Microbial evidence reveals nitrification as the key process in soil nitrogen availability during natural restoration of degraded karst forests
摘要
Soil nitrogen (N) availability is crucial for ecosystem structure and function. However, in the degraded karst areas of southwest China, the mechanisms governing soil N availability and microbial community contributions during natural restoration remain unclear.
MethodsThis study conducted plant surveys, soil analyses and metagenomic sequencing across three restoration stages of a degraded karst forest (TG: shrubland, SG: secondary-growth forest, OG: old-growth forest) in Guizhou Province, China, to explore changes in soil microbial nitrification and its impact on soil N dynamics.
ResultsNatural restoration promoted the synchronous recovery of plant communities and soil nutrients. Soil N availability (NO3−/NH4+ ratio) increased from 6.48 in TG to 44.26 in OG, driven by higher NO3− levels linked to enhanced microbial nitrification. The expansion of the overall nitrifying microbial community was mainly due to improved soil nutrients, which increased soil N availability. Among the nitrification processes, ammonia oxidation (AO) and nitrite oxidation (NO) increased with soil N availability, whereas hydroxylamine oxidation (HO) was decreased. Structural equation modeling (SEM) further suggested that AO was the primary driver of increased N availability during restoration. The large differences in microbial composition among the three nitrifying communities highlight significant functional differentiation in microbial roles within N cycling.
ConclusionsNatural restoration of degraded karst forests enhances soil N availability primarily through promoting microbial nitrification, especially the AO process, driven by soil nutrient levels. This study provides new insights into microbial-mediated N cycling and offers valuable guidance for the ecological restoration of karst ecosystems.