Showing posts with label mycorrhiza. Show all posts
Showing posts with label mycorrhiza. Show all posts

Wednesday, February 21, 2018

The Plant Microbionome

Recently came across an article on this topic by Davide Bulgarelli and how manipulation of the composition of the organisms there might influence agricultural productivity.

A good read - but mostly ignored by mainstream agricultural scientists.

Appended below.
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How Manipulating the Plant Microbiome Could Improve Agriculture

It has become increasingly evident that, like animals, plants are not autonomous organisms but rather are populated by a cornucopia of diverse microorganisms.
By Davide Bulgarelli | February 1, 2018



MODELING THE MICROBIOME: Using synthetic communities of microbes to colonize Arabidopsis plants grown in a sterile substrate—the botanical equivalent of germ-free mice—researchers can begin to understand how the microbiome affects plant health.© SIMON FRASER/SCIENCE SOURCE
Afew years ago, as a postdoc in the lab of Paul Schulze-Lefert at the Max Planck Institute for Plant Breeding Research in Cologne, Germany, I used next-generation sequencing to study the bacterial communities that populate roots of the model plant Arabidopsis thaliana. Although scientists had known for many years that roots interact with a variety of microorganisms, the composition of these communities was still poorly understood. As our sequencing data began rolling in, I was stunned by the staggering taxonomic diversity of bacteria that a single, tiny root can host. Yet there was an order in this apparent chaos. Almost invariably, members of the phyla Actinobacteria, Bacteroidetes, and Proteobacteria were enriched, differentiating the root specimens from the surrounding environment.
Subsequent studies by other labs supported our findings and posited Firmicutes as an additional dominant member of the plant microbiota. In addition to these bacterial groups, genomic surveys of plants have revealed certain fungal and eukaryotic microbes. And all of these groups of organisms are making themselves at home not just beneath the soil in and around plants’ roots, but in other tissues, such as leaves, as well.
This research immediately raised new questions: Why were certain microbes more abundant in roots and leaves? How did these microbial communities assemble? And most critically, how did they affect plant health?
Recently, in addition to genomic surveys of the microbes present in various plant tissues, researchers have begun to probe the functional consequences of these bacterial, fungal, and eukaryotic symbionts. A better understanding of the molecular dialog between plants and their microbiota could revolutionize agriculture. The world population is expected to reach 9.8 billion in 2050, more than 30 percent larger than at present. This will put enormous pressure on food production globally—pressure that won’t be relieved solely by the agrochemicals farmers currently use to increase yield and protect crops from pests and pathogens. To encourage a sustainable food source for humanity, radical changes in the crop production process are needed—changes that could come in the form of microbial manipulation.
The interface between plant roots and soil—a zone called the rhizosphere—and the root itself are sites of colonization for microbes capable of enhancing mineral uptake by the plant, of both actively synthesizing and modulating the plant’s synthesis of chemical compounds called phytohormones that modulate plant growth and development, and of protecting plants from soil-derived pests and pathogens. For these reasons, scientists are looking to manipulate the microbes populating this belowground habitat to sustainably increase crop production. And in my lab, we are looking at ancient varieties and wild relatives of crops as a source of insights into beneficial associations between plants and microbes that could be adapted for agricultural settings.

