kingdom · Editorial draft · human review pending
Plantae
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Overview
Broadly defined, plants include green plants, red algae and glaucophytes, with land plants forming only one branch.
[1]Evidence for this statement
Editorial synthesis
Mosses, liverworts, hornworts, lycophytes, ferns and seed plants represent different branches of land-plant evolution, not successive stages in the life of one organism.
[1]Evidence for this statement
Editorial synthesis
Bodies built in different ways
Protected embryos, vascular tissues, roots, seeds, flowers and fruits arose in different plant lineages; none occurs in every group.
[1]Evidence for this statement
Editorial synthesis
The liverwort Marchantia polymorpha illustrates a body plan very different from a flowering tree: its conspicuous generation is the gametophyte, while its short-lived sporophyte develops attached to the female plant.
[2]Evidence for this statement
Editorial synthesis
Even an underwater flowering plant can retain familiar organs: the eelgrass Zostera marina has roots, leaves and flowers, although it lives submerged in seawater.
[3]Evidence for this statement
Editorial synthesis
How photosynthetic plants obtain energy
Photosynthesis uses light to produce sugars and other energy-rich compounds that support growth.
[4]Evidence for this statement
Editorial synthesis
In oxygen-producing photosynthesis, the protein machinery called Photosystem II extracts electrons from water, releasing oxygen in the process.
[4]Evidence for this statement
Editorial synthesis
The primary plastids of green plants, red algae and glaucophytes trace their origin to an ancient partnership between a eukaryotic cell and a cyanobacterium.
[5]Evidence for this statement
Editorial synthesis
Carbon absorbed from the atmosphere during photosynthesis can enter plant biomass and, later, soil; decomposition returns some of that carbon to the atmosphere.
[6]Reproduction: two generations, not just a seed
Land-plant life cycles alternate between a diploid sporophyte and a haploid gametophyte, both of which are multicellular.
[2]Evidence for this statement
Editorial synthesis
The sporophyte produces spores through meiosis; spores develop into gametophytes, which produce eggs or sperm through mitotic divisions.
[2]Evidence for this statement
Editorial synthesis
Fertilization joins egg and sperm to form a zygote, from which the next sporophyte develops.
[2]Evidence for this statement
Editorial synthesis
In Marchantia, sperm swim to the female reproductive structure, and the resulting sporophyte remains dependent on the female gametophyte.
[2]Evidence for this statement
Editorial synthesis
Marchantia can also reproduce without fertilization through small vegetative propagules called gemmae, formed in cups on the plant.
[2]Evidence for this statement
Editorial synthesis
Not every plant feeds in the same way
Field dodder, Cuscuta campestris, is a parasitic flowering plant that winds around a host instead of developing the familiar combination of proper leaves and roots.
[7]Evidence for this statement
Editorial synthesis
Its attachment organs, called haustoria, penetrate host tissue and connect with the host’s transport system, allowing access to water and other compounds.
[7]Evidence for this statement
Editorial synthesis
Its low photosynthetic activity is associated with losses of genes needed for high photosynthetic performance, rather than evidence that it is not a plant.
[7]Evidence for this statement
Editorial synthesis
At a very different scale, a single-cell genomic study placed the marine, non-photosynthetic Picozoa near red algae and found support for the absence of plastids in this lineage.
[5]Evidence for this statement
Editorial synthesis
Plants in water and on land
Green plants occupy both land and water, with diverse structures and physiology.
[1]Evidence for this statement
Editorial synthesis
Seagrasses demonstrate that a flowering-plant lineage can return to marine life and form the foundation of productive coastal ecosystems.
[3]Evidence for this statement
Editorial synthesis
In Zostera marina, gas exchange occurs through the leaf surface, and the genome study found the loss of the stomatal gene repertoire associated with its submerged lifestyle.
[3]Evidence for this statement
Editorial synthesis
Plants also connect biological growth with the carbon cycle: carbon storage in living vegetation is not necessarily permanent, because decay and combustion can release it again.
[6]Why plant diversity matters
Comparing lineages rather than constructing a composite organism
The 2019 One Thousand Plant Transcriptomes study combined transcriptomes from 1,124 sampled species with published genome resources to investigate relationships across green-plant diversity.
