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Biomass (ecology)

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(Redirected from Global biomass) Total mass of living organisms in a given area (all species or selected species) This article is about the ecological measure. For the renewable energy source, see biomass (energy).

The total global live biomass has been estimated at 550 billion tonnes carbon, most of which is found in forests.Shallow aquatic environments, such as wetlands, estuaries and coral reefs, can be as productive as forests, generating similar amounts of new biomass each year on a given area.

Biomass is the mass of living biological organisms in a given area or ecosystem at a given time. Biomass can refer to species biomass, which is the mass of one or more species, or to community biomass, which is the mass of all species in the community. It can include microorganisms, plants or animals. The mass can be expressed as the average mass per unit area, or as the total mass in the community.

How biomass is measured depends on why it is being measured. Sometimes, the biomass is regarded as the natural mass of organisms in situ, just as they are. For example, in a salmon fishery, the salmon biomass might be regarded as the total wet weight the salmon would have if they were taken out of the water. In other contexts, biomass can be measured in terms of the dried organic mass, so perhaps only 30% of the actual weight might count, the rest being water. For other purposes, only biological tissues count, and teeth, bones and shells are excluded. In some applications, biomass is measured as the mass of organically bound carbon (C) that is present.

In 2018, Bar-On et al. estimated the total live biomass on Earth at about 550 billion (5.5×10) tonnes C, most of it in plants. In 1998 Field et.al. estimated the total annual net primary production of biomass at just over 100 billion tonnes C/yr. The total live biomass of bacteria was once thought to be about the same as plants, but recent studies suggest it is significantly less. The total number of DNA base pairs on Earth, as a possible approximation of global biodiversity, is estimated at (5.3±3.6)×10, and weighs 50 billion tonnes. Anthropogenic mass (human-made material) is expected to exceed all living biomass on earth at around the year 2020.

Ecological pyramids

An energy pyramid illustrates how much energy is needed as it flows upward to support the next trophic level. Only about 10% of the energy transferred between each trophic level is converted to biomass.
Main article: Ecological pyramid

An ecological pyramid is a graphical representation that shows, for a given ecosystem, the relationship between biomass or biological productivity and trophic levels.

  • A biomass pyramid shows the amount of biomass at each trophic level.
  • A productivity pyramid shows the production or turn-over in biomass at each trophic level.

An ecological pyramid provides a snapshot in time of an ecological community.

The bottom of the pyramid represents the primary producers (autotrophs). The primary producers take energy from the environment in the form of sunlight or inorganic chemicals and use it to create energy-rich molecules such as carbohydrates. This mechanism is called primary production. The pyramid then proceeds through the various trophic levels to the apex predators at the top.

When energy is transferred from one trophic level to the next, typically only ten percent is used to build new biomass. The remaining ninety percent goes to metabolic processes or is dissipated as heat. This energy loss means that productivity pyramids are never inverted, and generally limits food chains to about six levels. However, in oceans, biomass pyramids can be wholly or partially inverted, with more biomass at higher levels.

Terrestrial biomass

     Relative terrestrial biomasses
of vertebrates versus arthropods

Terrestrial biomass generally decreases markedly at each higher trophic level (plants, herbivores, carnivores). Examples of terrestrial producers are grasses, trees and shrubs. These have a much higher biomass than the animals that consume them, such as deer, zebras and insects. The level with the least biomass are the highest predators in the food chain, such as foxes and eagles.

In a temperate grassland, grasses and other plants are the primary producers at the bottom of the pyramid. Then come the primary consumers, such as grasshoppers, voles and bison, followed by the secondary consumers, shrews, hawks and small cats. Finally the tertiary consumers, large cats and wolves. The biomass pyramid decreases markedly at each higher level.

Changes in plant species in the terrestrial ecosystem can result in changes in the biomass of soil decomposer communities. Biomass in C3 and C4 plant species can change in response to altered concentrations of CO2. C3 plant species have been observed to increase in biomass in response to increasing concentrations of CO2 of up to 900 ppm.

Ocean biomass

marine food chain
(typical)
  Sun
phytoplankton
herbivorous zooplankton
carnivorous zooplankton
  filter feeder
  predatory vertebrate
See also: Marine life

Ocean or marine biomass, in a reversal of terrestrial biomass, can increase at higher trophic levels. In the ocean, the food chain typically starts with phytoplankton, and follows the course:

Phytoplankton → zooplankton → predatory zooplankton → filter feeders → predatory fish

Ocean food web showing a network of food chains
Biomass pyramids
Compared to terrestrial biomass pyramids, aquatic pyramids are inverted at the base
Prochlorococcus, an influential bacterium

Phytoplankton are the main primary producers at the bottom of the marine food chain. Phytoplankton use photosynthesis to convert inorganic carbon into protoplasm. They are then consumed by zooplankton that range in size from a few micrometers in diameter in the case of protistan microzooplankton to macroscopic gelatinous and crustacean zooplankton.

