7 research outputs found

    Cockayne Syndrome: The many challenges and approaches to understand a multifaceted disease

    Get PDF
    The striking and complex phenotype of Cockayne syndrome (CS) patients combines progeria-like features with developmental deficits. Since the establishment of the in vitro culture of skin fibroblasts derived from patients with CS in the 1970s, significant progress has been made in the understanding of the genetic alterations associated with the disease and their impact on molecular, cellular, and organismal functions. In this review, we provide a historic perspective on the research into CS by revisiting seminal papers in this field. We highlighted the great contributions of several researchers in the last decades, ranging from the cloning and characterization of CS genes to the molecular dissection of their roles in DNA repair, transcription, redox processes and metabolism control. We also provide a detailed description of all pathological mutations in genes ERCC6 and ERCC8 reported to date and their impact on CS-related proteins. Finally, we review the contributions (and limitations) of many genetic animal models to the study of CS and how cutting-edge technologies, such as cell reprogramming and state-of-the-art genome editing, are helping us to address unanswered questions

    Mechanisms of resistance to chloroquine-induced toxicity in human glioma cells, and the use of induced pluripotent stem cells-derived human neurons as a model to study Cockayne syndrome.

    No full text
    O funcionamento pleno e harmônico de uma célula está intimamente associado à sua capacidade de manter a integridade genômica. Diversos agentes químicos e físicos exógenos, bem como produtos do próprio metabolismo celular, podem interagir com o DNA, causando danos a esta molécula. Em respota a esses eventos, um intrincado mecanismo de resposta a danos ao DNA é ativado, podendo culminar tanto na correção das lesões, como na ativação de programas de morte celular, como a apoptose, sempre com o intuito de preservar a homeostase tecidual. Falhas neste mecanismo estão associadas a um aumento nas taxas de mutação, que apesar de constituírem a base da diversidade genética e evolução das espécies, está intimimamente associado à tumorigênese e ao envelhecimento. Neste trabalho, dividido em duas partes, utilizamos células de glioma humano como modelo de estudo para quimioterapia adjuvante, bem como também utilizamos neurônios humanos obtidos à partir de células-tronco pluripotente-induzidas como modelo de estudo para a neurodegeneração característica da síndrome de Cockayne, uma doença genética na qual os pacientes apresentam deficiências em mecanismos de reparo de DNA, bem como envelhecimento precoce. Na primeira etapa, avaliamos a resposta de células de glioma a cloroquina, um promissor adjuvante no tratamento desta enfermidade, e notamos que a resistência das células a esta droga estava intimamente relacionada ao seu potencial de membrana mitocondrial, o qual podia ser desfeito por meio da inibição da quinase ATR. Apesar da função canônica desta proteína se dar através da regência da resposta a danos ao DNA, notamos que a sua participação como agente promotor de resistência à cloroquina se dava independentemente deste mecanismo. Também notamos que a combinação da cloroquina com a inibição de ATR via silenciamento gênico exercia um potente efeito tóxico sobre as células tumorais tratadas com o quimioterápico Temozolomida. Já na etapa final desta tese, através do emprego da reprogramação celular, obtivemos, pela primeira vez, neurônios humanos de pacientes portadores da síndrome de Cockayne a partir de fibroblastos de pele. Com este modelo de estudo, foi possível observar que esses neurônios apresentavam uma reduzida densidade de puncta sináptica, bem como uma aparente deficiência na sincronia de suas atividades. Por fim, por meio do sequenciamento do RNA destes neurônios, identificamos uma desregulação na expressão de diversas vias relacionadas ao funcionamento e comunicação neural. As implicações para o uso da cloroquina como adjuvante no tratamento de gliomas, bem como as vantagens do uso de neurônios humanos de Cockayne em detrimento aos modelos atualmente disponíveis, também são discutidos.Genome integrity is constantly threatened by chemical and physical exogenous agents, as well as products of cells own metabolism, and capability of cells to overcome these challenges is essential to achieve homeostasis. In response to DNA lesions, cells activate a dynamic and intricate DNA damage response that ultimately results either in lesion resolution, or in cell death through apoptosis. Regardless the fate chosen, tissue homeostasis is the ultimate goal. Flaws in this mechanism are associated to an increase in mutation rates. Although it constitutes the basis of genetic diversity and evolution, it is also strictly associated to tumorigenesis and aging. In this thesis, separated in two chapters, we used human glioma cells as a model to study adjuvant chemotherapy, and induced pluripotent stem cells-derived human neurons as a model to study neurodegeneration in Cockayne syndrome, a genetic disease in which patients display defects in DNA repair mechanisms, and also premature aging. In the first chapter, we investigated the response of cancer cells to chloroquine, a promising adjuvant drug in glioma therapy, and we noticed that cellsresistance to this drug was strictly associated to its mitochondrial membrane potential values, which could be dismantled through ATR inhibition. Interestingly, we noticed that the ability of ATR to promote resistance of glioma cells to chloroquine was independent of its canonical role in the DNA damage response. We also noticed that combined treatment of chloroquine to ATR inhibition through gene silencing exerted a powerful toxic effect on glioma cells treated with the chemotherapeutic Temozolomide. In the second chapter of this thesis, we employed cell reprogramming technique to obtain, for the first time, human neurons from Cockayen Syndrome patients from skin fibroblasts. With this model, we were able to identify a reduced density of synaptic puncta, as well as reduced synchrony in the activity of the patients neurons. Through RNA sequencing, we noticed several pathways related to synapses and neuronal function deregulated in Cockayne Sydrome patients neurons. Implications for the use of chloroquine as an adjuvant drug in glioma therapy, as well as the advantage of using iduced pluripotent stem cells-derived Cockayne syndrome human neurons (instead of currently available models) to study this disease, are also discussed

