An endangered species is a population of an organism which is at risk of becoming extinct because it is either few in numbers, or threatened by changing environmental or predation parameters. An endangered species is usually a taxonomic species, but may be another evolutionary significant unit. The World Conservation Union (IUCN) has calculated the percentage of endangered species as 40 percent of all organisms based on the sample of species that have been evaluated through 2006. (Note: the IUCN groups all threatened species for their summary purposes.) Many nations have laws offering protection to these species: for example, forbidding hunting, restricting land development or creating preserves. Only a few of the many species at risk of extinction actually make it to the lists and obtain legal protection. Many more species become extinct, or potentially will become extinct, without gaining public notice.
The conservation status of a species is an indicator of the likelihood of that endangered species not living. Many factors are taken into account when assessing the conservation status of a species; not simply the number remaining, but the overall increase or decrease in the population over time, breeding success rates, known threats, and so on. The IUCN Red List is the best known conservation status listing.
Internationally, 190 countries have signed an accord agreeing to create Biodiversity Action Plans to protect endangered and other threatened species. In the United States this plan is usually called a species Recovery Plan.
IUCN Red List Endangered species
Endangered species under the IUCN Red List refers to a specific category of threatened species, and may include critically endangered species.
IUCN Red List of Threatened Species uses the term endangered species as a specific category of imperilment, rather than as a general term. Under the IUCN Categories and Criteria, endangered species is between critically endangered and vulnerable. Also critically endangered species may also be counted as endangered species and fill all the criteria
The more general term used by the IUCN for species at risk of extinction is threatened species, which also includes the less-at-risk category of vulnerable species together with endangered and critically endangered.
IUCN categories include:
* Extinct: the last remaining member of the species has died, or is presumed beyond reasonable doubt to have died. Examples: Thylacine, Dodo, Passenger Pigeon
* Extinct in the wild: captive individuals survive, but there is no free-living, natural population. Examples:South China Tiger, Alagoas Curassow
* Critically endangered: faces an extremely high risk of extinction in the immediate future. Examples: Arakan Forest Turtle, Javan Rhino, Brazilian Merganser
* Endangered: faces a very high risk of extinction in the near future. Examples: Blue Whale, Snow Leopard, African Wild Dog, Tiger, Albatross, Crowned Solitary Eagle
* Vulnerable: faces a high risk of extinction in the medium-term. Examples: Cheetah, Gaur, Lion, Wolverine
* Conservation Dependent: The following animal is not severely threatened, but the animal must depend on conservation programs. Examples: Spotted Hyena, Leopard Shark, Black Caiman
* Near Threatened: may be considered threatened in the near future. Examples: Blue-billed Duck, Solitary Eagle, Small-clawed Otter , Maned Wolf
* Least Concern: no immediate threat to the survival of the species. Examples: Brown Rat, Nootka Cypress, Wood Pigeon
United States
Under the Endangered Species Act in the United States, "endangered" is the more protected of the two categories. The Salt Creek tiger beetle (Cicindela nevadica lincolniana) is an example of an endangered subspecies protected under the ESA.
In the United States alone, the “number of known species threatened with extinction is ten times higher than the number protected under the Endangered Species Act” (Wilcove & Master, 2008, p. 414). The US Fish and Wildlife Service as well as the National Marine Fisheries Service are held responsible for classifying and protecting endangered species, yet, adding a particular species to the list is a long, controversial process and in reality it represents only a fraction of imperiled plant and animal life (Wilcove & Master, 2008, p. 414).
Some endangered species laws are controversial. Typical areas of controversy include: criteria for placing a species on the endangered species list, and criteria for removing a species from the list once its population has recovered; whether restrictions on land development constitute a "taking" of land by the government; the related question of whether private landowners should be compensated for the loss of uses of their lands; and obtaining reasonable exceptions to protection laws.
Being listed as an endangered species can have negative effect since it could make a species more desirable for collectors and poachers. This effect is potentially reducible, such as in China where commercially farmed turtles may be reducing some of the pressure to poach endangered species.
Another problem with listing species is its effect of inciting the use of the "shoot, shovel, and shut-up" method of clearing endangered species from an area of land. Some landowners currently may perceive a diminution in value for their land after finding an endangered animal on it. They have allegedly opted to silently kill and bury the animals or destroy habitat, thus removing the problem from their land, but at the same time further reducing the population of an endangered species. The effectiveness of the Endangered Species Act, which coined the term "endangered species", has been questioned by business advocacy groups and their publications, but is nevertheless widely recognized as an effective recovery tool by wildlife scientists who work with the species. Nineteen species have been delisted and recovered and 93% of listed species in the northeastern United States have a recovering or stable population.
Currently, 1,556 known species in the world have been identified as endangered, or near extinction, and are under protection by government law (Glenn, 2006, Webpage). This approximation, however, does not take into consideration the number of species threatened with endangerment that are not included under the protection of such laws as the Endangered Species Act. According to NatureServe’s global conservation status, approximately thirteen percent of vertebrates (excluding marine fish), seventeen percent of vascular plants, and six to eighteen percent of fungi are considered imperiled (Wilcove & Master, 2008, p. 415-416). Thus, in total, between seven and eighteen percent of the United States’ known animals, fungi, and plants are near extinction (Wilcove & Master, 2008, p. 416). This total is substantially more than the number of species protected under the Endangered Species Act in the United States, which means numerous species are inching closer and closer toward extinction.