Zooplankton comprise the second level in the food chain, and includes small crustaceans, such as copepods and krill, and the larva of fish, squid, lobsters and crabs.

In turn, small zooplankton are consumed by both larger predatory zooplankters, such as krill, and by forage fish, which are small, schooling, filter-feeding fish. This makes up the third level in the food chain.

A fourth trophic level can consist of predatory fish, marine mammals and seabirds that consume forage fish. Examples are swordfish, seals and gannets.

Apex predators, such as orcas, which can consume seals, and shortfin mako sharks, which can consume swordfish, make up a fifth trophic level. Baleen whales can consume zooplankton and krill directly, leading to a food chain with only three or four trophic levels.

Marine environments can have inverted biomass pyramids. In particular, the biomass of consumers (copepods, krill, shrimp, forage fish) is larger than the biomass of primary producers. This happens because the ocean's primary producers are tiny phytoplankton which are r-strategists that grow and reproduce rapidly, so a small mass can have a fast rate of primary production. In contrast, terrestrial primary producers, such as forests, are K-strategists that grow and reproduce slowly, so a much larger mass is needed to achieve the same rate of primary production.

Among the phytoplankton at the base of the marine food web are members from a phylum of bacteria called cyanobacteria. Marine cyanobacteria include the smallest known photosynthetic organisms. The smallest of all, Prochlorococcus, is just 0.5 to 0.8 micrometres across. In terms of individual numbers, Prochlorococcus is possibly the most plentiful species on Earth: a single millilitre of surface seawater can contain 100,000 cells or more. Worldwide, there are estimated to be several octillion (10) individuals. Prochlorococcus is ubiquitous between 40°N and 40°S and dominates in the oligotrophic (nutrient poor) regions of the oceans. The bacterium accounts for an estimated 20% of the oxygen in the Earth's atmosphere, and forms part of the base of the ocean food chain.

Bacterial biomass

Bacteria and archaea are both classified as prokaryotes, and their biomass is commonly estimated together. The global biomass of prokaryotes is estimated at 30 billion tonnes C, dominated by bacteria.

Geographic location Number of cells (× 10) Billion tonnes of carbon
Open ocean 1.2 1.6 to 2.2
Ocean subsurface 5 10
Terrestrial soil 3 8
Terrestrial subsurface 2 to 6 4 to 12
Total 11 to 15 23 to 31

The estimates for the global biomass of prokaryotes had changed significantly over recent decades, as more data became available. A much-cited study from 1998 collected data on abundances (number of cells) of bacteria and archaea in different natural environments, and estimated their total biomass at 350 to 550 billion tonnes C. This vast amount is similar to the biomass of carbon in all plants. The vast majority of bacteria and archaea were estimated to be in sediments deep below the seafloor or in the deep terrestrial biosphere (in deep continental aquifers). However, updated measurements reported in a 2012 study reduced the calculated prokaryotic biomass in deep subseafloor sediments from the original ≈300 billion tonnes C to ≈4 billion tonnes C (range 1.5–22 billion tonnes). This update originates from much lower estimates of both the prokaryotic abundance and their average weight.

A census published in PNAS in May 2018 estimated global bacterial biomass at ≈70 billion tonnes C, of which ≈60 billion tonnes are in the terrestrial deep subsurface. It also estimated the global biomass of archaea at ≈7 billion tonnes C. A later study by the Deep Carbon Observatory published in 2018 reported a much larger dataset of measurements, and updated the total biomass estimate in the deep terrestrial biosphere. It used this new knowledge and previous estimates to update the global biomass of bacteria and archaea to 23–31 billion tonnes C. Roughly 70% of the global biomass was estimated to be found in the deep subsurface. The estimated number of prokaryotic cells globally was estimated to be 11–15 × 10. With this information, the authors of the May 2018 PNAS article revised their estimate for the global biomass of prokaryotes to ≈30 billion tonnes C, similar to the Deep Carbon Observatory estimate.

These estimates convert global abundance of prokaryotes into global biomass using average cellular biomass figures that are based on limited data. Recent estimates used an average cellular biomass of about 20–30 femtogram carbon (fgC) per cell in the subsurface and terrestrial habitats.

Global biomass

External image
image icon Visualizing the biomass of life

The total global biomass has been estimated at 550 billion tonnes C. A breakdown of the global biomass is given by kingdom in the table below, based on a 2018 study by Bar-On et. al.

Kingdom Global biomass in billion tonnes of carbon Global dry biomass in billion tonnes Global wet biomass in billion tonnes Image
Plantae 450 900 2700
Bacteria + Archaea 30 60 200
Fungi 12 24 80
Protista 4 8 25
Animalia 2 4 13
Total 500 1000 3000
Humans and their livestock represent 96% of all mammals on earth in terms of biomass, whereas all wild mammals represent only 4%.

