A következő címkéjű bejegyzések mutatása: Spatial population dynamics. Összes bejegyzés megjelenítése
A következő címkéjű bejegyzések mutatása: Spatial population dynamics. Összes bejegyzés megjelenítése

2012. szeptember 19., szerda

Oborny & Englert (2012) Ecological Modelling

Oborny, B. & Englert, P. (2012) Plant growth and foraging for a patchy resource: a credit model. Ecological Modelling 234: 20-30.


Abstract
Several experiments have demonstrated that plants can adjust their growth pattern to the pattern of resources in the environment, and thus, forage for resources by adaptive plasticity. We review some basic concepts in plant foraging, and suggest new aspects on the basis of individual-based, spatially explicit simulations. Foraging is an iterative process. We describe its elementary step, the “foraging cycle”, and emphasize the importance of time-dependence of the success of foraging. The difference between short vs. long-term success is demonstrated through the example of two plastic growth responses that frequently occur among clonal plant species. We introduce the concept of credit into the study of foraging growth. The plant can use a credit when a temporary resource shortage can be compensated from an external source (from outside the “foraging cycle”, e.g. from storage). Our simulations demonstrate that the availability of credit is decisive in the success of foraging, especially at young genet age. We describe some special challenges met by young plants, and emphasize the importance of empirical research in two fields: (1) to search for age-specific foraging strategies, and (2) to estimate the realistic time window within which considerable selection can act upon a growth response.


Keywords
Patchy environment; Adaptive growth; Phenotypic plasticity; Allocation; Clonal plant; Spatial population dynamics

Oborny et al. (2012) Ecological Modelling

Oborny, B., Mony, C. & Herben, T. (2012) From virtual plants to real communities: a review of modelling clonal plants. Ecological Modelling 234: 3-19.


Abstract
Clonal plants grow by the production of semi-autonomous modules (ramets), and form complex branching structures which may provide communication/resource flow channels between the units. These characteristic features have made clonal plants a challenging subject for spatial modelling. We review the advance of ideas and new directions in theoretical research since the last review (Oborny and Cain, 1997). We place clonal growth models into a general framework of spatial population dynamic models, comparing individual ramets of a clone with individuals in a non-clonal population. We discuss three specificities of clonal spreading: (1) ramets can be physiologically integrated through the network of branching structures; (2) formation of new ramets occurs by the growth of these branching structures which can be directional, following architectural rules; and (3) formation of new ramets can be adjusted to the environment by phenotypic plasticity. We review methods by which these traits have been implemented into models. We summarize model predictions, for the spatial structure and fitness of clonal plants, and link these predictions with existing empirical data. Emphasis is given to the contributions that theoretical studies could provide for experimental studies in the field. We emphasize the following recent major developments: (i) a much better understanding of emergent consequences of various clonal growth rules over broad spatial and temporal scales has been reached. (ii) Links have been found to other complex systems. For example, a key problem of integration vs. splitting of connecting structures has been shown to be closely related to a problem in percolation theory. (iii) Interactions between physiological integration, architectural growth and plastic responses have been demonstrated; research on these interactions has generally shown a large degree of contingency in the effects of these traits. Finally, we outline some areas for future research.


Keywords
Spatial population dynamics, Individual-based models, Architectural rules, Phenotypic plasticity, Division of labour, Adaptive growth