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Blanco, N. E.

Publications and source records attributed to Blanco, N. E..

2 recordsLinked to original sources

A canonical chloroplast unfolded protein response triggered by misfolded polypeptides

Photosynthetic efficiency and plant viability rely on chloroplast protein homeostasis. While unfolded protein responses (UPRs) in the endoplasmic reticulum and mitochondria have been extensively characterized, the chloroplast UPR (cpUPR) remains less defined, partly due to the off-target effects of traditional stress-inducing methods. In this study, we provide direct evidence for the existence of the cpUPR by expressing engineered, folding-defective variants of ferredoxin-NADP reductase (FNR) in plant chloroplasts. The expression of aggregation-prone proteins inside the organelle triggered a robust upregulation of chloroplast quality control components, including CLPB3, CLPC1/C2, and HSP90C, as revealed by immunodetection and quantitative proteomics. The proteomic response scaled with the severity of the folding defect, with the fully insoluble FNR {Delta}20 variant inducing broader changes than the partially soluble {Delta}3 variant. Network analysis showed that most differentially abundant proteins were chloroplastic and clustered into functional groups related to proteostasis and photosynthesis. Comparative analysis with lincomycin-treated plants highlighted the specificity and advantages of using misfolded proteins to study the cpUPR. Expression of the folding variants conferred tolerance to heat treatment, suggesting that the response can enhance plant fitness. Taken together, our work establishes the cpUPR as a specific stress response in chloroplasts and provides new tools for its characterization.

plant biology↗

A new method to quantify the spatiotemporal localization of SnRK1.1

Maintaining energy homeostasis is a major challenge for plants in the current context of climate change. The Sucrose-non fermenting 1 (SNF1)-related kinase 1 (SnRK1) complex, a member of the SNF1-AMP-activated protein kinase (AMPK)-SnRK1 family of kinase complexes, is a central player in the regulation of cell energy homeostasis. The -subunit of the complex, which possesses kinase activity and is known as SnRK1.1 or KIN10, plays a role in sensing energy status and coordinating metabolic reprogramming to counter any energy imbalance. The discovery of a dual and dynamic intracellular distribution of SnRK1.1 suggests that the activity and function of SnRK1 might be regulated by spatiotemporal changes. To investigate the spatiotemporal distribution of SnRK1.1, we developed a protocol to quantify its intracellular distribution using fluorescence confocal images acquired along the z-axis in plants expressing SnRK1.1-eGFP. Using the open-source software Fiji/ImageJ, we calculated the ratio between nuclear and non-nuclear SnRK1.1 fractions and defined this as the N/ER index. We validated our method by analyzing the response of SnRK1.1 to photosynthesis inhibition by DCMU, including changes in protein levels and phosphorylation status. In addition, comparison with results obtained using a commercial software-based approach confirmed the compatibility of the N/ER index with different segmentation and quantification tools. Originally designed for leaf tissue images, this protocol can be broadly applied to assess the role of intracellular spatiotemporal changes in a wide range of kinases or fluorescently tagged recombinant proteins. Finally, SnRK1.1 intracellular distribution may also serve as a proxy to assess changes in cellular energy status. One sentence summaryNew method to track SnRK1.1 distribution and changes in plant cell energy status

plant biology↗