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Biology subjects

Boutin, L.

Publications and source records attributed to Boutin, L..

5 recordsLinked to original sources

Development of an orthotopic medulloblastoma zebrafish model for rapid drug testing.

Medulloblastoma (MB) is one of the most common malignant brain tumors in children. Current preclinical in vivo model systems for MB have increased our understanding of molecular mechanisms regulating MB development; however, they may not be suitable for high-throughput screening efforts. We demonstrate here that transplantation of seven different MB cell lines or patient-derived cells into the blastula stage of zebrafish embryos leads to orthotopic tumor cell growth that can be observed within 24 hours after transplantation. Importantly, the homing of transplanted cells to the hindbrain region and the aggressiveness of tumor growth are enhanced by pre-culturing cells in a neural stem cell-like medium. The change in culture conditions rewires the transcriptome towards a more migratory and neuronal progenitor phenotype, including the expression of guidance molecules SEMA3A and EFNB1, both of which correlate with lower overall survival in MB patients. Furthermore, we highlight that the orthotopic zebrafish MB xenograft model has the potential to be used for high-throughput drug screening. Key pointsO_LIMedulloblastoma cells home to the hindbrain region in developing zebrafish embryos. C_LIO_LINeural stem cell culture conditions improve the homing capacity of MB tumor cells. C_LIO_LIMedulloblastoma-transplanted zebrafish embryos can be used as a high-throughput in vivo model for drug screening. C_LI Importance of the StudyOne of the challenges of accurately modeling medulloblastoma is the large heterogeneity in tumor characteristics. To accurately model this heterogeneous disease, patient-derived xenograft mouse models are currently the standard. However, such mouse models are labor intensive, time-consuming, and not suitable for high-throughput studies. Here, we describe a quick and straightforward zebrafish xenograft model that provides a promising alternative to these existing mouse models. We demonstrate that this model can be utilized to study tumor cell growth of several major medulloblastoma subgroups. More importantly, our model facilitates high-throughput drug testing, providing a scalable opportunity for in vivo drug screenings that will support the discovery of novel therapeutic compounds against medulloblastoma.

cancer biology↗

High-throughput neural stem cell-based drug screening identifies S6K1 inhibition as a selective vulnerability in SHH-medulloblastoma

BackgroundMedulloblastoma (MB) is one of the most common malignant brain tumors in children. Current treatments have increased overall survival but can lead to devastating side effects and late complications in survivors, emphasizing the need for new, improved targeted therapies that specifically eliminate tumor cells while sparing the normally developing brain. MethodsHere, we used a SHH-MB model based on a patient-derived neuroepithelial stem (NES) cell system for an unbiased high-throughput screen with a library of 172 compounds with known targets. Compounds were evaluated in both healthy neural stem cells and tumor cells derived from the same patient. Based on the difference of cell viability and drug sensitivity score between normal cells and tumor cells, hit compounds were selected and further validated in vitro and in vivo. ResultsWe identified PF4708671 (S6K1 inhibitor) as a potential agent that selectively targets Sonic Hedgehog (SHH) driven MB tumor cells while sparing neural stem cells and differentiated neurons. Subsequent validation studies confirmed that PF4708671 inhibited the growth of SHH-MB tumor cells both in vitro and in vivo, and that knockdown of S6K1 resulted in reduced tumor formation. ConclusionOverall, our results suggest that inhibition of S6K1 specifically affects tumor growth, whereas it has less effect on non-tumor cells. Our data also show that the NES cell platform can be used to identify potentially effective new therapies and targets for SHH-MB. Key pointsO_LIHigh-throughput screening system using the NES model identifies efficient compounds and targets against SHH-MB. C_LIO_LIS6K1 inhibition shows selectivity toward tumor cells while having less effect on normal neural stem cells and neurons. C_LI Importance of the studyCurrent treatment modalities for medulloblastoma have improved overall survival but also come with detrimental side effects for survivors. Therefore, novel treatment options need to be developed which will specifically target the tumor cells while sparing the healthy brain. In this study, we tested a library of compounds targeting commonly dysregulated oncogenic pathways on both normal neural stem cells and SHH-MB tumor cells derived from the same patients. Interestingly, we found that most compounds including commonly used targeted therapy such as PI3K or mTOR inhibition, albeit effective, affected tumor cells and normal cells similarly. However, inhibition of the downstream effector S6K1 preferentially targeted tumor cells both in vitro and in vivo. These results thus reveal potential targets for translational studies of novel therapies that specifically target medulloblastoma tumor cells.

