Constitutively enhanced genome integrity maintenance and direct stress mitigation characterize Transcriptome of extreme stress-adapted Arabidopsis halleri
收藏NIAID Data Ecosystem2026-03-13 收录
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https://www.ncbi.nlm.nih.gov/sra/ERP118645
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Natural populations of Arabidopsis halleri are known on both ordinary and heavy metal-rich toxic soils, different from closely related plant species including A. thaliana. Here we demonstrate enhanced Cd hypertolerance and attenuated Cd accumulation in plants originating from the most highly heavy metal-contaminated A. halleri site in Europe at Ponte Nossa (Noss/IT), compared to A. halleri from two non-metalliferous (NM) sites, Paisco Loveno (Pais/IT) and Wallenfels (Wall/DE). In the two populations from NM sites, hundreds of Cd-responsive transcripts reflect mostly the activation of Fe deficiency responses, whereas no single transcript showed differential abundance between Cd-exposed and untreated control plants from the metalliferous (M) site Noss. Among thousands of transcripts exhibiting between-population differential abundance in vegetative stage tissues, meiotic cell cycle functions were overrepresented, with an activation in plants from Noss. Between-population differences in transcript levels were highest for ARGONAUTE 9 (AGO9) and ZYP1a/b encoding the synaptonemal complex transverse filament protein, which are pre-meiosis- and meiosis-specifically expressed, respectively, in A. thaliana. Moreover, transcript levels of IRON-REGULATED TRANSPORTER 1 (IRT1) were much lower in Noss and those of HEAVY METAL ATPASE 2 (HMA2) were far higher compared to both Pais and Wall, largely explaining between-population differences in Cd handling. Exemplary immunoblots for ZYP1 and IRT1 validated our observations at the protein level. Our results suggest that plant adaptation to extreme abiotic stress involves globally enhanced somatic genome integrity maintenance including previously unsuspected gene functions, as well as a small number of constitutive alterations in stress-related functional networks.
创建时间:
2021-10-20



