Biophysical Controls on Soil Carbon Cycling in a Northern Hardwood Forest

被引:0
|
作者
Hodgson, Patrick R. [1 ]
Annis, Madison L. [1 ]
Chen, Angela Hsuan [1 ]
Fraser, Molly R. [1 ]
Lee, Dan J. [1 ]
Stanton, Aaron I. [1 ,2 ]
Racela, Jason [3 ]
Gill, Allison L. [1 ]
机构
[1] Williams Coll, Dept Biol, 31 Morley Dr, Williamstown, MA 01267 USA
[2] Harvard Sch Publ Hlth, Dept Immunol & Infect Dis, Boston, MA USA
[3] Williams Coll, Ctr Environm Studies, Williamstown, MA USA
关键词
Soil respiration; Temperature sensitivity; Q(10); Cation; Decomposition; Aggregate; MICROBIAL COMMUNITY UTILIZATION; ORGANIC-MATTER; TEMPERATURE SENSITIVITY; RESPIRATION; GROWTH; DECOMPOSITION; NITROGEN; MECHANISMS; CLIMATE; STABILIZATION;
D O I
10.1007/s10021-023-00890-w
中图分类号
Q14 [生态学(生物生态学)];
学科分类号
071012 ; 0713 ;
摘要
Soil organic matter (SOM) is a major global carbon (C) pool vulnerable to ongoing warming, as microbial SOM decomposition and CO2 respiration are sensitive to temperature. We characterized the edaphic characteristics that explain variation in soil C concentration, cycling, and temperature sensitivity (Q10) across two sites of differing elevation, forest community composition, and mineral parent material at Hopkins Memorial Forest, Williamstown, Massachusetts, USA. We found that the upper site maintained significantly higher surface soil C concentration, despite similar litterfall inputs across sites. We found large differences in the fraction of total soil C that is protected from microbial decomposition, with enhanced physical protection in macroaggregate-rich, upper site soils. Upper site plots maintain a higher relative abundance of plants producing lignin-rich litter, which may fuel aggregate formation and SOM protection. Experimental addition of glucose, vanillin, and lignin substrates produced broadly conserved respiratory responses across sites, suggesting that microbial communities maintain similar decomposition capacity, although lignin addition induced slightly elevated respiration responses in upper relative to lower site plots. Seasonal Q10 of soil respiration was higher at the upper site and increased with soil potassium (K+) availability across plots, potentially reflecting K+ constraints on autotrophic and heterotrophic metabolic activity. Our findings suggest that variation in the extent of physical protection of soil C, particularly through macroaggregate formation, is an important mechanism for long-term soil C storage at the site. Despite enhanced SOM physical protection at the upper site, the higher temperature sensitivity of soil respiration may reduce soil C in the context of future warming.
引用
收藏
页码:295 / 309
页数:15
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