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Differential DNA Damage Responses in p53 Proficient and Deficient Cells: Cisplatin-Induced Nuclear Import of XPA Is Independent of ATR Checkpoint in p53-Deficient Lung Cancer CellsLi, Zhengke, Musich, Phillip R., Zou, Yue 10 June 2011 (has links)
Nucleotide excision repair (NER) and ataxia telangiectasia mutated (ATM)/ATR (ATM- and RAD3-related) NA damage checkpoints are among the major pathways that affect the chemotherapeutic efficiency of the anticancer rug cisplatin. Xeroderma pigmentosum group A (XPA) protein plays a crucial role in NER including both global enome repair (GG-NER) and transcription-coupled repair (TC-NER) subpathways, and has been a potential target for mproving cisplatin therapeutic effects. We report here that XPA translocates from the cytosol into the nucleus after NA damage induced by UV irradiation and cisplatin, a mimetic of UV damage, in human cells with or without p53 deficiency. However, the damage-induced response of XPA nuclear import was significantly slower in p53-deficient cells than in p53-proficient cells. We also found that while XPA is imported into the nucleus upon cisplatin or UV damage in an ATR-dependent manner in p53-proficient A549 lung cancer cells, the ATR checkpoint pathway has no effect on the XPA nuclear import in p53-deficient H1299 lung cancer cells. Similarly, the XPA nuclear translocation is not regulated by ATM checkpoint or by p38MAPK/MK2 either. Our findings suggest that NER is independent on the major DNA damage checkpoint pathways in H1299 (p53-/-) cells and that DNA damage responses are mechanistically different between p53-proficient and p53-deficient cells. Our results also highlight the possibility of selectively targeting XPA nuclear import as a way to sensitize cisplatin anticancer activity, but targeting ATR/ATM-dependent checkpoints may not be helpful in killing p53-deficient cancer cells.
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Étude protéomique des partenaires d`interaction de XPA en présence et en absence de dommage à l`ADNSekheri, Meriem S. 01 1900 (has links)
La réparation par excision de nucléotides (NER) permet l'élimination des lésions provoquant une distorsion de la double hélice de l’ADN. Ces lésions sont induites par plusieurs agents environnementaux comme les rayons UV, ainsi que par certaines drogues chimio- thérapeutiques tel que le cisplatine. Des défauts dans la NER conduisent à de rares maladies autosomiques héréditaires : La xérodermie pigmentaire (XP), le syndrome de Cockayne (CS), le syndrome de sensibilité aux UVSS et la trichothiodystrophie (TTD). Ces maladies sont associées soit à une prédisposition élevée au cancer de la peau et / ou à de graves anomalies du développement neurologique. Le groupe de patients XP-A représente le deuxième groupe (XP) le plus fréquent, et possède la forme la plus sévère combinant cancer de la peau avec un haut risque de dégénérescence neurologique. À date, aucune explication n`a été proposée pour les symptômes neurologiques observés chez ces patients. Nous avions suggéré ainsi que la protéine XPA possède d`autres fonctions dans d`autres processus cellulaires, ceci en interagissant avec des partenaires protéiques différents de ceux déjà connus. Afin de confirmer cette hypothèse nous avions réalisé une étude protéomique à grande échelle en combinant la spectrométrie de masse à une immunoprécipitation en Tandem d`affinité (TAP), afin d`identifier de nouvelles protéines interagissant directement avec XPA. Nous avions montré que XPA peut interagir avec MRE11, la protéine clé de la réparation par recombinaison homologue. Des études additionnelles sont requises pour confirmer cette interaction et comprendre sa fonction / To maintain genome integrity and ensure the continuation of transcription, helix distorting DNA lesions induced by UV and other environmental mutagens are eliminated through a highly-versatile DNA repair pathway: nucleotide excision repair (NER). Mutations in 11 genes (XPC, XPE, XPB, XPD, XPG, XPA, XPG, TTD-A, CSA, CSB and UVSSA), among the 30 genes directly involved in NER, have been associated with the human genetic disorders: xeroderma pigmentosum (XP), cockayne syndrome (CS), trichothiodystrophy (TTD), and UV-sensitive