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Biology subjects

Becca, S.

Publications and source records attributed to Becca, S..

3 recordsLinked to original sources

Combinatorial and Inducible CRISPRa/i Enables Canalized hiPSC Forward Programming and Iterative Refinement via Single-Cell Genomics

Synthetic gene-regulation logic is established in immortalized cell lines but remains largely aspirational in human induced pluripotent stem cells (hiPSCs) and derivatives. This gap constrains both mechanistic discovery and translational engineering in physiologically relevant models. We developed CIRI (Combinatorial Inducible CRISPR in IPSCs), an isogenic, safe-harbor-engineered platform in which tetracycline-responsive single guide RNAs (sgR-NAs) carry modular RNA aptamers that recruit RNA-binding proteins and effector domains. This design enables multimodal regulation from a single catalytically inactive Cas9 (dCas9), exemplified by orthogonal CRISPR activation and interference (CRISPRa/i). After optimizing sgRNA-aptamer architectures, we achieved robust CRISPRa and CRISPRi in hiPSCs and hiPSC-derived cardiac organoids. CIRI rapidly channels hiPSC forward programming into skeletal myocytes by activating MYOD1 while repressing NANOG, POU5F1/OCT4, and SOX2. Combinatorial pooled dual-guide single-cell RNA sequencing screens identify ID3 as a road-block and KDM6B and SMARCD3 as synergistic enhancers of myogenic maturation. Together, CIRI establishes a programmable synthetic biology framework in human stem cell models. GRAPHICAL ABSTRACT O_FIG O_LINKSMALLFIG WIDTH=200 HEIGHT=177 SRC="FIGDIR/small/729073v1_ufig1.gif" ALT="Figure 1"> View larger version (53K): org.highwire.dtl.DTLVardef@18ce445org.highwire.dtl.DTLVardef@de8d94org.highwire.dtl.DTLVardef@1212763org.highwire.dtl.DTLVardef@1a0d83d_HPS_FORMAT_FIGEXP M_FIG C_FIG

synthetic biology↗

Opposing CTCF and GATA4 activities set the pace of chromatin topology remodeling during cardiomyogenesis

Reorganization of the three-dimensional chromatin structure is a critical feature of human embryonic development. Yet, the mechanisms regulating integrative remodelling of local structures (e.g., loops) and global architecture (e.g., A/B compartmentalization) remain un-clear. Here, we investigate this aspect in the context of cardiomyogenesis, characterized by pronounced B-to-A remodelling of several cardiac-specific genes such as TTN. We focus on the roles of the pioneer transcription factor GATA4 and the architectural protein CTCF. Using an inducible knockdown system during human induced pluripotent stem cell differ-entiation, we show that GATA4 is essential for timely topological activation of key cardiac genes, while partial depletion of CTCF, anticipating physiological downregulation during de-velopment, enhances this process. Deletion of a single CTCF binding site on TTN leads to modest gene decompaction and transcriptional activation. Bulk and single-cell RNA se-quencing of chamber-specific cardiac organoids reveals that loss of GATA4 delays differ-entiation and sustains proliferation of early cardiomyocytes, whereas premature CTCF de-pletion accelerates yet alters cardiomyocyte maturation. These findings suggest that CTCF and GATA4 have antagonistic roles on chromatin dynamics during cardiomyogenesis, form-ing a rheostat that maintains accurate developmental tempo. Disruption of this mecha-nism may contribute to congenital heart defects caused by mutations in these factors.

molecular biology↗

CALIPERS: Cell cycle-aware live imaging for phenotyping experiments and regeneration studies

Cell cycle progression, migration, and proliferation shape development and regeneration, but simultaneous live-cell imaging remains challenging as conventional fluorescent cell cycle indicators (FUCCI) monopolize the green and red channels used by most structural and functional biosensors. To overcome this, we integrated a spectrally re-engineered FUCCI variant, open-source analysis software, and four-color human stem cell reporter lines into CALIPERS: a method for Cell-cycle-Aware Live-cell Imaging in Phenotyping and Regeneration Studies.

bioengineering↗