    Translesion synthesis mechanisms depend on the nature of DNA damage in UV-irradiated human cells

    No full text
    Ultraviolet-induced 6-4 photoproducts (6-4PP) and cyclobutane pyrimidine dimers (CPD) can be tolerated by translesion DNA polymerases (TLS Pols) at stalled replication forks or by gap-filling. Here, we investigated the involvement of Polη, Rev1 and Rev3L (Polζ catalytic subunit) in the specific bypass of 6-4PP and CPD in repair-deficient XP-C human cells. We combined DNA fiber assay and novel methodologies for detection and quantification of single-stranded DNA (ssDNA) gaps on ongoing replication forks and postreplication repair (PRR) tracts in the human genome. We demonstrated that Rev3L, but not Rev1, is required for postreplicative gap-filling, while Polη and Rev1 are responsible for TLS at stalled replication forks. Moreover, specific photolyases were employed to show that in XP-C cells, CPD arrest replication forks, while 6-4PP are responsible for the generation of ssDNA gaps and PRR tracts. On the other hand, in the absence of Polη or Rev1, both types of lesion block replication forks progression. Altogether, the data directly show that, in the human genome, Polη and Rev1 bypass CPD and 6-4PP at replication forks, while only 6-4PP are also tolerated by a Polζ-dependent gap-filling mechanism, independent of S phase

    Chloroquine - induced glioma cells death is associated with mitochondrial membrane potential loss, but not oxidative stress.

    No full text
    Chloroquine (CQ), a quinolone derivative widely used to treat and prevent malaria, has been shown to exert a potent adjuvant effect when combined with conventional glioblastoma therapy. Despite inducing lysosome destabilization and activating p53 in human glioma cells, the mechanisms under lying cell death induced by this drug are poorly under stood. Here, we analyzed inatime – anddose – dependent manner, the effects of CQ up on mitochondria integrity, autophagy regulation and redox processes in four human glioma cell lines that differin their resistance to this drug. NAC – containing media protected cells against CQ-induced loss of mitochondrial membrane potential (MMP), autophagyic vacuoles (LC3II) accumulation and loss of cell viability induced by CQ. However, we noticed that part of this protection was due to media acidification in NAC preparations, alerting for problems in experimental procedures using NAC. The results indicate that although CQ induces accumulation of LC3II, mitochondria, and oxidative stress, neither of these events is clearly correlated to cell death induced by this drug. The only event elicited in all cell lines at equitoxic doses of CQ was the loss of MMP, indicating that mitochondrial stability is important for cells resistance to this drug. Finally, the data indicate that higher steady-state MMP values can predict cell resistance to CQ treatment

    Biomass burning in the Amazon region causes DNA damage and cell death in human lung cells

    Get PDF
    Abstract Most of the studies on air pollution focus on emissions from fossil fuel burning in urban centers. However, approximately half of the world's population is exposed to air pollution caused by biomass burning emissions. In the Brazilian Amazon population, over 10 million people are directly exposed to high levels of pollutants resulting from deforestation and agricultural fires. This work is the first study to present an integrated view of the effects of inhalable particles present in emissions of biomass burning. Exposing human lung cells to particulate matter smaller than 10 µm (PM10), significantly increased the level of reactive oxygen species (ROS), inflammatory cytokines, autophagy, and DNA damage. Continued PM10 exposure activated apoptosis and necrosis. Interestingly, retene, a polycyclic aromatic hydrocarbon present in PM10, is a potential compound for the effects of PM10, causing DNA damage and cell death. The PM10 concentrations observed during Amazon biomass burning were sufficient to induce severe adverse effects in human lung cells. Our study provides new data that will help elucidate the mechanism of PM10-mediated lung cancer development. In addition, the results of this study support the establishment of new guidelines for human health protection in regions strongly impacted by biomass burning

    Cockayne Syndrome: The many challenges and approaches to understand a multifaceted disease

    No full text

    Guidelines for the use and interpretation of assays for monitoring autophagy (4th edition)

    No full text
    In 2008, we published the first set of guidelines for standardizing research in autophagy. Since then, this topic has received increasing attention, and many scientists have entered the field. Our knowledge base and relevant new technologies have also been expanding. Thus, it is important to formulate on a regular basis updated guidelines for monitoring autophagy in different organisms. Despite numerous reviews, there continues to be confusion regarding acceptable methods to evaluate autophagy, especially in multicellular eukaryotes. Here, we present a set of guidelines for investigators to select and interpret methods to examine autophagy and related processes, and for reviewers to provide realistic and reasonable critiques of reports that are focused on these processes. These guidelines are not meant to be a dogmatic set of rules, because the appropriateness of any assay largely depends on the question being asked and the system being used. Moreover, no individual assay is perfect for every situation, calling for the use of multiple techniques to properly monitor autophagy in each experimental setting. Finally, several core components of the autophagy machinery have been implicated in distinct autophagic processes (canonical and noncanonical autophagy), implying that genetic approaches to block autophagy should rely on targeting two or more autophagy-related genes that ideally participate in distinct steps of the pathway. Along similar lines, because multiple proteins involved in autophagy also regulate other cellular pathways including apoptosis, not all of them can be used as a specific marker for bona fide autophagic responses. Here, we critically discuss current methods of assessing autophagy and the information they can, or cannot, provide. Our ultimate goal is to encourage intellectual and technical innovation in the field
    corecore