[1]Evidence for this statement
Editorial synthesis
Its nuclear and plastid analyses disagreed at some nodes, so a classification list should not be treated as a fully resolved evolutionary tree.
[1]Evidence for this statement
Editorial synthesis
What the reproductive example establishes
The Marchantia investigation compared DNA methylation across vegetative, reproductive and sporophyte tissues of one liverwort species.
[2]Evidence for this statement
Editorial synthesis
That design supports comparisons among stages in Marchantia, not a claim that every plant has the same methylation pattern or the same relative sizes of its two generations.
[2]Evidence for this statement
Editorial synthesis
Separate habitat adaptation from general plant properties
The Zostera study sequenced material from a clone collected in southwest Finland and interpreted gene losses in the context of a marine flowering plant.
[3]Evidence for this statement
Editorial synthesis
The result does not imply that all aquatic plants lack stomata or that a leaf from any marine organism is a seagrass leaf.
[3]Evidence for this statement
Editorial synthesis
The Cuscuta study combined genome assembly and annotation with the biology of a shoot parasite; its conclusions about nutrient acquisition belong to that host-dependent system.
[7]Evidence for this statement
Editorial synthesis
A boundary case for photosynthesis-based definitions
The Picozoa analysis used 43 single-cell genomes from natural samples and supported a position within Archaeplastida near red algae and rhodelphids.
[5]Evidence for this statement
Editorial synthesis
The authors considered alternative histories involving complete plastid loss or a different pattern of plastid acquisition, rather than demonstrating one settled history of every archaeplastid plastid.
[5]Evidence for this statement
Editorial synthesis
Identity
Classification
Source lineage
- Eukaryota (Chatton, 1925) Whittaker & Margulis, 1978 domain
- Plantae kingdom
Evidence for this statement
Source annotation
This is the source’s classification, not an inferred species phylogeny.
Source classification release
Inspect structured data
- classification semantics
- provider_source_classification_only
- phylogeny
- False
- release
- COL26.7 Base, 2026-07-14
- source
- Catalogue of Life / ChecklistBank
- source sha256
- 891457d62af389842924ef1de8bd6fbbdf9f6b03428ef5dd487bed4d04c0ace0
- metadata reports source sha256 verified
- True
- source sha256 independently recomputed in this delivery
- False
- verification scope
- Saved scientific JSON release metadata; installed exact row additionally read
Evidence for this statement
Source annotation
This is the source’s classification, not an inferred species phylogeny.
Continue exploring
Sources and versions
Editorial draft · human review pending
- One thousand plant transcriptomes and the phylogenomics of green plants
2026-09-06 · Reuse permission unverified
Provenance and original
- Source version
- 2019-10-23
- Extensive epigenetic reprogramming during the life cycle of Marchantia polymorpha
2026-09-06 · Reuse permission unverified
Provenance and original
- Source version
- 2018-01-25
- The genome of the seagrass Zostera marina reveals angiosperm adaptation to the sea
2026-09-06 · Reuse permission unverified
Provenance and original
- Source version
- 2016-01-27
- Atomic Snapshots of Photosynthesis — U.S. Department of Energy
2026-09-06 · Reuse permission unverified
- Single cell genomics reveals plastid-lacking Picozoa are close relatives of red algae
2026-09-06 · Reuse permission unverified
Provenance and original
- Source version
- 2021-11-17
- DOE Explains...the Carbon Cycle
2026-09-06 · Reuse permission unverified
- Footprints of parasitism in the genome of the parasitic flowering plant Cuscuta campestris
2026-09-06 · Reuse permission unverified
Provenance and original
- Source version
- 2018-06-28
- Assigned exact CoL identity — Plantae
2026-09-06 · Reuse permission unverified
Provenance and original
- Source version
- COL26.7 Base, 2026-07-14
- Saved CoL classification — Plantae
2026-09-06 · Reuse permission unverified
Provenance and original
- Source version
- COL26.7 Base, 2026-07-14
Inspect structured data
- Content version
- e82e0d7eeeb9bd8482a9491d9ddebabc6f5f26f525b6df0429e95e51b4aef208
- Source version
- editorial-source-set.v1@f336e10992321de71a7150a7f8a5ab1dc4bc3584a444a316388043539fcc9c9e
- Updated
- 2026-09-06