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Dekkers, D.

Publications and source records attributed to Dekkers, D..

3 recordsLinked to original sources

Disruption of ADNP-KDM1A-GTF2I complex drives neural differentiation imbalance in Helsmoortel-Van der Aa syndrome

Mutations in ADNP (Activity-Dependent Neuroprotective Protein) are among the most frequent monogenic causes of autism spectrum disorder (ASD) and lead to Helsmoortel-Van der Aa syndrome (HVDAS). Yet how ADNP dysfunction leads to HVDAS is unclear. We employed patient-derived induced pluripotent stem cells, cortical organoids and ADNP KO human neural stem cells (hNSCs) to clarify the cellular and molecular mechanism of HVDAS onset. We purified an ADNP-KDM1A-GTF2I (AKG) protein complex from hNSCs and show that it targets transposable elements (TEs) to repress nearby gene transcription. Upon ADNP KO, KDM1A binding is lost at promoters targeted by AKG, pointing to ADNP as the anchoring subunit of the AKG complex. HVDAS cortical organoids show impaired progenitor proliferation and accelerated neuronal differentiation, coupled with a sustained upregulation of neurogenesis transcriptional programs, including key transcription factors normally repressed by AKG. This work suggests that the AKG complex acts as the relevant ADNP unit in the molecular onset of HVDAS.

neuroscience↗

Characterization of cytotrophoblast cell population dynamics throughout pregnancy

To understand cytotrophoblast (CTB) dynamics during pregnancy, we constructed a single-cell RNA sequencing dataset profiling over 35,000 CTBs isolated from human placental tissues at various gestational stages. Our analysis revealed a robust set of transcripts defining distinct CTB subsets and their spatial relationships within the placenta. We identified a transit-amplifying primitive trophoblast population that may contribute to the CTB pool and found that CTBs located at the smooth chorion form a leak-tight epithelial layer that adapts to low oxygen environments without undergoing syncytialization. Additionally, our study suggests that CTB fate in the villous chorion may be influenced by interactions with the basal lamina, as indicated by a population of BCAM+ CTBs. This subset, isolated from term placental tissue, displayed progenitor capabilities in organoid cultures, supporting the hypothesis that BCAM+ CTBs maintain a progenitor role late in pregnancy.

cell biology↗

PCID2 dysregulates transcription and viral RNA processing to promote HIV-1 latency

HIV-1 latency results from tightly regulated molecular processes that act at distinct steps of HIV-1 gene expression. To elucidate the molecular players that govern latency, we previously performed a dCas9-chromatin immunoprecipitation coupled with mass spectrometry (Catchet-MS) and identified the interactome of the latent HIV-1 LTR. Here we characterize the Catchet-MS-identified PCI domain-containing 2 (PCID2) protein, a component of the TREX2 complex, to play a dual role in promoting HIV-1 latency by enforcing both transcriptional repression and post-transcriptional blocks to HIV-1 gene expression. PCID2 bound the latent HIV-1 LTR and repressed transcription initiation during latency. Depletion of PCID2 remodelled the chromatin landscape at the HIV-1 promoter and resulted in transcriptional activation and reversal of latency. Immunoprecipitation coupled to Mass Spectrometry identified PCID2-interacting proteins to include members of the spliceosome, including negative viral RNA (vRNA) alternative splicing regulators, and PCID2 depletion resulted in over-splicing of intron-containing vRNA and misregulated expression of vRNA splice variants. We demonstrate that MCM3AP and DSS1, two other RNA-binding TREX2 complex subunits that comprise the dock of the complex also inhibit transcription initiation and viral RNA alternative splicing during latency and similarly to PCID2 function as prominent latency associated repressors of HIV-1 gene expression. Thus, PCID2 is a novel HIV-1 latency-promoting factor, which in context of the TREX2 sub-complex PCID2-DSS1-MCM3AP blocks transcription and dysregulates vRNA processing.

microbiology↗