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Dicke, A.-K.

Publications and source records attributed to Dicke, A.-K..

3 recordsLinked to original sources

Developmentally programmed loss of long-range Polycomb interactions is regulated by cohesin

Distal regulatory elements (DREs), such as enhancers, can regulate genes across megabase-long distances, presumably via coming into close spatial proximity. The establishment of new transcriptional programmes during cell type transitions is associated with widespread rewiring of the spatial organisation of the genome, including gain and loss of chromatin interactions. Extensive effort has been invested into understanding how chromatin interactions are formed during development, yet the mechanisms underlying their developmental loss remain largely unclear. By leveraging chromatin accessibility-assisted footprinting, acute protein degradation and chromatin conformation capture, we show that loss of promoter interactions cannot be explained by reduced binding of sequence-specific transcription factors (TFs). Instead, we identify a subset of interactions that depend on cohesin for programmed developmental disruption. These sites are characterized by high Polycomb enrichment and TF occupancy and engage in strong long-range interactions that undergo extensive differentiation-dependent rewiring. Preventing interaction loss by acute cohesin degradation results in the preferential downregulation of associated genes. Together, these results suggest that cohesin indirectly regulates developmental loss of Polycomb interactions by enabling the acquisition of other potentially regulatory contacts in a process that may shape transcriptional programs during cell type transitions.

genomics↗

Chromatoid body integrates piRNA, SMG6 and m⁶A pathways to control mRNAs in the male germline

Spermatogenesis requires tightly controlled transcriptome regulation, supported by the PIWI-interacting RNA (piRNA) and nonsense-mediated decay (NMD) pathways, both concentrated in the chromatoid body (CB) of haploid spermatids. We previously showed that the NMD endonuclease SMG6 interacts with the piRNA-binding protein PIWIL1, and that loss of either factor results in overlapping mRNA dysregulation, suggesting functional cooperation. Here, we demonstrate that SMG6 and PIWIL1 assemble with shared RNA-regulatory proteins and bind common mRNA targets in the testis. Functional experiments in GC-2spd cells revealed cooperative regulation of selected transcripts, including Ccny and Taf1d, and established that SMG6 is required for piRNA-guided degradation of these targets, implicating its endonuclease activity in the piRNA pathway. Target mRNAs were mA-methylated, and this modification shaped their expression levels, SMG6 binding, and CB localization. Moreover, intact target mRNAs accumulated in CBs isolated from Smg6-cKO testes, indicating defective CB-associated decay. Together, these findings uncover a key role for the CB in mRNA regulation through coordinated action of the NMD and piRNA pathways.

cell biology↗

Cylicins are a structural component of the sperm calyx being indispensable for male fertility in mice and human

Cylicins are testis-specific proteins, which are exclusively expressed during spermiogenesis. In mice and humans, two Cylicins, the gonosomal X-linked Cylicin 1 (Cylc1/CYLC1) and the autosomal Cylicin 2 (Cylc2/CYLC2) genes have been identified. Cylicins are cytoskeletal proteins with an overall positive charge due to lysine-rich repeats. While Cylicins have been localized in the acrosomal region of round spermatids, they resemble a major component of the calyx within the perinuclear theca at the posterior part of mature sperm nuclei. However, the role of Cylicins during spermiogenesis has not yet been investigated. Here, we applied CRISPR/Cas9-mediated gene-editing in zygotes to establish Cylc1- and Cylc2-deficient mouse lines as a model to study the function of these proteins. Cylc1 deficiency resulted in male subfertility, whereas Cylc2-/-, Cylc1-/y Cylc2+/-, and Cylc1-/y Cylc2-/- males were infertile. Phenotypical characterization revealed that loss of Cylicins prevents proper calyx assembly during spermiogenesis. This results in decreased epididymal sperm counts, impaired shedding of excess cytoplasm, and severe structural malformations, ultimately resulting in impaired sperm motility. Furthermore, exome sequencing identified an infertile man with a hemizygous variant in CYLC1 and a heterozygous variant in CYLC2, displaying morphological abnormalities of the sperm including the absence of the acrosome. Thus, our study highlights the relevance and importance of Cylicins for spermiogenic remodeling and male fertility in human and mouse, and provides the basis for further studies on unraveling the complex molecular interactions between perinuclear theca proteins required during spermiogenesis.

developmental biology↗