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H T Luu

Publications and source records attributed to H T Luu.

5 recordsLinked to original sources

Genetic selection for and molecular dynamic modeling of a protein transmembrane domain multimerization motif from a random Escherichia coli genomic library.

In order to identify new transmembrane helix packing motifs in naturally occurring proteins, we have selected transmembrane domains from a library of random Escherichia coli genomic DNA fragments and screened them for homomultimerization via their abilities to dimerize the bacteriophage lambda cI repressor DNA-binding domain. Sequences were isolated using a modified lambda cI headpiece dimerization assay system, which was shown previously to measure transmembrane helix-helix association in the E. coli inner membrane. Screening resulted in the identification of several novel sequences that appear to mediate helix-helix interactions. One sequence, representing the predicted sixth transmembrane domain (TM6) of the E. coli protein YjiO, was chosen for further analysis. Using site-directed mutagenesis and molecular dynamics, a small set of models for YjiO TM6 multimerization interface interactions were generated. This work demonstrates the utility of combining in vivo genetic tools with computational systems for understanding membrane protein structure and assembly.

Amino Acid Motifs↗

Precise excision and transposition of piggyBac in pink bollworm embryos.

Transposable elements such as P, hobo, Hermes, mariner and Minos have been successfully harnessed as gene vectors to achieve the transformation of several dipteran species including Drosophila melanogaster, Ceratitis capitata and Aedes aegypti. Plasmid-based excision and transposition assays have been useful indicators of an element's ability to be mobilized in vivo and thus potentially serve as a transforming vector. We report that the transposable element piggyBac is capable of precise excision and transposition in the pink bollworm (Pectinophora gossypiella), a worldwide pest of cultivated cotton. Combined with a suitable marker gene, the piggyBac element may serve as a vector for germline transformation in this and (potentially) other lepidopteran species.

Animals↗

Cytotoxic quinolines (part 1). Azolylalkyloxy quinolines and 1-azolylalkyl-4(1H)-quinolones.

A series of 4-azolylalkyloxyquinolines and 1-azolylalkyl-4(1H)-quinolones has been synthesized and evaluated for cytotoxicity against various cancer cell lines. 1-Phenyl-1,2,3-triazole and 1-methylpyrazole were found to be the most effective azoles. The length of the alkyl chain was critical, with 8 to 10 carbon atoms being optimal. Several of the compounds were found to be very cytotoxic in vitro towards various cancer cells. Compounds 9o, 10k, and 10r were evaluated in vivo, but were ineffective and exhibited acute general toxicity at higher dosages.

Animals↗

Cytotoxic quinolines (part 2). Azolylalkylamino and-thio quinolines.

A series of azolylalkylaminoquinolines and azolylalkylthioquinolines was synthesized and evaluated for cytotoxicity against various cancer cell lines. Structure-activity relationships previously established for azolylalkyloxyquinolines were generally found to apply for the present compounds. The azolylalkylaminoquinolines were found to be more cytotoxic than the corresponding thio compounds. Oxidation of 11a to sulfones 12 and 13 resulted in a reduction of cytotoxicity. Several of the compounds were found to be very cytotoxic in vitro towards different cancer cell lines. Compound 7d, the most cytotoxic in vitro against the P388 cell line in this series, was ineffective in vivo and exhibited significant general toxicity at higher dosages.

Aminoquinolines↗