Cargando…

Physiological responses of two moss species to the combined stress of water deficit and elevated N deposition (II): Carbon and nitrogen metabolism

Nitrogen (N) deposition levels and frequencies of extreme drought events are increasing globally. In efforts to improve understanding of plants' responses to associated stresses, we have investigated responses of mosses to drought under elevated nitrogen conditions. More specifically, we expose...

Descripción completa

Detalles Bibliográficos
Autores principales: Liu, Bin‐yang, Lei, Chun‐yi, Jin, Jian‐hua, Guan, Yi‐yun, Li, Shan, Zhang, Yi‐shun, Liu, Wei‐qiu
Formato: Online Artículo Texto
Lenguaje:English
Publicado: John Wiley and Sons Inc. 2016
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC6093146/
https://www.ncbi.nlm.nih.gov/pubmed/30128114
http://dx.doi.org/10.1002/ece3.2521
_version_ 1783347658668113920
author Liu, Bin‐yang
Lei, Chun‐yi
Jin, Jian‐hua
Guan, Yi‐yun
Li, Shan
Zhang, Yi‐shun
Liu, Wei‐qiu
author_facet Liu, Bin‐yang
Lei, Chun‐yi
Jin, Jian‐hua
Guan, Yi‐yun
Li, Shan
Zhang, Yi‐shun
Liu, Wei‐qiu
author_sort Liu, Bin‐yang
collection PubMed
description Nitrogen (N) deposition levels and frequencies of extreme drought events are increasing globally. In efforts to improve understanding of plants' responses to associated stresses, we have investigated responses of mosses to drought under elevated nitrogen conditions. More specifically, we exposed Pogonatum cirratum subsp. fuscatum and Hypnum plumaeforme to various nitrate (KNO (3)) or ammonium (NH (4)Cl) treatments, with and without water deficit stress and monitored indices related to carbon (C) and N metabolism both immediately after the stress and after a short recovery period. The results show that N application stimulated both C and N assimilation activities, including ribulose‐1,5‐bisphosphate carboxylase, glutamine synthetase/glutamate synthase (GS/GOGAT), and glutamate dehydrogenase (GDH) activities, while water deficit inhibited C and N assimilation. The mosses could resist stress caused by excess N and water deficit by increasing their photorespiration activity and proline (Pro) contents. However, N supply increased their sensitivity to water stress, causing sharper reductions in C and N assimilation rates, and further increases in photorespiration and Pro contents, indicating more serious oxidative or osmotic stress in the mosses. In addition, there were interspecific differences in N assimilation pathways, as the GS/GOGAT and GDH pathways were the preferentially used ammonium assimilation pathways in P. cirratum and H. plumaeforme when stressed, respectively. After rehydration, both mosses exhibited overcompensation effects for most C and N assimilation activities, but when supplied with N, the activities were generally restored to previous levels (or less), indicating that N supply reduced their ability to recover from water deficit stress. In conclusion, mosses can tolerate a certain degree of water deficit stress and possess some resilience to environmental fluctuations, but elevated N deposition reduces their tolerance and ability to recover.
format Online
Article
Text
id pubmed-6093146
institution National Center for Biotechnology Information
language English
publishDate 2016
publisher John Wiley and Sons Inc.
record_format MEDLINE/PubMed
spelling pubmed-60931462018-08-20 Physiological responses of two moss species to the combined stress of water deficit and elevated N deposition (II): Carbon and nitrogen metabolism Liu, Bin‐yang Lei, Chun‐yi Jin, Jian‐hua Guan, Yi‐yun Li, Shan Zhang, Yi‐shun Liu, Wei‐qiu Ecol Evol Original Research Nitrogen (N) deposition levels and frequencies of extreme drought events are increasing globally. In efforts to improve understanding of plants' responses to associated stresses, we have investigated responses of mosses to drought under elevated nitrogen conditions. More specifically, we exposed Pogonatum cirratum subsp. fuscatum and Hypnum plumaeforme to various nitrate (KNO (3)) or ammonium (NH (4)Cl) treatments, with and without water deficit stress and monitored indices related to carbon (C) and N metabolism both immediately after the stress and after a short