Question of ethics
Even in the search to learn more about these species, many ecologists do not take into consideration the impact they leave on the environment and its inhabitants. It is apparent that the “quest for ecological knowledge, which is so critical for informing efforts to understand and conserve Earth’s biodiversity along with valued ecosystem goods and services, frequently raises complex ethical questions”, and there is no clear way to identify and resolve these issues. Environmentalists tend to focus on the whole ecological sphere instead of the welfare of individual animals. Focusing on such a broad view tends to diminish the value of each individual creature. “Biodiversity conservation is currently a principle goal for resource management of 11.5% of the world’s surface area.” Large portions of life occur outside these protected areas and must be taken into consideration if the conservation of endangered species is going to be effective.
Impact on biodiversity and endangered species
In order to conserve the biodiversity of the planet, one must take into consideration the reasons why so many species are becoming endangered. “Habitat loss is the most widespread cause of species endangerment in the U.S., affecting 85% of imperiled species” (Wilcove & Master, 2008, p. 416). When an animal’s ecosystem is not maintained, they lose their home and are either forced to adapt to new surroundings or perish. Pollution is another factor that causes many species to become endangered, especially a large proportion of aquatic life. Also, overexploitation, disease (Wilcove & Master, 2008, p. 416), and climate change (Kotiaho et al., 2005, p. 1963) have led to the endangerment of several species.
However, the most important factor leading to the endangerment of the majority of wildlife in the world is the human impact on the species and their environment. “As human use of resources, energy, and space intensified over the past few centuries, the diversity of life has been substantially diminished in most parts of the world” (Ishwaran & Erdelen, 2006, p.179). Basically, as the human impact on the environment increases, the diversity of life decreases. Humans are constantly using the resources and space of other species for themselves, negatively impacting the survival rate of many creatures.
Humans have also set standards for which species they think should be saved and which species they find unimportant. For example, the coqui frog in Hawaii is so common that its “nocturnal singing” reduces the value of homes and prevents hotels from using rooms near forests. Hawaiians have proposed eliminating the frog, and several wildlife managers want to release a pathogen to kill the frogs (Minteer & Collins, 2005, p. 333). This example of the coqui frog demonstrates how humans have no consideration for the life of another species, and are more concerned about their own contentment and personal gain. The frog decreased the value of homes and lost business for several hotels, so the Hawaiians figured it was acceptable to get rid of the group of coqui frog living near them, without taking into consideration the environmental impact of destroying the species.
Another example where the human impact affected the welfare of a species was in the instance of non-native mute swans establishing themselves at Arrowhead Lake in Vermont. When the population of swans grew to eight birds, the Vermont Fish and Wildlife Department decided to kill take action. Two swans were eventually killed, angering animal welfare organizations and people living near the lake (Minteer & Collins, 2005, p. 333). The case of the Arrowhead Lake swans demonstrates what one considers the natural environment based on human assumptions. Simply because the swans were not normally living there does not mean it is not part of their natural habitat, and there is certainly no reason for them to be destroyed because of human dissatisfaction. Yet another example of the human impact in the lives of endangered species is that of the Preble’s meadow jumping mouse.
Research has shown that the mouse is not taxonomically different from the Bear Lodge meadow jumping mouse and the US Fish and Wildlife Service has proposed removing the Preble’s mouse from the endangered species list based on this information (Minteer & Collins, 2005, p. 333). This example brings into consideration the role of science in determining the maintenance of a species. It brings into questions whether scientific evidence should be the only resource used to support conservation of biodiversity. A final example of the human impact on existing species is the issue of toe clipping in ecological research. While ecologists are doing research on different species to advance their knowledge of methods of conservation, they must take into consideration the impact they have on the wildlife they are studying.
Toe clipping “has been reported to result in a number of adverse effects on the animals, including inflammation and infection of the feet and limbs” (Minteer & Collins, 2005, p. 334). This example demonstrates how humans must take into consideration the wellbeing of the animal even before they perform research to help conserve the species. The human impact on species and their environments has many negative effects. It is important for humans to help maintain all species in the world and not deter their development.
Species maintaining importance
“Diversity of life and living systems are a necessary condition for human development” (Ishwaran & Erdelen, 2006, p.179). Many question the importance of maintaining biodiversity in today’s world, where conservation efforts prove costly and time consuming. The fact is that the preservation of all species is necessary for human survival. Species should be saved for “aesthetic and moral justifications; the importance of wild species as providers of products and services essential to human welfare; the value of particular species as indicators of environmental health or as keystone species crucial to the functioning of ecosystems; and the scientific breakthroughs that have come from the study of wild organisms” (Wilcove & Master, 2008, p. 418). In other words, species serve as a source of art and entertainment, provide products such as medicine for human wellbeing, indicate the welfare of the overall environment and ecosystem, and provided research that resulted in scientific discoveries. An example of an “aesthetic justification” in conserving endangered species is that of the introduction of the gray wolf into Yellowstone National Park. The gray wolf has brought numerous amounts of tourists to the park and added to the biodiversity in the protected region (Wilcove & Master, 2008, p. 418).
Another example, supporting the conservation of endangered species as providers of products for human wellbeing, is the scrub mint. It has been found that the scrub mint contains an antifungal agent and a natural insecticide (Wilcove & Master, 2008, p. 418). Also, the deterioration of the bald eagle and the peregrine falcon “alerted people to the potential health hazards associated with the widespread spraying of DDT and other persistent pesticides” (Wilcove & Master, 2008, p. 418).
This serves as an example of how certain species can serve as identifiers of environmental health and protect human life as well as other species. Finally, an example of species providing for scientific discoveries is the instance of the Pacific yew which “became the source of taxol, one of the most potent anticancer compounds ever discovered” (Wilcove & Master, 2008, p. 418-419). Endangered species could prove useful to human development, maintenance of biodiversity and preservation of ecosystems. Many endangered species serve to better humanity; therefore humanity should serve to better endangered species.Some of the negative behavior of annimals is caused by abuse
Helping preserve endangered species
It is the goal of conservationists to create and expand upon ways to preserve endangered species and maintain biodiversity. Everyone should be a conservationist in some way. There are several ways in which one can aid in preserving the world’s species who are nearing extinction. One such way is obtaining more information on different groups of species, especially invertebrates, fungi, and marine organisms, where sufficient data is lacking.
