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Marie Chaussepied

Publications and source records attributed to Marie Chaussepied.

6 recordsLinked to original sources

c-Jun NH2-terminal kinase/c-Jun signaling promotes survival and metastasis of B lymphocytes transformed by Theileria.

Theileria parasites infect and transform bovine lymphocytes resulting in tumors with metastatic/invasive potential. Importantly, cellular transformation is reversed upon drug-induced parasite death, and the infected lymphocyte dies of apoptosis within 48 hours. Theileria-dependent transformation leads to the constitutive activation of c-Jun NH2-terminal kinase (both JNK1 and JNK2) and permanent induction of activator protein-1. Inactivation of JNK (following transfection of dominant-negative mutants, or treatment with a JNK-specific inhibitor) leads to lymphocyte apoptosis, suggesting an antiapoptotic role for JNK activation in Theileria-induced B cell transformation. Theileria-induced JNK activation also leads to constitutive c-Jun phosphorylation, and inhibition of c-Jun and activator protein-1 transactivation following the expression of a dominant-negative mutant of c-Jun sensitizes Theileria-transformed B cells to apoptosis, but does not significantly affect their proliferation. Thus, JNK activation and c-Jun induction have overlapping, but nonidentical antiapoptotic roles in Theileria-induced B cell transformation. Increased sensitivity to apoptosis may be related to the fact that the expression levels of antiapoptotic proteins such as Mcl-1 and c-IAP are reduced upon c-Jun inhibition. In addition, decreased c-Jun expression correlates with the impaired ability of transfected B cells to degrade synthetic matrix in vitro, and their injection into lymphoid mice gives rise to significantly less and smaller tumors. Combined, these data argue for a role for JNK and c-Jun induction in the survival and metastasis of Theileria-transformed B cells. The similarity between Theileria-transformed B cells with human B lymphomas argues that exploiting the reversible nature of Theileria-induced transformation could throw light on the mechanisms underlying human malignancies.

Animals↗

E2F and signal transduction pathways.

The E2F family of transcription factors is most well known for its ability to regulate the expression of genes required for DNA replication and cell cycle progression. However, recent studies indicate that E2F can also regulate transcription of upstream components of signal transduction pathways. Here we discuss the effects of E2F activity on signal transduction pathways and its potential biological consequences.

Animals↗

Taking the Myc is bad for Theileria.

It is commonly acknowledged that intracellular parasites manipulate the survival pathways of the host cells to their own ends. Theileria are masters of this because they invade bovine leukocytes and immortalize them. Host-cell survival depends on the presence of live parasites, and parasite death results in the leukocyte undergoing programmed cell death. The parasite, therefore, activates several anti-apoptotic pathways in host cells to ensure its own survival. In B cells that are infected by Theileria parva, one of the main mechanisms involves the induction of c-Myc and the subsequent activation of the anti-apoptotic protein Mcl-1. Activation of Myc might occur in other types of leukocyte that are infected by Theileria and in other host cells that are infected with different parasites.

Animals↗

Accelerated recycling of transferrin receptor in Theileria-transformed B cells.

We found that phoshatidylinositol-3 kinase (PI3-K) markedly contributes to the increased surface expression of bovine transferrin receptor (TfR) on Theileria-infected lymphocytes. We observed that all aspects of TfR turnover are upregulated in parasitized B cells and we were able to detect TfR colocalizing with EEA1 (early endosome antigen 1) and Rab11 at the ultrastructure level in Theileria-infected B cells. We demonstrated recycling of TfR through Rab5- and Rab11-positive compartments by transfection of dominant negative guanosine diphosphate (GDP)-on mutants of the GTPases. Therefore, in Theileria-transformed B cells constitutive PI3-K activity leads to accelerated TfR recycling through Rab5- and Rab11-positive compartments.

Animals↗

Transcriptional regulation of AKT activation by E2F.

The pRB-E2F pathway is a downstream target of mitogenic signaling pathways. The E2F family of transcription factors has a pivotal role in regulating cell proliferation since it controls the timely expression of many genes that are required for cell cycle progression. Moreover, at least one member of this family, E2F1, can mediate apoptotic cell death. We show here that E2F also modulates the activity of a major signal transduction pathway: we demonstrate that E2F upregulates AKT activity through a transcription-dependent mechanism. We identify the adaptor protein Grb2 associated binder 2 (Gab2) as a direct E2F target gene and an essential effector of E2F-dependent AKT activation. AKT activation was shown to inhibit E2F1induced apoptosis. Therefore, our results suggest the existence of a negative feedback loop involving E2F and AKT.

Adaptor Proteins, Signal Transducing↗

A tumour necrosis factor alpha autocrine loop contributes to proliferation and nuclear factor-kappaB activation of Theileria parva-transformed B cells.

Theileria infection of bovine leucocytes induces uncontrolled proliferation and a transformed phenotype comparable to tumour cells. Infected cells have many characteristics of activated leucocytes and use autocrine loops to augment proliferation. We have shown previously that, in infected B cells, PI3-K controls a granulocyte-macrophage colony-stimulating factor (GM-CSF) autocrine loop to increase both proliferation and activation of the activator protein 1 (AP-1) transcription factor. We show here that the same infected B cells also use a tumour necrosis factor (TNF) alpha autocrine loop that again contributes to proliferation and augments nuclear factor (NF)-kappaB activation. Interestingly, both pharmacological inhibition of TNF synthesis and neutralizing anti-TNF antibodies lead to a reduction in proliferation and a 50% drop in NF-kappaB activation, without inducing apoptosis.

Animals↗