V 0 and V 1 domains of vacuolar H + ‐ ATPase play distinct roles in cadmium tolerance of Broussonetia papyrifera

Abstract Cadmium (Cd) contamination poses a major threat to forest ecosystems, and Broussonetia papyrifera is a promising woody species with strong Cd tolerance and accumulation capacity. Vacuolar H + ‐ATPase (V‐ATPase) is central to ion homeostasis and heavy metal detoxification, yet the organ‐ and domain‐specific roles of its subunits in Cd responses remain unclear. We integrated physiological measurements, transcript profiling, enzyme activity assays and genome‐wide analyses to characterize V‐ATPase subunits ( BpVHAs ) and their functions under a 30‐day Cd treatment in roots, stems and leaves of B. papyrifera . Cd stress caused only mild electrolyte leakage but triggered substantial V‐ATPase accumulation and enhanced activity. V‐ATPase activity displayed a tissue‐graded temporal pattern, with roots responding earliest and most strongly. We identified 22 BpVHA genes belonging to conserved V 0 and V 1 domains, whose promoters were enriched in stress‐ and hormone‐related cis ‐elements. Most genes exhibited a rise‐then‐fall expression trend during Cd exposure, with V 0 subunits induced earlier, more strongly and for longer than V 1 subunits. Mantel tests showed that V 1 expression correlated more strongly with V‐ATPase activity in roots, whereas V 0 expression dominated in stems and leaves. Our findings highlight BpVHA‐a2 , BpVHA‐a3 and BpVHA‐c1 as key contributors to Cd detoxification. We propose a model in which roots rely on rapid V 1 ‐driven ATP hydrolysis, while aerial tissues depend on sustained V 0 ‐mediated proton pumping to support vacuolar Cd sequestration. This study provides new insights into heavy metal tolerance in woody plants and identifies promising molecular targets for breeding and phytoremediation in Cd‐contaminated environments.

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Publication Details

Journal
Plant Biology
Published
2026-09-21
DOI
https://doi.org/10.1111/plb.70292
Primary Topic
Plant Stress Responses and Tolerance
Type
article
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article

V 0 and V 1 domains of vacuolar H + ‐ ATPase play distinct roles in cadmium tolerance of Broussonetia papyrifera

K. Aleem, Guiyan Yang, J. Yuying, L. Peiwei et al.
Plant Biology
Plant Stress Responses and Tolerance
article

V 0 and V 1 domains of vacuolar H + ‐ ATPase play distinct roles in cadmium tolerance of Broussonetia papyrifera

K. Aleem, Guiyan Yang, J. Yuying, L. Peiwei, N. R. Shahi, W. Tianyu, X. Zhenggang, T. Xingjing, Y. Le, H. Yani
article en

Abstract

Abstract Cadmium (Cd) contamination poses a major threat to forest ecosystems, and Broussonetia papyrifera is a promising woody species with strong Cd tolerance and accumulation capacity. Vacuolar H + ‐ATPase (V‐ATPase) is central to ion homeostasis and heavy metal detoxification, yet the organ‐ and domain‐specific roles of its subunits in Cd responses remain unclear. We integrated physiological measurements, transcript profiling, enzyme activity assays and genome‐wide analyses to characterize V‐ATPase subunits ( BpVHAs ) and their functions under a 30‐day Cd treatment in roots, stems and leaves of B. papyrifera . Cd stress caused only mild electrolyte leakage but triggered substantial V‐ATPase accumulation and enhanced activity. V‐ATPase activity displayed a tissue‐graded temporal pattern, with roots responding earliest and most strongly. We identified 22 BpVHA genes belonging to conserved V 0 and V 1 domains, whose promoters were enriched in stress‐ and hormone‐related cis ‐elements. Most genes exhibited a rise‐then‐fall expression trend during Cd exposure, with V 0 subunits induced earlier, more strongly and for longer than V 1 subunits. Mantel tests showed that V 1 expression correlated more strongly with V‐ATPase activity in roots, whereas V 0 expression dominated in stems and leaves. Our findings highlight BpVHA‐a2 , BpVHA‐a3 and BpVHA‐c1 as key contributors to Cd detoxification. We propose a model in which roots rely on rapid V 1 ‐driven ATP hydrolysis, while aerial tissues depend on sustained V 0 ‐mediated proton pumping to support vacuolar Cd sequestration. This study provides new insights into heavy metal tolerance in woody plants and identifies promising molecular targets for breeding and phytoremediation in Cd‐contaminated environments.

Plant Biology
Agriculture and Forestry University (NP), Tarim University (CN), North West Agriculture and Forestry University (CN), State Forestry and Grassland Administration (CN)
Life in Land
Openalex Percentile: Top 13%
Plant Stress Responses and Tolerance
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