For example, to understand the causes of population declines and extinction an experiment was conducted on the butterfly population in Finland. In this analysis, the butterflies’ endangered list classification, distribution, density, larval specificity, dispersal ability, adult habitat breadth, flight period and body size were all recorded and examined to determine the threatened state of each species. It was found that the butterflies’ distribution has declined by fifty-one and a half percent, and they have a severely restricted habitat. One example of specific butterflies who have a declining distribution rate are the Frigga’s Fritillary and Grizzled Skipper, who have been affected by habitat loss due to extensive draining of the bogs where they live (Kotiaho et al., 2005, p. 1963-1967). This experiment proves that when we know the causes of endangerment, we can successfully create solutions for the management of biodiversity.
Another way to help preserve endangered species is to create a new professional society dedicated to ecological ethics. This could help ecologists make ethical decisions in their research and management of biodiversity. Also, creating more awareness on environmental ethics can help encourage species preservation. “Courses in ethics for students, and training programs for ecologists and biodiversity managers” all could create environmental awareness and prevent violations of ethics in research and management (Minteer & Collins, 2005, p. 336). One final way in which one can conserve endangered species is through federal agency investments and protection enacted by the federal government. “Ecologists have proposed biological corridors, biosphere reserves, ecosystem management, and ecoregional planning as approaches to integrate biodiversity conservation and socioeconomic development at increasingly larger spatial scales” (Ishwaran & Erdelen, 2006, p.179).
One example of a federal mandated conservation zone is the Northwest Hawaiian Islands Marine National Monument, the largest marine protected area in the world. The monument is essential to the preservation of underwater communities and overfished regions. Only researchers working in the area are permitted to fish, no corals may be removed, and the Department of Homeland Security will enforce restrictions on vessels passing through the waters via satellite imaging. The monument will serve as a home to an estimated seven thousand species, most of which cannot be found anywhere else in the world (Raloff, 2006, p. 92). This environmental monument demonstrates the fact that it is possible to create a safe environment for endangered species, as well as maintaining some of the world’s largest ecosystems.
Captive breeding programs
This technique has been used with great success for many species for some time, with probably the oldest known such instances of captive breeding being attributed to menageries of European and Asian rulers, a case in point being the Pere David's Deer. However, captive breeding techniques are usually difficult to implement for highly mobile species like some migratory birds (eg. cranes) and fishes (eg. Hilsa). Additionally, if the captive breeding population is too small, inbreeding may occur due to a reduced gene pool; this may lead to the population lacking immunity to diseases.
Legal private farming for profit
Whereas illegal poaching causes substantial reductions in endangered animal populations, legal private farming for profit has the opposite effect. Legal private farming has caused substantial increases in the populations of both the southern black rhinoceros and the southern white rhinoceros. Dr Richard Emslie, a scientific officer at the IUCN, said of such programs, "Effective law enforcement has become much easier now that the animals are largely privately owned... We have been able to bring local communities into the conservation programmes. There are increasingly strong economic incentives attached to looking after rhinos rather than simply poaching: from eco-tourism or selling them on for a profit. So many owners are keeping them secure. The private sector has been key to helping our work."
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Sunday, December 28, 2008
Keystone species
A keystone species is a species that has a disproportionate effect on its environment relative to its abundance Such species affect many other organisms in an ecosystem and help to determine the types and numbers of various others species in a community.
Such an organism plays a role in its ecosystem that is analogous to the role of a keystone in an arch. Sea otters are a keystone species. While the keystone feels the least pressure of any of the stones in an arch, the arch still collapses without it. Similarly, an ecosystem may experience a dramatic shift if a keystone species is removed, even though that species was a small part of the ecosystem by measures of biomass or productivity. It has become a very popular concept in conservation biology.
A keystone species is a species that plays a critical role in maintaining the structure of an ecological community and whose impact on the community is greater than would be expected based on its relative abundance or total biomass.
Examples
Without a consensus on its exact definition, we are left to illustrate the concept of keystone species with a list of examples.
A classic keystone species is a small predator that prevents a particular herbivorous species from eliminating dominant plant species. Since the prey numbers are low, the keystone predator numbers can be even lower and still be effective. Yet without the predators, the herbivorous prey would explode in numbers, wipe out the dominant plants, and dramatically alter the character of the ecosystem. The exact scenario changes in each example, but the central idea remains that through a chain of interactions, a non-abundant species has an out-sized impact on ecosystem functions. One example is the weevil and its suggested keystone effects on aquatic plant species diversity by prey activities on nuisance Euransian Watermilfoil.
Predators
Some sea stars may perform this function by preying on sea urchins, mussels, and other shellfish that have no other natural predators. If the sea star is removed from the ecosystem, the mussel population explodes uncontrollably, driving out most other species, while the urchin population annihilates coral reefs. In his classic 1966 paper, Dr. Robert Paine described such a system in Mukkaw Bay in Washington State. This led to his 1969 paper where he proposed the keystone species concept.
Similarly, sea otters in kelp forests keep sea urchins in check. Kelp roots are merely anchors, and not the vast nutrient gathering networks of land plants. Thus the urchins only need to eat the roots of the kelp, a tiny fraction of the plant's biomass, to remove it from the ecosystem.
These creatures need not be apex predators. Sea stars are prey for sharks, rays, and sea anemones. Sea otters are prey for orca.
