High vein density (DV) evolution in angiosperms represented a key functional transition. Yet, a mechanistic account on how this hydraulic transformation evolved remains lacking. We demonstrate that a consequence of producing high DV is that veins must become very small to fit inside the leaf, and that angiosperms are the only clade that evolved the specific type of vessel required to yield sufficiently conductive miniature leaf veins. From 111 species spanning key divergences in vascular plant evolution, we show, using analyses of vein conduit evolution in relation to vein packing, that a key xylem innovation associated with high DV evolution is a strong reduction in vein thickness and simplification of the perforation plates of primary ...
SummarySucculent water storage is a prominent feature among plants adapted to arid zones, but we kno...
A hypothesized advantage of the building block of the angiosperm vascular network, the vessel, is of...
International audienceThe flowering plants that dominate modern vegetation possess leaf gas exchange...
The veins that irrigate leaves during photosynthesis are demonstrated to be strikingly more abundant...
Angiosperm evolution transformed global ecology, and much of this impact derives from the unrivalled...
The main role of leaf venation is to supply water across the photosynthetic surface to keep stomata ...
Leaf venation is a showcase of plant diversity, ranging from the grid-like network in grasses, to a ...
Early angiosperm evolution, beginning approximately 140 million years ago, saw many innovations that...
Producing leaves with closely spaced veins is a key innovation linked to high rates of photosynthesi...
The revolutionary rise of broad-leaved (flowering) angiosperm plant species during the Cretaceous i...
Leaf veins are almost ubiquitous across the range of terrestrial plant diversity, yet their influenc...
Densities of leaf minor veins and stomata are co-ordinated within and across vascular plants. This m...
Producing leaves with closely spaced veins is a key innovation linked to high rates of photosynthesi...
A hypothesized advantage of the building block of the angiosperm vascular network, the vessel, is of...
SummarySucculent water storage is a prominent feature among plants adapted to arid zones, but we kno...
A hypothesized advantage of the building block of the angiosperm vascular network, the vessel, is of...
International audienceThe flowering plants that dominate modern vegetation possess leaf gas exchange...
The veins that irrigate leaves during photosynthesis are demonstrated to be strikingly more abundant...
Angiosperm evolution transformed global ecology, and much of this impact derives from the unrivalled...
The main role of leaf venation is to supply water across the photosynthetic surface to keep stomata ...
Leaf venation is a showcase of plant diversity, ranging from the grid-like network in grasses, to a ...
Early angiosperm evolution, beginning approximately 140 million years ago, saw many innovations that...
Producing leaves with closely spaced veins is a key innovation linked to high rates of photosynthesi...
The revolutionary rise of broad-leaved (flowering) angiosperm plant species during the Cretaceous i...
Leaf veins are almost ubiquitous across the range of terrestrial plant diversity, yet their influenc...
Densities of leaf minor veins and stomata are co-ordinated within and across vascular plants. This m...
Producing leaves with closely spaced veins is a key innovation linked to high rates of photosynthesi...
A hypothesized advantage of the building block of the angiosperm vascular network, the vessel, is of...
SummarySucculent water storage is a prominent feature among plants adapted to arid zones, but we kno...
A hypothesized advantage of the building block of the angiosperm vascular network, the vessel, is of...
International audienceThe flowering plants that dominate modern vegetation possess leaf gas exchange...