syndrome (UVSS). Patients of these syndromes display a wide variety of clinical features that range from normal development with extreme predisposition to cancer, to neurodevelopmental defects associated with premature aging abnormalities. The connection between DNA damage and neurodegeneration remains unclear, i.e. cannot be explained by a DNA-repair deficiency alone, implying that various repair factors perform other functions beyond the repair process. XP-A is the second most common form of XP. XP-A cells have very low levels of NER activity and are sensitive to killing by UV light. It is one of the most severely affected XP groups, with the onset of cutaneous features, skin cancer, ocular features, and severe early onset neurological disease. Therefore we hypothesize that XPA interacts with cellular proteins that regulate its functions either in UV damage repair or in neurological development. To test this, our major aim was to carry out a large-scale proteomics investigation to identify novel interacting partners for XPA in the absence or presence of genotoxic stress, thus providing clues on the origins of neurodegeneration observed in many XP-A patients. We provide evidence that XPA can interact with MRE11, the key factor in repair of double strand breraks by homologous Recombination. Future experiments will be aimed at determining the impact of the XPA/MRE11 interaction functions in cells.
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DNA-Damage Accumulation and Replicative Arrest in Hutchinson-Gilford Progeria SyndromeMusich, Phillip R., Zou, Yue 01 December 2011 (has links)
A common feature of progeria syndromes is a premature aging phenotype and an enhanced accumulation of DNA damage arising from a compromised repair system. HGPS (Hutchinson-Gilford progeria syndrome) is a severe form of progeria in which patients accumulate progerin, a mutant lamin A protein derived from a splicing variant of the lamin A/C gene (LMNA). Progerin causes chromatin perturbations which result in the formation of DSBs (double-strand breaks) and abnormal DDR (DNA-damage response). In the present article, we review recent findings which resolve some mechanistic details of how progerin may disrupt DDR pathways in HGPS cells. We propose that progerin accumulation results in disruption of functions of some replication and repair factors, causing the mislocalization of XPA (xeroderma pigmentosum group A) protein to the replication forks, replication fork stalling and, subsequently, DNA DSBs. The binding of XPA to the stalled forks excludes normal binding by repair proteins, leading to DSB accumulation, which activates ATM (ataxia telangiectasia mutated) and ATR (ATM- and Rad3-related) checkpoints, and arresting cell-cycle progression.
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Xeroderma Pigmentosa Group a (XPA), Nucleotide Excision Repair and Regulation by ATR in Response to Ultraviolet IrradiationMusich, Phillip R., Li, Zhengke, Zou, Yue 01 January 2017 (has links)
The sensitivity of Xeroderma pigmentosa (XP) patients to sunlight has spurred the discovery and genetic and biochemical analysis of the eight XP gene products (XPA-XPG plus XPV) responsible for this disorder. These studies also have served to elucidate the nucleotide excision repair (NER) process, especially the critical role played by the XPA protein. More recent studies have shown that NER also involves numerous other proteins normally employed in DNA metabolism and cell cycle regulation. Central among these is ataxia telangiectasia and Rad3-related (ATR), a protein kinase involved in intracellular signaling in response to DNA damage, especially DNA damage-induced replicative stresses. This review summarizes recent findings on the interplay between ATR as a DNA damage signaling kinase and as a novel ligand for intrinsic cell death proteins to delay damage-induced apoptosis, and on ATR’s regulation of XPA and the NER process for repair of UV-induced DNA adducts. ATR’s regulatory role in the cytosolic-to-nuclear translocation of XPA will be discussed. In addition, recent findings elucidating a non-NER role for XPA in DNA metabolism and genome stabilization at ds-ssDNA junctions, as exemplified in prematurely aging progeroid cells, also will be reviewed.
