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Shahzad, Z.

Publications and source records attributed to Shahzad, Z..

2 recordsLinked to original sources

Gene body methylation mediates epigenetic inheritance of plant traits

Genetic variation is regarded as a prerequisite for evolution. In principle, epigenetic information inherited independently of DNA sequence can also enable evolution, but whether this occurs in natural populations is unknown. Here we show that natural epigenetic DNA methylation polymorphism in Arabidopsis thaliana gene bodies regulates gene expression and influences the variation of complex traits: fitness under heat and drought, flowering time, and accumulation of diverse minerals. The phenotypic effects of DNA methylation and local DNA sequence polymorphism are comparable, but they operate through largely distinct gene sets. Our epigenetic association analyses directly identify the relevant gene more frequently than genetic associations, likely due to reduced linkage disequilibrium. We identify numerous associations between methylation epialleles and diverse environmental conditions in native habitats, suggesting that intragenic methylation facilitates adaptation to fluctuating environments. Overall, our results demonstrate that epigenetic methylation variation fundamentally shapes phenotypic diversity in natural populations.

evolutionary biology

Interdependent Iron and Phosphorus Availability Controls Photosynthesis Through Retrograde Signaling

Iron deficiency hampers photosynthesis and is associated with chlorosis. We recently showed that iron deficiency-induced chlorosis depends on phosphorus availability. How plants integrate these cues to control chlorophyll accumulation is unknown. Here, we show that iron limitation downregulates photosynthesis genes in a phosphorus-dependent manner. Using transcriptomics and genome-wide association analysis, we identify two genes, a chloroplastic ascorbate transporter (PHT4;4) and a nuclear transcription factor (bZIP58), which prevent the downregulation of photosynthesis genes leading to the stay-green phenotype under iron-phosphorus deficiency. Joint limitation of these nutrients induces ascorbate accumulation by activating expression of an ascorbate biosynthesis gene, VTC4, which requires bZIP58. Exogenous ascorbate prevents iron deficiency-induced chlorosis in vtc4 mutants, but not in bzip58 or pht4;4. Our study demonstrates chloroplastic ascorbate transport is essential for preventing the downregulation of photosynthesis genes under iron-phosphorus combined deficiency. These findings uncover a molecular pathway coordinating chloroplast-nucleus communication to adapt photosynthesis to nutrient availability.

plant biology