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Szymanski, J.

Publications and source records attributed to Szymanski, J..

4 recordsLinked to original sources

Programmed chromosome elimination correlates with the overexpression of cohesin and additional B chromosome-encoded genes in Aegilops speltoides

Programmed chromosome elimination is a highly controlled developmental process in which specific chromosomes are selectively lost from defined cell types during development. Despite its broad occurrence across plants and animals, the molecular mechanisms driving the tissue-specific elimination of chromosomes remain largely unresolved. Here, we exploit the root-specific elimination of supernumerary B chromosomes in Aegilops speltoides as a tractable model to identify the genetic basis of programmed chromosome loss. A high-quality, chromosome-scale genome assembly was generated, assigning 398 Mb of sequence to the Ae. speltoides B chromosome. Transcriptome profiling across seven tissue types representing chromosome elimination-active, elimination-negative, and B chromosome nondisjunction conditions identified 3,262 genes consistently upregulated in elimination-associated tissues, including 1,035 B genes. Stepwise subtraction of genes expressed in post-elimination and B chromosome-retaining reference tissues, followed by intersection with genes expressed during B nondisjunction in anthers, identified a candidate gene set enriched for chromosome segregation functions. From this set, we prioritized SYN2-B, a B chromosome-encoded cohesin -kleisin subunit whose Arabidopsis thaliana ortholog AtSYN2 induces chromosome bridges and micronucleus formation when misregulated. CENH3-B, an -type centromeric histone variant identified through GO enrichment analysis of B genes expressed in elimination-associated tissues, was shown to be incorporated in centromeres of both A and B chromosomes by transient gene expression assays using protoplasts and 3D structured illumination microscopy. These findings support a model in which B chromosome-encoded perturbations of cohesin activity and centromere composition contribute to selective B chromosome nondisjunction and their elimination in root tissues. Moreover, the SYN2-B promoter is enriched for ethylene response factor-binding sites compared to its A-encoded paralog, suggesting that ethylene is implicated in the root identity pathway driving root-specific B chromosome elimination.

genetics↗

A Robust Crystallographic Platform for High-Throughput β-Catenin Ligand Discovery

This study presents a robust crystallographic platform for assessing compounds binding to {beta}-catenin. We developed a standardized protein production protocol for the armadillo domain of {beta}-catenin (BC-ARM) and performed biophysical screens using Surface Plasmon Resonance (SPR) and Differential Scanning Fluorimetry (DSF). These findings led to the successful determination of the co-crystal structure of BC-ARM with compound 1 binding to previously reported site but distinct from known transcription factor binding sites. To broaden the search for novel BC binding sites, we utilized FragLites library with a cyclic peptide-stabilized BC-ARM construct. This yielded two high-resolution co-crystal structures identifying a previously unreported binding hotspot. Recognizing the limitations of the cyclic peptide-bound construct for general screening, we designed a novel, truncated BC-ARM construct. This new construct eliminates unstructured regions, reliably producing high-quality, diffracting crystals suitable for high-throughput crystallographic studies. In conclusion, the ligand-bound {beta}-catenin structures and this novel, robust BC-ARM construct establish a powerful platform for further {beta}-catenin investigation.

molecular biology↗

RNA 5' terminal nucleotide determines the strength of the RIG-I/IFN signaling pathway

The interferon (IFN) response is crucial for antiviral activity, but its overstimulation can lead to a wide range of autoimmune disorders. The cytoplasmic pattern recognition receptor RIG-I detects viral double-stranded RNAs (dsRNAs) and endogenous polymerase III transcripts carrying a 5'-triphosphate (5'-ppp) or 5'-diphosphate (5'-pp) moiety, triggering phosphorylation of IRF3 and IFN immune response. While many viral RNAs initiate with 5'-ppp-adenosine (5'-pppA) and most endogenous Pol III transcripts in higher eukaryotes start with 5'-ppp-guanosine (5'-pppG), no apparent reason for this bias has been identified so far. Here we demonstrate that dsRNAs initiating with 5'-pppA trigger stronger RIG-I/IFN response than those starting with 5'-pppG. We show that several GTP-binding proteins interact preferentially with 5'-pppG RNAs. Finally, supplementation with guanosine, but not adenosine, which rapidly increases intracellular concentrations of GTP and ATP, respectively, eliminates the difference in immunogenicity between 5'-pppG and 5'-pppA RNAs. Our findings suggest that 5'-pppG RNAs may enable certain RNA viruses and Pol III transcripts to limit detection by innate immune receptors. These results offer new insights into the sequence-dependent activation of the RIG-I/IFN pathway and have important implications for both antiviral immunity and the role of Pol III-derived RNAs in autoimmune diseases.

molecular biology↗

Molecular mechanisms of heavy metal adaptation of an extremophilic red alga Cyanidioschyzon merolae

The order of Cyanidiales comprise seven acido-thermophilic red microalgal species thriving in hot springs of volcanic origin characterized by extremely low pH, moderately high temperatures and the presence of elevated concentrations of sulphites and heavy metals that are prohibitive for most other organisms. Little is known about the molecular mechanisms of Cyanidiales long-term adaptation to such hostile environments, in particular to heavy metals, yet elucidation of these processes is important for understanding the evolution of the metabolic pathways underlying heavy metal detoxification for developing rational strategies for heavy metal bioremediation. Here, we investigated the long-term adaptive responses of Cyanidioschyzon merolae cells, a member of Cyanidiales, to extremely high nickel concentrations. Through complementary approaches based on physiological, microscopic and elemental analyses we dissect several molecular mechanisms underlying the long-term adaptation of this model extremophilic microalga to high Ni exposure. These include: (i) extrusion of Ni from the cells and lack of significant Ni accumulation inside the cells; (ii) maintenance of efficient photoprotective responses including non-photochemical quenching and state transitions; (iii) dynamic remodeling of the chloroplast ultrastructure such as formation of metabolically active prolamellar bodies and plastoglobuli together with loosening of the thylakoid membranes; (iv) activation of ROS amelioration metabolic pathways; and (v) preservation of the efficient respiratory chain functionality. All the dynamically regulated processes identified in this study underlie the remarkable adaptability of C. merolae to extremely high Ni levels that exceed by several orders of magnitude the levels of this heavy metal found in the natural environment of this extremophile.

cell biology↗