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Biology subjects

Jiang, Z.-R.

Publications and source records attributed to Jiang, Z.-R..

2 recordsLinked to original sources

Evolutionary Stability of High Virulence in Vector-Borne Forest Pathogens: Evidence from Pine Wilt Disease and Management Thresholds

Pathogen virulence is a central trait shaping disease dynamics and management outcomes. Classical evolutionary theory predicts that virulence should be constrained by trade-offs between transmission and host survival, often favoring intermediate optima. However, many vector-borne forest diseases exhibit persistently high virulence despite severe host mortality, challenging this expectation. Increasing evidence suggests that ecological context, particularly transmission mode, vector abundance, and spatial structure, can fundamentally reshape virulence-transmission trade-offs, biasing selection toward elevated virulence rather than attenuation. Pine wilt disease, caused by the pine wood nematode Bursaphelenchus xylophilus and transmitted by Monochamus beetles, exemplifies this paradox. Infection leads to rapid host death, yet highly virulent nematode lineages persist and spread across forest landscapes. In this system, host death directly facilitates vector reproduction by creating suitable breeding substrates, potentially reversing the classical trade-off in which host mortality constrains transmission. Why such systems remain evolutionarily trapped in high-virulence states, despite widespread host depletion, remains unresolved. Using pine wilt disease as a motivating and representative vector-borne forest pathosystem, we develop an individual-based evolutionary framework to investigate how transmission conditions and management interventions shape long-term virulence evolution. By integrating stochastic population dynamics with selection-gradient analysis, we identify the mechanisms sustaining high virulence and determine quantitative management thresholds capable of reversing selection pressures and driving durable virulence suppression.

evolutionary biology↗

Why Ambrosia Beetles Keep Only One Fungus: Competitive Asymmetry, Bottleneck Drift, and Eco-Evolutionary Fixation

Ambrosia beetles rely on vertically transmitted fungal cultivars for nutrition, yet empirical studies reveal a persistent paradox: early galleries often host multiple fungal associates, whereas mature systems exhibit strict one-beetle-one-fungus specificity. The mechanisms driving this transition remain unresolved. Here we develop an integrative eco-evolutionary framework combining deterministic competition (Lotka-Volterra dynamics), stochastic drift, and severe mycangial transmission bottlenecks to quantify the stability and turnover of fungal symbionts. Across >50,000 simulation replicates, we show that multi-fungal coexistence is inherently transient under biologically realistic conditions. Even minimal competitive asymmetries (<5%) yield deterministic exclusion; repeated bottlenecks amplify drift and accelerate diversity loss; and weak but persistent selection ensures long-term fixation of the superior symbiont over hundreds of generations. Replacement by novel fungi follows a strict invasion threshold (s > 1/(2N)), consistent with classical fixation theory and matching empirical patterns of historical symbiont turnover. Multispecies communities collapse even more rapidly, persisting only over short ecological timescales. Together, these results provide a mechanistic explanation for the pervasive one-fungus specificity observed across ambrosia beetles. By unifying ecological competition, demographic stochasticity, and evolutionary stability theory, this work offers a general framework for understanding partner fidelity, symbiont filtering, and lineage turnover in insect-microbe mutualisms.

ecology↗