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Dive into the research topics where Edel Kavanagh is active.

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Featured researches published by Edel Kavanagh.


Nature | 2011

Caspase signalling controls microglia activation and neurotoxicity

Miguel Angel Burguillos; Tomas Deierborg; Edel Kavanagh; Annette Persson; Nabil Hajji; Albert Garcia-Quintanilla; Josefina Cano; Patrik Brundin; Elisabet Englund; J.L. Venero; Bertrand Joseph

Activation of microglia and inflammation-mediated neurotoxicity are suggested to play a decisive role in the pathogenesis of several neurodegenerative disorders. Activated microglia release pro-inflammatory factors that may be neurotoxic. Here we show that the orderly activation of caspase-8 and caspase-3/7, known executioners of apoptotic cell death, regulate microglia activation through a protein kinase C (PKC)-δ-dependent pathway. We find that stimulation of microglia with various inflammogens activates caspase-8 and caspase-3/7 in microglia without triggering cell death in vitro and in vivo. Knockdown or chemical inhibition of each of these caspases hindered microglia activation and consequently reduced neurotoxicity. We observe that these caspases are activated in microglia in the ventral mesencephalon of Parkinson’s disease (PD) and the frontal cortex of individuals with Alzheimer’s disease (AD). Taken together, we show that caspase-8 and caspase-3/7 are involved in regulating microglia activation. We conclude that inhibition of these caspases could be neuroprotective by targeting the microglia rather than the neurons themselves.


Oncogene | 2011

Histone onco-modifications

Jens Füllgrabe; Edel Kavanagh; Bertrand Joseph

Post-translational modification of histones provides an important regulatory platform for processes such as gene expression, DNA replication and repair, chromosome condensation and segregation and apoptosis. Disruption of these processes has been linked to the multistep process of carcinogenesis. We review the aberrant covalent histone modifications observed in cancer, and discuss how these epigenetic changes, caused by alterations in histone-modifying enzymes, can contribute to the development of a variety of human cancers. As a conclusion, a new terminology ‘histone onco-modifications’ is proposed to describe post-translational modifications of histones, which have been linked to cancer. This new term would take into account the active contribution and importance of these histone modifications in the development and progression of cancer.


Biochimica et Biophysica Acta | 2011

The hallmarks of CDKN1C (p57, KIP2) in cancer

Edel Kavanagh; Bertrand Joseph

Cyclin-dependent kinase inhibitor 1C CDKN1C (p57(KIP2)) regulates several hallmarks of cancer, including apoptosis, cell invasion and metastasis, tumor differentiation and angiogenesis. p57(KIP2) is generally not mutated in cancer, but its expression is downregulated through epigenetic changes such as DNA methylation and repressive histone marks at the promoter. This opens up possibilities for therapeutic intervention through reactivation of p57(KIP2) gene expression. Furthermore, p57(KIP2) has been tested as a prognostic factor for many types of cancer, even differentiating between early and late stage cancer. In this review, the multifunctional tumor suppressor capabilities of p57(KIP2), the mechanisms of p57(KIP2) transcriptional repression in cancer, and the therapeutic potential of reactivation of p57(KIP2) protein expression will be discussed.


Cell Death and Disease | 2014

Regulation of caspase-3 processing by cIAP2 controls the switch between pro-inflammatory activation and cell death in microglia

Edel Kavanagh; Johanna Rodhe; Miguel Angel Burguillos; J.L. Venero; Bertrand Joseph

The activation of microglia, resident immune cells of the central nervous system, and inflammation-mediated neurotoxicity are typical features of neurodegenerative diseases, for example, Alzheimers and Parkinsons diseases. An unexpected role of caspase-3, commonly known to have executioner role for apoptosis, was uncovered in the microglia activation process. A central question emerging from this finding is what prevents caspase-3 during the microglia activation from killing those cells? Caspase-3 activation occurs as a two-step process, where the zymogen is first cleaved by upstream caspases, such as caspase-8, to form intermediate, yet still active, p19/p12 complex; thereafter, autocatalytic processing generates the fully mature p17/p12 form of the enzyme. Here, we show that the induction of cellular inhibitor of apoptosis protein 2 (cIAP2) expression upon microglia activation prevents the conversion of caspase-3 p19 subunit to p17 subunit and is responsible for restraining caspase-3 in terms of activity and subcellular localization. We demonstrate that counteracting the repressive effect of cIAP2 on caspase-3 activation, using small interfering RNA targeting cIAP2 or a SMAC mimetic such as the BV6 compound, reduced the pro-inflammatory activation of microglia cells and promoted their death. We propose that the different caspase-3 functions in microglia, and potentially other cell types, reside in the active caspase-3 complexes formed. These results also could indicate cIAP2 as a possible therapeutic target to modulate microglia pro-inflammatory activation and associated neurotoxicity observed in neurodegenerative disorders.


