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Bleicher, F.

Publications and source records attributed to Bleicher, F..

3 recordsLinked to original sources

Optimization for High-Throughput BiFC screening

The Cell-PCA screen, since its inception, has provided an efficient method for analyzing cellular interactomes and has been used in various biological studies involving proteins like MYC, PER2, and ERK. With rapid advancements in biotechnology, including tools for protein function investigation, the Cell-PCA screen remains relevant. However, despite its successful application in recent studies, there are areas for optimization to ensure its continued relevance in the face of evolving technological advancements.

bioengineering↗

A live cell protein complementation assay for ORFeome-wide probing of human HOX interactomes

Biological pathways rely on the formation of intricate protein interaction networks called interactomes. Getting a comprehensive map of interactomes implies developing tools that allow capturing transient and low affinity protein-protein interactions (PPIs) in live conditions. Here we present an experimental strategy, Cell-PCA (Cell Protein Complementation Assay), which is based on BiFC (Bimolecular Fluorescence Complementation) and high throughput sequencing for ORFeome-wide analyses of different interactomes in the same live cell context. The specificity and sensitivity of Cell-PCA was established by using a wild type and a single amino-acid mutated HOXA9 protein, and the approach was subsequently applied for seven additional human HOX proteins. These proof-of-concept experiments revealed novel molecular properties of HOX interactomes and led to the identification of a novel cofactor of HOXB13 for promoting its proliferative activity in a cancer cell context. Taken together, our work demonstrates that Cell-PCA is pertinent for revealing and, importantly, comparing interactomes between different or highly related bait proteins in the same cell context.

molecular biology↗

A micro-evolutionary change in target binding sites as key determinant of Ultrabithorax function in Drosophila.

Hox genes encode Homeodomain-containing transcription factors, which specify segmental identities along the anterior-posterior axis. Functional changes in Hox genes have been directly implicated in the evolution of body plans across the metazoan lineage. The Hox protein Ultrabithorax (Ubx) is expressed and required in developing third thoracic (T3) segments in holometabolous insects studied so far, particularly, of the order Coleoptera, Lepidoptera and Diptera. Ubx function is key to specify differential development of the second (T2) and T3 thoracic segments in these insects. While Ubx is expressed in the third thoracic segment in developing larvae of Hymenopteran Apis mellifera, the morphological differences between T2 and T3 are subtle. To identify evolutionary changes that are behind the differential function of Ubx in these two insects, which are diverged for more than 350 million years, we performed comparative analyses of genome wide Ubx-binding sites between Drosophila and Apis. Our studies reveal that a motif with a TAAAT core is a preferred binding site for Ubx in Drosophila, but not in Apis. Biochemical and transgenic assays suggest that in Drosophila, TAAAT core sequence in the Ubx binding sites is required for Ubx-mediated regulation of two of its target genes studied here. CG13222, a gene that is normally upregulated by Ubx and vestigial (vg), whose expression is repressed by Ubx in T3. Interestingly, changing the TAAT site to a TAAAT site was sufficient to bring an otherwise unresponsive enhancer of the vg gene from Apis under the control of Ubx in a Drosophila transgenic assay. Taken together, our results suggest an evolutionary mechanism by which critical wing patterning genes might have come under the regulation of Ubx in the Dipteran lineage.

developmental biology↗