MdNup62 involved in salt and osmotic stress tolerance in apple

Abiotic stress of plants has serious consequences on the development of the apple industry. Nuclear pore complexes (NPCs) control nucleoplasmic transport and play an important role in the regulation of plant abiotic stress response. However, the effects of NPCs on apple salt and osmotic stress respo...

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Veröffentlicht in:Scientific reports 2023-11, Vol.13 (1), p.20198-20198, Article 20198
Hauptverfasser: Guo, Ruxuan, Zhang, Xiaoshuang, Li, Mingyuan, Zhang, Huiwen, Wu, Junkai, Zhang, Libin, Xiao, Xiao, Han, Mingyu, An, Na, Xing, Libo, Zhang, Chenguang
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Sprache:eng
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Zusammenfassung:Abiotic stress of plants has serious consequences on the development of the apple industry. Nuclear pore complexes (NPCs) control nucleoplasmic transport and play an important role in the regulation of plant abiotic stress response. However, the effects of NPCs on apple salt and osmotic stress responses have not been reported yet. In this study, we analyzed the expression and function of NUCLEOPORIN 62 ( MdNup62) , a component of apple NPC. MdNup62 expression was significantly increased by salt and mannitol (simulated osmotic stress) treatment. The MdNup62 -overexpressing (OE) Arabidopsis and tomato lines exhibited significantly reduced salt stress tolerance, and MdNup62 -OE Arabidopsis lines exhibited reduced osmotic stress tolerance. We further studied the function of HEAT SHOCK FACTOR A1d (MdHSFA1d), the interacting protein of MdNup62, in salt and osmotic stress tolerance. In contrast to MdNup62 , MdHSFA1d -OE Arabidopsis lines showed significantly enhanced tolerance to salt and osmotic stress. Our findings suggest a possible interaction of MdNup62 with MdHSFA1d in the mediation of nuclear and cytoplasmic transport and the regulation of apple salt and osmotic stress tolerance. These results contribute to the understanding of the salt and osmotic stress response mechanism in apple.
ISSN:2045-2322
2045-2322
DOI:10.1038/s41598-023-47024-9