| Literature DB >> 32174946 |
Mégane Couchoud1, Christophe Salon1, Sylvie Girodet1, Christian Jeudy1, Vanessa Vernoud1, Marion Prudent1.
Abstract
As drought is increasingly frequent in the context of climate change it is a major constraint for crop growth and yield. The ability of plants to maintain their yield in response to drought depends not only on their ability to tolerate drought, but also on their capacity to subsequently recover. Post-stress recovery can indeed be decisive for drought resilience and yield stability. Pea (Pisum sativum), as a legume, has the capacity to fix atmosphericEntities:
Keywords: Pisum sativum; agroecology; grain legumes; resilience; roots; symbiotic nitrogen fixation; water deficit; yield stability
Year: 2020 PMID: 32174946 PMCID: PMC7056749 DOI: 10.3389/fpls.2020.00204
Source DB: PubMed Journal: Front Plant Sci ISSN: 1664-462X Impact factor: 5.753
FIGURE 1Experimental design used to characterize plants responses to water deficit and subsequent re-watering. (A) Description of the kinetics experiment. Water deficit was imposed during the vegetative stage for 2 weeks and followed by a re-watering period. WW corresponds to well-watered plants and WD corresponds to plant subjected to water deficit, orange stars indicate harvests. Time is expressed in days and degree days. (B) Description of the 13CO2 and 15N2 labeling experiments. Full purple line indicates acclimation period, purple arrowhead indicates labeling, empty purple line indicates chase period and purple stars indicate harvests.
FIGURE 2Plant yield and yield components at physiological maturity are affected by water deficit applied during the vegetative stage followed by a period of re-watering. (A) Total plant biomass was divided into seed biomass (dark gray) and non-reproductive organ biomass (light gray). (B) Number of seeds per plant. Values are means, bars represent standard deviations (n = 12). Different letters indicate statistically significant differences between treatments (ANOVA followed by SNK test, p < 0.05).
FIGURE 3Plant growth during water deficit and subsequent re-watering. Total plant biomass was measured during the water deficit period (0, 7, 13 days) and after 3, 7, 10, and 15 days of re-watering. For each genotype, data are presented as a percentage relative to the control plants. Asterisks indicate Student’s t-test significant differences between control and water deficit plants for a given genotype (black asterisk for Kayanne, gray asterisk for Puget; p < 0.05, n = 6). Primary data are available in Supplementary Table S1.
FIGURE 4Water fluxes during water deficit and subsequent re-watering. (A) Stomatal conductance and (B) evapotranspiration were measured during the water deficit period (0, 7, 13 days) and after 3, 7, 10, and 15 days of re-watering. (C) Specific root water uptake and (D) water use efficiency were calculated between two successive harvests. Genotype Kayanne is in black and Puget in gray. For each genotype, data are presented as a percentage relative to the control plants. Asterisks indicate Student’s t-test significant differences between control and water deficit plants for a given genotype (black asterisk for Kayanne, gray asterisk for Puget; p < 0.05, n = 6). Primary data are available in Supplementary Table S1.
FIGURE 5Leaf area and radiation use efficiency during water deficit and subsequent re-watering. (A) Leaf area was measured during the water deficit period (0, 7, 13 days) and after 3, 7, 10, and 15 days of re-watering. (B) Radiation use efficiency was calculated between two successive harvests. Kayanne is in black and Puget in gray. For each genotype, data are presented as a percentage relative to the control plants. Asterisks indicate Student’s t-test significant differences between control and water deficit plants for a given genotype (black asterisk for Kayanne, gray asterisk for Puget; p < 0.05, n = 6). Primary data are available in Supplementary Table S1.
FIGURE 6Biomass partitioning during water deficit and subsequent re-watering. (A) Shoot to root ratio, (B) nodule to nodulated root ratio, and (C) nodule biomass were calculated and measured during the water deficit period (0, 7, 13 days) and after 3, 7, 10, and 15 days of re-watering. Genotype Kayanne is in black and Puget in gray. For each genotype, data are presented as a percentage relative to the control plants. (D) Evolution of the nodule number during water deficit and re-watering. A delay in the establishment of the second wave of nodulation is shown for Puget WD plants during the re-watering period (double arrowhead) compared to Puget WW and Kayanne WW and WD plants (arrowhead). WW, well-watered; WD, water deficit. Data are means ± SD (n = 6). Asterisks indicate Student’s t-test significant differences between control and water deficit plants for a given genotype (black asterisk for Kayanne, gray asterisk for Puget; p < 0.05, n = 6). Primary data are available in Supplementary Table S1.
FIGURE 7Plant nitrogen status during water deficit and subsequent re-watering. (A) Total nitrogen amount and (B) Nitrogen Nutrition Index (NNI) were determined during the water deficit period (0, 7, 13 days) and after 3, 7, and 15 days of re-watering. Genotype Kayanne is in black and Puget in gray. For each genotype, data are presented as a percentage relative to the control plants. Asterisks indicate Student’s t-test significant differences between control and water deficit plants for a given genotype (black asterisk for Kayanne, gray asterisk for Puget; p < 0.05, n = 6). Primary data are available in Supplementary Table S1.
Photosynthesis and symbiotic nitrogen fixation activity (sNFA) after 2 weeks of water deficit and 1 week of re-watering.
Carbon and nitrogen allocations after 2 weeks of water deficit and 1 week of re-watering.
FIGURE 8Theoretical and conceptual frameworks for the analysis of plant drought resilience. (A) Theoretical framework of plant resilience ability. The resilience process can be divided into drought tolerance and post-stress recovery. The curve represents the value of a given physiological process expressed as a percentage relative to the control plants, which decreases during water deficit, and recovers during the re-watering period until it reaches a plateau. The ability to recover can be characterized through four variables which are: the latency time to initiate a recovery, the rate of recovery, the return time to reach the plateau and delta (Δ), the difference of the value of the trait at the plateau between the well-watered plants and the plants subjected to water deficit. (B) Conceptual structure–function ecophysiological framework of plant recovery after water deficit. Variables related to carbon fluxes are in green, variables related to water fluxes are in blue, variables related to nitrogen fluxes are in orange. Kayanne genotype is in black and Puget genotype is in gray dotted line. Curves represent schematic data of plants having experienced a water deficit, and are expressed in percentage relative to the control plants. Variables shown in this study to play a major role in post-stress recovery in pea are framed with bold lines. NUE, nitrogen use efficiency; sNFA, specific nitrogen fixation activity; RUE, radiation use efficiency; WUE, water use efficiency; sRWU, specific root water uptake.