Cargando…

Cyclophilin OsCYP20‐2 with a novel variant integrates defense and cell elongation for chilling response in rice

Coordinating stress defense and plant growth is a survival strategy for adaptation to different environments that contains a series of processes, such as, cell growth, division and differentiation. However, little is known about the coordination mechanism for protein conformation change. A cyclophil...

Descripción completa

Detalles Bibliográficos
Autores principales: Ge, Qiang, Zhang, Yuanyuan, Xu, Yunyuan, Bai, Mingyi, Luo, Wei, Wang, Bo, Niu, Yuda, Zhao, Yuan, Li, Shanshan, Weng, Yuxiang, Wang, Zhiyong, Qian, Qian, Chong, Kang
Formato: Online Artículo Texto
Lenguaje:English
Publicado: John Wiley and Sons Inc. 2019
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC7064896/
https://www.ncbi.nlm.nih.gov/pubmed/31736073
http://dx.doi.org/10.1111/nph.16324
_version_ 1783504954229522432
author Ge, Qiang
Zhang, Yuanyuan
Xu, Yunyuan
Bai, Mingyi
Luo, Wei
Wang, Bo
Niu, Yuda
Zhao, Yuan
Li, Shanshan
Weng, Yuxiang
Wang, Zhiyong
Qian, Qian
Chong, Kang
author_facet Ge, Qiang
Zhang, Yuanyuan
Xu, Yunyuan
Bai, Mingyi
Luo, Wei
Wang, Bo
Niu, Yuda
Zhao, Yuan
Li, Shanshan
Weng, Yuxiang
Wang, Zhiyong
Qian, Qian
Chong, Kang
author_sort Ge, Qiang
collection PubMed
description Coordinating stress defense and plant growth is a survival strategy for adaptation to different environments that contains a series of processes, such as, cell growth, division and differentiation. However, little is known about the coordination mechanism for protein conformation change. A cyclophilin OsCYP20‐2 with a variant interacts with SLENDER RICE1 (SLR1) and OsFSD2 in the nucleus and chloroplasts, respectively, to integrate chilling tolerance and cell elongation in rice (Oryza sativa) (FSD2, Fe-superoxide dismutase 2). Mass spectrum assay showed that OsNuCYP20‐2 localized at the nucleus (nuclear located OsCYP20‐2) was a new variant of OsCYP20‐2 that truncated 71 amino‐acid residues in N‐terminal. The loss‐of function OsCYP20‐2 mutant showed sensitivity to chilling stress with accumulation of extra reactive oxygen species (ROS). In chloroplasts, the full‐length OsCYP20‐2 promotes OsFSD2 forming homodimers which enhance its activity, eliminating the accumulation of ROS under chilling stress. However, the mutant had shorter epidermal cells in comparison with wild‐type Hwayoung (HY). In the nucleus, OsCYP20‐2 caused conformation change of SLR1 to promote its degradation for cell elongation. Our data reveal a cyclophilin with a variant with dual‐localization in chloroplasts and the nucleus, which mediate chilling tolerance and cell elongation.
format Online
Article
Text
id pubmed-7064896
institution National Center for Biotechnology Information
language English
publishDate 2019
publisher John Wiley and Sons Inc.
record_format MEDLINE/PubMed
spelling pubmed-70648962020-03-16 Cyclophilin OsCYP20‐2 with a novel variant integrates defense and cell elongation for chilling response in rice Ge, Qiang Zhang, Yuanyuan Xu, Yunyuan Bai, Mingyi Luo, Wei Wang, Bo Niu, Yuda Zhao, Yuan Li, Shanshan Weng, Yuxiang Wang, Zhiyong Qian, Qian Chong, Kang New Phytol Research Coordinating stress defense and plant growth is a survival strategy for adaptation to different environments that contains a series of processes, such as, cell growth, division and differentiation. However, little is known about the coordination mechanism for protein conformation change. A cyclophilin OsCYP20‐2 with a variant interacts with SLENDER RICE1 (SLR1) and OsFSD2 in the nucleus and chloroplasts, respectively, to integrate chilling tolerance and cell elongation in rice (Oryza sativa) (FSD2, Fe-superoxide dismutase 2). Mass spectrum assay showed that OsNuCYP20‐2 localized at the nucleus (nuclear located OsCYP20‐2) was a new