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Harvey, Z. H.

Publications and source records attributed to Harvey, Z. H..

4 recordsLinked to original sources

Single-residue variation in the nucleosome core reveals a regulatory hub for phenotypic innovation

Nucleosomes organize genomes and regulate DNA access, yet accumulating evidence suggests that their constituent histones may have functions beyond canonical chromatin regulation, but the breadth of such regulatory diversity remains unclear. Here, we used the six-residue loop 2 (L2) of H2A and H2A.Z to map, at single-residue resolution, how nucleosome-core variation reshapes cellular function. Genome-scale interaction mapping identified hundreds of regulatory connections spanning chromatin, as well as actin organization, endocytosis, and membrane trafficking. Interactions were residue-specific and differed between H2A and H2A.Z, revealing a regulatory landscape encoded by single residues. Transcriptome profiling showed limited expression changes and little overlap between differentially expressed genes and regulatory partners, indicating that non-chromatin connections are not readily explained by altered transcription. L2 substitutions also preferentially conferred benefits under cell wall and membrane stress. Thus, the nucleosome is linked to cellular-periphery functions beyond classical chromatin regulation, identifying histone variation as a source of phenotypic innovation.

molecular biology↗

Emergence of histone-based chromatin complexity in Asgard archaea

The emergence of the eukaryotes coincided with the diversification of histone proteins and their post-translational modifications by enzymes that constitute the core of eukaryotic chromatin. Yet the evolutionary origins of this regulatory machinery are unknown. Here, we show that the key molecular components of histone-based chromatin regulation are present in the Asgard archaea, the closest prokaryotic relatives of eukaryotes. Asgard histones are abundant and have extended N-terminal tails rich in lysine residues that can be post-translationally modified, all of which are features shared with eukaryotic histones. In line with these findings, we identify enzymes from Asgard archaea that deposit or remove lysine acetylation on histone tails in vitro. Moreover, Asgard sirtuin deacetylases (SIR2 proteins) restore chromatin silencing in yeast, demonstrating the functional compatibility of Asgard enzymes with eukaryotic histone substrates. Our findings establish that the foundations of histone-based chromatin predate eukaryogenesis and place Asgard archaea as an evolutionary intermediate in the emergence of eukaryotic chromatin.

evolutionary biology↗

Nucleosome Positioning Shapes Cryptic Antisense Transcription

Maintaining transcriptional fidelity is essential for precise gene regulation and genome stability. Despite this, cryptic antisense transcription, occurring opposite to canonical coding sequences, is a pervasive feature across all domains of life. How such potentially harmful cryptic sites are regulated remains incompletely understood. Here, we show that nucleosome arrays within gene bodies play a key role in suppressing cryptic transcription. Using the fission yeast Schizosaccharomyces pombe as a model, we demonstrate that CHD1-family chromatin remodelers coordinate with the transcription elongation machinery, specifically the PAF complex, to position nucleosomes at sites of cryptic transcription initiation within gene bodies. In the absence of CHD1, AT-rich sequences within gene bodies lose nucleosome occupancy, exposing promoter-like sequences that drive cryptic initiation. While cryptic transcription is generally detrimental, we identify a subset of antisense transcripts that encode critical meiotic genes, suggesting that cryptic transcription can also serve as a source of regulatory innovation. These findings underscore the essential role of nucleosome remodelers in maintaining transcriptional fidelity and reveal their broader contributions to cellular homeostasis and evolutionary adaptability.

genetics↗

H2A.Z and elongation factor Spt6 form an ancient bridge shaping transcription in eukaryotes

Histones are among the most conserved proteins in the eukaryotic genome, and their function is thought to be largely invariant across species. Here, we tested this assumption, examining over a billion years of the essential histone H2A.Zs evolution in a single synthetic host. We identify single residue substitutions within the H2A.Z core domain that led to its neofunctionalization. Such H2A.Z neomorphs are distinct by their ability to directly interact with the transcription apparatus, rewiring gene expression genome-wide by tuning transcription processivity. Our results reveal that even changes of single residues within the histones core domain can transform their function, catalysing the rapid emergence of phenotypic diversity by directly imposing both fitness opportunities and costs. We propose that the entire histone sequence has the potential to evolve new regulatory relationships, providing a framework to understand the mechanistic underpinnings of disease-associated histone mutations.

molecular biology↗