» Articles » PMID: 35473384

Rapid Diversification of Vascular Architecture Underlies the Carboniferous Fern Radiation

Overview
Journal Proc Biol Sci
Specialty Biology
Date 2022 Apr 27
PMID 35473384
Authors
Affiliations
Soon will be listed here.
Abstract

Vascular plants account for 93% of Earth's terrestrial flora. Xylem and phloem, vital for transporting water and nutrients through the plant, unite this diverse clade. Three-dimensional arrangements of these tissues (vascular architecture) are manifold across living and extinct species. However, the evolutionary processes underlying this variation remain elusive. Using ferns, a diverse clade with multiple radiations over their 400-million-year history, we synthesized data across 3339 species to explore the tempo and mode of vascular evolution and to contextualize dynamics of phenotypic innovation during major fern diversification events. Our results reveal three paradigm shifts in our understanding of fern vascular evolution. (i) The canonical theory on the stepwise and unidirectional evolution of vascular architecture does not capture the complexities of character evolution among ferns. Rather, a new model permitting additional transitions, rate heterogeneity and multiple reversions is more likely. (ii) Major shifts in vascular architecture correspond to developmental changes in body size, not regional water availability. (iii) The early Carboniferous radiation of crown-group ferns was characterized by an explosion of phenotypic innovation. By contrast, during the Cretaceous and Cenozoic rise of eupolypods, rates of vascular evolution were dramatically low and seemingly decoupled from lineage diversification.

Citing Articles

Vascular variants in seed plants-a developmental perspective.

Cunha Neto I AoB Plants. 2023; 15(4):plad036.

PMID: 37476579 PMC: 10355320. DOI: 10.1093/aobpla/plad036.


Deep origin and gradual evolution of transporting tissues: Perspectives from across the land plants.

Woudenberg S, Renema J, Tomescu A, De Rybel B, Weijers D Plant Physiol. 2022; 190(1):85-99.

PMID: 35904762 PMC: 9434249. DOI: 10.1093/plphys/kiac304.


Rapid diversification of vascular architecture underlies the Carboniferous fern radiation.

Suissa J, Friedman W Proc Biol Sci. 2022; 289(1973):20212209.

PMID: 35473384 PMC: 9043699. DOI: 10.1098/rspb.2021.2209.

References
1.
Tomescu A . The stele - a developmental perspective on the diversity and evolution of primary vascular architecture. Biol Rev Camb Philos Soc. 2021; 96(4):1263-1283. DOI: 10.1111/brv.12699. View

2.
Brodersen C, Roark L, Pittermann J . The physiological implications of primary xylem organization in two ferns. Plant Cell Environ. 2012; 35(11):1898-911. DOI: 10.1111/j.1365-3040.2012.02524.x. View

3.
Graham L, Cook M, Busse J . The origin of plants: body plan changes contributing to a major evolutionary radiation. Proc Natl Acad Sci U S A. 2000; 97(9):4535-40. PMC: 34322. DOI: 10.1073/pnas.97.9.4535. View

4.
Cai S, Huang Y, Chen F, Zhang X, Sessa E, Zhao C . Evolution of rapid blue-light response linked to explosive diversification of ferns in angiosperm forests. New Phytol. 2020; 230(3):1201-1213. PMC: 8048903. DOI: 10.1111/nph.17135. View

5.
Kozak K, Weisrock D, Larson A . Rapid lineage accumulation in a non-adaptive radiation: phylogenetic analysis of diversification rates in eastern North American woodland salamanders (Plethodontidae: Plethodon). Proc Biol Sci. 2006; 273(1586):539-46. PMC: 1560065. DOI: 10.1098/rspb.2005.3326. View