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Biology subjects

Kutschat, A. P.

Publications and source records attributed to Kutschat, A. P..

4 recordsLinked to original sources

Leukemia Risk Factor ARID5B Coordinates HDAC-Mediated Transcriptional Repression

Multiple genetic association studies linked variants at ARID5B with predisposition to B-cell derived acute lymphoblastic leukemia (B-ALL) in children. Still, the molecular function of ARID5B remains largely uncharacterized. Here, we employ a combination of proteomics, genomics and transcriptomics to describe the molecular mechanisms of ARID5B. We identify that ARID5B interacts with MIER1, C16ORF87, HDAC1 and HDAC2 forming a chromatin repressor complex. By CUT&RUN, we mapped ARID5B binding in active regions of the genome, tethering HDAC1 and HDAC2 to distal regulatory elements and promoters. Genes actively repressed by the ARID5B repressor complex are involved in B cell proliferation and B cell-specific signaling. Together, we describe how ARID5B assembles into a repressor complex and regulates B cell-specific processes. Understanding its molecular mechanism will help elucidating how non-coding germline variants at ARID5B predispose to B-ALL.

cancer biology↗

Disruption of the SAGA CORE triggers collateral degradation of KAT2A

The SAGA transcriptional co-activator complex regulates gene expression through histone acetylation at promoters, mediated by its histone acetyl transferase, KAT2A. While its structure and function have been extensively investigated, how the stability of individual subunits of SAGA, including KAT2A, is regulated, remains unclear. Here, using a fluorescence-based KAT2A stability reporter, we systematically dissect the molecular dependencies controlling KAT2A protein abundance. We identify the non-enzymatic SAGA CORE module subunits--TADA1, TAF5L, and TAF6L-- as necessary for KAT2A stability, with loss of these subunits disrupting the integrity of SAGA, leading to non-chromatin-bound KAT2A that is degraded by the proteasome, consequently leading to reduced H3K9 acetylation. Proteomic profiling reveals progressive loss of CORE and HAT components upon acute disruption of the SAGA CORE, indicating that an intact CORE is required for the stability of numerous components of SAGA. Finally, a focused CRISPR screen of ubiquitin-proteasome system genes identifies the E3 ligase UBR5, a known regulator of orphan protein degradation, and the deubiquitinase OTUD5, as regulators of KAT2A degradation when the SAGA CORE is perturbed. Together, these findings reveal a dependency of KAT2A protein stability on SAGA CORE integrity and define an orphan quality control mechanism targeting unassembled KAT2A, revealing a potential vulnerability in SAGA-driven malignancies.

molecular biology↗

Directing stem cell differentiation by chromatin state approximation

A prime goal of regenerative medicine is to replace dysfunctional cells in the body. To design protocols for producing target cells in the laboratory, one may need to consider exponentially large combinations of culture components. Here, we investigated the potential of iteratively approximating the target phenotype by quantifying the distance between chromatin profiles (ATAC-seq) of differentiating cells in vitro and their in-vivo counterparts. We tested this approach on the well-studied generation of erythroblasts from haematopoietic stem cells, evaluating a fixed number of components over two sequential differentiation rounds (8x8 protocols). We found that the most erythroblast-like cells upon the first round yielded the most erythroblast-like cells at the second round, suggesting that greedy selection by chromatin approximation can be a viable optimisation strategy. Furthermore, by analysing regulatory sequences in incompletely reprogrammed chromatin regions, we uncovered transcriptional regulators linked to roadblocks in differentiation and made a data-driven selection of ligands that further improved erythropoiesis. In future, our methodology can help craft notoriously difficult cells in vitro, such as B cells.

genomics↗

Spermidine/spermine N1-acetyltransferase controls tissue-specific regulatory T cell function in chronic inflammation

Regulatory T cells (Tregs) are a critical immune component guarding against excessive inflammatory responses. During chronic inflammation, Tregs fail to control effector T cell responses. The causes of Treg dysfunction in these diseases are poorly characterized and therapies are aimed at blocking aberrant effector responses rather than rescuing Treg function. Here we utilized single-cell RNA sequencing data from patients suffering from chronic skin and colon inflammation to uncover SAT1, the gene encoding spermidine/spermine N1-acetyltransferase (SSAT), as a novel marker and driver of skin-specific Treg dysfunction during TH17-mediated inflammation. Tregs expressing SAT1 exhibit a tissue-specific inflammation signature and show a proinflammatory effector-like profile. In CRISPRa on healthy human skin-derived Tregs increased expression of SAT1 leads to a loss of suppressive function and a switch to a TH17-like phenotype. This phenotype is induced by co-receptor expression on keratinocytes exposed to a TH17 microenvironment. Finally, the potential therapeutic impact of targeting SSAT was demonstrated in a mouse model of skin inflammation by inhibiting SSAT pharmacologically, which rescued Treg number and function in the skin and systemically. Together, these data show that SAT1 expression has severe functional consequences on Tregs and provides a novel target to treat chronic inflammatory skin disease.

immunology↗