Surveying the plant microbiome

The roots of land plants thrive in soil, one of the richest and most diverse microbial reservoirs on Earth. It has been estimated that a single gram of soil contains thousands of different bacterial species, not to mention other microorganisms such as archaea, fungi, and protists. Perhaps not surprisingly, the establishment of interactions with the soil biota represented a milestone for plants’ adaptation to the terrestrial environment. Fossil evidence suggests that the first such interactions with fungal members of the microbiome occurred as early as ~400 million years ago.1
PLANTS’ MICROBIAL COMMUNITIES: Like animals, plants host communities of microbes that influence a wide variety of their biological processes. Recent surveys of the plant microbiome have begun to document which species are present—including not just bacteria, but fungi and microscopic eukaryotes as well—and how they affect the plant’s health and functioning.
See full infographic: WEB | PDF
© MESA SCHUMACHER
Comparative studies indicate that soil characteristics such as nutrient and mineral availability are major determinants of the root microbiome. Just as digestive tract microbes interact with the food consumed by vertebrates, the root microbiome mediates the soil-based diet of plants. Also paralleling host/microbe interactions in the animal kingdom, individual members of the plant microbiome appear to be compartmentalized. I and other researchers working with Arabidopsis and with rice have identified at least three distinct microbiomes thriving at the root-soil interface: that in the rhizosphere; another one on the root surface, or rhizoplane; and a third one inside the root, an area known as the endosphere.2,3In all three compartments, Actinobacteria, Bacteroidetes, Firmicutes, and Proteobacteria dominate the bacterial communities in multiple plant species. The aboveground portions of plants such as leaves show similarly predictable microbial composition. (See illustration at left.)
While the categories of microbes that make up the plant microbiome are largely conserved, much variation exists in the species compositions of these communities across hosts. One key factor in determining how the microbiome is populated and maintained appears to be the plant’s release of organic compounds into the rhizosphere, a process known as rhizodeposition. The amount and composition of these organic deposits vary depending on plant species and developmental stage, but may account for up to 11 percent of net photosynthetically fixed carbon and 10 percent to 16 percent of total plant nitrogen.4 This process influences the chemical and physical composition of the rhizosphere and, in turn, provides signaling molecules and organic substrates for microbial growth.
ROOT BUGS: Plant roots and the interface between the roots and the soil—a zone called the rhizosphere—are home to diverse microbes that can affect mineral uptake by the plant.© BIOPHOTO ASSOCIATES/SCIENCE SOURCE
Another factor that likely shapes the composition of the plant microbiome is interaction between microbes. In 2016, Eric Kemen of the Max Planck Institute for Plant Breeding Research and colleagues surveyed the microbes thriving in and on wild Arabidopsis leaves at five natural sites in Germany sampled in different seasons. They then plotted correlations between the abundances of more than 90,000 pairs of microbial genera identified in their survey, revealing six “microbial hubs”—nodes with significantly more connections than other nodes within the network. These hubs were represented by the oomycete genus Albugo, the fungal genera Udeniomyces and Dioszegia, the bacterial genus Caulobacter, and two distinct members of the bacterial order Burkholderiales.5 Given the high degree of connectivity within the communities, it is likely that these microbial hubs play a disproportionate role in the microbiome, akin to that of keystone species in an ecosystem.
To validate this idea that certain species can drive the composition of the plant microbiome, Kemen’s team selected Albugo sp. and Dioszegia sp. as paradigmatic examples of microbial hubs. Albugooomycetes are eukaryotic pathogens of Arabidopsis with an obligate biotrophic lifestyle—meaning that they cannot be cultured outside their host. Consistent with the central role of Albugo in the plant’s microbial community, Arabidopsis that had been artificially infected with Albugo laibachii and maintained in potting soil under controlled conditions displayed a bacterial microbiome composition that was less variable across plants than that of uninfected individuals. Conversely, differences between the bacterial microbiomes of three distinct Arabidopsis strains were amplified in the presence of A. laibachii infection. The fungal microbiome, however, was not significantly affected by the presence of A. laibachii and another Albugo species.
I was stunned by the staggering taxonomic diversity of bacteria that a single, tiny root can host.
Kemen’s team conducted a parallel set of experiments with Dioszegia sp., which—unlike Albugo sp.—are culturable under laboratory conditions, and six bacterial isolates from Arabidopsis leaves. The results confirmed that the presence of the fungal species can strongly inhibit the growth of Caulobacter—plants whose leaves were inoculated with Dioszegia sp. showed a 100-fold reduction in the number of colony-forming units of Caulobacter sp.—mirroring the significant negative correlation observed between these two groups of microbes in the network analysis.5
In 2017, Harvard University’s Roberto Kolter and colleagues demonstrated that such microbial interactions are not limited to Arabidopsis. The researchers developed a simplified version of the maize root microbiome, consisting of seven bacterial strains previously identified in sequencing surveys. By using a leave-one-out approach to colonizing naive maize plants, they demonstrated that removal of Enterobacter cloacae disrupts the composition of the microbial community, which became dominated by Curtobacterium pusillum, while the other five species had nearly disappeared. Interestingly, this effect was limited to plant colonization: when the seven strains of bacteria were monitored in a substrate that did not contain maize seedlings, the community’s composition was significantly different from the one retrieved from roots, and the regulatory role exerted by E. cloacae was not detected.6
These studies suggest that individual members of the microbiome can have a disproportionate role in assembling and stabilizing the community. Deciphering the interactions within and between the various taxa populating leaves and roots will be required to understand the regulation of the plant microbiome.

