Ecophysiological controls on water use of tropical cloud forest trees in response to experimental drought

Author:

Brum Mauro1ORCID,Vadeboncoeur Matthew2,Asbjornsen Heidi12,Puma Vilca Beisit L345,Galiano Darcy345,Horwath Aline B45,Metcalfe Daniel B6

Affiliation:

1. Department of Natural Resources & the Environment, University of New Hampshire , 56 College Rd, Durham, NH 03824 , USA

2. Earth Systems Research Center, University of New Hampshire , 8 College Rd, Durham, NH 03824 , USA

3. Facultad de Ciencias Biológicas, Universidad Nacional de San Antonio Abad del Cusco , Av. de La Cultura 773, Cusco, Cusco Province 08000 , Peru

4. Asociación Civil Sin Fines De Lucro Para La Biodiversidad , Investigación Y Desarrollo Ambiental En Ecosistemas Tropicales (ABIDA), , Avenida Argentina F-9, Cusco , Perú

5. Urbanización Ucchullo Grande , Investigación Y Desarrollo Ambiental En Ecosistemas Tropicales (ABIDA), , Avenida Argentina F-9, Cusco , Perú

6. Department of Ecology & Environmental Science, Umeå University , KBC-huset, Linnaeus väg 6, Umeå 901 87 , Sweden

Abstract

AbstractTropical montane cloud forests (TMCFs) are expected to experience more frequent and prolonged droughts over the coming century, yet understanding of TCMF tree responses to moisture stress remains weak compared with the lowland tropics. We simulated a severe drought in a throughfall reduction experiment (TFR) for 2 years in a Peruvian TCMF and evaluated the physiological responses of several dominant species (Clusia flaviflora Engl., Weinmannia bangii (Rusby) Engl., Weinmannia crassifolia Ruiz & Pav. and Prunus integrifolia (C. Presl) Walp). Measurements were taken of (i) sap flow; (ii) diurnal cycles of stem shrinkage, stem moisture variation and water-use; and (iii) intrinsic water-use efficiency (iWUE) estimated from foliar δ13C. In W. bangii, we used dendrometers and volumetric water content (VWC) sensors to quantify daily cycles of stem water storage. In 2 years of sap flow (Js) data, we found a threshold response of water use to vapor pressure deficit vapor pressure deficit (VPD) > 1.07 kPa independent of treatment, though control trees used more soil water than the treatment trees. The daily decline in water use in the TFR trees was associated with a strong reduction in both morning and afternoon Js rates at a given VPD. Soil moisture also affected the hysteresis strength between Js and VPD. Reduced hysteresis under moisture stress implies that TMCFs are strongly dependent on shallow soil water. Additionally, we suggest that hysteresis can serve as a sensitive indicator of environmental constraints on plant function. Finally, 6 months into the experiment, the TFR treatment significantly increased iWUE in all study species. Our results highlight the conservative behavior of TMCF tree water use under severe soil drought and elucidate physiological thresholds related to VPD and its interaction with soil moisture. The observed strongly isohydric response likely incurs a cost to the carbon balance of the tree and reduces overall ecosystem carbon uptake.

Funder

National Aeronautics and Space Administration

Fulbright Fellowship to Heidi Asbjornsen

Iola Hubbard Climate Endowment at the University of New Hampshire Earth Systems Research Center

H2020 European Research Council

Swedish Research Council

Swedish Research Council for Sustainable Development

Publisher

Oxford University Press (OUP)

Subject

Plant Science,Physiology

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