Engineers
In North America, the grizzly bear is a keystone species - not as a predator but as ecosystem engineers. They transfer nutrients from the oceanic ecosystem to the forest ecosystem. The first stage of the transfer is performed by salmon, rich in nitrogen, sulfur, carbon, and phosphorus, who swim up rivers, sometimes for hundreds of miles. The bears then capture the salmon and carry them onto dry land, dispersing nutrient-rich feces and partially-eaten carcasses. It has been estimated that the bears leave up to half of the salmon they harvest on the forest floor.
Another ecosystem engineering keystone species is the beaver, which transforms its territory from a stream to a pond or swamp.
In the African savanna, the larger herbivores, especially the elephants, shape their environment. The elephants destroy trees, making room for the grass species. and since the African elephants population has tippled in the last year these animals have become much more efficient. Without these animals, much of the savanna would turn into woodland.
Such an organism plays a role in its ecosystem that is analogous to the role of a keystone in an arch. Sea otters are a keystone species. While the keystone feels the least pressure of any of the stones in an arch, the arch still collapses without it. Similarly, an ecosystem may experience a dramatic shift if a keystone species is removed, even though that species was a small part of the ecosystem by measures of biomass or productivity. It has become a very popular concept in conservation biology.
A keystone species is a species that plays a critical role in maintaining the structure of an ecological community and whose impact on the community is greater than would be expected based on its relative abundance or total biomass.
Examples
Without a consensus on its exact definition, we are left to illustrate the concept of keystone species with a list of examples.
A classic keystone species is a small predator that prevents a particular herbivorous species from eliminating dominant plant species. Since the prey numbers are low, the keystone predator numbers can be even lower and still be effective. Yet without the predators, the herbivorous prey would explode in numbers, wipe out the dominant plants, and dramatically alter the character of the ecosystem. The exact scenario changes in each example, but the central idea remains that through a chain of interactions, a non-abundant species has an out-sized impact on ecosystem functions. One example is the weevil and its suggested keystone effects on aquatic plant species diversity by prey activities on nuisance Euransian Watermilfoil.
Predators
Some sea stars may perform this function by preying on sea urchins, mussels, and other shellfish that have no other natural predators. If the sea star is removed from the ecosystem, the mussel population explodes uncontrollably, driving out most other species, while the urchin population annihilates coral reefs. In his classic 1966 paper, Dr. Robert Paine described such a system in Mukkaw Bay in Washington State. This led to his 1969 paper where he proposed the keystone species concept.
Similarly, sea otters in kelp forests keep sea urchins in check. Kelp roots are merely anchors, and not the vast nutrient gathering networks of land plants. Thus the urchins only need to eat the roots of the kelp, a tiny fraction of the plant's biomass, to remove it from the ecosystem.
These creatures need not be apex predators. Sea stars are prey for sharks, rays, and sea anemones. Sea otters are prey for orca.
Engineers
In North America, the grizzly bear is a keystone species - not as a predator but as ecosystem engineers. They transfer nutrients from the oceanic ecosystem to the forest ecosystem. The first stage of the transfer is performed by salmon, rich in nitrogen, sulfur, carbon, and phosphorus, who swim up rivers, sometimes for hundreds of miles. The bears then capture the salmon and carry them onto dry land, dispersing nutrient-rich feces and partially-eaten carcasses. It has been estimated that the bears leave up to half of the salmon they harvest on the forest floor.
Another ecosystem engineering keystone species is the beaver, which transforms its territory from a stream to a pond or swamp.
In the African savanna, the larger herbivores, especially the elephants, shape their environment. The elephants destroy trees, making room for the grass species. and since the African elephants population has tippled in the last year these animals have become much more efficient. Without these animals, much of the savanna would turn into woodland.
Kyoto Protocol,UNFCCC,UNCED
The Kyoto Protocol is a protocol to the United Nations Framework Convention on Climate Change (UNFCCC or FCCC), an international environmental treaty produced at the United Nations Conference on Environment and Development (UNCED), informally known as the Earth Summit, held in Rio de Janeiro, Brazil, from 3–14 June 1992. The treaty is intended to achieve "stabilization of greenhouse gas concentrations in the atmosphere at a level that would prevent dangerous anthropogenic interference with the climate system." The Kyoto Protocol establishes legally binding commitments for the reduction of four greenhouse gases (carbon dioxide, methane, nitrous oxide, sulfur hexafluoride), and two groups of gases (hydrofluorocarbons and perfluorocarbons) produced by "Annex I" (industrialized) nations, as well as general commitments for all member countries. As of 2008[update], 183 parties have ratified the protocol, which was initially adopted for use on 11 December 1997 in Kyoto, Japan and which entered into force on 16 February 2005. Under Kyoto, industrialized countries agreed to reduce their collective GHG emissions by 5.2% compared to the year 1990. National limitations range from 8% reductions for the European Union and some others to 7% for the United States, 6% for Japan, and 0% for Russia. The treaty permitted GHG emission increases of 8% for Australia and 10% for Iceland.
Kyoto includes defined "flexible mechanisms" such as Emissions Trading, the Clean Development Mechanism and Joint Implementation to allow Annex I economies to meet their greenhouse gas (GHG) emission limitations by purchasing GHG emission reductions credits from elsewhere, through financial exchanges, projects that reduce emissions in non-Annex I economies, from other Annex I countries, or from Annex I countries with excess allowances. In practice this means that Non-Annex I economies have no GHG emission restrictions, but have financial incentives to develop GHG emission reduction projects to receive "carbon credits" that can then be sold to Annex I buyers, encouraging sustainable development. In addition, the flexible mechanisms allow Annex I nations with efficient, low GHG-emitting industries, and high prevailing environmental standards to purchase carbon credits on the world market instead of reducing greenhouse gas emissions domestically. Annex I entities typically will want to acquire carbon credits as cheaply as possible, while Non-Annex I entities want to maximize the value of carbon credits generated from their domestic Greenhouse Gas Projects.
