Literature DB >> 28160641

Contribution of glomalin to dissolve organic carbon under different land uses and seasonality in dry tropics.

Ashutosh Kumar Singh1, Apurva Rai2, Vivek Pandey3, Nandita Singh4.   

Abstract

Glomalin related soil protein (GRSP) is a hydrophobic glycoprotein that is significant for soil organic carbon (SOC) persistence and sequestration, owing to its large contribution to SOC pool and long turnover time. However, the contribution of GRSP to dissolve OC (DOC) leach from soil is not yet comprehensively explored, though it could have implication in understanding SOC dynamics. We, therefore, aim to measure the contribution of GRSP to DOC, in a range of land uses and climatic seasons in the dry tropical ecosystem. Our results demonstrated that a significant proportion of GRSP (water soluble GRSP; WS-GRSP) leached with DOC (7.9-21.9 mg kg-1), which accounts for 0.2-0.23% of soils total GRSP (T-GRSP). Forest exhibited significantly higher WS-GRSP and DOC leaching than fallow and agriculture. WS-GRSP and DOC accumulations were higher in the dry season (summer and winter) than in rainy. The extent of seasonal variations was higher in forest than in other two land uses, indicating the role of vegetation and biological activity in soil dissolve organic matter (DOM) dynamics. The regression analysis among WS-GRSP, T-GRSP, DOC and SOC prove that the accumulations and leaching of GRSP and other soil OM (SOM) depend on similar factors. The ratio of WS-GRSP-C to DOC was higher in agriculture soil than in forest and fallow, likely a consequence of altered soil chemistry, and organic matter quantity and quality due to soil management practices. Multivariate analysis reflects a strong linkage among GRSP and SOC storage and leaching, soil nutrients (nitrogen and phosphorus) and other important soil properties (pH and bulk density), suggesting that improving GRSP and other SOM status is an urgent need for the both SOC sequestration and soil health in dry tropical agro-ecosystems.
Copyright © 2017 Elsevier Ltd. All rights reserved.

Entities:  

Keywords:  Glomalin related soil protein; Land use system; Seasonal variation; Soil organic carbon; Tropical dry forest; Water soluble organic carbon

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Year:  2017        PMID: 28160641     DOI: 10.1016/j.jenvman.2017.01.041

Source DB:  PubMed          Journal:  J Environ Manage        ISSN: 0301-4797            Impact factor:   8.910


  1 in total

1.  Glomalin contributed more to carbon, nutrients in deeper soils, and differently associated with climates and soil properties in vertical profiles.

Authors:  Wenjie Wang; Zhaoliang Zhong; Qiong Wang; Humei Wang; Yujie Fu; Xingyuan He
Journal:  Sci Rep       Date:  2017-10-11       Impact factor: 4.996

  1 in total

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