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February 2, 2026Journal of Experimental Botany0 citationsOpen Access

Unraveling the hydraulic vulnerability of tree seedlings using optical and acoustic techniques

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ALAdriano LossoAGAndrea GanthalerSMStefan Mayr

Key Points

  • The aim is to quantify the hydraulic vulnerability of tree seedlings to drought, enhancing understanding for forest regeneration.
  • Measured xylem vulnerability using ultrasonic acoustic emission and optical visualization techniques.
  • Conducted simultaneous measurements on 5-8-week-old seedlings of four tree species.
  • Analyzed hypocotyl and leaf vulnerability through species-specific observations.
  • Found that hypocotyl vulnerability among some species is similar to mature tree branches.
  • Observed differences in vulnerability measurements between species, particularly between hypocotyls and leaves.
  • Noted exceptional higher frequencies in small conduits that are difficult to detect with optical techniques.

Abstract

Abstract The seedling stage is critical for tree recruitment and forest regeneration, but faces high mortality rates, with drought being a major cause. However, knowledge of the hydraulic vulnerability of tree seedlings is scarce due to methodological difficulties related to their small size. We quantified the xylem vulnerability of the hypocotyl to drought-induced embolism using the ultrasonic acoustic emission (AE) and optical visualization (OV) techniques by performing simultaneous measurements on dehydrating 5-8-week-old seedlings of Acer pseudoplatanus, Sorbus aucuparia, Larix decidua and Pinus cembra. OV was also used on the angiosperm leaves. Species-specific differences in hypocotyl and leaf vulnerability were observed. AE data showed that the hypocotyl vulnerability of S. aucuparia, L. decidua and P. cembra was similar to that reported for mature tree branches. OV was similar to AE vulnerability in A. pseudoplatanus and P. cembra, but higher in L. decidua and S. aucuparia (with differences of 0.83 and 2.50 MPa, respectively). The latter showed exceptional higher frequencies in small conduits, which may be difficult to observe with OV. Both techniques can be used to provide new insights into tree seedling hydraulics, which will be crucial for better predicting forest regeneration in the face of climate change.

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Cite This Study

Losso et al. (2026) studied this question.

synapsesocial.com/papers/6980fc55c1c9540dea80e1c1https://doi.org/10.1093/jxb/erag039
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