Abstract
The interplay between genome folding and key cellular functions such as transcription, DNA repair and replication is a fundamental question in chromatin biology. Recent genome-wide developments unveiled a new level of three-dimensional chromatin architecture. At the sub-megabase scale, some genome sequences are preferentially found in proximity with one another forming Topologically Associating Domains (TADs). Genes located within the same TAD display common epigenetic properties and tend to have coordinated dynamics of expression during differentiation, suggesting a strong link between chromatin structure and transcription. TADs are in turn separated by regions of low contact, termed TAD borders, which are generally occupied by factors called chromatin insulators. What are the determinants of this particular type of chromatin organization and what are the functional implications is still largely unknown. In an emerging hypothesis, TADs could be formed through contacts between TAD border sequences stabilized by the looping activity of insulator proteins. This thesis investigates the roles of insulator proteins in the TAD formation mechanism using Drosophila melanogaster as model system. Superresolution imaging was implemented and a series of developments were performed in Structured Illumination Microscopy (SIM) and Single-molecule Localization Microscopy (SMLM), with particular attention on fluorescent labeling for single-molecule detection. These developments were directly applied to study the nuclear organization of the Boundary Element Associated Factor (BEAF), one of the 11 insulator proteins discovered to date in Drosophila. The strong enrichment on TAD borders and its demonstrated looping activity make BEAF a potent candidate to test for the clustering of TAD borders as a general mechanism of chromatin folding. Multicolor SMLM systematically located BEAF foci at the periphery of large H3K27me3 chromatin domains. Quantitative analysis of SMLM images indicated BEAF forms hundreds of 45 nm foci, containing a mean of 5 molecules, which argues against a large-scale looping of BEAF-bound chromatin. To directly probe for gene clustering at the DNA level, TAD borders were labeled using fluorescent oligonucleotide probes. The number of foci detected by SIM was once more incompatible with a model of chromosome-wide contacting of multiple TAD borders. Furthermore, TAD border pairs distances were measured in two genomic regions, resulting in <5% of paired contacts among the measured barriers. Taken together, these results are inconsistent with constitutive interactions between consecutive or non-consecutive barriers in Drosophila.In conclusion, this study contributed to the methodological development of super-resolution microscopy which was applied to provide experimental evidence invalidating the TAD border clustering model as a general mechanism of chromatin folding.