Among the Annex I signatories, all nations have established Designated National Authorities to manage their greenhouse gas portfolios; countries including Japan, Canada, Italy, the Netherlands, Germany, France, Spain and others are actively promoting government carbon funds, supporting multilateral carbon funds intent on purchasing Carbon Credits from Non-Annex I countries,[citation needed] and are working closely with their major utility, energy, oil & gas and chemicals conglomerates to acquire Greenhouse Gas Certificates as cheaply as possible.[citation needed] Virtually all of the non-Annex I countries have also established Designated National Authorities to manage the Kyoto process, specifically the "CDM process" that determines which GHG Projects they wish to propose for accreditation by the CDM Executive Board.
Objectives
The objective is to achieve "stabilization of greenhouse gas concentrations in the atmosphere at a level that would prevent dangerous anthropogenic interference with the climate system."
The Intergovernmental Panel on Climate Change (IPCC) has predicted an average global rise in temperature of 1.4°C (2.5°F) to 5.8°C (10.4°F) between 1990 and 2100.
Proponents also note that Kyoto is a first step as requirements to meet the UNFCCC will be modified until the objective is met, as required by UNFCCC Article 4.2(d).
The treaty was negotiated in Kyoto, Japan in December 1997, opened for signature on 16 March 1998, and closed on 15 March 1999. The agreement came into force on 16 February 2005 following ratification by Russia on 18 November 2004. As of May 2008, a total of 181 countries and 1 regional economic integration organization (the EEC) have ratified the agreement (representing over 61.6% of emissions from Annex I countries).
According to article 25 of the protocol, it enters into force "on the ninetieth day after the date on which not less than 55 Parties to the Convention, incorporating Parties included in Annex I which accounted in total for at least 55% of the total carbon dioxide emissions for 1990 of the Parties included in Annex I, have deposited their instruments of ratification, acceptance, approval or accession." Of the two conditions, the "55 parties" clause was reached on 23 May 2002 when Iceland ratified. The ratification by Russia on 18 November 2004 satisfied the "55%" clause and brought the treaty into force, effective 16 February 2005. Australian Prime Minister Kevin Rudd ratified the Kyoto protocol on 3 December 2007. This came into effect after 90 days (the end of March 2008), as is stated in the guidelines set by the United Nations.
Please help improve this section by expanding it. Further information might be found on the talk page. (May 2007)
The five principal concepts of the Kyoto Protocol are:
* Commitments. The heart of the Protocol lies in establishing commitments for the reduction of greenhouse gases that are legally binding for Annex I countries, as well as general commitments for all member countries.
* Implementation. In order to meet the objectives of the Protocol, Annex I countries are required to prepare policies and measures for the reduction of greenhouse gases in their respective countries. In addition, they are required to increase the absorption of these gases and utilize all mechanisms available, such as joint implementation, the clean development mechanism and emissions trading, in order to be rewarded with credits that would allow more greenhouse gas emissions at home.
* Minimizing Impacts on Developing Countries by establishing an adaptation fund for climate change.
* Accounting, Reporting and Review in order to ensure the integrity of the Protocol.
* Compliance. Establishing a Compliance Committee to enforce compliance with the commitments under the Protocol.
Kyoto includes defined "flexible mechanisms" such as Emissions Trading, the Clean Development Mechanism and Joint Implementation to allow Annex I economies to meet their greenhouse gas (GHG) emission limitations by purchasing GHG emission reductions credits from elsewhere, through financial exchanges, projects that reduce emissions in non-Annex I economies, from other Annex I countries, or from Annex I countries with excess allowances. In practice this means that Non-Annex I economies have no GHG emission restrictions, but have financial incentives to develop GHG emission reduction projects to receive "carbon credits" that can then be sold to Annex I buyers, encouraging sustainable development. In addition, the flexible mechanisms allow Annex I nations with efficient, low GHG-emitting industries, and high prevailing environmental standards to purchase carbon credits on the world market instead of reducing greenhouse gas emissions domestically. Annex I entities typically will want to acquire carbon credits as cheaply as possible, while Non-Annex I entities want to maximize the value of carbon credits generated from their domestic Greenhouse Gas Projects.
Among the Annex I signatories, all nations have established Designated National Authorities to manage their greenhouse gas portfolios; countries including Japan, Canada, Italy, the Netherlands, Germany, France, Spain and others are actively promoting government carbon funds, supporting multilateral carbon funds intent on purchasing Carbon Credits from Non-Annex I countries,[citation needed] and are working closely with their major utility, energy, oil & gas and chemicals conglomerates to acquire Greenhouse Gas Certificates as cheaply as possible.[citation needed] Virtually all of the non-Annex I countries have also established Designated National Authorities to manage the Kyoto process, specifically the "CDM process" that determines which GHG Projects they wish to propose for accreditation by the CDM Executive Board.
Objectives
The objective is to achieve "stabilization of greenhouse gas concentrations in the atmosphere at a level that would prevent dangerous anthropogenic interference with the climate system."
The Intergovernmental Panel on Climate Change (IPCC) has predicted an average global rise in temperature of 1.4°C (2.5°F) to 5.8°C (10.4°F) between 1990 and 2100.
Proponents also note that Kyoto is a first step as requirements to meet the UNFCCC will be modified until the objective is met, as required by UNFCCC Article 4.2(d).
The treaty was negotiated in Kyoto, Japan in December 1997, opened for signature on 16 March 1998, and closed on 15 March 1999. The agreement came into force on 16 February 2005 following ratification by Russia on 18 November 2004. As of May 2008, a total of 181 countries and 1 regional economic integration organization (the EEC) have ratified the agreement (representing over 61.6% of emissions from Annex I countries).
