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He, S.-L.

Publications and source records attributed to He, S.-L..

5 recordsLinked to original sources

CRISPR-FOIL: A Programmable CRISPR Tool to Engineer and Illuminate Chromatin Folding in Live Human Cells

Chromatin organization plays a critical role in regulating gene expression. Chromatin compaction represses gene expression by physically restricting the access of the transcriptional machinery to DNA, while spatial proximity between enhancers and promoters, often mediated by chromatin loops, is essential for gene activation. To investigate the regulatory mechanisms underlying loop formation and chromatin compaction, as well as their effects on gene expression, we developed CRISPR-FOIL (utilizing CRISPR to FOld and ILluminate chromosomal DNA), a novel programmable platform for engineering chromatin loops and inducing chromatin compaction in live cells. CRISPR-FOIL anchors pairs of genomic loci in proximity by engineered single-guide RNAs (sgRNAs), resulting in an artificial chromatin loop. The fused two CRISPR-Sirius gRNAs enable genomic loci to be visualized through fluorescent RNA coat proteins in various colors. In addition, multiple CRISPR-FOIL complexes can act cooperatively to drive chromatin compaction. These results establish CRISPR-FOIL as a powerful tool for engineering chromatin organization in live cells and highlight its potential as a therapeutic platform for gene regulation and disease control.

cell biology↗

Differential Regulation of Large-scale Chromosome Conformations in Osteoblasts and Osteosarcoma

Correct chromosome organization in the cell nucleus is essential for genome function. However, dynamics and regulations of large-scale chromosomal conformations beyond single compartments at larger than ten megabases in vivo in single cells remain largely unknown. Here we use CRISPR-Sirius, a high-resolution and high-sensitivity real-time imaging technique, to directly visualize distinctions in large-scale chromosomal conformations between live osteosarcoma (OS) cells and osteoblasts, suggesting extensive chromatin reorganization during cell transformation. A surprising discovery is that chromosome 19 long arm is primarily extended in osteoblasts and maintained by H3K27me3. Extended chromosome conformation has been reported in fly and mouse but not in human cells yet. However, in OS cells, chromosome 19 primarily folded into collapsed conformations, which reshape in minutes and are regulated by the chromosome architectural proteins CTCF and cohesin in the presence of H3K27ac. Changes in chromosome conformations by knocking down the cohesin subunit RAD21 resulted in altered gene expression, including proto-oncogenes. Transcription inhibition by a small molecule inhibitor did not have detectable effects on large-scale chromosome conformation, suggesting that local transcription events have limited effects on large-scale chromosomal architecture. Our results provide unique insights into the complex regulatory mechanisms of endogenous large-scale chromosome organization in normal and transformed osteogenic tissues. One-sentence summaryRegulations of chromosome territory organization in normal and cancer bone cells visualized by CRISPR-based live-cell imaging.

cell biology↗

MAPK signaling modulates the partition of DCP1 between P-bodies and stress granules in plant cells

Processing bodies (PBs) and stress granules (SGs) are membrane-less cellular compartments consisting of ribonucleoprotein complexes. Whereas PBs are more ubiquitous, SGs are assembled mainly in response to stress. PBs and SGs are known to physically interact and molecules exchange between the two have been documented in mammals. However, the molecular mechanisms underpinning these processes are virtually unknown in plants. We have reported recently that tandem CCCH zinc finger 1 (TZF1) protein can recruit MAPK signaling components to SGs. Here we have found that TZF1-MPK3/6-MKK4/5 form a protein-protein interacting network in SGs. The mRNA decapping factor 1 (DCP1) is a core component of PBs. MAPK signaling mediated phosphorylation triggers a rapid reduction of DCP1 partition into PBs, concomitantly associated with an increase of DCP1 assembly into SGs. Furthermore, we have found that plant SG marker protein UBP1b (oligouridylate binding protein 1b) plays a role in maintaining DCP1 in PBs by suppressing the accumulation of MAPK signaling components. Together, we propose that MAPK signaling and UBP1b mediate the dynamics of PBs and SGs in plant cells.

cell biology↗

Modulation of stress granule dynamics by phosphorylation and ubiquitination in plants

The Arabidopsis tandem CCCH zinc finger 1 (TZF1) is an RNA-binding protein that plays a crucial role in plant growth and stress response. TZF1 can localize to ribonucleoprotein (RNP) granules in response to various abiotic stresses. However, very little is known about the composition, function, and assembly mechanism of plant RNP granules. In this report, we show that TZF1 contains two intrinsically disordered regions (IDRs) necessary for its localization to stress granules (SGs), a subclass of RNP granules. TZF1 recruits mitogen-activated protein kinase (MAPK) signaling components and an E3 ubiquitin ligase KEEP-ON-GOING (KEG) to SGs. TZF1 is phosphorylated by MPKs and ubiquitinated by KEG. The phosphorylation sites of TZF1 were mapped by mass spectrometry. Mutant studies revealed that phosphorylation and ubiquitination of specific residues played differential roles in enhancing or reducing TZF1 SG assembly and protein-protein interaction with mitogen-activated kinase kinase 5 (MKK5) in SGs. TZF1 is extremely unstable, and its accumulation can be enhanced by proteosome inhibitor MG132. We showed that TZF1 was ubiquitinated in vivo and in vitro by KEG and TZF1 accumulated at a much lower level in gain-of-function mutant keg-4, compared to the WT. Ubiquitination appeared to play a positive role in TZF1 SG assembly, because either single or higher order mutations caused reduced number of SGs per cell, while enhanced the coalescence of small SGs into a large nucleus-like SG encompassing the nucleus. Together, our results demonstrate that the assembly of TZF1 SGs is distinctively regulated by ubiquitination and phosphorylation.

cell biology↗

Stress Granule Protein TZF1 Enhances Salt Stress Tolerance by Targeting ACA11 mRNA for Degradation in Arabidopsis

Tandem CCCH zinc finger (TZF) proteins play diverse roles in plant growth and stress response. Although as many as 11 TZF proteins have been identified in Arabidopsis, little is known about the mechanism by which TZF proteins select and regulate the target mRNAs. Here, we report that Arabidopsis TZF1 is a bona-fide stress granule protein. Ectopic expression of TZF1 (TZF1 OE), but not an mRNA binding-defective mutant (TZF1H186Y OE), enhances salt stress tolerance in Arabidopsis. RNA-seq analyses of NaCl-treated plants revealed that the down-regulated genes in TZF1 OE plants are enriched for functions in salt and oxidative stress responses. Because many of these down-regulated mRNAs contain AU- and/or U-rich elements (AREs and/or UREs) in their 3-UTRs, we hypothesized that TZF1--ARE/URE interaction might contribute to the observed gene expression changes. Results from RNA immunoprecipitation-quantitative PCR analysis, gel-shift, and mRNA half-life assays indicate that TZF1 binds and triggers degradation of the autoinhibited Ca2+-ATPase 11 (ACA11) mRNA, encoding a tonoplast-localized calcium pump that extrudes calcium and dampens the signal transduction pathways necessary for salt stress tolerance. Furthermore, this salt stress-tolerance phenotype was recapitulated in aca11 null mutants. Remarkably, a set of positive regulators for salt stress tolerance was upregulated in TZF1 OE plants. These include Na+/H+ Exchanger (NHX) family members known to contribute to Na+ homeostasis and salinity stress tolerance. Collectively, we present a model in which TZF1 targets ACA11 and ACA4 directly, and repressors of NHXs and other negative regulators indirectly for mRNA degradation to enhance plant salt stress tolerance.

plant biology↗