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Papel das proteínas XPD e DNA polimerase eta nas respostas de células humanas a danos no genoma / Role of XPD and DNA polymerase eta in the response of human cells to DNA damageLerner, Leticia Koch 02 July 2014 (has links)
A via de Reparo por Excisão de Nucleotídeos (NER) é responsável pelo reparo das lesões causadas pela luz ultravioleta (UV) e de outras lesões capazes de distorcer a dupla hélice, bloqueando a replicação e a transcrição. Os pacientes que apresentam as síndromes recessivas raras Xeroderma Pigmentosum (XP), tricotiodistrofia (TTD) e síndrome de Cockayne (CS) possuem mutações em algum dos 11 genes relacionados ao NER e à transcrição basal. Mutações na proteína XPD levam ao surgimento de diferentes fenótipos: XP, TTD, XP/CS ou COFS (Cerebro-Oculo-Facio-Skeletal Syndrome), uma forma rara de CS. Os pacientes XP apresentam alta incidência de câncer de pele, o que não ocorre com os pacientes TTD e CS, além de poderem apresentar perda neuronal progressiva, enquanto todos os CS e TTD apresentam uma diminuição na mielinização do cérebro. As neuropatologias são provavelmente associadas a problemas no reparo de danos endógenos no DNA das células nervosas. Diversos trabalhos mostraram o envolvimento do NER no reparo desses danos, os quais pensava-se serem reparados apenas por outro mecanismo, o Reparo por Excisão de Base. Neste trabalho mostramos que fibroblastos de pacientes XP-D, XP-D/CS e TTD, portadores de mutações em XPD, são sensíveis ao estresse oxidativo induzido pelo tratamento com azul de metileno fotoativado, apresentando bloqueio prolongado no ciclo celular e permanência da sinalização de danos ao DNA. A complementação das diferentes linhagens com o gene XPD/ERCC2 foi capaz de restaurar a sobrevivência celular. Foram detectadas diferenças importantes na capacidade de reparo/retomada da transcrição após danos gerados por estresse oxidativo em DNA plasmidial, além da ativação de vias diferentes de morte celular: fibroblastos XP-D apresentam maior capacidade de reparo e apresentam morte por apoptose após estresse oxidativo, enquanto os fibroblastos XP-D/CS e TTD apresentam menor capacidade de reparo ativação de mais de uma via de morte celular (apoptose e necrose), diferenças que podem estar ligadas ao fenótipo dos pacientes. Mutações no gene codificante para a DNA polimerase n, POLH, estão associadas à forma variante de XP (XP-V). Pol n é uma polimerase especializada na síntese translesão (TLS) de fotoprodutos, além de estar implicada na TLS de outros tipos de lesões como bases oxidadas, e em vias não relacionadas à TLS como a hipermutação somática e à replicação de regiões de DNA com arquiteturas não-canônicas. Neste trabalho mostramos que os fibroblastos de pacientes XP-V apresentam sensibilidade ao estresse oxidativo. Mostramos uma indução da proteína pol n em fibroblastos primários após danos genotóxicos, associada ao aumento da capacidade de lidar com a parada na forquilha de replicação, possibilitando a continuidade da replicação do DNA e ao aumento da sobrevivência celular. Mostramos uma diferença na estabilidade genômica nos genes das imunoglobulinas dos pacientes XP-V idosos em comparação com os pacientes jovens e controles de idade pareada, mostrando que a ausência dessa polimerase pode estar ligada ao aumento da instabilidade genômica nesses genes / The Nucleotide Excision Repair (NER) pathway is responsible for the repair of UV photoproducts and other bulky lesions that block both replication and transcription. Patients with the rare recessive disorders Xeroderma Pigmentosum (XP), trichothiodystrophy (TTD) and Cockayne Syndrome (CS) carry mutations in one of the 11 NER genes, linked to repair and basal transcription. Mutations in XPD lead to different phenotypes: XP, TTD, XP/CS or COFS (Cerebro-Oculo-Facio-Skeletal Syndrome), a rare form of CS. XP patients have high incidence of skin cancer, which does not occur in TTD or CS patients, although ther may present neurodegeneration, while all CS and TTD patients have neurodevelopmental symptoms linked to dysmielynation. The