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Wenxin Zhang

Publications and source records attributed to Wenxin Zhang.

2 recordsLinked to original sources

A distinct subclade of AlkB family demethylases in ciliates safeguards the positional fidelity of eukaryotic N6-methyladenine (6mA).

DNA N6-methyladenine (6mA) is a newly recognized transcription-associated epigenetic mark in eukaryotes. While its methylation pathway has been well established, the identity of eukaryotic 6mA demethylase(s) responsible for its removal and dynamic regulation has remained elusive. Here, we identify and characterize DMT3 (TtALKBH5), an AlkB family dioxygenase in Tetrahymena thermophila, as a 6mA demethylase in ciliates and potentially several other unicellular eukaryotes with abundant 6mA and a defined AMT1 methyltransferase (MTase) complex, supported by genetic and molecular evidence. DMT3 acts on both fully and hemimethylated ApT dinucleotides, an activity partially facilitated by a naturally occurring cysteine-to-serine substitution. Genome profiling shows that DMT3 is enriched at transcription start sites (TSSs) of 6mA-enriched genes, complementary to the occupancy pattern of the AMT1 complex, where it selectively removes spurious 6mA deposited by AMT1. Genetic disruption of DMT3-mediated demethylation, either by knockout or catalytic inactivation, leads to aberrant 6mA accumulation at TSS regions, transcriptional dysregulation, altered chromatin accessibility, and impaired initiation of sexual reproduction. Notably, simultaneous removal of DMT3 and AMT1 eliminates these defects, indicating that spurious TSS 6mA underlies transcriptional and developmental impairment.

Adenine

Multi-season analysis reveals hundreds of drought-responsive genes in sorghum.

Persistent drought affects global crop production and is becoming more severe in many parts of the world in recent decades. Deciphering how plants respond to drought will facilitate the development of flexible mitigation strategies. Sorghum bicolor L. Moench (sorghum), a major cereal crop and an emerging bioenergy crop, exhibits remarkable resilience to drought. To better understand the molecular traits that underlie sorghum's remarkable drought tolerance, we undertook a large-scale sorghum gene expression profiling effort, totaling nearly 1500 transcriptome profiles, across a 3-year field study with replicated plots in California's Central Valley. This study included time-resolved gene expression data from roots and leaves of two sorghum genotypes, BTx642 and RTx430, with different pre-flowering and post-flowering drought-tolerance adaptations under control and drought conditions. Quantification of genotype-specific drought tolerance effects was enabled by de novo sequencing, assembly, and annotation of both BTx642 and RTx430 genomes. These reference-quality genomes were used to construct a pangene set for characterizing conserved and genotype-specific expression. By integrating time-resolved transcriptomic responses to drought in the field across three consecutive years, we identified a set of 726 drought-responsive genes that responded similarly in all 3 years of our field study. Functional enrichment analysis identified abiotic stress, secondary cell wall-related processes and metabolism as particularly affected under both types of drought stress. We also found that some glyoxylate cycle pathway genes, including malate synthase and isocitrate lyase, are differentially regulated particularly during post-flowering drought stress, implicating this pathway as potentially important for drought responsiveness. This expansive dataset represents a unique resource for sorghum and drought research communities and provides a methodological framework for the integration of multi-faceted time-resolved transcriptomic datasets.

Sorghum