From composition to function

For years, researchers have observed that, despite the presence of pathogens and conditions favorable to infection, some regions produce plants that are less susceptible to disease than other areas. The soils in these areas, it turns out, support plant health via the microbiome.
Researchers are making strides in understanding the mechanisms underlying this support. In 2011, for example, a team led by Rodrigo Mendes, then at Wageningen University and Research Centre in the Netherlands, demonstrated that disease suppression was linked to the recruitment of a specific population of Pseudomonadaceae, a family of the phylum Proteobacteria. Using a PCR fingerprinting approach, the researchers discerned that this population could be grouped into ten haplotypes, which the team designated A to J. Of these, haplotypes A, B, and C represented some 90 percent of the isolated bacteria. When inoculated in soil, a representative strain of haplotype C suppressed the incidence of disease caused by the fungus Rhizoctonia solani on sugar beet roots, while, surprisingly, strains from haplotypes A or B did not.7
Similarly, in their study published last year, Kolter and colleagues found that maize plants inoculated with the seven selected bacterial strains showed significantly delayed development of Fusarium verticillioides, the causal agent of maize blight. This phenomenon was mediated by the specific strains chosen, and not by bacterial colonization per se, as seed treatment with a laboratory strain of Escherichia coli did not protect maize seedlings from pathogen development. Likewise, the seven strains together were required for the protective effect: inoculation with individual strains resulted in significantly less protection against F. verticilloides.
This method of combining sequencing data with microbial isolation is becoming a powerful tool to formulate testable hypotheses and gain novel insights into the function of the plant microbiome. Like Kolter, researchers are assembling microbial isolates into synthetic communities (SynComs) of known composition and testing their effects on host plants. This approach was once considered a daunting task, as only a very limited fraction—often less than 1 percent—of soil biota was considered culturable under laboratory conditions. But in 2015, Schulze-Lefert’s lab teamed up with Julia Vorholt’s group at ETH Zurich in Switzerland to investigate the proportion of Arabidopsis-associated bacteria that can be cultured, and found the 1 percent statistic to be a vast underestimate.
FUNGAL FINGERS: In addition to bacteria, the plant microbiome includes fungal species such as the Rhizoctonia solani shown here.© DENNIS KUNKEL MICROSCOPY/SCIENCE SOURCE
Comparing the taxonomic relationships among some 8,000 colony-forming microbes from leaves and roots of plants using cultivation-independent sequencing surveys of leaf and root microbiomes, the researchers demonstrated that more than 50 percent of the dominant members of the Arabidopsismicrobiome can be cultured in vitro.8 Taking advantage of this finding, the team assembled SynComs representative of the microbiota of the Arabidopsis roots and leaves and tested the communities’ capacities to colonize these tissues on plants grown in a sterile substrate—the botanical equivalent of germ-free mice. These experiments revealed that, upon plant inoculation, root and leaf isolates form microbial communities resembling the natural microbiomes of those tissues, demonstrating that the SynCom approach accurately recapitulates the effects of a complete microbiota.8
Since then, numerous researchers have begun to develop SynComs to further explore the function of the plant microbiome. Earlier this year, for example, Jeff Dangl of the University of North Carolina at Chapel Hill and colleagues used the SynCom approach to explore the role of the root microbiome in phosphate uptake. In nature, less than 5 percent of the phosphorus content of soils is available to plants. To circumvent this limitation, farmers rely on the application of chemical fertilizers, but this approach is not sustainable in the long term. Thus, understanding how plants and their associated microbes can thrive under sufficient and limiting phosphorus supplies is a priority. There is a huge body of literature documenting the contribution of arbuscular mycorrhizal fungi to phosphorus uptake in plants, but the role of the bacterial microbiota remains mysterious.
Scientists are looking to manipulate soil microbes to sustainably increase crop production—and novel insights into the plant microbiome are now facilitating the development of such agricultural tactics.
In experiments with Arabidopsis, which does not engage in symbiotic relationships with mycorrhizal fungi, Dangl and his colleagues compared the microbiomes of wild-type plants with those of mutant lines that had impaired phosphate starvation responses (PSRs)—a set of morphological, physiological, biochemical, and transcriptional activities evolved by plants to cope with phosphorus deficiency. Using a SynCom represented by 35 taxonomically diverse bacterial isolates from Arabidopsis and related plants, the researchers demonstrated that wild-type plants and mutants, grown on agar plates, assemble distinct root communities when exposed to both low and high phosphorus concentrations. Remarkably, SynCom inoculation reduced accumulation of phosphorus when plants were grown under limited conditions but not when plants were grown in the presence of abundant phosphate, suggesting that bacteria and plants compete for the element.
By monitoring a core set of 193 marker genes, the team observed that SynCom inoculation greatly enhanced PSR-related transcription in wild-type plants. When the researchers transferred inoculated wild-type plants grown with limited phosphorus to plates with sufficient supplies, they observed a striking result: 20- to 40-fold increases in phosphorus concentration in the plant stem, as compared with mock-inoculated controls. Such a dramatic increase in phosphorus uptake was not detected in inoculated plants initially grown with sufficient phosphorus. Therefore, initial plant-bacteria competition for phosphorus might be part of an adaptive mechanism to maximize PSR in plants.9
Further investigation into the binding sites of transcription factors on Arabidopsis DNA revealed that PHR1, a master regulator of PSR, and its paralog PHL1 contribute to transcriptional regulation of plant immunity. In particular, phr1;phl1 mutant plants display enhanced activation of plant immunity genes in response to phosphate starvation and to SynCom inoculation, compared with wild-type plants. Together, these data suggest that the nutritional status of the host is a driver of microbiome composition; through master regulators of mineral starvation, plants can modulate immune responses, which could, in turn, shape microbiome composition. (See “Holding Their Ground,” The Scientist, February 2016.)

