Okazaki fragments sequencing (OK-seq)
OK-seq enables researchers to map the genome-wide locations of proteins involved in DNA replication and replication fork directionality. By unraveling the spatial organization of replication machinery and Okazaki fragments, OK-seq offers insights into the coordination and regulation of DNA synthesis during genome replication. This approach provides information for understanding genome stability and cellular proliferation.
Global run-on sequencing (GRO-seq)
GRO-seq allows researchers to map the locations of actively transcribing RNA polymerases and nascent RNA molecules to study the regulation and coordination of gene expression. This technique facilitates the identification of transcriptional enhancers, promoters, and regulatory elements, shedding light on the orchestration of cellular processes and the molecular basis of disease.
CITE-seq
CITE-seq combines single-cell RNA sequencing with protein detection to analyze cell populations in detail. Our platform facilitates comprehensive characterization of cell types, states, and interactions, enabling to profile immune cell responses,to identify rare cell populations, or to unravel disease mechanisms
ECCITE-seq
ECCITE-seq combines CRISPR perturbations, RNA sequencing, and protein detection at the single-cell level, enabling integrated analysis of transcriptome, genome, and proteome. This technique provides deep insights into cellular states and regulatory networks, serving as a powerful tool for CRISPR screens, functional genomics, and precision medicine research.
CRISPR Screening Platform
This academic platform proposes to perform CRISPR-based screens, enabling the comprehensive interrogation of the functional consequences of a genomic modification at the whole-genome scale, revealing how genomic alterations in coding or regulatory regions lead to phenotypic changes. The coordinator of the platform is Sandrine Roulland.
CAR-NK cells generation and characterization
Our expert teams specialize in the precise engineering of CAR-NK cells, tailoring them to recognize specific tumor antigens with high precision. Through functional characterization, we validate the potency and specificity of these engineered cells, ensuring their efficacy in targeting cancer cells while sparing healthy tissues.
Acute lymphoblastic leukemia cell lines
Explore our available ALL cell lines to investigate ALL biology, identify novel drug targets, and test drug toxicity and efficacy.
Hi-C
By detecting physical interactions between distant DNA segments, Hi-C offers insights into the spatial structure and folding of chromatin. Hi-C serves as a powerful tool for deciphering the principles governing chromatin organization, from the formation of topologically associating domains (TADs) to the spatial compartmentalization of regulatory elements and gene expression domains.
miRNA profiling
miRNA Profiling quantifies and characterizes microRNA expression to study their role in regulating gene expression. It helps identify biomarkers and potential therapeutic targets for cancer treatment.
Mouse Model
Explore our available mouse models (drug resistant, immuno-competent, or immuno-deficient strains) to investigate lymphoma biology and identify novel drug targets.