Engineering a TurboID ‐based proximity labeling tool to track the dynamic secretomes under salt stress

Secretory proteins are essential for plant development and environmental adaptation, yet selectively profiling cargoes transported through the conventional endoplasmic reticulum (ER)-Golgi pathway remains technically challenging because apoplastic secretomes contain proteins from multiple secretion routes. We developed an ER-anchored TurboID proximity labeling method to selectively enrich proteins entering the conventional secretory pathway in Arabidopsis thaliana. Quantitative proteomics under control and salt stress conditions identified dynamic secretome changes and showed that most enriched proteins carry N-terminal signal peptides, supporting the utility of this approach for profiling conventional secretory proteins. Using this method, we found that sodium chloride (NaCl) stress remodels the conventional secretome by enhancing the secretion of a subset of cell wall-associated proteins. We further identified Apoplastic EDS1-Dependent 3 (AED3) as a salt-induced secretory protein, confirmed its ER-Golgi-dependent secretion, and demonstrated its role in salt tolerance. Overall, this study provides a useful approach for pathway-specific profiling of the conventional plant secretome, enabling the discovery of dynamic secretory proteins involved in plant environmental responses.

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Publication Details

Journal
New Phytologist
Published
2026-09-29
DOI
https://doi.org/10.1111/nph.71614
Primary Topic
Biotin and Related Studies
Type
article
Field-Weighted Citation Impact
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article

Engineering a TurboID ‐based proximity labeling tool to track the dynamic secretomes under salt stress

Caiji Gao, Lei Feng, Danni Lin, Jiaxin Song et al.
New Phytologist
Biotin and Related Studies
article

Engineering a TurboID ‐based proximity labeling tool to track the dynamic secretomes under salt stress

Caiji Gao, Lei Feng, Danni Lin, Jiaxin Song, Hongbo Li, Xibao Li, Zhao Zheng, Chuanliang Liu, Jun Zhou, Le Qiao
article en

Abstract

Secretory proteins are essential for plant development and environmental adaptation, yet selectively profiling cargoes transported through the conventional endoplasmic reticulum (ER)-Golgi pathway remains technically challenging because apoplastic secretomes contain proteins from multiple secretion routes. We developed an ER-anchored TurboID proximity labeling method to selectively enrich proteins entering the conventional secretory pathway in Arabidopsis thaliana. Quantitative proteomics under control and salt stress conditions identified dynamic secretome changes and showed that most enriched proteins carry N-terminal signal peptides, supporting the utility of this approach for profiling conventional secretory proteins. Using this method, we found that sodium chloride (NaCl) stress remodels the conventional secretome by enhancing the secretion of a subset of cell wall-associated proteins. We further identified Apoplastic EDS1-Dependent 3 (AED3) as a salt-induced secretory protein, confirmed its ER-Golgi-dependent secretion, and demonstrated its role in salt tolerance. Overall, this study provides a useful approach for pathway-specific profiling of the conventional plant secretome, enabling the discovery of dynamic secretory proteins involved in plant environmental responses.

New Phytologist
South China Normal University (CN), Guangdong Academy of Agricultural Sciences (CN)
Life in Land
Openalex Percentile: Top 15%
Biotin and Related Studies
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Engineering a TurboID ‐based proximity labeling tool to track the dynamic secretomes under salt stress — Caiji Gao, Lei Feng, et al. · New Phytologist (2026) | TGRS Research Map | TGRS