What’s next?

Characterizing the plant microbiome and its function could be applied in an agricultural setting, better equipping our crops to grow in resource-poor environments and to fight off dangerous pathogens. Indeed, the private sector has begun to invest in this approach. One strategy many companies are pursuing is a form of plant probiotic, which consists of preparations of beneficial microbes to be mixed with seeds at sowing and again once the seedlings germinate. Another approach is to use plant breeding to select for varieties that have enhanced symbiosis with the microbiota.
Many questions remain about the plant microbiome, however—not least of which is how thousands of years of cultivation have changed crops’ relationships with the soil biota. Using a cultivation-independent approach, my colleagues and I recently demonstrated that wild ancestors and modern varieties of barley (Hordeum vulgare) host distinct microbiotas.10 Likewise, Jos Raaijmakers of the Netherlands Institute of Ecology and colleagues last year identified a shift in the structure of the microbiome of modern and ancestral varieties of common bean (Phaseolus vulgaris); Bacteroidetes were more abundant in wild relatives, and their contribution to the community was progressively replaced by Actinobacteria and Alphaproteobacteria in the more domesticated plants.11
How do these differences translate to altered functionality of the microbiome? Thanks to the experience gained by Arabidopsis scientists, we are now in a position to address this question, and developing SynComs from crops will be an important step in the process.
Luckily, the field is motivated to do just that, as well as to define a road map to achieve the translational potential of the plant microbiome. In a few years, the plant microbiome manipulations may have moved from the lab to the field.

Davide Bulgarelli is a principal investigator at the University of Dundee in the U.K. His research aims at understanding the structure, function, and host control of the microbiome thriving at the root-soil interface.

