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Mamic, L.

Publications and source records attributed to Mamic, L..

2 recordsLinked to original sources

Humidity Controls the Timing and Persistence of Ozone Injury in Citrus: Linking Leaf Physiology and Regional Canopy Responses

Tropospheric ozone (O3) is a major air pollutant that threatens crop productivity, yet its effects depend strongly on environmental conditions that regulate plant O3 uptake. Here, we explore how citrus, an O3-sensitive perennial crop, responds to O3 exposure under humid subtropical (Florida) and semi-arid (California) climates. In controlled chamber experiments, Meyer lemon trees exposed to moderate O3 concentrations (80 ppb for 4 h d-1 over four days) showed a faster and more persistent decline in the maximum photosystem II efficiency (Fv/Fm) under humid air, while under dry air the response was delayed by one day and reversible. This humidity-dependent behavior reflects differences in stomatal conductance (gs) where high humidity maintains open stomata and accelerates O3 flux and dry air limits uptake but enhances slower non-stomatal injury pathways. At regional scale, satellite solar-induced chlorophyll fluorescence (SIF) from Sentinel-5P TROPOMI revealed similar patterns. In Florida, SIF decreased significantly during O3-episode weeks and remained low for up to three weeks, while in California it showed a brief rebound before a delayed decline - mirroring the timing observed in the chamber experiment. Analysis of the SIF and gross primary productivity (GPP) relationship further showed that O3 decoupled canopy fluorescence from productivity in the dry region, whereas drought stress weakened this coupling in the humid region, indicating a climate-specific shift in the dominant stressor. We demonstrate and argue that humidity governs both the timing and persistence of O3 injury, linking leaf-level physiology to regional canopy responses. These findings emphasize that effective O3-risk assessments for perennial crops must incorporate local humidity and vapor pressure deficit conditions and both stomatal and non-stomatal deposition pathways.

biochemistry↗

Mechanisms of Ozone Effects on Plant Stress in Soybean Across Growing Season: From Leaf to Regional Perspective

Ground-level ozone (O) is a major constraint on agricultural productivity, yet most knowledge comes from controlled fumigation experiments using chronic exposures that differ from the episodic conditions crops experience in the field. Here, we combine a five-week chamber experiment with multi-year satellite observations (2018-2021, Arkansas, U.S.) to investigate how O affects photosynthesis, efficiency, and growth across scales of soybean plants (Glycine max). At the leaf level, initial O fumigation (80 ppb for 4 h) caused the strongest suppression of CO2 assimilation (A), stomatal conductance (Gs), and photosystem II efficiency ({Phi}PSII), indicating entry into a physiological strain phase. Recovery between exposures was incomplete, leading to sustained growth reductions despite moderate O levels. At the regional scale, analysis of solar-induced fluorescence (SIF) and MODIS productivity metrics revealed parallel patterns. Early-season O episodes produced greater suppression of SIF, GPP, and Gs compared to equivalent late-season events, and recovery lagged for several weeks. Seasonal yield proxies were best explained not by total O accumulation, but by early- and peak-season exposures, which accounted for up to 98% of variance across four growing seasons. Our findings highlight that the timing of O episodes is more consequential than cumulative dose, and that functional indicators such as SIF can detect strain-phase stress before structural indices diverge. By linking controlled experiments with regional-scale satellite monitoring, this study advances mechanistic understanding of O impacts on soybean and supports the development of remote sensing-based early warning tools for crop management.

plant biology↗