首页    期刊浏览 2024年11月07日 星期四
登录注册

文章基本信息

  • 标题:Peatland warming strongly increases fine-root growth
  • 本地全文:下载
  • 作者:Avni Malhotra ; Deanne J. Brice ; Joanne Childs
  • 期刊名称:Proceedings of the National Academy of Sciences
  • 印刷版ISSN:0027-8424
  • 电子版ISSN:1091-6490
  • 出版年度:2020
  • 卷号:117
  • 期号:30
  • 页码:17627-17634
  • DOI:10.1073/pnas.2003361117
  • 出版社:The National Academy of Sciences of the United States of America
  • 摘要:Belowground climate change responses remain a key unknown in the Earth system. Plant fine-root response is especially important to understand because fine roots respond quickly to environmental change, are responsible for nutrient and water uptake, and influence carbon cycling. However, fine-root responses to climate change are poorly constrained, especially in northern peatlands, which contain up to two-thirds of the world’s soil carbon. We present fine-root responses to warming between 2 °C and 9 °C above ambient conditions in a whole-ecosystem peatland experiment. Warming strongly increased fine-root growth by over an order of magnitude in the warmest treatment, with stronger responses in shrubs than in trees or graminoids. In the first year of treatment, the control ( 0 °C) shrub fine-root growth of 0.9 km m −2 y −1 increased linearly by 1.2 km m −2 y −1 (130%) for every degree increase in soil temperature. An extended belowground growing season accounted for 20% of this dramatic increase. In the second growing season of treatment, the shrub warming response rate increased to 2.54 km m −2 °C −1 . Soil moisture was negatively correlated with fine-root growth, highlighting that drying of these typically water-saturated ecosystems can fuel a surprising burst in shrub belowground productivity, one possible mechanism explaining the “shrubification” of northern peatlands in response to global change. This previously unrecognized mechanism sheds light on how peatland fine-root response to warming and drying could be strong and rapid, with consequences for the belowground growing season duration, microtopography, vegetation composition, and ultimately, carbon function of these globally relevant carbon sinks.
  • 关键词:peatland ; belowground plant response ; experimental warming ; elevated carbon dioxide ; fine roots
国家哲学社会科学文献中心版权所有