---
res:
  bibo_abstract:
  - Forest succession alters soil organic carbon (SOC) dynamics by changing litter
    quality of litter entering the soil and affecting microbial communities. However,
    few studies have explored how litter quality interacts with soil fungal communities
    to regulate SOC mineralization during successional changes in forest succession.
    We studied the relationship between litter quality, SOC mineralization, and associated
    fungal composition by conducting an in-situ decomposition experiment in a natural
    broadleaf forest and a pure Moso bamboo (Phyllostachys edulis) forest, where the
    succession in former forest arrested by structurally inferior bamboo grasses.
    On average, topsoil organic carbon mineralization increased by 73 % and subsoil
    by 233 % (only during autumn) following the broadleaf forest transitions to bamboo
    dominance. More decomposable litterfall in the bamboo forests increased the abundance
    of saprophytic fungi (e.g., Mortierellales and Chaetothyriales orders) and enhanced
    topsoil degradation functions, promoting SOC mineralization compared to the broadleaf
    forest. Higher water-soluble organic carbon content increased subsoil organic
    carbon mineralization by increasing the abundance of Mortierellales order. Our
    results emphasized the importance of interaction between litter quality and fungal
    composition (especially saprophytic fungi) regulated SOC mineralization in arrested
    succession. The enhanced SOC mineralization after the broadleaf forest transition
    to bamboo forest suggested that the traits of Moso bamboo, such as fast litterfall
    decomposition, can accelerate SOC mineralization to reinforce its dominance. By
    examining the role of microbial decomposition in regulating soil nutrient dynamics
    in the context of arrested succession, our study offered a unique mechanistic
    perspective on the belowground drivers of bamboo dominance, with important implications
    for forest structure and function.@eng
  bibo_authorlist:
  - foaf_Person:
      foaf_givenName: Qiumei
      foaf_name: Teng, Qiumei
      foaf_surname: Teng
  - foaf_Person:
      foaf_givenName: Tao
      foaf_name: Fang, Tao
      foaf_surname: Fang
  - foaf_Person:
      foaf_givenName: Qianqian
      foaf_name: Zhang, Qianqian
      foaf_surname: Zhang
  - foaf_Person:
      foaf_givenName: Anna
      foaf_name: Gunina, Anna
      foaf_surname: Gunina
      foaf_workInfoHomepage: http://www.librecat.org/personId=87876
  - foaf_Person:
      foaf_givenName: Aiyu
      foaf_name: Zheng, Aiyu
      foaf_surname: Zheng
  - foaf_Person:
      foaf_givenName: Zhaoliang
      foaf_name: Song, Zhaoliang
      foaf_surname: Song
  - foaf_Person:
      foaf_givenName: Jingyun
      foaf_name: Zhou, Jingyun
      foaf_surname: Zhou
  - foaf_Person:
      foaf_givenName: Scott X.
      foaf_name: Chang, Scott X.
      foaf_surname: Chang
  - foaf_Person:
      foaf_givenName: Yongchun
      foaf_name: Li, Yongchun
      foaf_surname: Li
  bibo_doi: 10.1016/j.apsoil.2025.106006
  bibo_volume: 209
  dct_date: 2025^xs_gYear
  dct_identifier:
  - UT:001446454000001
  dct_isPartOf:
  - http://id.crossref.org/issn/0929-1393
  - http://id.crossref.org/issn/1873-0272
  dct_language: eng
  dct_publisher: Elsevier BV@
  dct_subject:
  - Arrested succession
  - Moso bamboo
  - Litter decomposition
  - SOC mineralization
  - Soil fungal composition
  - Water-soluble organic carbon content
  dct_title: Successional transition from broadleaf to bamboo forests promotes fungal
    communities and soil carbon mineralization following the altered litterfall quality@
...
