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Biology subjects

Beitz, A. M.

Publications and source records attributed to Beitz, A. M..

3 recordsLinked to original sources

Cells transit through a quiescent-like state to convert to neurons at high rates

While transcription factors (TFs) provide essential cues for directing and redirecting cell fate, TFs alone are insufficient to drive cells to adopt alternative fates. Rather, transcription factors rely on receptive cell states to induce novel identities. Cell state emerges from and is shaped by cellular history and the activity of diverse processes. Here, we define the cellular and molecular properties of a highly receptive state amenable to transcription factor-mediated direct conversion from fibroblasts to induced motor neurons. Using a well-defined model of direct conversion to a post-mitotic fate, we identify the highly proliferative, receptive state that transiently emerges during conversion. Through examining chromatin accessibility, histone marks, and nuclear features, we find that cells reprogram from a state characterized by global reductions in nuclear size and transcriptional activity. Supported by globally increased levels of H3K27me3, cells enter a quiescent-like state of reduced RNA metabolism and elevated expression of REST and p27, markers of quiescent neural stem cells. From this transient state, cells convert to neurons at high rates. Inhibition of Ezh2, the catalytic subunit of PRC2 that deposits H3K27me3, abolishes conversion. Our work offers a roadmap to identify global changes in cellular processes that define cells with different conversion potentials that may generalize to other cell-fate transitions. HighlightsO_LIProliferation drives cells to a compact nuclear state that is receptive to TF-mediated conversion. C_LIO_LIIncreased receptivity to TFs corresponds to reduced nuclear volumes. C_LIO_LIReprogrammable cells display global, genome-wide increases in H3K27me3. C_LIO_LIHigh levels of H3K27me3 support cells transits through a state of altered RNA metabolism. C_LIO_LIInhibition of Ezh2 increases nuclear size, reduces the expression of the quiescence marker p27. C_LIO_LIAcute inhibition of Ezh2 abolishes motor neuron conversion. C_LI One Sentence SummaryCells transit through a quiescent-like state characterized by global reductions in nuclear size and transcriptional activity to convert to neurons at high rates. Graphical Abstract O_FIG O_LINKSMALLFIG WIDTH=200 HEIGHT=143 SRC="FIGDIR/small/624928v1_ufig1.gif" ALT="Figure 1"> View larger version (38K): org.highwire.dtl.DTLVardef@ee2127org.highwire.dtl.DTLVardef@1c2a39dorg.highwire.dtl.DTLVardef@183bf46org.highwire.dtl.DTLVardef@82b98d_HPS_FORMAT_FIGEXP M_FIG C_FIG

systems biology↗

Programmable promoter editing for precise control of transgene expression

Subtle changes in gene expression direct cells to distinct cellular states. Identifying and controlling dose-dependent transgenes require tools for precisely titrating expression. To this end, we developed a highly modular, extensible framework called DIAL for building editable promoters that allow for fine-scale, heritable changes in transgene expression. Using DIAL, we increase expression by recombinase-mediated excision of spacers between the binding sites of a synthetic zinc finger transcription factor and the core promoter. By nesting varying numbers and lengths of spacers, DIAL generates a tunable range of unimodal setpoints from a single promoter. Through small-molecule control of transcription factors and recombinases, DIAL supports temporally defined, user-guided control of transgene expression that is extensible to additional transcription factors. Lentiviral delivery of DIAL generates multiple setpoints in primary cells and iPSCs. As promoter editing generates stable states, DIAL setpoints are heritable, facilitating mapping of transgene levels to phenotypes. The DIAL framework opens new opportunities for tailoring transgene expression and improving the predictability and performance of gene circuits across diverse applications. HighlightsPromoter editing generates unimodal setpoints from a single synthetic promoter DIAL setpoints are tuned by the length of an excisable spacer within the promoter DIAL setpoints are uniform and robust to varying levels of the transcription factor DIAL transmits transient inputs into heritable promoter states The TET-DIAL system enables small-molecule activation at defined setpoints DIAL regulates physiologically-relevant transgenes and performs in primary cells and iPSCs One Sentence SummaryDIAL offers an extensible framework for designing synthetic promoters that perform across a range of cell types to generate heritable setpoints of gene expression.

synthetic biology↗

Proliferation history and transcription factor levels drive direct conversion

The sparse and stochastic nature of reprogramming has obscured our understanding of how transcription factors drive cells to new identities. To overcome this limit, we developed a compact, portable reprogramming system that increases direct conversion of fibroblasts to motor neurons by two orders of magnitude. We show that subpopulations with different reprogramming potentials are distinguishable by proliferation history. By controlling for proliferation history and titrating each transcription factor, we find that conversion correlates with levels of the pioneer transcription factor Ngn2, whereas conversion shows a biphasic response to Lhx3. Increasing the proliferation rate of adult human fibroblasts generates morphologically mature, induced motor neurons at high rates. Using compact, optimized, polycistronic cassettes, we generate motor neurons that graft with the murine central nervous system, demonstrating the potential for in vivo therapies. One Sentence SummaryUsing a systems and synthetic biology approach to study the molecular determinants of reprogramming, we find that proliferation history and transcription factor levels drive cell fate in direct conversion to motor neurons. HighlightsO_LIminimal high-efficiency cocktail allows systematic interrogation of the reprogramming process C_LIO_LIhistory provides a principal axis to distinguish transcription factors influence C_LIO_LIof the transcription factor cocktail impacts reprogramming efficiency and dynamics C_LIO_LIof individual transcription factors differentially influence the rate of reprogramming C_LIO_LIearly hyperproliferation increases direct conversion of adult human fibroblasts C_LIO_LIptimal cocktail allows neurotrophic factor-free reprogramming and in vivo grafting C_LI

cell biology↗