Replacement of Arabidopsis H2A.Z with human H2A.Z orthologs reveals extensive functional conservation and limited importance of the N-terminal tail sequence for Arabidopsis development.

用人类 H2A.Z 直系同源物替换拟南芥 H2A.Z 揭示了广泛的功能保守性以及 N 端尾序列对拟南芥发育的重要性有限

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作者:Sijacic Paja, Holder Dylan H, Silver Brianna D, Krall Ellen G, Willett Courtney G, Foroozani Maryam, Deal Roger B
The incorporation of histone variants, distinct paralogs of core histones, into chromatin affects all DNA-templated processes in the cell, including the regulation of transcription. In recent years, much research has been focused on H2A.Z, an evolutionarily conserved H2A variant found in all eukaryotes. In order to investigate the functional conservation of H2A.Z histones during eukaryotic evolution, we transformed h2a.z-deficient Arabidopsis thaliana plants with each of the 3 human H2A.Z variants to assess their ability to rescue the mutant defects. We discovered that human H2A.Z.1 and H2A.Z.2.1 fully complement the phenotypic abnormalities of h2a.z plants despite significant divergence in the N-terminal tail sequences of Arabidopsis and human H2A.Zs. In contrast, the brain-specific splice variant H2A.Z.2.2 has a dominant-negative effect in wild-type plants, mimicking an H2A.Z deficiency phenotype. Furthermore, human H2A.Z.1 almost completely reestablishes normal H2A.Z chromatin occupancy in h2a.z plants and restores the expression of more than 84% of misexpressed genes. Finally, we used a series of N-terminal tail truncations of Arabidopsis HTA11 to reveal that the N-terminal tail of Arabidopsis H2A.Z is not necessary for normal plant development under optimal growth conditions but does play an important role in mounting proper abiotic stress responses.

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