Allocation and transfer of photosynthetic 13 C in the vegetation‐soil system and its response to permafrost degradation

Abstract The Xing'an Mountains, located on the southern edge of the Eurasian permafrost zone, are sensitive to permafrost degradation. In particular, the impact of wetland degradation in permafrost regions on carbon sequestration capacity cannot be ignored. Therefore, there is an urgent need to...

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Published in:Land Degradation & Development
Main Authors: Che, Lina, Xuan, Liqiang, Wan, Luhe
Other Authors: National Natural Science Foundation of China
Format: Article in Journal/Newspaper
Language:English
Published: Wiley 2022
Subjects:
Online Access:http://dx.doi.org/10.1002/ldr.4471
https://onlinelibrary.wiley.com/doi/pdf/10.1002/ldr.4471
https://onlinelibrary.wiley.com/doi/full-xml/10.1002/ldr.4471
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spelling crwiley:10.1002/ldr.4471 2024-06-23T07:44:55+00:00 Allocation and transfer of photosynthetic 13 C in the vegetation‐soil system and its response to permafrost degradation Che, Lina Xuan, Liqiang Wan, Luhe National Natural Science Foundation of China 2022 http://dx.doi.org/10.1002/ldr.4471 https://onlinelibrary.wiley.com/doi/pdf/10.1002/ldr.4471 https://onlinelibrary.wiley.com/doi/full-xml/10.1002/ldr.4471 en eng Wiley http://onlinelibrary.wiley.com/termsAndConditions#vor Land Degradation & Development volume 34, issue 2, page 453-465 ISSN 1085-3278 1099-145X journal-article 2022 crwiley https://doi.org/10.1002/ldr.4471 2024-06-06T04:19:58Z Abstract The Xing'an Mountains, located on the southern edge of the Eurasian permafrost zone, are sensitive to permafrost degradation. In particular, the impact of wetland degradation in permafrost regions on carbon sequestration capacity cannot be ignored. Therefore, there is an urgent need to understand the allocation and transfer of photosynthetic 13 C in the wetland vegetation‐soil system and its response to permafrost degradation. Three regions with different types of permafrost were selected predominantly continuous and island permafrost (located in Mohe); sparse island permafrost (located in Heihe); and isolated patches of permafrost (located in Yichun). The effects of permafrost degradation on the allocation and transfer of photosynthetic 13 C in trees, shrubs, herb vegetation, and mosses were investigated using isotope tracing techniques, redundancy analysis, and structural equation modeling. Mohe had the largest 13 C excess and more transfer of shrubs and herbs to the underground carbon pool. The recoveries of photosynthate‐ 13 C for Larix gemlini , Vaccinium uliginosum , and Sphagnum sp. were significantly different in different permafrost regions using Tukey's honestly significant difference (HSD) post hoc comparisons of means tests. The amount of Δphotosynthate‐ 13 C transfer was larger in Mohe than in Heihe and Yichun. The allocation of photosynthetic 13 C in the plant roots in the three permafrost regions was positively correlated with the total soil phosphorus content. The active layer thickness was an important factor affecting the transfer of Δphotosynthate‐ 13 C. The allocation and transfer of photosynthetic 13 C to the subsurface were larger in the predominantly continuous and island permafrost areas than in the sparse island and isolated patch permafrost regions. The allocation and transfer of photosynthetic 13 C in the vegetation‐soil system were affected by the soils' physicochemical properties and the environmental changes after permafrost degradation. Article in Journal/Newspaper Active layer thickness permafrost Wiley Online Library Land Degradation & Development 34 2 453 465
institution Open Polar
collection Wiley Online Library
op_collection_id crwiley
language English
description Abstract The Xing'an Mountains, located on the southern edge of the Eurasian permafrost zone, are sensitive to permafrost degradation. In particular, the impact of wetland degradation in permafrost regions on carbon sequestration capacity cannot be ignored. Therefore, there is an urgent need to understand the allocation and transfer of photosynthetic 13 C in the wetland vegetation‐soil system and its response to permafrost degradation. Three regions with different types of permafrost were selected predominantly continuous and island permafrost (located in Mohe); sparse island permafrost (located in Heihe); and isolated patches of permafrost (located in Yichun). The effects of permafrost degradation on the allocation and transfer of photosynthetic 13 C in trees, shrubs, herb vegetation, and mosses were investigated using isotope tracing techniques, redundancy analysis, and structural equation modeling. Mohe had the largest 13 C excess and more transfer of shrubs and herbs to the underground carbon pool. The recoveries of photosynthate‐ 13 C for Larix gemlini , Vaccinium uliginosum , and Sphagnum sp. were significantly different in different permafrost regions using Tukey's honestly significant difference (HSD) post hoc comparisons of means tests. The amount of Δphotosynthate‐ 13 C transfer was larger in Mohe than in Heihe and Yichun. The allocation of photosynthetic 13 C in the plant roots in the three permafrost regions was positively correlated with the total soil phosphorus content. The active layer thickness was an important factor affecting the transfer of Δphotosynthate‐ 13 C. The allocation and transfer of photosynthetic 13 C to the subsurface were larger in the predominantly continuous and island permafrost areas than in the sparse island and isolated patch permafrost regions. The allocation and transfer of photosynthetic 13 C in the vegetation‐soil system were affected by the soils' physicochemical properties and the environmental changes after permafrost degradation.
author2 National Natural Science Foundation of China
format Article in Journal/Newspaper
author Che, Lina
Xuan, Liqiang
Wan, Luhe
spellingShingle Che, Lina
Xuan, Liqiang
Wan, Luhe
Allocation and transfer of photosynthetic 13 C in the vegetation‐soil system and its response to permafrost degradation
author_facet Che, Lina
Xuan, Liqiang
Wan, Luhe
author_sort Che, Lina
title Allocation and transfer of photosynthetic 13 C in the vegetation‐soil system and its response to permafrost degradation
title_short Allocation and transfer of photosynthetic 13 C in the vegetation‐soil system and its response to permafrost degradation
title_full Allocation and transfer of photosynthetic 13 C in the vegetation‐soil system and its response to permafrost degradation
title_fullStr Allocation and transfer of photosynthetic 13 C in the vegetation‐soil system and its response to permafrost degradation
title_full_unstemmed Allocation and transfer of photosynthetic 13 C in the vegetation‐soil system and its response to permafrost degradation
title_sort allocation and transfer of photosynthetic 13 c in the vegetation‐soil system and its response to permafrost degradation
publisher Wiley
publishDate 2022
url http://dx.doi.org/10.1002/ldr.4471
https://onlinelibrary.wiley.com/doi/pdf/10.1002/ldr.4471
https://onlinelibrary.wiley.com/doi/full-xml/10.1002/ldr.4471
genre Active layer thickness
permafrost
genre_facet Active layer thickness
permafrost
op_source Land Degradation & Development
volume 34, issue 2, page 453-465
ISSN 1085-3278 1099-145X
op_rights http://onlinelibrary.wiley.com/termsAndConditions#vor
op_doi https://doi.org/10.1002/ldr.4471
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