Soil Biological Fertility | Fact Sheets (2024)


Key points



  • Soil fertility depends on three major interacting components: biological, chemical and physical fertility.

  • Soil organisms improve soil fertility by performing a number of functions that are beneficial for plants. This article examines six of these functions.

  • Some management practices may help improve and maintain the biological fertility of soil.



Releasing nutrients from organic matter


Soil microorganisms (figure 1) are responsible for most of the nutrient release from organic matter. When microorganisms decompose organic matter, they use the carbon and nutrients in the organic matter for their own growth. They release excess nutrients into the soil where they can be taken up by plants. If the organic matter has a low nutrient content, micro-organisms will take nutrients from the soil to meet their requirements.

For example, applying organic matter with carbon to nitrogen ratios lower than 22:1 to soil generally increases mineral nitrogen in soil. In contrast, applying organic matter with carbon to nitrogen ratios higher than 22:1, generally results in microorganisms taking up mineral nitrogen from soil (Hoyle et al. 2011).



Soil Biological Fertility | Fact Sheets (1)

Figure 1: Colonies of bacteria shown in light blue in soil, each bacterium approximately 1 micron in size. (image: Karl Ritz)



Fixing atmospheric nitrogen

Symbiotic nitrogen fixation is a significant source of nitrogen for Australian agriculture and may account for up to 80% of total nitrogen inputs (Unkovich 2003). In the symbiosis, rhizobia or bradyrhizobia fix nitrogen gas from the atmosphere and make it available to the legume. In exchange, they receive carbon from the legume. The symbiosis is highly specific and particular species of rhizobia and bradyrhizobia are required for each legume. For more information see fact sheet “Legumes and Nitrogen Fixation”.



Increasing phosphorus availability


Most agricultural plants (except lupins and canola) form a symbiosis with arbuscular mycorrhizal (AM) fungi (figure 2) that can increase phosphorus uptake by the plant. The hyphal strands of AM fungi extend from plant roots into soil and have access to phosphorus that plant roots cannot reach. The AM fungi can provide phosphorus to plants and in return they receive the carbon they need to grow.

Importantly, this symbiosis is only beneficial for plants when available phosphorus in soil is insufficient for the plant’s requirements. Increasing phosphorus availability may be especially beneficial on phosphorus fixing soils in Australia, which are widespread and can store 100 kilograms of phosphorus per hectare (Cornish 2009).



Soil Biological Fertility | Fact Sheets (2)

Figure 2: A mycorrhizal fungi growing into plant cells where it has formed tree-like structures (arbuscules) that allow phosphorus to be transferred from the fungi to the plant. (image: Lynette Abbott).



Degrading pesticides

The degradation of agricultural pesticides in soil is primarily performed by microorganisms. Some microorganisms in soil produce enzymes that can break down agricultural pesticides or other toxic substances added to soil. The length of time these substances remain in soil is related to how easily they are degraded by microbial enzymes.



Controlling pathogens

Some microorganisms and soil animals infect plants and decrease plant yield. However many organisms in the soil control the spread of pathogens. For example, the occurrence of some pathogenic fungi in soil is decreased by certain protozoa that consume the pathogenic fungi. The soil food web contains many relationships like this that decrease the abundance of plant pathogens.



Improving soil structure

Biological processes in soil can improve soil structure. Some bacteria and fungi produce substances during organic matter decomposition that chemically and physically bind soil particles into micro-aggregates. The hyphal strands of fungi can cross-link soil particles helping to form and maintain aggregates (figure 3). A single gram of soil can contain several kilometres of fungal hyphae (Young and Crawford 2007). In addition, soil animals increase pores by tunnelling through soil and increase aggregation by ingesting soil.



Soil Biological Fertility | Fact Sheets (3)

Figure 3: Fungal hyphae (shown in blue) extending through soil (image Karl Ritz).



Managing soil biological fertility

We currently understand less about how management practices affect soil biological fertility than how they affect soil chemical and physical fertility. However, the management practices described below may help improve and maintain the biological fertility of soil.