variant of OsCYP20‐2 that truncated 71 amino‐acid residues in N‐terminal. The loss‐of function OsCYP20‐2 mutant showed sensitivity to chilling stress with accumulation of extra reactive oxygen species (ROS). In chloroplasts, the full‐length OsCYP20‐2 promotes OsFSD2 forming homodimers which enhance its activity, eliminating the accumulation of ROS under chilling stress. However, the mutant had shorter epidermal cells in comparison with wild‐type Hwayoung (HY). In the nucleus, OsCYP20‐2 caused conformation change of SLR1 to promote its degradation for cell elongation. Our data reveal a cyclophilin with a variant with dual‐localization in chloroplasts and the nucleus, which mediate chilling tolerance and cell elongation. John Wiley and Sons Inc. 2019-12-28 2020-03 /pmc/articles/PMC7064896/ /pubmed/31736073 http://dx.doi.org/10.1111/nph.16324 Text en © 2019 Chinese Academy of Sciences New Phytologist © 2019 New Phytologist Trust This is an open access article under the terms of the http://creativecommons.org/licenses/by-nc/4.0/ License, which permits use, distribution and reproduction in any medium, provided the original work is properly cited and is not used for commercial purposes.
spellingShingle Research
Ge, Qiang
Zhang, Yuanyuan
Xu, Yunyuan
Bai, Mingyi
Luo, Wei
Wang, Bo
Niu, Yuda
Zhao, Yuan
Li, Shanshan
Weng, Yuxiang
Wang, Zhiyong
Qian, Qian
Chong, Kang
Cyclophilin OsCYP20‐2 with a novel variant integrates defense and cell elongation for chilling response in rice
title Cyclophilin OsCYP20‐2 with a novel variant integrates defense and cell elongation for chilling response in rice
title_full Cyclophilin OsCYP20‐2 with a novel variant integrates defense and cell elongation for chilling response in rice
title_fullStr Cyclophilin OsCYP20‐2 with a novel variant integrates defense and cell elongation for chilling response in rice
title_full_unstemmed Cyclophilin OsCYP20‐2 with a novel variant integrates defense and cell elongation for chilling response in rice
title_short Cyclophilin OsCYP20‐2 with a novel variant integrates defense and cell elongation for chilling response in rice
title_sort cyclophilin oscyp20‐2 with a novel variant integrates defense and cell elongation for chilling response in rice
topic Research
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC7064896/
https://www.ncbi.nlm.nih.gov/pubmed/31736073
http://dx.doi.org/10.1111/nph.16324
work_keys_str_mv AT geqiang cyclophilinoscyp202withanovelvariantintegratesdefenseandcellelongationforchillingresponseinrice
AT zhangyuanyuan cyclophilinoscyp202withanovelvariantintegratesdefenseandcellelongationforchillingresponseinrice
AT xuyunyuan cyclophilinoscyp202withanovelvariantintegratesdefenseandcellelongationforchillingresponseinrice
AT baimingyi cyclophilinoscyp202withanovelvariantintegratesdefenseandcellelongationforchillingresponseinrice
AT luowei cyclophilinoscyp202withanovelvariantintegratesdefenseandcellelongationforchillingresponseinrice
AT wangbo cyclophilinoscyp202withanovelvariantintegratesdefenseandcellelongationforchillingresponseinrice
AT niuyuda cyclophilinoscyp202withanovelvariantintegratesdefenseandcellelongationforchillingresponseinrice
AT zhaoyuan cyclophilinoscyp202withanovelvariantintegratesdefenseandcellelongationforchillingresponseinrice
AT lishanshan cyclophilinoscyp202withanovelvariantintegratesdefenseandcellelongationforchillingresponseinrice
AT wengyuxiang cyclophilinoscyp202withanovelvariantintegratesdefenseandcellelongationforchillingresponseinrice
AT wangzhiyong cyclophilinoscyp202withanovelvariantintegratesdefenseandcellelongationforchillingresponseinrice
AT qianqian cyclophilinoscyp202withanovelvariantintegratesdefenseandcellelongationforchillingresponseinrice
AT chongkang cyclophilinoscyp202withanovelvariantintegratesdefenseandcellelongationforchillingresponseinrice