Nature Immunology | 2016

Glioma-induced inhibition of caspase-3 in microglia promotes a tumor-supportive phenotype

Xianli Shen; Miguel Angel Burguillos; Ahmed M. Osman; Jeroen Frijhoff; Alejandro Carrillo-Jiménez; Sachie Kanatani; Martin Augsten; Dalel Saidi; Johanna Rodhe; Edel Kavanagh; Anthony Rongvaux; Vilma Rraklli; Ulrika Nyman; Johan Holmberg; Arne Östman; Richard A. Flavell; Antonio Barragan; J.L. Venero; Klas Blomgren; Bertrand Joseph

Glioma cells recruit and exploit microglia (the resident immune cells of the brain) for their proliferation and invasion ability. The underlying molecular mechanism used by glioma cells to transform microglia into a tumor-supporting phenotype has remained elusive. We found that glioma-induced microglia conversion was coupled to a reduction in the basal activity of microglial caspase-3 and increased S-nitrosylation of mitochondria-associated caspase-3 through inhibition of thioredoxin-2 activity, and that inhibition of caspase-3 regulated microglial tumor-supporting function. Furthermore, we identified the activity of nitric oxide synthase 2 (NOS2, also known as iNOS) originating from the glioma cells as a driving stimulus in the control of microglial caspase-3 activity. Repression of glioma NOS2 expression in vivo led to a reduction in both microglia recruitment and tumor expansion, whereas depletion of microglial caspase-3 gene promoted tumor growth. Our results provide evidence that inhibition of the denitrosylation of S-nitrosylated procaspase-3 mediated by the redox protein Trx2 is a part of the microglial pro-tumoral activation pathway initiated by glioma cancer cells.


Cell Death and Disease | 2012

p57 KIP2 control of actin cytoskeleton dynamics is responsible for its mitochondrial pro-apoptotic effect

Edel Kavanagh; P Vlachos; V Emourgeon; Johanna Rodhe; Bertrand Joseph

p57 (Kip2, cyclin-dependent kinase inhibitor 1C), often found downregulated in cancer, is reported to hold tumor suppressor properties. Originally described as a cyclin-dependent kinase (cdk) inhibitor, p57KIP2 has since been shown to influence other cellular processes, beyond cell cycle regulation, including cell death and cell migration. Inhibition of cell migration by p57KIP2 is attributed to the stabilization of the actin cytoskeleton through the activation of LIM domain kinase-1 (LIMK-1). Furthermore, p57KIP2 is able to enhance mitochondrial-mediated apoptosis. Here, we report that the cell death promoting effect of p57KIP2 is linked to its effect on the actin cytoskeleton. Indeed, whereas Jasplakinolide, an actin cytoskeleton-stabilizing agent, mimicked p57KIP2’s pro-apoptotic effect, destabilizing the actin cytoskeleton with cytochalsin D reversed p57KIP2’s pro-apoptotic function. Conversely, LIMK-1, the enzyme mediating p57KIP2’s effect on the actin cytoskeleton, was required for p57KIP2’s death promoting effect. Finally, p57KIP2-mediated stabilization of the actin cytoskeleton was associated with the displacement of hexokinase-1, an inhibitor of the mitochondrial voltage-dependent anion channel, from the mitochondria, providing a possible mechanism for the promotion of the mitochondrial apoptotic cell death pathway. Altogether, our findings link together two tumor suppressor properties of p57KIP2, by showing that the promotion of cell death by p57KIP2 requires its actin cytoskeleton stabilization function.


Methods of Molecular Biology | 2013

Quantification of active caspase-3 and active caspase-8 in microglia cells.

Edel Kavanagh

During microglia activation the levels of active caspase-3, caspase-7 and caspase-8 are increased, which leads to the transcription of proinflammatory cytokines and factors. As such, the induction of caspase activity in microglia can be used as a marker for activation. The use of sensitive and quantitative techniques has made it possible to reproducibly detect these low levels of active caspases. This chapter outlines the materials and methodology for three different ways to detect caspase activation in microglia.


Cell Reports | 2015

Microglia-Secreted Galectin-3 Acts as a Toll-like Receptor 4 Ligand and Contributes to Microglial Activation.

Miguel Angel Burguillos; Martina Svensson; Tim Schulte; Antonio Boza-Serrano; Albert Garcia-Quintanilla; Edel Kavanagh; Martiniano Santiago; Nikenza Viceconte; Maria Jose Oliva-Martin; Ahmed M. Osman; Emma Salomonsson; Lahouari Amar; Annette Persson; Klas Blomgren; Adnane Achour; Elisabet Englund; Hakon Leffler; J.L. Venero; Bertrand Joseph; Tomas Deierborg


Aging (Albany NY) | 2015

Deletion of caspase-8 in mouse myeloid cells blocks microglia pro-inflammatory activation and confers protection in MPTP neurodegeneration model

Edel Kavanagh; Miguel Angel Burguillos; Alejandro Carrillo-Jiménez; Maria Jose Oliva-Martin; Martiniano Santiago; Johanna Rodhe; Bertrand Joseph; J.L. Venero


Oncotarget | 2013

TAp73β-mediated suppression of cell migration requires p57Kip2 control of actin cytoskeleton dynamics

Johanna Rodhe; Edel Kavanagh; Bertrand Joseph

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J.L. Venero

Spanish National Research Council

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Ahmed M. Osman

Karolinska University Hospital

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Klas Blomgren

Karolinska University Hospital

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Albert Garcia-Quintanilla

Spanish National Research Council

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