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Jean Y Kuan

Publications and source records attributed to Jean Y Kuan.

2 recordsLinked to original sources

Targeted cross-linking of the human beta-globin gene in living cells mediated by a triple helix forming oligonucleotide.

Triple helix forming oligonucleotides (TFOs) may have utility as gene targeting reagents for "in situ" gene therapy of genetic disorders. Triplex formation is challenged by negative charge repulsion between third strand and duplex phosphates, and destabilizing positive charge repulsion between adjacent protonated cytosines within pyrimidine motif third strands. Here we describe the synthesis of TFOs designed to target a site in the human beta-globin gene, which is the locus for mutations that underlie the beta-globinopathies, including sickle cell anemia. The target is an uninterrupted polypurine:polypyrimidine sequence, containing four adjacent cytosines, next to a psoralen cross-link site. Pyrimidine motif TFOs that contained four adjacent cytosines or 5-methylcytosines did not form stable triplexes at physiological pH, despite the introduction of otherwise stabilizing base and sugar analogues. We synthesized a series of pso-TFOs containing 2'-O-methyl (OMe) and 2'-O-aminoethoxy substitutions (AE), as well as 8-oxo-adenine (A8) and 2'-O-methylpseudoisocytidine (P) as neutral cytosine replacements. Thermal stability measurements indicated that TFOs with A8 did not meet criteria established in previous work. However, TFOs with P did form triplexes with appropriate T(m) and k(ON) values. A pso-TFO with AE and P residues was sufficiently active to permit the determination of targeting in living cells by direct measurement of cross-link formation at the target site. Our results validate the modification format described in our previous studies and indicate that P substitutions are an effective solution to the problem of targeting genomic sequences containing adjacent cytosines.

Adenine↗

Targeted gene modification using triplex-forming oligonucleotides.

In recent years, triplex-forming oligonucleotides (TFOs) have emerged as powerful tools for site-specific gene modification. Their sequence specificity, binding affinity, and ability to provoke repair and recombination make them promising reagents for altering gene expression. This chapter highlights the binding requirements for triplex formation, identifies a number of chemical modifications that have been used with some success, and discusses studies using TFOs for inhibiting transcription. It also reviews work done using TFOs and related molecules to direct site-specific DNA damage, inducing mutagenesis or sensitizing a site to recombination. TFOs were initially used as positioning devices for nonspecific mutagens but were later discovered to have mutagenic properties of their own in cells with functional nucleotide excision repair (NER) and transcription-coupled repair (TCR) pathways. In subsequent studies triplex formation was able to induce both intramolecular and intermolecular homologous recombination, revealing its potential application for gene therapy. Recent reports demonstrate the ability of these molecules to locate and modify their cognate sites in chromosomal DNA in both cell culture and live animals, laying the foundation for triplex technology in vivo.

Animals↗