cancer biology↗

Structure and flexibility of the DNA polymerase holoenzyme of vaccinia virus

The year 2022 was marked by the mpox outbreak caused by human monkeypox virus (MPXV), which is about 98 % identical to vaccinia virus (VACV) at the sequence level regarding the proteins involved in DNA replication. We present the strategy for the production of the VACV DNA polymerase holoenzyme composed of the E9 polymerase associated with its co-factor, the A20-D4 heterodimer, which led to the 3.8 [A] cryo-electron microscopy (cryo-EM) structure of the DNA-free form of the holoenzyme. Model building used high-resolution structures of components of the complex and the A20 structure predicted by AlphaFold 2. The structure of E9 does not change in context of the holoenzyme compared to the crystal structure. As for the MPXV holoenzyme, a contact between E9 and D4 is mediated by a cluster of hydrophobic residues. The holoenzyme structure is quite compact and surprisingly similar to the MPXV holoenzyme in presence of a DNA template, with the exception of a movement of the finger domain and the thumb domain, which becomes ordered in presence of DNA. Even in absence of DNA, the VACV holoenzyme structure is too compact for an agreement with SAXS data. This suggests the presence of more open conformations in solution, which are also predicted by Alphafold 2 indicating hinge regions located within A20. Using biolayer interferometry we showed that indeed, the E9-D4 interaction is weak and transient although very important as it has not been possible to obtain viable viruses carrying mutations of key residues in the E9-D4 interface. Author SummaryThe 2022 outbreak of mpox is caused by monkeypox virus closely related to the best studied model, vaccinia virus. Genome replication, which takes place largely autonomously in the cytosol of the infected cell, is still not really understood. Viral DNA synthesis involves a DNA repair enzyme, the uracil-DNA glycosylase D4 linked to the structural protein A20 forming the processivity factor, which in turn binds to E9 forming the complex required for processive DNA synthesis. Here we present the first structure of the vaccinia virus polymerase holoenzyme E9-A20-D4 at 3.8 [A] obtained by cryo-electron microscopy. This structure, together with several recent structures from monkeypox virus, provide a static view of the complex with a previously undescribed contact between E9 and D4. Our small-angle scattering data show that other conformations, taking advantage of 2 hinge regions in A20, exist in solution. Using site-directed mutagenesis and binding studies we show that the contact between E9 and D4, which serves to encircle the template strand, is important, but transient. Thus the current model of the orientation of the holoenzyme on the replication fork may not be the only one possible.

molecular biology↗

Targeting human γδ T cells as a potent and safe alternative to pan-T cells bispecific cell 2 engagers

Over the past decade, an increasing number of immunotherapies aiming to improve the ability of the immune system to effectively eradicate tumor cells have been developed. Among them, targeting effector T cell subsets of the immune system with bispecific antibodies, called T Cell Engagers (TCEs), represents an attractive strategy. TCEs are designed to specifically direct cytotoxic T cells towards tumor cells, thereby inducing a strong activation leading to the lysis of tumor cells. New strategies for targeting specific T-cell subsets are currently being explored. In this study, we investigated the activity of different TCEs on both conventional alpha beta ({beta}) T cells and unconventional gamma delta ({gamma}{delta}) T cells. We generated TCE molecules based on camelid single-domain antibodies (VHHs) that target the tumor-associated antigen CEACAM5 (CEA), together with particular T-cell receptor chains (TCRs) or a CD3 domain. The in vitro biological activity of the TCEs against the colon carcinoma cell line LS174T was measured using fresh and cultured human V{gamma}9V{delta}2 and {beta} T cells. We showed that V{gamma}9V{delta}2 T cells display stronger antitumor activity in vitro than {beta} T cells when activated with a CD3xCEA TCE. Furthermore, restricting T cell activation to V{gamma}9V{delta}2 T cells limits the production of pro-tumor factors and pro-inflammatory cytokines, which are often associated with toxicity in patients. Taken together, these results suggest that V{gamma}9V{delta}2{gamma}{delta} T cell-specific TCEs may represent safe, novel, specific, and effective molecules for improving antitumor immunotherapies.

immunology↗

APOBEC3F is the main source of editing identified during the 2022 outbreak of human monkeypox virus

On May 6, 2022, a powerful outbreak of monkeypox virus (MPXV) had been reported outside of Africa, with many continuing new cases being reported around the world. Analysis of mutations among the two different lineages present in the 2021 and 2022 outbreaks revealed the presence of G->A mutations occurring in the 5GpA context, indicative of APOBEC3 cytosine deaminase activity. By using a sensitive PCR (3D-PCR) method allowing differential amplification of AT-rich DNA, we demonstrate that G->A hypermutated MPXV genomes can be recovered experimentally from APOBEC3 transfection followed by MPXV infection. Here, among the 7 human APOBEC3 cytidine deaminases (A3A-A3C, A3DE, A3F-A3H), only APOBEC3F was capable of extensively deaminating cytidine residues in MPXV genomes. Hyperedited genomes were also recovered in ~42% of analyzed patients, indicating that editing is part of the natural cycle of MPXV infection. Moreover, we demonstrate that substantial repair of these mutations occurs. Upon selection, corrected G->A mutations escaping drift loss contribute to the MPXV evolution observed in the current epidemics. Thus, stochastic or transient overexpression of APOBEC3F gene exposes the MPXV genome to a broad spectrum of mutations that may be modeling the mutational landscape after multiple cycles of viral replication.

microbiology↗