According to article 25 of the protocol, it enters into force "on the ninetieth day after the date on which not less than 55 Parties to the Convention, incorporating Parties included in Annex I which accounted in total for at least 55% of the total carbon dioxide emissions for 1990 of the Parties included in Annex I, have deposited their instruments of ratification, acceptance, approval or accession." Of the two conditions, the "55 parties" clause was reached on 23 May 2002 when Iceland ratified. The ratification by Russia on 18 November 2004 satisfied the "55%" clause and brought the treaty into force, effective 16 February 2005. Australian Prime Minister Kevin Rudd ratified the Kyoto protocol on 3 December 2007. This came into effect after 90 days (the end of March 2008), as is stated in the guidelines set by the United Nations.
Please help improve this section by expanding it. Further information might be found on the talk page. (May 2007)
The five principal concepts of the Kyoto Protocol are:
* Commitments. The heart of the Protocol lies in establishing commitments for the reduction of greenhouse gases that are legally binding for Annex I countries, as well as general commitments for all member countries.
* Implementation. In order to meet the objectives of the Protocol, Annex I countries are required to prepare policies and measures for the reduction of greenhouse gases in their respective countries. In addition, they are required to increase the absorption of these gases and utilize all mechanisms available, such as joint implementation, the clean development mechanism and emissions trading, in order to be rewarded with credits that would allow more greenhouse gas emissions at home.
* Minimizing Impacts on Developing Countries by establishing an adaptation fund for climate change.
* Accounting, Reporting and Review in order to ensure the integrity of the Protocol.
* Compliance. Establishing a Compliance Committee to enforce compliance with the commitments under the Protocol.
Monsanto,NYSE: MON)
The Monsanto Company (NYSE: MON) is an American multinational agricultural biotechnology corporation. It is the world's leading producer of the herbicide glyphosate, marketed as "Roundup". Monsanto is also by far the leading producer of genetically engineered (GE) seed, holding 70%–100% market share for various crops. Agracetus, owned by Monsanto, exclusively produces Roundup Ready soybean seed for the commercial market. In March 2005, it finalized the purchase of Seminis Inc, making it also the largest conventional seed company in the world. It has over 18,800 employees worldwide, and an annual revenue of USD$8.563 billion reported for 2007.
Monsanto's development and marketing of genetically engineered seed and bovine growth hormone, as well as its aggressive litigation and political lobbying practices, have made the company controversial around the world and a primary target of the anti-globalization movement and environmental activists.
History
Monsanto was founded in St. Louis, Missouri, in 1901, by John Francis Queeny, a 30-year veteran of the pharmaceutical industry. He funded the start-up with his own money and capital from a soft drink distributor, and gave the company his wife's maiden name. The company's first product was the artificial sweetener saccharin, which it sold to the Coca-Cola Company. It also introduced caffeine and vanillin to Coca-Cola, and became one of that company's main suppliers. In 1919, Monsanto established its presence in Europe by entering into a partnership with Graesser's Chemical Works at Cefn Mawr in Ruabon, Wales to produce vanillin, salicylic acid, aspirin and later rubber.
In its second decade, the 1920s, Monsanto expanded into basic industrial chemicals like sulfuric acid, and the decade ended with Queeny's son Edgar Monsanto Queeny taking over the company in 1928.
The 1940s saw Monsanto become a leading manufacturer of plastics, including polystyrene, and synthetic fibers. Since then, it has remained one of the top 10 US chemical companies. Other major products have included the herbicides 2,4,5-T, DDT, and Agent Orange used primarily during the Vietnam War as a deforestation agent (and later proven to be highly carcinogenic to any who come into contact with the solution), aspartame (NutraSweet), bovine somatotropin (bovine growth hormone (BST), and PCBs. Also in this decade, Monsanto operated the Dayton Project, and later Mound Laboratory in Miamisburg, Ohio, for the Manhattan Project, the development of the first nuclear weapons and, after 1947, the Atomic Energy Commission. Monsanto began manufacturing DDT in 1944, along with some 15 other companies. The use of DDT in the U.S. was banned by Congress in 1972, due in large efforts to environmentalists, who persisted in the challenge put forth by Rachel Carson and her book, Silent Spring in 1962, which sought to inform the public of the side effects associated with the insecticide. In 1947, an accidental explosion of ammonium nitrate fertilizer loaded on the French ship S.S. Grandcamp destroyed an adjacent Monsanto styrene manufacturing plant, along with much of the port at Galveston Bay. The explosion, known as the Texas City Disaster, is considered the largest industrial accident in US history, with the highest death toll. As the decade ended, Monsanto acquired American Viscose from England's Courtauld family in 1949.
In 1954, Monsanto partnered with German chemical giant Bayer to form Mobay and market polyurethanes in the US. In the 1960s and 1970s, Monsanto became the leading producer of Agent Orange for US Military operations in Vietnam.
In 1980, Monsanto established the Edgar Monsanto Queeny safety award in honor of its former CEO (1928–1960), to encourage accident prevention.
Monsanto scientists became the first to genetically modify a plant cell in 1982. Five years later, Monsanto conducted the first field tests of genetically engineered crops.
Through a process of mergers and spin-offs between 1997 and 2002, Monsanto has made a transition from chemical giant to biotech giant. Part of this process involved the 1999 sale by Monsanto of their phenylalanine facilities to Great Lakes Chemical Corporation (GLC) for $125 million. In 2000, GLC sued Monsanto because of a $71 million dollar shortfall in expected sales.
