAs were found in many brain regions, and were especially abundant in the hippocampus, cerebral cortex, and the Purkinje cells of the cerebellum. This implies the importance of GSK-3alpha and -3beta for brain function. The differential expression of GSK-3alpha and -3beta mRNAs as well as proteins in other tissues indicate that they play different roles in cellular functions and the developmental process.

Amino Acid Sequence↗