References

  1. P. Bonfante, A. Genre, “Plants and arbuscular mycorrhizal fungi: an evolutionary-developmental perspective,” Trends Plant Sci, 13:492-98, 2008.
  2. D. Bulgarelli et al., “Revealing structure and assembly cues for Arabidopsis root-inhabiting bacterial microbiota,” Nature, 488:91-95, 2012.
  3. J. Edwards et al., “Structure, variation, and assembly of the root-associated microbiomes of rice,” PNAS, 112:E911-E920, 2015.
  4. D.L. Jones et al., “Carbon flow in the rhizosphere: carbon trading at the soil-root interface,” Plant Soil, 321:5-33, 2009.
  5. M.T. Agler et al., “Microbial hub taxa link host and abiotic factors to plant microbiome variation,” PLOS Biol, 14:e1002352, 2016.
  6. B. Niu et al., “Simplified and representative bacterial community of maize roots,” PNAS,114:E2450-E2459, 2017.
  7. R. Mendes et al., “Deciphering the rhizosphere microbiome for disease-suppressive bacteria,” Science, 332:1097-100, 2011.
  8. Y. Bai et al., “Functional overlap of the Arabidopsis leaf and root microbiota,” Nature, 528:364-69, 2015.
  9. G. Castrillo et al., “Root microbiota drive direct integration of phosphate stress and immunity,” Nature, 543:513-18, 2017.
  10. D. Bulgarelli et al., “Structure and function of the bacterial root microbiota in wild and domesticated barley,” Cell Host Microbe, 17:392-403, 2015.
  11. J.E. PĂ©rez-Jaramillo et al., “Linking rhizosphere microbiome composition of wild and domesticated Phaseolus vulgaris to genotypic and root phenotypic traits,” ISME J, 11:2244-57, 2017.



Thursday, February 11, 2010

Soil Carbon Primer or Soil Carbon Economics 101

The following article is worth a read, as are the attached comments.

A touch of reality.

But it does not say do not build up soil carbon. More soil carbon is in the interests of the land owner, the farmer, the pastoralist as well as everyone. BUT......in reality, do not expect to make anything from it in a trading sense, but look to improved soil performance and agricultural performance as the payoff.

That is very real, and there is much evidence to show it to be so. Across states, countries, horticulture and agriculture. South Australia has a very active core of producers into this right now. And carbon sources are scarce in the state, with demand for compost materials outstripping supply. Other states are tending that way.

The article highlights a few overarching problems, although a significant impediment is not mentioned - the logistical costs of getting carbon into soil. Products such as biochar / agrichar offer some hope, as does the develoment of high density organic fertilisers, based on organic residuals that will lower transport costs. As would locally based sources of these types of products.

There is progress.


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When soil carbon is not in the national interest

In sporting parlance, the Coalition plan has soil carbon peaking too early.

By making soil carbon a foundation stone of its policy, and a commodity that all Australian taxpayers will be investing in whether they like it or not, the Coalition has invited rigorous scrutiny of the issue.

I’m not sure that soil carbon is ready for that scrutiny.

Taxpayer-funded soil carbon trading is a concept that needs some massaging and makeup before it is shoved into the glare of prime-time TV, and the demolition job that will now result.

That’s regrettable, because the ideal of tradeable soil carbon is something worth working on.

As a big picture concept, soil carbon is brilliant: improve farm soil and save the world.

Such crusty organisations as the United Nations agree that soil carbon is a possible panacea for many of the world’s ills, from climate change to food and water scarcity.

Dedicated individuals have shown that it is real; that soil carbon levels can be lifted, sometimes substantially, in many soils under many farming enterprises.


The Chicago Climate Exchange (CCX) has demonstrated that the market will pay for soil carbon credits—albeit not much under the CCX model.

But while many can see the pot of gold at the end of the rainbow, the route to it remains hazy.
It’s one thing for a farmer to build soil carbon: it’s another to have all the nation’s farmers building soil carbon and have them each interface with an accounting system that will give them credit for their efforts.

As has been tirelessly pointed out, soil carbon levels differ from soil to soil, farm to farm, paddock to paddock, season to season. Seen as a whole, the nation’s soil carbon is a complex and ever-changing picture.

What do you measure, and when, and how? And what happens when the carbon disappears in drought or fire? These are questions that tax intelligence and science, but there is a process that will help work through them.


A carbon market

Given a framework to operate in, a market will decide how much risk it is prepared to take on, the level of accountability it needs to support that risk, and pay accordingly.

A market also provides a learn-as-you-go environment. Initially, like most free enterprise, a soil carbon market is likely to have its share of shonks and cowboys on both sides of the fence. But the more money poured into the market, the more rigour will be demanded of it. Farmers, traders and buyers have the ability to adapt to each incremental tightening of the trading framework.

The Coalition has now plunked soil carbon blinking into the spotlight, and there’s not a free market in sight.