With the dawn of the new millennium in 2001, retired Monsanto chemist William S. Knowles was named a co-winner of the Nobel Prize in Chemistry for his research on catalytic asymmetric hydrogenation, which was carried out at Monsanto beginning in the 1960s until his 1986 retirement.
Throughout 2004 and 2005, Monsanto filed lawsuits against many farmers in Canada and the U.S. The lawsuits have been on the grounds of patent infringement, specifically the farmer's sale of seed containing Monsanto's patented genes–which require the farmer initial purchase of the seed and its technology–unknowingly sown by wind carrying the seeds from neighboring crops. These instances began in the mid to late 1990s, with one of the most significant cases being decided in Monsanto's favor by the Canadian Supreme Court. By a 5-4 vote in late May 2004, that court ruled that "by cultivating a plant containing the patented gene and composed of the patented cells without license, the appellants (canola farmer Percy Schmeiser) deprived the respondents of the full enjoyment of the patent." With this ruling, the Canadian courts followed the U.S. Supreme Court in its decision on patent issues involving plants and genes.
As of February 2005, Monsanto has patent claims on breeding techniques for pigs which would grant them ownership of any pigs born of such techniques and their related herds. Greenpeace claims Monsanto is trying to claim ownership on ordinary breeding techniques.[6] Monsanto claims that the patent is a defensive measure to track animals from its system. They furthermore claim their patented method uses a specialized insemination device that requires less sperm than is typical.
In 2006, the Public Patent Foundation filed requests with the U.S. Patent Office to revoke four patents that Monsanto has used in patent lawsuits against farmers. In the first round of reexamination, claims in all four patents were rejected by the Patent Office in four separate rulings dating from February through July 2007. Monsanto has since filed responses in the reexaminations.
Spin-offs and mergers
Through a series of transactions, the Monsanto that existed from 1901–2000 and the current Monsanto are legally two different corporations. Although they share the same name, corporate headquarters, many of the same executives and other employees, and responsibility for liabilities arising out of its former activities in the industrial chemical business, the agricultural chemicals business is the only segment carried forward from the pre-1997 Monsanto Company to the current Monsanto Company. A timeline follows:
1985: Monsanto purchases G. D. Searle & Company. In this merger, Searle's aspartame business became a separate Monsanto subsidiary, the NutraSweet Company. CEO of NutraSweet, Robert B. Shapiro, goes on to become CEO of Monsanto from 1995 to 2000.
1997: Monsanto spins off its industrial chemical and fiber divisions into Solutia Inc. This transfers the financial liability related to the production and contamination with PCBs at the Illinois and Alabama plants. In January, Monsanto announced the purchase of Holden's Foundations Seeds, a privately-held seed business owned by the Holden family along with its sister sales organization, Corn States Hybrid Service, of Williamsburg and Des Moines, Iowa, respectively. The combined purchase price totaled $925M. Also, in April, Monsanto purchases the remaining shares of Calgene.
1999: Monsanto sells Nutrasweet Co. and two other companies.
2000: Monsanto merges with Pharmacia and Upjohn. Later in the year, Pharmacia forms a new subsidiary, also named Monsanto, for the agricultural divisions, and retains the medical research divisions, which includes products such as Celebrex.
2002: Pharmacia spins off its remaining interest in Monsanto, which has since existed as a separate company: the "new Monsanto." As part of the deal, Monsanto agrees to indemnify Pharmacia against any liabilities that might be incurred from judgments against Solutia. As a result, the new Monsanto continues to be a party to numerous lawsuits that relate to operations of the old Monsanto.
2005: Monsanto purchases Seminis, the largest seed company not producing corn or soybeans in the world.
2008: Monsanto purchases the Dutch seed company De Ruiter Seeds for about 855 million dollars.
Sponsorships
Monsanto has been the corporate sponsor of many attractions at Disneyland and Walt Disney World.
At Disneyland they include:
* Hall of Chemistry
* Fashions and Fabrics through the Years
* House of The Future
* Adventure Thru Innerspace
And at Walt Disney World they included:
* Magic Eye Theatre
* Circle Vision 360
All attractions that the company has ever sponsored were located in Tomorrowland.
Monsanto's development and marketing of genetically engineered seed and bovine growth hormone, as well as its aggressive litigation and political lobbying practices, have made the company controversial around the world and a primary target of the anti-globalization movement and environmental activists.
History
Monsanto was founded in St. Louis, Missouri, in 1901, by John Francis Queeny, a 30-year veteran of the pharmaceutical industry. He funded the start-up with his own money and capital from a soft drink distributor, and gave the company his wife's maiden name. The company's first product was the artificial sweetener saccharin, which it sold to the Coca-Cola Company. It also introduced caffeine and vanillin to Coca-Cola, and became one of that company's main suppliers. In 1919, Monsanto established its presence in Europe by entering into a partnership with Graesser's Chemical Works at Cefn Mawr in Ruabon, Wales to produce vanillin, salicylic acid, aspirin and later rubber.
In its second decade, the 1920s, Monsanto expanded into basic industrial chemicals like sulfuric acid, and the decade ended with Queeny's son Edgar Monsanto Queeny taking over the company in 1928.
