In the first step of the project, a labelling method was established suitable for the labelling of DNA and protein components of chromatin and their simultaneous visualisation. For this, generic TAD labelling by incorporation of fluorescent thymidine analogs was combined with nanobody staining of proteins. In the second step, the super-resolution imaging conditions were optimised using a custom-built Stochastic Optical Reconstruction Microscopy (STORM) set-up allowing for dual-colour 3D imaging. Next, dual-colour 3D data was acquired for single TADs together with CTCF and Cohesin, respectively. Endogenous and homozygous human cultured knock-in cell lines were employed allowing for a quantitative image analysis as all proteins of interest expressed by these cell lines carried a tag. To assess the structuring function of Cohesin imaging data of generic TADs after acute depletion of Cohesin as well as of the Cohesin unloader WAPL was acquired. In a final step, a computational image analysis pipeline was established to extract the following information from the data sets: (i) volume and shape of single TADs, (ii) protein concentration, (iii) how many proteins co-localise with single TADs, (iv) where do these proteins localise in respect to the TAD volume, and (v) how do TAD volume and shape change after acute depletion of Cohesin and WAPL.
The results of the project were disseminated at multiple international conferences and internal seminars of the host institute.