Mechanism of Triplex DNA Damage and Repair in Skin Cells
Mechanism of Triplex DNA Damage and Repair in Skin Cells
批准号:
7105077
负责人:
DENNIS H OH
金额:
$21.9万
依托单位国家:
美国
项目类别:
财政年份:
2003
资助国家:
美国
项目状态:
已结题
起止时间:
2003-08-01 至 2008-05-31
中文摘要
描述(由申请人提供):皮肤细胞必须对环境暴露和治疗剂引起的DNA损伤作出反应。其中一种反应是DNA修复,这是细胞识别、移除和替换基因组损伤的过程。DNA修复缺陷是几种遗传性疾病的基础,这些疾病使个体易患皮肤癌、光敏性和发育缺陷。虽然受损的随机DNA损伤的修复是有害的,靶向DNA损伤和选择性抑制其修复在某些基因可能是可取的,以达到治疗效果。三聚体形成寡核苷酸(TFOs)靶向DNA损伤剂的特定核苷酸序列已成为一种有前途的基因治疗方法。tfo造成了结构上非常规的DNA损伤,可以让我们深入了解正常DNA修复的机制,这实际上可能模拟了与皮肤疾病有关的自然发生的大分子相互作用,并有可能发展成为一种实用的皮肤基因治疗形式。该项目的总体目标是了解和操纵TFOs如何将补骨脂素光加合物靶向皮肤来源细胞中的间质胶原酶基因,并确定修复这种不寻常的大分子损伤的分子基础。假设TFO和染色质结构积极调节一种独特形式的大分子DNA损伤的传递和修复,并且存在新的细胞机制来修复这种类型的损伤。为了验证这一假设,该项目的具体目的是:1)评估TFO结构在基因组靶点补骨脂素光加合物损伤的传递和修复中的作用。具有修饰骨架的tfo将被评估其靶向补骨脂素光合物并介导其间质胶原酶基因修复的能力;2)确定染色质结构和基因活性在tfo靶向DNA损伤和修复中的作用。一般或局部破坏染色质结构或改变转录的外源性药物将被检查影响TFO靶点损伤和修复的可及性的能力;3)探讨核苷酸切除修复在TFOs靶向补骨脂素加合物去除中的作用机制。结构TFO变异和DNA修复缺陷的人类细胞系将被用来剖析核苷酸切除修复在处理不同TFO靶向的补骨脂素光合物中的作用;4)评价细胞解旋酶在TFO损伤修复中的作用。具有不同解旋酶活性或缺乏解旋酶的细胞系将用于确定这些酶是否参与tfo介导的损伤的处理。在项目结束时,所提出的工作将有助于我们对DNA修复机制的基本认识,并为通过操纵DNA损伤和修复来指导TFOs的治疗应用提供基本原则。
英文摘要
DESCRIPTION (provided by applicant): Skin cells must respond to DNA damage caused by both environmental exposure as well as therapeutic agents. One response, DNA repair, is the process by which cells recognize, remove and replace lesions in their genomes. Defects in DNA repair underlie several heritable diseases that predispose individuals to skin cancer, photosensitivity and developmental defects. Although impaired repair of random DNA damage is deleterious, targeted DNA damage and selective inhibition of its repair in certain genes can be desirable to achieve a therapeutic effect. Triplex-forming oligonucleotides (TFOs) that target a DNA damaging agent to a specific nucleotide sequence have emerged as a promising approach for gene therapy. TFOs create structurally unconventional types of DNA damage that can provide insight into the mechanisms of normal DNA repair, that may actually mimic naturally occurring macromolecular interactions that are involved in diseases of the skin, and that have potential to develop into a practical form of cutaneous gene therapy. The overall objective of the proposed project is to understand and manipulate how TFOs target psoralen photoadducts to the interstitial collagenase gene in skin derived cells, and to identify the molecular basis for repair of this unusual macromolecular damage. The hypothesis is that TFO and chromatin structures actively modulate both delivery and repair of a unique form of macromolecular DNA damage, and that novel cellular mechanisms exist to repair this type of damage. To test this hypothesis, the specific aims of the project are: 1) To assess the role of TFO structure in delivery and repair of psoralen photoadduct damage in genomic targets. TFOs with modified backbones will be assessed for their ability to target psoralen photoadducts and mediate their repair in the interstitial collagenase gene; 2) To determine the role of chromatin structure and gene activity in TFO-targeted DNA damage and repair. Exogenous agents that generally or focally disrupt chromatin structure or that alter transcription will be examined for the ability to affect accessibility of TFO target sites to damage and repair; 3) To determine the mechanism of nucleotide excision repair in removal of psoralen adducts targeted by TFOs. Structural TFO variants and human cell lines defective in DNA repair will be used to dissect the role of nucleotide excision repair in processing psoralen photoadducts targeted by different TFOs; 4) To assess the role of cellular helicases in repairing TFO lesions. Cell lines with different helicase activities or deficiencies will be used to determine if these enzymes participate in processing of TFO-mediated damage. At the conclusion of the project period, the proposed work should contribute to our fundamental knowledge of DNA repair mechanisms as well as provide basic principles to guide therapeutic applications of TFOs by manipulating DNA damage and repair.
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