  1. Minimise erosion as soil organisms are predominantly located in the surface layers, which are most easily eroded.

  2. Maintain or increase the organic matter content of soil as organic matter is an important source of carbon, energy and nutrients for soil organisms.

  3. Use diverse rotations as they result in diverse inputs of organic matter and a diverse population of soil organisms.

  4. Select nitrogen fixing bacteria that match the host plant and can tolerate your soil characteristics (e.g. pH) as nitrogen fixing bacteria form specific associations with legumes.

  5. Consider the release of nutrients from organic matter when determining fertiliser applications.

  6. Use fertiliser inputs that complement the activities of arbuscular mycorrhizal fungi as they only increase plant uptake of phosphorus in phosphorus-deficient soils.

  7. Choose crop rotations and management practices that decrease the suitability of soil for plant pathogens.

  8. Be patient as soil biological processes take time to develop.



Did you know?



  • There are more organisms in a handful of soil than there are people on Earth, but most of them can only be seen under a microscope.

  • The weight of organisms in the surface 10 cm of a cropping soil in southern Australia can be as much as 2 t/ha.

  • About a quarter of all the organisms in an agricultural soil are located in the surface 2 cm of soil.

  • At any one time, most soil organisms (>70 %) are inactive as soil conditions are not usually optimal.

  • Although there are a few pest nematodes species, there are over 95 non-pest species (figure 4).



Soil Biological Fertility | Fact Sheets (4)

Figure 4: A non-pest soil nematode (image Karl Ritz).



Further reading and references

Cornish PS (2009) Phosphorus management on extensive organic and low-input farms. Crop & Pasture Science 60: 105 – 115.

Young IM and Crawford JW (2004) Interactions and self-organisation in the soil-microbe complex. Science 304: 1634 – 1637.

Hoyle FC, Baldock JA and Murphy DV (2011) ‘Soil organic carbon – Role in rainfed farming systems: with particular reference to Australian conditions’, in Rainfed farming systems, Springer Science-Business Media BV, Netherlands.

Unkovich (2003) ‘David and Goliath: Symbiotic nitrogen fixation and fertilisers in Australian agriculture’, Proceedings of the 12th Australian nitrogen fixation conference. Glenelg, SA Sep 2003.

Author: Jennifer Carson (The University of Western Australia).


This soilquality.org.au fact-sheet has been funded by the Healthy Soils for Sustainable Farms programme, an initiative of the Australian Government’s Natural Heritage Trust in partnership with the GRDC, and the WA NRM regions of Avon Catchment Council and South Coast NRM, through National Action Plan for Salinity and Water Quality and National Landcare Programme investments of the WA and Australian Governments.

The Chief Executive Officer of the Department of Agriculture and Food, The State of Western Australia and The University of Western Australia accept no liability whatsoever by reason of negligence or otherwise arising from the use or release of this information or any part of it.

Soil Biological Fertility | Fact Sheets (2024)

FAQs

What is fertility of the soil question answer? ›

Soil fertility is the ability of soil to sustain plant growth and optimize crop yield. This can be enhanced through organic and inorganic fertilizers to the soil. Nuclear techniques provide data that enhances soil fertility and crop production while minimizing the environmental impact.

What makes the soil fertile one word answer? ›

The content of organic matter in the soil is one of the most important factors for soil fertility.

What is a good soil fertility number? ›

The acidity and alkalinity of soil is measured as pH. For the most fertile soil most crops prefer, the cation saturation is nearly balanced and the pH will fall into a range of 6.3 – 6.8. Outside this optimal pH range many nutrients start to become unavailable and soil biology is suppressed.

What soils are considered to be the most fertile group of answer choices? ›

Alluvial soil has the highest fertility among the options given. This soil is rich in minerals and suitable for agriculture.

Which factors are important in the fertility of soil answer? ›

soil properties—pH, texture and different clay minerals can have an influence on soil fertility. soil biology—organisms living in the soil break down animal and plant matter into nutrient forms that can be used by plants. soil organic matter—important for holding nutrients until they can be taken up by plants.

