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Piovesan, G.

Publications and source records attributed to Piovesan, G..

2 recordsLinked to original sources

Maximum tree lifespans derived from public-domain dendrochronological data

The public-domain International Tree-Ring Data Bank (ITRDB) is an under-utilized dataset to improve existing estimates of global tree longevity. Since dendrochronologists have usually targeted the oldest trees in a stand, this public-domain resource is bound to offer better estimates of maximum tree age than those available from randomized plots or grid-based forest inventories. We used the longest continuous ring-width series of existing ITRDB collections as an index of maximum tree age for that species and site. Using a total of 3679 collections, we obtained longevity estimates for 236 unique tree species, 156 conifers and 80 angiosperms, distributed all over the world. More than half of the species (167) were represented by no more than 10 collections, and a similar number of species (144) reached longevity greater than 300 years. Maximum tree ages exceeded 1000 years for several species (22), all of them conifers, while angiosperm longevity peaked around 500 years. As new collections are constantly being added to the ITRDB, estimates of tree longevity may change slightly, mainly by adding new species to the database. Given the current emphasis on identifying human-induced impacts on global systems, detailed analyses of ITRDB holdings provide one of the most reliable sources of information for tree longevity as an ecological trait. Key MessageBaseline information on tree longevity was derived from the most extensive dendrochronological database currently available. The resulting summary provides a reference point, to be used for modeling and research purposes.

ecology↗

Old and ancient trees are life history lottery winners and act as evolutionary buffers against long-term environmental change

Trees can live many centuries with sustained fecundity and death is largely stochastic. We use a neutral stochastic model to examine the demographic patterns that emerge over time, across a range of population sizes and empirically observed mortality rates. A small proportion of trees ([~]1% at 1.5% mortality) are life-history lottery winners, achieving ages >10-20x median age. Maximum age increases with bigger populations and lower mortality rates. One quarter of trees ([~]24%) achieve ages that are 3-4 times greater than median age. Three age classes (Mature, Old, and Ancient) contribute unique historical diversity across complex environmental cycles. Ancient trees are an emergent property of forests that requires many centuries to generate. They rradically change generation time variance and population fitness, bridging infrequent environmental cycles. These life-history lottery winners are vital to future forest dynamics and invaluable data about environmental history and individual longevity. Old-growth forests contain trees that cannot be replaced through restoration or regeneration in the near future. They simply must be protected to preserve their unique diversity.

plant biology↗