In fact, there is very little in sight in the two lines that the Coalition dedicated to soil carbon in its press release, except for this statement: “The Coalition will use the Emissions Reduction Fund to deliver about 85 million tonnes per annum of CO2 abatement through soil carbons by 2020 with an initial purchase of 10 million tonnes of abatement through soil carbons by 2012-13”.
(The Emissions Reduction Fund is a government body, kick-started with government/taxpayer funds. Businesses that push their emissions above a “business-as-usual” level pay the Fund a penalty; businesses that go below business-as-usual emissions get rewarded from the same fund.)

Which suggests that the plan is for you and me, the taxpayer, to pay you, the farmer, for sequestering carbon.

There is no provision for a market to provide a learn-as-we-go environment: instead, we will have government laying down legislation and a bureacracy attempting to govern an unreliable and messy commodity.

Government dabbling in areas that are the natural realm of private enterprise has always ended in tears.

Soil carbon promises tears for anyone who tries to harness it, public or private, but the private sector doesn’t mind a few knocks. Especially if they are being delivered to someone else.

In the meantime, the Coalition’s plan for us all to share in the ownership of the nation’s rebuilding of soil carbon will see a long queue of critics lining up to point out flaws in the soil carbon concept.

Yes, we are shy of a few answers, but that doesn’t mean that the idea of tradeable soil carbon is wrong. It’s all in the execution. Better that we hand it over to the free market cowboys who will tinker with it, soup it up, prang it—and in the end, make it work, if it’s workable.

Only then should the Coalition consider making it part of the national interest; but by then it won’t matter.

[Posted By: MATT CAWOOD on 8/02/2010 4:00:00 AM


Source: http://www.theland.com.au]


Comments

Market-based schemes are certainly neat in theory. In practice, organised crime has made $7.4 billion in the last 18 months on the European ETS, selling bogus credits.
Posted by morrgo, 9/02/2010 12:30:34 PM, on Farm Weekly


Inviting halfwits to trade with buckets full of mud does have a certain attraction.
Posted by Mud pie, 9/02/2010 1:34:04 PM, on The Land

There are a lot of points raised here but the basic factors that agriculture is subsidized in many countries and not in ours begs the question how do our farmers do it well a lot of them are not? People are constantly telling me how expensive food is here but really it is not it is just what it costs. We the taxpayer may have to pay for it as the consumer cannot confront the added cost. Adding carbon through improved soil management, whatever the incentive, will improve the nations' health through increased micro nutrients provided through increased microbe activity that the presence of increased carbon,which goes hand in hand indicates. Of course there are accounting issues... when are there not. Some will benefit and some will not as much but we will all benefit by better health. I have 3 books being launched today on soil carbon issues for children and lay people at the Trinity Grammar school in Kew Victoria. You are welcome to attend. Please visit my website to see the books online www.infinart.com.au
Posted by jewel, 10/02/2010 6:56:17 AM, on The Land


Imagine what Australia would be like if all the farms and land holdings had been managed as carbon farms for the past 10 years. Carbon rich soil, good ground cover, well-established vegetation, moisture retained in the landscape for far longer, less erosion, heathier soil microbes hard at work manufacturing more carbon and making more nutrients available for plants to grow. The cooling influence of vegetation sees microclimates joining microclimates and expanding to include districts and regions, forging feedback loops that cascade through mineral and energy cycles, unleashing processes long hidden that have unanticipated impact on production and productivity. And all the while this same vegetation and soil are extracting vast amounts of 'the airborne fraction' - the Legacy Load, the CO2 and other greenhouse gases that are the real cause of the climate chaos battering our planet. Imagine your own version of that. Then think what the place will be like if we have to wait another 10 years for carbon farming to become widespread. If the doubters and delayers get their way. If it's 'too hard' to try. If the cynics and the deniers win. Then we lose hope. And we are left with despair.
Posted by Michael Kiely, 10/02/2010 10:24:24 AM, on The Land



Thursday, October 08, 2009

Soil Carbon May Come from the Tractor Exhaust

A Canadian inventor may have found a very useful tool that can inject tractor exhaust gases into the soil and help build soil carbon and stimulate soil microbes.

Yes.......there are many snake oil salesmen around, but this does sound possible. It fits well with some recent agronomic evidence that if small doses of nitrogen are applied to agronomic systems they may act first on microbial populations that are able to then grow and act on soil minerals and organic systems that have stored nutrients, to help release N and P in the soil in a form that can be taken up by plants, rather than directly on the plants themsleves.

