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Lottersberger, F.

Publications and source records attributed to Lottersberger, F..

2 recordsLinked to original sources

The Developmental Transcription Factor TBX3 Physically Engages with the Wnt/β-catenin Transcriptional Complex in Human Colorectal Cancer Cells to Regulate Metastasis Genes

Wnt signaling orchestrates gene expression in a plethora of processes during development and adult cell homeostasis via the action of nuclear {beta}-catenin. Furthermore, neoplasia of the colorectal epithelium begins with aberrant Wnt/{beta}-catenin signaling. Yet, little is known about how {beta}-catenin generates context-specific transcriptional outcomes. We have previously identified the developmental transcription factor TBX3 as a tissue-specific component of the Wnt/{beta}-catenin nuclear complex during mouse forelimb development. In this study, we show that TBX3 is present and functionally active in human colorectal cancers. TBX3s genomic binding pattern suggests a regulatory role that broadly coincides with that of Wnt/{beta}-catenin. Moreover, proteomics proximity labelling indicated that, during Wnt pathway activation, TBX3 is vicinal to several protein partners, including the transcription factors TCF/LEF and chromatin remodeling complexes which are usually found at Wnt responsive elements. Sequence and structure analysis revealed that TBX3 possesses an exposed Asp-Pro-Phe (NPF) motif predicted by AlphaFold2 Multimer to mediate direct interactions with several Wnt-activated TBX3 partners. Deletion of NPF abrogates TBX3 proximity to these partners and its ability to modulate Wnt-dependent transcription. TBX3 emerges as a key modulator of the oncogenic activity of Wnt/{beta}-catenin in colorectal cancer, and its mechanism of action exposes a novel druggable protein-interaction surface.

developmental biology↗

DNA-PK and the TRF2 iDDR inhibit MRN-initiated resection at leading-end telomeres

Telomeres replicated by leading-strand synthesis lack the 3 overhang required for telomere protection. Surprisingly, resection of these blunt telomere is initiated by the telomere-specific 5 exonuclease Apollo rather than the Mre11-Rad50-Nbs1 (MRN) complex, the nuclease that acts at DNA breaks. Without Apollo, leading-end telomeres undergo fusion, which, as demonstrated here, are mediated by alternative End Joining. Here, we show that DNA-PK and TRF2 coordinate the repression of MRN at blunt telomeres. DNA-PK represses an MRN-dependent long range resection at blunt telomeres, while the endonuclease activity of MRN/CtIP, which could cleave DNA-PK off of blunt telomere ends, is inhibited in vitro and in vivo by the iDDR of TRF2. AlphaFold-Multimer predicts a conserved association of the iDDR with Rad50 potentially interfering with CtIP binding and MRN endonuclease activation. We propose that repression of MRN-mediated resection is a conserved aspect of telomere maintenance and represents an ancient feature of DNA-PK and the iDDR.

molecular biology↗