Animals represent less than 0.5% of the total biomass on Earth, with about 2 billion tonnes C in total. Most animal biomass is found in the oceans, where arthropods, such as copepods, account for about 1 billion tonnes C and fish for another 0.7 billion tonnes C. Roughly half of the biomass of fish in the world are mesopelagic, such as lanternfish, spending most of the day in the deep, dark waters. Marine mammals such as whales and dolphins account for about 0.006 billion tonnes C. Land animals account for about 500 million tonnes C, or about 20% of the biomass of animals on Earth. Terrestrial arthropods account for about 150 million tonnes C, most of which is found in the topsoil. Land mammals account for about 180 million tonnes C, most of which are humans (about 80 million tonnes C) and domesticated mammals (about 90 million tonnes C). Wild terrestrial mammals account for only about 3 million tonnes C, less than 2% of the total mammalian biomass on land.

The global biomass broken down by kingdom and into taxonomic groups for animals. The estimates for bacteria and archaea have been updated to 30 billion tonnes C combined since this figure was made.

Most of the global biomass is found on land, with only 5 to 10 billion tonnes C found in the oceans. On land, there is about 1,000 times more plant biomass (phytomass) than animal biomass (zoomass). About 18% of this plant biomass is eaten by the land animals. However, marine animals eat most of the marine autotrophs, and the biomass of marine animals is greater than that of marine autotrophs.

According to a 2020 study published in Nature, human-made materials, or anthropogenic mass, outweigh all living biomass on earth, with plastic alone exceeding the mass of all land and marine animals combined.

name number of species date of estimate individual count mean living mass of individual percent biomass (dried) global dry biomass in million tonnes global wet (fresh) biomass in million tonnes
Terrestrial Humans 1 November 2022 8 billion 50 kg
(incl children)
40% 160 400
2005 4.63 billion adults 62 kg
(excl. children)
287
Cattle 1 2021 1.5 billion 300 kg 30% 125 416
Sheep 1 2021 1.3 billion 30 kg 30% 12 39
Goats 1 2021 1.1 billion 30 kg 30% 10 32
Chickens 1 2021 26 billion 0.9 kg for broilers, 1.8 kg for layers 30% 8 25
Ants 15,700 2022 20-90×10 3.7 mg-5.5 mg 22.8% 10–100 40–450
Earthworms 7,000–30,000 2016 10 mg (dry weight) 10–25% 400 1,600
Termites 2,972 2022 2 mg 27% 100 440
Nematodes 2019 4.4×10 20% 60 300
Marine Blue whales 1 Pre-whaling 340,000 40% 36
2023 50,000 60,000 kg 40% 1.2 3
Fish >20,000 2022 30% 3,000 9,000
Antarctic krill 1 2008 7.8×10 0.486 g 379 (in peak season)
Copepods
(a zooplankton)
13,000 10–10 kg
Cyanobacteria
(a picoplankton)
? 2003 1,000

Global rate of production

Globally, terrestrial and oceanic habitats produce a similar amount of new biomass each year (56.4 billion tonnes C terrestrial and 48.5 billion tonnes C oceanic).

Net primary production is the rate at which new biomass is generated, mainly due to photosynthesis. Global primary production can be estimated from satellite observations. Satellites scan the normalised difference vegetation index (NDVI) over terrestrial habitats, and scan sea-surface chlorophyll levels over oceans. This results in 56.4 billion tonnes C/yr (53.8%), for terrestrial primary production, and 48.5 billion tonnes C/yr for oceanic primary production. Thus, the total photoautotrophic primary production for the Earth is about 104.9 billion tonnes C/yr. This translates to about 426 gC/m/yr for land production (excluding areas with permanent ice cover), and 140 gC/m/yr for the oceans.

However, there is a much more significant difference in standing stocks—while accounting for almost half of total annual production, oceanic autotrophs account for only about 0.2% of the total biomass.

Terrestrial freshwater ecosystems generate about 1.5% of the global net primary production.

Some global producers of biomass in order of productivity rates are

Producer Biomass productivity
(gC/m/yr)
Ref Total area
(million km)
Ref Total production
(billion tonnes C/yr)
Swamps and marshes 2,500 5.7
Tropical rainforests 2,000 8 16
Coral reefs 2,000 0.28 0.56
Algal beds 2,000
River estuaries 1,800
Temperate forests 1,250 19 24
Cultivated lands 650 17 11
Tundras 140 11.5–29.8
Open ocean 125 311 39
Deserts 3 50 0.15

See also

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Further reading

External links

Ecology: Modelling ecosystems: Trophic components
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Microorganisms
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Ecology: Modelling ecosystems: Other components
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Outline of ecology
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