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Biology subjects

DeMalach, N.

Publications and source records attributed to DeMalach, N..

4 recordsLinked to original sources

Stochasticity and heterogeneity restrict tipping points and alternative stable states

Gradual environmental stress may trigger abrupt tipping points, trapping ecosystems in degraded states that are difficult to reverse. This possibility has strongly influenced ecosystem management, yet empirical evidence for such behavior remains mixed. A major unresolved question is how broadly stochasticity and heterogeneity restrict hysteresis, and whether their effects accumulate. To address it, we reconstructed full phase diagrams for four canonical ecological models (dryland desertification, grazing, insect outbreaks, and lake eutrophication) across gradients of stress, demographic stochasticity, environmental fluctuations, spatial heterogeneity, and dispersal. In every model, stochasticity and heterogeneity narrowed the region supporting alternative stable states and made the remaining transition less abrupt. Dispersal set their effective strength by averaging across space. These complexities eroded hysteresis along different routes -toward the degraded state, through a continuous transition, or, counterintuitively, toward the healthy state. Effects were largely additive, so several moderate complexities could eliminate hysteresis even when no single factor did. Tipping-point claims should therefore be tested under stochastic, heterogeneous conditions.

ecology↗

Mechanisms behind facilitation-competition transition along rainfall gradients

Woody cover is rapidly changing due to mortality, shrub encroachment, and afforestation, reshaping herbaceous communities and ecosystem functioning worldwide. Often, trees and shrubs promote herb growth in dry sites but suppress it in wetter ones, as predicted by the classical Stress Gradient Hypothesis. However, explanations for the facilitation-to-competition transition remain verbal and contested, lacking a clear link to resource competition theory. Here, we present a mechanistic framework consisting of two submodels: (i) canopy shading that reduces photosynthesis and evapotranspiration, and (ii) root effects, including water uptake and increased moisture via hydraulic redistribution. We elucidate the conditions under which interactions shift from facilitation to competition. The models reproduce this reversal only when water is not the sole limiting factor at high rainfall or when woody density increases with precipitation. Moreover, the reversal can occur across any aridity gradient, including those driven by evaporative demand influenced by temperature and humidity. The two pathways leave distinct signatures: canopy shading produces a hump-shaped pattern with maximum facilitation at intermediate stress, while the root pathway predicts a shift from positive to negative interactions as water availability increases. By translating a classic idea into a quantitative framework, this model enhances ecosystem management in a changing world.

ecology↗

Timing is everything: seasonal drought alters flowering phenology and increases niche partitioning

Flowering time underpins plant fitness, species coexistence, and ecosystem functioning. While global warming consistently advances flowering, the influence of water availability remains unclear. We hypothesized that this inconsistency reflects the overlooked timing of drought. In 200 experimental Mediterranean annual-plant communities, we imposed early-, mid-, and late-season dry periods and grew plants in monocultures and mixtures to disentangle physiological and competition-mediated responses. Early and late droughts shortened flowering duration: early drought delayed onset, late drought advanced termination. Some shifts were direct, others emerged through competition. A new community-level index revealed greater phenological segregation in mixtures, showing that plasticity alone can generate niche separation under competition. Both early and late droughts further enhanced this segregation. Together, our results demonstrate that the seasonal timing of drought governs flowering responses through both direct physiological pathways and indirect biotic interactions, emphasizing rainfall seasonality as a key driver of ecological responses to climate change. Impact statementSince flowering time is crucial to ecosystem functioning, shifts in the timing of drought could have far-reaching effects on the performance and resilience of ecological communities. Our study shows that droughts effect on flowering is dependent on their timing and influenced by interactions with neighboring species. This means that understanding how plants respond to changing water conditions requires looking beyond single species, considering both seasonality and community interactions.

ecology↗

Revising the global biogeography of plant life cycles

Plants exhibit two primary life cycles - annual and perennial - which vary in their effects on ecosystem functioning. Here, we assembled a database of 235,000 species to assess the worldwide distribution of plant life cycles. We found that annuals are half as common as previously thought (6% of all plant species). Furthermore, our analysis demonstrates that annuals are favored under hot and dry conditions, especially under a prolonged dry season. Strikingly, this pattern remains consistent among different families, indicating convergent evolution. Moreover, we show that increasing climate variability and anthropogenic disturbance further increase the favorability of annuals. Overall, our analysis raises concerns for the future of ecosystem services provided by perennials because the ongoing climate and land-use changes are leading to an annuals-dominated world. One-Sentence SummaryThis extensive update to plant life cycle biogeography deciphers their dependence on temperature, rainfall, and disturbance.

ecology↗