Yes.......it is still relatively early days, but there are some serious scientists giving it a tick already.

Read about it yourself............and think.
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When the smoke from a tractor exhaust goes up, that’s pollution. But get those emissions down into the soil and they become fertiliser, as Canadian farmer, Gary Lewis, is demonstrating.

Mr Lewis has spent the best part of a decade developing and refining a system that pipes tractor exhaust emissions through a condenser and into the pneumatic system of air seeders, which then injects the carbon and nitrogen-rich emissions into the ground with the seed.

What is generally considered as pollution is in fact prime soil food, Mr Lewis said, and tractor exhaust has allowed him and other farmers working with his technology to grow excellent crops without using conventional fertilisers. The exhaust gases are believed to stimulate microbial activity and root growth, allowing the plants to more efficiently extract nutrient and moisture from the soil.

The United Nations has shown an interest in the system, which might not only reduce fertiliser dependency but cut greenhouse gas emissions.

Mr Lewis, an Alberta rancher and former auto mechanic who specialises in growing timothy hay for export, claims not to have used fertiliser on his 250-hectare irrigation farm for at least six years, instead fertilising it with his “BioAgtive” technology. Mr Lewis said he had seen no loss of production, his soils had moved from pH 8.0 (the same as the irrigation water) to a pH of about 7.0, and soil organic matter levels were now at about 10 per cent.

In testimonials quoted on the BioAgtive website, former Agriculture Canada scientists turned consultants, Dr Jill Clapperton and Dr Loraine Bailey, agree that something positive is happening in BioAgtive treated soils. “The obvious conclusion is that the exhaust had a positive effect on crop growth, yield and quality, and may have positively enhanced soil nutrients and nutrient chemistry,” Dr Bailey writes.

Meanwhile, Dr Clapperton is working on a scientific paper outlining how the technology works.

Understanding why BioAgtive is not just “blowing smoke”, as Mr Lewis feels many scientists think he’s doing, requires a different perspective on exhaust emissions.

Surprisingly, a breakdown of the content of diesel exhaust looks like a partial Christmas shopping list for plants. A Volkswagen analysis of light-duty diesel engine exhaust published in a World Health Organisation-sponsored report gave an analysis by weight of 75 per cent nitrogen, 15pc oxygen, seven per cent carbon dioxide and 2.6pc water vapour. Several other substances existed in quantities of less than 0.1pc.

Mr Lewis calculates a zero-till rig will put 1100 kilograms of air through the tractor engine to work a hectare.

Dr Bailey writes that the exhaust treatment “resulted in significant release of soil N and/or stimulated the crops to take up soil N”. She said there were also small increases in the uptake of phosphorus, potassium and sulphur and slight shifts in the amount of some micro-nutrients taken up by the crops.
If it proves viable, BioAgtive will also be a tool for farmers wanting to reduce their profile under emissions trading.

The system relies on attraction between negatively-charged ions in the gases and the soil’s positively charged alkaline component to hold the gases in the soil, as well as sealing it in.

Some Canadian farmers are now growing their own biofuel crops using BioAgtive technology, Mr Lewis said About 150 farmers around the world, including in Australia and recently China, had bought into the concept.

While the system doesn’t come cheap, at about $C40,000, Mr Lewis points to what he says is the potential to save hundreds of thousands of dollars in fertiliser in a year.

Gary Lewis is booked to talk at the Carbon Farming Conference and Expo at Orange, later this year on November 4-5.

[ partially sourced Qld Country Life]

Friday, May 09, 2008

Perennial Pastures in Australia Shown to Sequester Carbon

The potential role for carbon sequestration in perennial pasture plants has received a boost with the release of some important research data that has put some quantified information into the public arena. The data is broadly supported by other information beginning to emerge from other parts of Australia.

Does this begin to really show that deep rooted perennial grass pastures can be effective in raising soil carbon levels? Is there a role for other grasses eg the very deep rooted Vetiver Grass used in mining reclamation for example. It does not address the issue of burning but there is some data about grazing.

Read the material below -----

Drought-tolerant perennial pastures could make a big dent in Australia's greenhouse emissions by helping soils to soak up carbon, says one researcher. But not everyone is convinced this approach really locks away as much carbon in the soil as claimed.

