| Literature DB >> 27251531 |
Henri E Cuny1,2,3, Cyrille B K Rathgeber1,2, David Frank3,4, Patrick Fonti3, Harri Mäkinen5, Peter Prislan6, Sergio Rossi7,8, Edurne Martinez Del Castillo9, Filipe Campelo10, Hanuš Vavrčík11, Jesus Julio Camarero12, Marina V Bryukhanova13,14, Tuula Jyske5, Jožica Gričar6, Vladimír Gryc11, Martin De Luis9, Joana Vieira10, Katarina Čufar15, Alexander V Kirdyanov13,14, Walter Oberhuber16, Vaclav Treml17, Jian-Guo Huang8, Xiaoxia Li18, Irene Swidrak16, Annie Deslauriers7, Eryuan Liang18, Pekka Nöjd5, Andreas Gruber16, Cristina Nabais10, Hubert Morin7, Cornelia Krause7, Gregory King19, Meriem Fournier1,2.
Abstract
Wood is the main terrestrial biotic reservoir for long-term carbon sequestration(1), and its formation in trees consumes around 15% of anthropogenic carbon dioxide emissions each year(2). However, the seasonal dynamics of woody biomass production cannot be quantified from eddy covariance or satellite observations. As such, our understanding of this key carbon cycle component, and its sensitivity to climate, remains limited. Here, we present high-resolution cellular based measurements of wood formation dynamics in three coniferous forest sites in northeastern France, performed over a period of 3 years. We show that stem woody biomass production lags behind stem-girth increase by over 1 month. We also analyse more general phenological observations of xylem tissue formation in Northern Hemisphere forests and find similar time lags in boreal, temperate, subalpine and Mediterranean forests. These time lags question the extension of the equivalence between stem size increase and woody biomass production to intra-annual time scales(3, 4, 5, 6). They also suggest that these two growth processes exhibit differential sensitivities to local environmental conditions. Indeed, in the well-watered French sites the seasonal dynamics of stem-girth increase matched the photoperiod cycle, whereas those of woody biomass production closely followed the seasonal course of temperature. We suggest that forecasted changes in the annual cycle of climatic factors(7) may shift the phase timing of stem size increase and woody biomass production in the future.Entities:
Year: 2015 PMID: 27251531 DOI: 10.1038/nplants.2015.160
Source DB: PubMed Journal: Nat Plants ISSN: 2055-0278 Impact factor: 15.793