recovery period. The results show that N application stimulated both C and N assimilation activities, including ribulose‐1,5‐bisphosphate carboxylase, glutamine synthetase/glutamate synthase (GS/GOGAT), and glutamate dehydrogenase (GDH) activities, while water deficit inhibited C and N assimilation. The mosses could resist stress caused by excess N and water deficit by increasing their photorespiration activity and proline (Pro) contents. However, N supply increased their sensitivity to water stress, causing sharper reductions in C and N assimilation rates, and further increases in photorespiration and Pro contents, indicating more serious oxidative or osmotic stress in the mosses. In addition, there were interspecific differences in N assimilation pathways, as the GS/GOGAT and GDH pathways were the preferentially used ammonium assimilation pathways in P. cirratum and H. plumaeforme when stressed, respectively. After rehydration, both mosses exhibited overcompensation effects for most C and N assimilation activities, but when supplied with N, the activities were generally restored to previous levels (or less), indicating that N supply reduced their ability to recover from water deficit stress. In conclusion, mosses can tolerate a certain degree of water deficit stress and possess some resilience to environmental fluctuations, but elevated N deposition reduces their tolerance and ability to recover. John Wiley and Sons Inc. 2016-10-04 /pmc/articles/PMC6093146/ /pubmed/30128114 http://dx.doi.org/10.1002/ece3.2521 Text en © 2016 The Authors. Ecology and Evolution published by John Wiley & Sons Ltd. This is an open access article under the terms of the http://creativecommons.org/licenses/by/4.0/ License, which permits use, distribution and reproduction in any medium, provided the original work is properly cited.
spellingShingle Original Research
Liu, Bin‐yang
Lei, Chun‐yi
Jin, Jian‐hua
Guan, Yi‐yun
Li, Shan
Zhang, Yi‐shun
Liu, Wei‐qiu
Physiological responses of two moss species to the combined stress of water deficit and elevated N deposition (II): Carbon and nitrogen metabolism
title Physiological responses of two moss species to the combined stress of water deficit and elevated N deposition (II): Carbon and nitrogen metabolism
title_full Physiological responses of two moss species to the combined stress of water deficit and elevated N deposition (II): Carbon and nitrogen metabolism
title_fullStr Physiological responses of two moss species to the combined stress of water deficit and elevated N deposition (II): Carbon and nitrogen metabolism
title_full_unstemmed Physiological responses of two moss species to the combined stress of water deficit and elevated N deposition (II): Carbon and nitrogen metabolism
title_short Physiological responses of two moss species to the combined stress of water deficit and elevated N deposition (II): Carbon and nitrogen metabolism
title_sort physiological responses of two moss species to the combined stress of water deficit and elevated n deposition (ii): carbon and nitrogen metabolism
topic Original Research
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC6093146/
https://www.ncbi.nlm.nih.gov/pubmed/30128114
http://dx.doi.org/10.1002/ece3.2521
work_keys_str_mv AT liubinyang physiologicalresponsesoftwomossspeciestothecombinedstressofwaterdeficitandelevatedndepositioniicarbonandnitrogenmetabolism
AT leichunyi physiologicalresponsesoftwomossspeciestothecombinedstressofwaterdeficitandelevatedndepositioniicarbonandnitrogenmetabolism
AT jinjianhua physiologicalresponsesoftwomossspeciestothecombinedstressofwaterdeficitandelevatedndepositioniicarbonandnitrogenmetabolism
AT guanyiyun physiologicalresponsesoftwomossspeciestothecombinedstressofwaterdeficitandelevatedndepositioniicarbonandnitrogenmetabolism
AT lishan physiologicalresponsesoftwomossspeciestothecombinedstressofwaterdeficitandelevatedndepositioniicarbonandnitrogenmetabolism
AT zhangyishun physiologicalresponsesoftwomossspeciestothecombinedstressofwaterdeficitandelevatedndepositioniicarbonandnitrogenmetabolism
AT liuweiqiu physiologicalresponsesoftwomossspeciestothecombinedstressofwaterdeficitandelevatedndepositioniicarbonandnitrogenmetabolism