Physiological re-replication during human stem cell differentiation
Minet, M.; Beganovic, A.; Rishik, S.; Michaeli, E.; Yildiz, D.; Schmartz, G. P.; Schwarz, P. E.; Schaefer, M.; Taenzer, T.; Cucchiarini, M.; Ludwig, N.; Keller, A.; Meese, E.; Fischer, U.
Show abstract
During defined developmental windows in Drosophila, controlled re-replication generates physiological gene amplification. Although gene amplification has also been observed during human stem cell differentiation, re-replication in human cells has largely been linked to tumor-associated genome instability. Here, we demonstrate that re-replication likewise operates as a physiological mechanism in human stem cells. Using Rerep-Seq and DNA fiber-combing, we identify distinct phases of re-replication during the differentiation of human myoblasts into myotubes and during the lineage commitment of mesenchymal stem cells toward adipogenic, osteogenic, chondrogenic, and neuronal fates. In all differentiation systems examined, re-replication occurred within defined temporal windows. FACS-isolated re-replicating cells exhibited elevated gene expression using RNA-Seq specifically within re-replicated genomic regions. Moreover, re-replicated DNA was detected as extranuclear DNA. These findings support a model in which cells that do not undergo re-replication, and thus avoid increased chromosomal instability, may nonetheless boost the expression of differentiation-relevant genes by acquiring re-replicated DNA released from neighboring re-replicating cells. We propose that human stem cells exploit an evolutionarily conserved re-replication mechanism to transiently increase gene copy number and thereby meet the heightened protein demands associated with differentiation.
Matching journals
The top 11 journals account for 50% of the predicted probability mass.
Similar papers in this journal
Similar papers in this journal
- Characterization of CRISPR/Cas9 RANKL knockout mesenchymal stem cell clones based on single-cell printing technology and emulsion coupling assay as a low-cellularity workflow for single-cell cloning 95%
- Neurons from human mesenchymal stem cells display both spontaneous and stimuli responsive activity 94%
- Single cell RNA sequencing of nc886, a non-coding RNA transcribed by RNA polymerase III, with a primer spike-in strategy 94%
Similar papers in this journal
- The temporal transcriptomic signature of cartilage formation 95%
- The Bromodomains of the mammalian SWI/SNF (mSWI/SNF) ATPases Brahma (BRM) and Brahma Related Gene 1 (BRG1) promote chromatin interaction and are critical for skeletal muscle differentiation 93%
- CMTR1 is recruited to transcription start sites and promotes ribosomal protein and histone gene expression in embryonic stem cells 93%
Similar papers in this journal
- Detailed analysis of public RNAseq data and longnon-coding RNA: a proposed enhancement to mesenchymalstem cell characterisation 95%
- Exploring the lncRNA localization landscape within the retinal pigment epithelium under normal and stress conditions 92%
- The transcriptional landscape of a hepatoma cell line grown on scaffolds of extracellular matrix proteins 92%
Similar papers in this journal
- Raman microspectroscopy reveals unsaturation heterogeneity at the lipid droplet level and validates an in vitro model of bone marrow adipocyte subtypes 94%
- Single Cell Cortical Bone Transcriptomics Defines Novel Osteolineage Gene Sets Altered in Chronic Kidney Disease 92%
- Use of Induced Pluripotent Stem Cells to Build Isogenic Systems and Investigate Type 1 Diabetes 90%
"Similar papers" are the closest papers from that journal in the model's embedding space. They show what the match is built on, but the ranking comes mostly from a classifier over the whole training set, not from these examples alone.