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DESCRIPTION (provided by applicant): Platinum (Pt) based therapies have proven to be curative treatments for a subset of cancers including the majority of testicular cancers. A large number of other cancer types including ovarian and lung, respond to Pt-based therapies which typically employ either cisplatin or carboplatin. Despite good initial responses in these cancers, tumor recurrence and resistance represent a significant and continuing clinical problem. The efficacy of these Pt-based therapies is a function of the formation of Pt-DNA adducts versus the removal of these adducts via DNA repair pathways. Removal of cisplatin-DNA lesions from the genome is catalyzed by the nucleotide excision repair (NER) pathway and is detrimental to treatment efficacy. In addition, while resistance to Pt-based therapies is typically multifactorial, clinical resistance often contains a DNA repair component. The goals of this work are to elucidate the molecular mechanism by which cisplatin-DNA damage is recognized and repaired by the NER pathway and to determine how perturbing the pathway influences cisplatin efficacy. Three Specific Aims are proposed to achieve the stated goals. In Aim 1 we will continue our study of the DNA damage recognition process by NER proteins. We will expand our focus to include the damage DNA binding protein (DDB) and the TFIIH complex. Building on the work accomplished in the previous grant periods with replication protein A (RPA), XPA and more recently XPC/hHR23B, we will use a novel combination of in vitro methodologies to construct a comprehensive structural, kinetic and biochemical model of the cisplatin-DNA recognition process by NER proteins. In Aim 2 we will employ a chemical genetics approach and develop small molecule inhibitors of NER DNA damage recognition proteins. Using these molecular tools we will determine how perturbing DNA damage recognition proteins influence in vitro DNA replication, repair and recombination pathways. In the third and final Aim we will assess how these inhibitors and perturbations of proteins involved in the damage recognition process influence cell proliferation, cell cycle progression, and ultimately cisplatin activity. The knowledge and molecular tools generated by this novel, innovative approach will likely impact the development of therapies targeting these pathways to overcome clinical resistance to cisplatin. The ultimate goal of this research is to translate the curative Pt-based therapies evident in certain cancers, to a wider array of cancers, including ovarian and lung.
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Intrinsic hTRF1 fluorescence quenching reveals details of telomere DNA binding activity: impact of DNA length, structure and position of telomeric repeats.
内在 hTRF1 荧光猝灭揭示了端粒 DNA 结合活性的细节:DNA 长度、端粒重复结构和位置的影响。
DOI: 10.1016/j.abb.2009.10.015
发表时间: 2010
期刊: Archives of biochemistry and biophysics
影响因子: 3.9
作者: [Tahmaseb,Kambiz, Turchi,JohnJ]
通讯作者: Turchi,JohnJ
A mechanism for DNA-PK activation requiring unique contributions from each strand of a DNA terminus and implications for microhomology-mediated nonhomologous DNA end joining.
DNA-PK激活的一种机制,需要从DNA末端的每个链中产生独特的贡献,以及对微学介导的非同源DNA末端连接的意义。
DOI: 10.1093/nar/gkn344
发表时间: 2008-07
期刊: NUCLEIC ACIDS RESEARCH
影响因子: 14.9
作者: [Pawelczak, Katherine S., Turchi, John J.]
通讯作者: Turchi, John J.
DOI: 10.1158/0008-5472.can-09-3422
发表时间: 2010-04-15
期刊: Cancer research
影响因子: 11.2
作者: [Shuck SC, Turchi JJ]
通讯作者: Turchi JJ
DOI: 10.1158/1535-7163.mct-11-0303
发表时间: 2011-10
期刊: Molecular cancer therapeutics
影响因子: 5.7
作者: [Neher TM, Bodenmiller D, Fitch RW, Jalal SI, Turchi JJ]
通讯作者: Turchi JJ
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    Novel DNA damage response therapeutics targeting replication protein A
    Novel DNA damage response therapeutics targeting replication protein A
    Novel DNA damage response therapeutics targeting replication protein A
    Targeting nucleotide excision repair in combination cancer therapy
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