The 1940s saw Monsanto become a leading manufacturer of plastics, including polystyrene, and synthetic fibers. Since then, it has remained one of the top 10 US chemical companies. Other major products have included the herbicides 2,4,5-T, DDT, and Agent Orange used primarily during the Vietnam War as a deforestation agent (and later proven to be highly carcinogenic to any who come into contact with the solution), aspartame (NutraSweet), bovine somatotropin (bovine growth hormone (BST), and PCBs. Also in this decade, Monsanto operated the Dayton Project, and later Mound Laboratory in Miamisburg, Ohio, for the Manhattan Project, the development of the first nuclear weapons and, after 1947, the Atomic Energy Commission. Monsanto began manufacturing DDT in 1944, along with some 15 other companies. The use of DDT in the U.S. was banned by Congress in 1972, due in large efforts to environmentalists, who persisted in the challenge put forth by Rachel Carson and her book, Silent Spring in 1962, which sought to inform the public of the side effects associated with the insecticide. In 1947, an accidental explosion of ammonium nitrate fertilizer loaded on the French ship S.S. Grandcamp destroyed an adjacent Monsanto styrene manufacturing plant, along with much of the port at Galveston Bay. The explosion, known as the Texas City Disaster, is considered the largest industrial accident in US history, with the highest death toll. As the decade ended, Monsanto acquired American Viscose from England's Courtauld family in 1949.
In 1954, Monsanto partnered with German chemical giant Bayer to form Mobay and market polyurethanes in the US. In the 1960s and 1970s, Monsanto became the leading producer of Agent Orange for US Military operations in Vietnam.
In 1980, Monsanto established the Edgar Monsanto Queeny safety award in honor of its former CEO (1928–1960), to encourage accident prevention.
Monsanto scientists became the first to genetically modify a plant cell in 1982. Five years later, Monsanto conducted the first field tests of genetically engineered crops.
Through a process of mergers and spin-offs between 1997 and 2002, Monsanto has made a transition from chemical giant to biotech giant. Part of this process involved the 1999 sale by Monsanto of their phenylalanine facilities to Great Lakes Chemical Corporation (GLC) for $125 million. In 2000, GLC sued Monsanto because of a $71 million dollar shortfall in expected sales.
With the dawn of the new millennium in 2001, retired Monsanto chemist William S. Knowles was named a co-winner of the Nobel Prize in Chemistry for his research on catalytic asymmetric hydrogenation, which was carried out at Monsanto beginning in the 1960s until his 1986 retirement.
Throughout 2004 and 2005, Monsanto filed lawsuits against many farmers in Canada and the U.S. The lawsuits have been on the grounds of patent infringement, specifically the farmer's sale of seed containing Monsanto's patented genes–which require the farmer initial purchase of the seed and its technology–unknowingly sown by wind carrying the seeds from neighboring crops. These instances began in the mid to late 1990s, with one of the most significant cases being decided in Monsanto's favor by the Canadian Supreme Court. By a 5-4 vote in late May 2004, that court ruled that "by cultivating a plant containing the patented gene and composed of the patented cells without license, the appellants (canola farmer Percy Schmeiser) deprived the respondents of the full enjoyment of the patent." With this ruling, the Canadian courts followed the U.S. Supreme Court in its decision on patent issues involving plants and genes.
As of February 2005, Monsanto has patent claims on breeding techniques for pigs which would grant them ownership of any pigs born of such techniques and their related herds. Greenpeace claims Monsanto is trying to claim ownership on ordinary breeding techniques.[6] Monsanto claims that the patent is a defensive measure to track animals from its system. They furthermore claim their patented method uses a specialized insemination device that requires less sperm than is typical.
In 2006, the Public Patent Foundation filed requests with the U.S. Patent Office to revoke four patents that Monsanto has used in patent lawsuits against farmers. In the first round of reexamination, claims in all four patents were rejected by the Patent Office in four separate rulings dating from February through July 2007. Monsanto has since filed responses in the reexaminations.
Spin-offs and mergers
Through a series of transactions, the Monsanto that existed from 1901–2000 and the current Monsanto are legally two different corporations. Although they share the same name, corporate headquarters, many of the same executives and other employees, and responsibility for liabilities arising out of its former activities in the industrial chemical business, the agricultural chemicals business is the only segment carried forward from the pre-1997 Monsanto Company to the current Monsanto Company. A timeline follows:
1985: Monsanto purchases G. D. Searle & Company. In this merger, Searle's aspartame business became a separate Monsanto subsidiary, the NutraSweet Company. CEO of NutraSweet, Robert B. Shapiro, goes on to become CEO of Monsanto from 1995 to 2000.
1997: Monsanto spins off its industrial chemical and fiber divisions into Solutia Inc. This transfers the financial liability related to the production and contamination with PCBs at the Illinois and Alabama plants. In January, Monsanto announced the purchase of Holden's Foundations Seeds, a privately-held seed business owned by the Holden family along with its sister sales organization, Corn States Hybrid Service, of Williamsburg and Des Moines, Iowa, respectively. The combined purchase price totaled $925M. Also, in April, Monsanto purchases the remaining shares of Calgene.
1999: Monsanto sells Nutrasweet Co. and two other companies.
2000: Monsanto merges with Pharmacia and Upjohn. Later in the year, Pharmacia forms a new subsidiary, also named Monsanto, for the agricultural divisions, and retains the medical research divisions, which includes products such as Celebrex.
2002: Pharmacia spins off its remaining interest in Monsanto, which has since existed as a separate company: the "new Monsanto." As part of the deal, Monsanto agrees to indemnify Pharmacia against any liabilities that might be incurred from judgments against Solutia. As a result, the new Monsanto continues to be a party to numerous lawsuits that relate to operations of the old Monsanto.
2005: Monsanto purchases Seminis, the largest seed company not producing corn or soybeans in the world.
2008: Monsanto purchases the Dutch seed company De Ruiter Seeds for about 855 million dollars.
Sponsorships
Monsanto has been the corporate sponsor of many attractions at Disneyland and Walt Disney World.
At Disneyland they include:
* Hall of Chemistry
* Fashions and Fabrics through the Years
* House of The Future
* Adventure Thru Innerspace
And at Walt Disney World they included:
* Magic Eye Theatre
* Circle Vision 360
All attractions that the company has ever sponsored were located in Tomorrowland.
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