Tim Wiley, a pastures agronomist from Western Australia's Department of Agriculture and Food, says early findings from a trial of perennial pastures are "exciting". "They appear to have an exceptional ability to build up carbon in the soil," he says of the naturally drought-tolerant pastures. "If this preliminary data is right and you start extrapolating it over crop and pasture land in Australia, we could make a very big dent on Australia's emissions."

Soil carbon has decreased to between a half and a third its original levels since European agriculture was introduced. Today, 16% of Australia's annual greenhouse gases come from agriculture.

Wiley says trials of deep-rooted perennial sub-tropical grasses, such as Rhodes grass, on poor sandy soils in Western Australia show they can sequester much more carbon than traditional annual pastures.
He says results from a trial, which ran for more than three years on a farm in Lancelin, show Rhodes grass can capture and sequester nearly 7 tonnes per hectare of CO2 equivalents per year more than traditional pasture. CO2 equivalents are the units the Kyoto Protocol uses to measure greenhouse gases. The methane produced from the extra animals grazing on the perennial pastures only reduces this sequestration bonus by 10-20%, says Wiley.

Wiley says if these early findings are confirmed and the perennial pastures are grown on all suitable farmland in Western Australia, they could offset the state's entire annual greenhouse emissions.
He says the results are supported by data from farmers elsewhere in the area and trials across the country in Queensland.
This suggests the perennial pastures could have a similar effect in areas with very different rainfall and soils.

'Doesn't add up'

Dr Jeffrey Baldock, an expert in soil carbon sequestration from CSIRO Land and Water in Adelaide, agrees perennial pasture holds the best potential for increasing soil carbon and no one has ever tried to quantify its impact. But Baldock thinks the level of sequestration that Wiley reports doesn't add up. He says an increase of 7 tonnes of CO2 equivalents sequestered per hectare per year would require a massive increase in plant growth, measured as the amount of dried plant material. "For [Wiley's] carbon numbers to be correct he would have to be producing about 8 tonnes of extra dried Rhodes grass compared to the annual pasture," he says. "I'm not going to say it's impossible but it's a big ask."

Mycorrhiza

Wiley says he has yet to complete a full measurement of dried plant material. But he says data gathered so far suggests the increase in dried material is not enough to explain the increase in carbon. He says the conventional assumptions that Baldock uses about how much carbon can be sequestered from plants into the soil could be wrong. He suspects the deep-rooted perennials are supporting a healthy crop of mycorrhiza, fungi living symbiotically on plant roots. Wiley says there is evidence that mycorrhiza are more effective than other soil microbes at producing humus and other stable carbon compounds in the soil, which Baldock disputes. But Baldock says more research of the kind that Wiley is involved in should be carried out.

Carbon trading

Wiley says he would not normally publicise such preliminary research but for discussions on whether to include soil carbon in Australia's greenhouse emissions trading scheme. He says soil carbon is already being traded in some parts of the world and while there are many uncertainties around how to measure soil carbon, findings such as his call for it to be included in a trading system.

Meanwhile, Baldock questions the economics of soil carbon trading, arguing that soil carbon should be increased simply because of the benefits it can bring productivity. "It increases water holding capacity, soil nutrition, provides carbon substrates for the soil microbial population to live on and enhances soil structural stability," he says.

[partially sourced from the ABC website]
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All of the above about what carbon in the soil does is true. But we still need to get it there, and keep it there. For horticulture, the role of annual green manure crops is important, as a sensible means of building soil carbon and which has a direct and fairly immediate benefit to following horticulture crops. Can we both build and then keep adding to the soil carbon stores in other ways - with applied compost for example.

Both of these concepts are definitely NOT new. There is recent research data that indicates organic production can add to the soil carbon store. But that is really in most part, about the use of organic amendments, not necessarily the other factors in organic production.

legumes can be used as a green manure crop

Recycling organic waste, sequestering carbon, green manure crops, maintaining soil cover..........does one get a sense of deja vu? After all these were considered wise, prudent and profitable soil management considerations for most of the history of agriculture, especially since the Middle Ages, and most certainly taught in most agricultural science university courses world wide in the 19th and 20th centuries!

incorporating green manure crops on a large farm

Some more reading: