Szejner Paul, Tang Yu, Angove Charlotte, Schiestl-Aalto Pauliina, Sahlstedt Elina, Young Giles, Nelson Daniel B, Kahmen Ansgar, Saurer Matthias, Rinne-Garmston Katja T
Stable Isotope Laboratory of Luke (SILL), Natural Resources Institute Finland (Luke), Latokartanonkaari 9, FI-00790, Helsinki, Finland.
College of Urban and Environmental Sciences, Peking University, Beijing, 100871, China.
New Phytol. 2025 Jul;247(1):97-114. doi: 10.1111/nph.70223. Epub 2025 May 20.
Variations of oxygen isotopes δO in tree rings provide critical insights into past climate and tree physiological processes, yet the mechanisms shaping the intra-annual δO signals remain incompletely understood. To address this gap, we investigated how seasonal changes in source water, leaf water, and sugars influence δO recorded along the tree rings of Pinus sylvestris in Finland. We conducted a seasonal analysis measuring δO from needle water, source water, and phloem sugars and investigated the fraction of oxygen isotope exchange during wood formation. We found that seasonal δO amplitudes are significantly reduced from leaf water to tree rings, driven by opposing seasonal patterns in increasing source water δO and decreasing evaporative enrichment as relative humidity increases. Additionally, the isotope exchange between source water and phloem sugars further dampens seasonal δO signals in the rings. Our findings show that oxygen isotope exchange is critical in shaping δO signals, influencing the role of source water and relative humidity recorded on intra-annual resolution. This refined understanding helps interpret tree physiological responses under changing conditions and improves climate reconstructions based on tree rings using intra-annual resolution.
树木年轮中氧同位素δO的变化为了解过去的气候和树木生理过程提供了关键见解,然而,形成年内δO信号的机制仍未完全明晰。为填补这一空白,我们研究了芬兰樟子松年轮中源水、叶水和糖分的季节性变化如何影响δO记录。我们进行了一项季节性分析,测量针叶水、源水和韧皮部糖分中的δO,并研究木材形成过程中氧同位素交换的比例。我们发现,由于源水δO增加和蒸发富集随着相对湿度增加而减少的相反季节性模式,从叶水到树木年轮,季节性δO振幅显著降低。此外,源水与韧皮部糖分之间的同位素交换进一步减弱了年轮中的季节性δO信号。我们的研究结果表明,氧同位素交换在塑造δO信号方面至关重要,影响了年内分辨率下记录的源水和相对湿度的作用。这种更精确的理解有助于解释变化条件下树木的生理反应,并改进基于年内分辨率的树木年轮气候重建。