pathology of these neurological diseases is probably associated with deficient repair of DNA lesions in nervous cells, generated by endogenous processes. Many groups including ours have demonstrated the involvement of NER in the repair of these lesions, previously thought to be exclusively repaired by Base Excision Repair. In this work we show high sensitivity of both primary and transformed XP-D, XP-D/CS and TTD human fibroblasts in response to oxidative stress generated by photoactivated methylene blue, with prolonged cell cycle arrest and DNA damage signaling. The complementation of the three different cell lines with the XPD/ERCC2 gene was able to restore cell survival. We detected important differences in repair capacity/transcription resumption after damage generated by oxidative stress in plasmid DNA, besides the activation of different cell death pathways: XP-D cells have higher repair capacity and die by apoptosis, while XP-D/CS and TTD cells have little repair capacity and activate more than one death pathway (apoptosis and necrosis). We believe these differences can be related to the patients\' phenotypes. Mutations in DNA polymerase n coding gene, POLH, are associated with the variant form of XP (XP-V). Pol n is a translesion synthesis (TLS) polymerase specialized in the TLS past CPD photoproducts, besides other lesions like oxidized bases, and in other processes like somatic hypermutation and DNA replication in structured regions. In this work we show XP-V human fibroblasts are sensitive to oxidative stress. We detected an induction of pol n after genotoxic stress in primary cells, associated with increased ability to deal with the stalled replication fork, and consequently to DNA replication restart and cell survival. In addition, we detected a difference in genomic stability in immunoglobulin genes in aged XP-V patients in comparison to both young patients and age-matched controls, showing the absence of this polymerase may be linked to increased genomic instability in these genes
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Papel das proteínas XPD e DNA polimerase eta nas respostas de células humanas a danos no genoma / Role of XPD and DNA polymerase eta in the response of human cells to DNA damageLeticia Koch Lerner 02 July 2014 (has links)
A via de Reparo por Excisão de Nucleotídeos (NER) é responsável pelo reparo das lesões causadas pela luz ultravioleta (UV) e de outras lesões capazes de distorcer a dupla hélice, bloqueando a replicação e a transcrição. Os pacientes que apresentam as síndromes recessivas raras Xeroderma Pigmentosum (XP), tricotiodistrofia (TTD) e síndrome de Cockayne (CS) possuem mutações em algum dos 11 genes relacionados ao NER e à transcrição basal. Mutações na proteína XPD levam ao surgimento de diferentes fenótipos: XP, TTD, XP/CS ou COFS (Cerebro-Oculo-Facio-Skeletal Syndrome), uma forma rara de CS. Os pacientes XP apresentam alta incidência de câncer de pele, o que não ocorre com os pacientes TTD e CS, além de poderem apresentar perda neuronal progressiva, enquanto todos os CS e TTD apresentam uma diminuição na mielinização do cérebro. As neuropatologias são provavelmente associadas a problemas no reparo de danos endógenos no DNA das células nervosas. Diversos trabalhos mostraram o envolvimento do NER no reparo desses danos, os quais pensava-se serem reparados apenas por outro mecanismo, o Reparo por Excisão de Base. Neste trabalho mostramos que fibroblastos de pacientes XP-D, XP-D/CS e TTD, portadores de mutações em XPD, são sensíveis ao estresse oxidativo induzido pelo tratamento com azul de metileno fotoativado, apresentando bloqueio prolongado no ciclo celular e permanência da sinalização de danos ao DNA. A complementação das diferentes linhagens com o gene XPD/ERCC2 foi capaz de restaurar a sobrevivência celular. Foram detectadas diferenças importantes na capacidade de reparo/retomada da transcrição após danos gerados por estresse oxidativo em DNA plasmidial, além da ativação de vias diferentes de morte celular: fibroblastos XP-D apresentam maior capacidade de reparo e apresentam morte