Who makes the soil fertile answer? ›

Fertilizers such as nitrogen, potassium and phosphorus are added to the soil to make it fertile. These are also added to the potted plants in gardens to enhance plant growth.

What factors improve soil fertility? ›

What Makes Soil Fertile
  • Humus Content. Land fertility is proportional to the amount of humus present. ...
  • Soil Texture. Particle sizes and their ratios in the ground determine its texture. ...
  • Mineral Composition. ...
  • Soil pH. ...
  • Moisture Content. ...
  • Aeration. ...
  • Soil Temperature. ...
  • Soil Biota.
Nov 29, 2022

What two factors cause fertile soil? ›

Organic matter - You can also increase the fertility of the soil by determining the presence of certain organic materials that contain nutrients in them. These can be reused for the next growing cycle. Moisture content - The amount of moisture that resides in the soil can also influence soil fertility.

Which reason of the soil is most fertile? ›

Alluvial soil is formed by deposition of alluvium and sediments carried by rivers and sea waves over many years, which make this soil very fertile. It consists of various proportions of sand, silt and clay. It is also rich in organic nutrients.

What are good soil test results? ›

A reading of 7 is neutral; crops typically grow best when pH is between 6 (slightly acidic) and 7.5 (slightly alkaline). Results of soil pH are reported on a logarithmic scale; a soil with a pH of 6 is 10 times more acidic than a soil with a pH of 7, and a pH of 5 is 100 times more acidic than a pH of 7.

How do you fix low fertility soil? ›

Deficiencies of plant nutrients in soil must be corrected if the soil is to produce adequately. Fertilizers and manures are added for this reason, as well as to increase plant growth on soils already fairly well supplied with essential nutrients.

What color is rich fertile soil? ›

Dark Brown to Black

The rich soil we all are aiming for. This soil contains plenty of humus and organic matter and the darker the soil the more the organic matter has broken down into humus. Dark brown to black soils smell rich and healthy.

Which soil is considered to be the most fertile and used for growing? ›

Porous loamy soils are the richest of all, laced with organic matter which retains water and provides the nutrients needed by crops.

What soil type is the most fertile of all soils? ›

Loamy Soil: Advantages and Disadvantages

Considered the most fertile of soil type, loamy soils are a combination of sandy, clay and silt particles. The clay and silt particles improve moisture retention while the sand minimizes compaction and improves drainage.

Which soil is the most fertile layer of the soil? ›

Topsoil is the upper layer of soil, usually between 2 to 8 inches in depth, that contains most of the ground's nutrients and fertility.

What is fertility status of the soil? ›

The soil fertility status is the backbone on which all input-based high agricultural production systems can be built (Al-Zubaid et al., 2008; Parnes, 2013). It provides physical conditions and nutrients for plants growth and fructification (Marschner, 2008; Velayutham and Bhattacharyya, 2000; Foth and Ellis, 1997).

What causes the fertility of the soil to diminish answer in one sentence? ›

The major causes of soil fertility depletion are inadequate fertilizer use, complete removal of crop residues, continuous cropping systems, climate and soil types, lack of proper cropping systems and soil erosion and continuous cultivation.

What causes the fertility of soil to? ›

Soil fertility decline occurs when the quantities of nutrients removed from the soil in harvested products exceed the quantities of nutrients being applied. In this situation, the nutrient requirements of the crop are met from soil reserves until these reserves cannot meet crop demands.

What are 4 characteristics of fertile soil? ›

The soil pH is in the range 6.0 to 6.8. It has a good soil structure which results in well-drained soil. It consists of a variety of micro-organisms that support plant growth. It often contains large amounts of topsoil.

What is an example of soil fertility? ›

Fertile soil contains all of the major nutrients required for basic plant nutrition (For example, nitrogen, phosphorus, and potassium), as well as other nutrients required in smaller amounts (For example, calcium, magnesium, sulfur, iron, zinc, copper, boron, molybdenum, nickel).

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