por apoptose após estresse oxidativo, enquanto os fibroblastos XP-D/CS e TTD apresentam menor capacidade de reparo ativação de mais de uma via de morte celular (apoptose e necrose), diferenças que podem estar ligadas ao fenótipo dos pacientes. Mutações no gene codificante para a DNA polimerase n, POLH, estão associadas à forma variante de XP (XP-V). Pol n é uma polimerase especializada na síntese translesão (TLS) de fotoprodutos, além de estar implicada na TLS de outros tipos de lesões como bases oxidadas, e em vias não relacionadas à TLS como a hipermutação somática e à replicação de regiões de DNA com arquiteturas não-canônicas. Neste trabalho mostramos que os fibroblastos de pacientes XP-V apresentam sensibilidade ao estresse oxidativo. Mostramos uma indução da proteína pol n em fibroblastos primários após danos genotóxicos, associada ao aumento da capacidade de lidar com a parada na forquilha de replicação, possibilitando a continuidade da replicação do DNA e ao aumento da sobrevivência celular. Mostramos uma diferença na estabilidade genômica nos genes das imunoglobulinas dos pacientes XP-V idosos em comparação com os pacientes jovens e controles de idade pareada, mostrando que a ausência dessa polimerase pode estar ligada ao aumento da instabilidade genômica nesses genes / The Nucleotide Excision Repair (NER) pathway is responsible for the repair of UV photoproducts and other bulky lesions that block both replication and transcription. Patients with the rare recessive disorders Xeroderma Pigmentosum (XP), trichothiodystrophy (TTD) and Cockayne Syndrome (CS) carry mutations in one of the 11 NER genes, linked to repair and basal transcription. Mutations in XPD lead to different phenotypes: XP, TTD, XP/CS or COFS (Cerebro-Oculo-Facio-Skeletal Syndrome), a rare form of CS. XP patients have high incidence of skin cancer, which does not occur in TTD or CS patients, although ther may present neurodegeneration, while all CS and TTD patients have neurodevelopmental symptoms linked to dysmielynation. The pathology of these neurological diseases is probably associated with deficient repair of DNA lesions in nervous cells, generated by endogenous processes. Many groups including ours have demonstrated the involvement of NER in the repair of these lesions, previously thought to be exclusively repaired by Base Excision Repair. In this work we show high sensitivity of both primary and transformed XP-D, XP-D/CS and TTD human fibroblasts in response to oxidative stress generated by photoactivated methylene blue, with prolonged cell cycle arrest and DNA damage signaling. The complementation of the three different cell lines with the XPD/ERCC2 gene was able to restore cell survival. We detected important differences in repair capacity/transcription resumption after damage generated by oxidative stress in plasmid DNA, besides the activation of different cell death pathways: XP-D cells have higher repair capacity and die by apoptosis, while XP-D/CS and TTD cells have little repair capacity and activate more than one death pathway (apoptosis and necrosis). We believe these differences can be related to the patients\' phenotypes. Mutations in DNA polymerase n coding gene, POLH, are associated with the variant form of XP (XP-V). Pol n is a translesion synthesis (TLS) polymerase specialized in the TLS past CPD photoproducts, besides other lesions like oxidized bases, and in other processes like somatic hypermutation and DNA replication in structured regions. In this work we show XP-V human fibroblasts are sensitive to oxidative stress. We detected an induction of pol n after genotoxic stress in primary cells, associated with increased ability to deal with the stalled replication fork, and consequently to DNA replication restart and cell survival. In addition, we detected a difference in genomic stability in immunoglobulin genes in aged XP-V patients in comparison to both young patients and age-matched controls, showing the absence of this polymerase may be linked to increased genomic instability in these genes
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