2015年8月16日星期日

Sniff out alien life with giant library of weird chemicals

The search for vital signs of life in the atmospheres of other planets has taken a new turn with a vast library of biosignatures that could help us detect ET
Sniff out alien life with giant library of weird chemicals
Life’s a gas on other earths (Image: Detlev Van Ravenswaay/SPL)
I’M WITNESSING the future of the search for alien life. In a dimly lit office on the 17th floor of MIT’s tallest building, with shades drawn over the Charles river below, Sara Seager and six other researchers are showing me the foundation stones of a vast library of molecules – a few of which may be the first to alert us to the presence of life on another world.
Seager and her colleagues are building a cache of biosignatures – chemicals that would suggest an alien planet is playing host to life. Seager is casting her net as wide as possible. Because we can’t predict what the biochemistry and ecology of alien planets will be like, she’s looking at all small molecules, not just the ones linked to life as we know it.
“Is there any limit to what sort of gas life can produce?” asks biochemist William Bains at the University of Cambridge. “Conceptually, the answer is no.”
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2015年8月14日星期五

Nickel – the Ultimate Substitute of Coal, Oil and Uranium

Nickel – the Ultimate Substitute of Coal, Oil and Uranium
Pages: 1-6   |   Pub. Date: Nov. 25, 2014DOI: 10.11648/j.ijrse.s.2015040401.11  1049 Views   317 Downloads
Authors 
[01]
U. V. S. Seshavatharam, Honorary faculty, I-SERVE, Alakapuri, Hyderabad-35, AP, India
[02]
S. Lakshminarayana, Dept. of Nuclear Physics, Andhra University, Visakhapatnam-03, AP, India 
To cite this article 
U. V. S. Seshavatharam, S. Lakshminarayana, Nickel – the Ultimate Substitute of Coal, Oil and Uranium, International Journal of Sustainable and Green Energy. Special Issue:Current Research and Future of Renewable Energy. Vol. 4, No. 4-1, 2015, pp. 1-6. doi: 10.11648/j.ijrse.s.2015040401.11
Abstract 
During E-CAT test run some hidden and unknown energy is being coming out in the form of heat energy in large quantity. Based on the principle of conservation of energy and from the well known nuclear fusion and fission reactions it is possible to guess that, the E-CAT hidden energy may be in the form of binding of protons and neutrons of the Nickel and Lithium atomic nuclei. By considering the nuclear binding energies of (58@28)Ni, (62@28)Ni and (7@3)Li an attempt is made to understand the energy liberation mechanism in E-CAT. With reference to the net energy production of (5825 ± 10%) Mega Joules liberated from one gram Ni of the E-CAT’s 32 days third party test run, it can be suggested that, for every transformation of (58@28)Ni to (62@28)Ni via(7@3)Li, liberated heat energy is 3.64 MeV and for one gram of (58@28)Ni liberated energy is 5984 Mega Joules. For each transformation of (58@28)Ni to (62@28)Ni via(7@3)Li, 3 hydrogen atoms can be expected to be emitted. Note that, energy liberated for one gram of (58@28)Ni in cold fusion is 1.66 MWh and energy liberated for one gram of (235@92)U in nuclear fission is 22.6 MWh. Clearly speaking, energy released in Nickel based E-CAT is just 13.6 times less than the energy released in Uranium fission.
KeywordsCold Fusion, Low Energy Nuclear Reactions, E-CAT ( Energy Catalyzer)
Source:http://bit.ly/1hDGpTu

2015年8月13日星期四

How marmoset babies learn to talk


Scientists used to think humans were the only primates who learned to speak, in part, by mimicking mom and dad, but marmoset monkeys have shown that we’re not all that unique in our learned communication. As the fuzzy little marmosets grow up, parents “teach” their babies mature vocalizations, called phees, by responding to their young’s cries with mature phees. Physical growth also helps the transition from baby to adult calls, but the difference in baby and adult noises is so stark that scientists don’t think it’s just physical maturation that makes a mature phee, they report online today in Science. Similar to humans, baby marmosets seem to listen to and learn from their parents, like an audio version of marmoset see, marmoset do.

Source:http://bit.ly/1WnKsDs

2015年8月12日星期三

Are marine organisms evolving to protect their young in response to ocean acidification?


Summary:
Marine organisms living in acidified waters exhibit a tendency to nurture their offspring to a greater extent than those in more regular conditions. Scientists have found that polychaete worms located around volcanic vents in the Mediterranean grow and develop their eggs within the protection of the family unit -- in contrast to closely-related species that release them into the water column to fend for themselves.
Marine organisms living in acidified waters exhibit a tendency to nurture their offspring to a greater extent than those in more regular conditions.
Credit: Plymouth University
Marine organisms living in acidified waters exhibit a tendency to nurture their offspring to a greater extent than those in more regular conditions.
Researchers at Plymouth University have found that polychaete worms located around volcanic vents in the Mediterranean grow and develop their eggs within the protection of the family unit -- in contrast to closely-related species that release them into the water column to fend for themselves.
The scientists say the findings could provide an important insight into how organisms might adjust to increasing levels of carbon dioxide in the sea -- and the ramifications that might have for future biodiversity.
Their report -- published in Scientific Reports -- was based on field research off the island of Ischia in Italy and lab-work in which the breeding patterns of the worms were observed at closer quarters.
Noelle Lucey, a researcher within Plymouth University's Marine Institute, and of the University of Pavia, said: "One of the most interesting annelid worms here typically grows to around 3cm in length and is found on the seafloor. It was previously thought that their breeding is triggered by a full moon, when they swim up to the surface and release -- or 'broadcast' -- their eggs. But our studies at the CO2 vents off Ischia have found something very different: those species living near the volcanic vents, in waters rich in carbon dioxide, seem to have adapted to the harsher conditions by brooding their offspring."
The team found that 12 of the 13 species that had colonized the vent area exhibited brooding characteristics, most notably producing fewer and larger eggs that were usually retained within some form of protective sac. Ten of those species were in higher abundance around the vents than in the ambient areas surrounding them -- some by a ratio as high as nine-to-one.
The observation that brooding worms dominated the CO2 vent areas, and existing evidence of physiological and genetic adaptation in vent-inhabiting species, prompted the researchers to take immature adult Platynereis dumerilii specimens and attempt to cross breed them in the laboratory. A male -- taken from the ambient control area -- and a female -- from the vent zone -- almost immediately began to breed. But instead of the typical broadcast pattern, the eggs produced were five times larger than the average and were laid in a complex tube structure or brooding pouch.
When genetic analysis was conducted, it became clear that worms from inside the CO2 vents were from a sibling species of Platynereis massiliensis, one that has diverged from Platynereis dumerilii in the recent past -- confirming that all of the polychaete species are brooders of some sort.
Dr Piero Calosi, from the University of Quebec in Rimouski, Canada, said: "Our study confirms the idea that marine organisms have evolved brooding characteristics in response to environmental stresses, such as ocean acidification."
On the breadth and importance of their study Dr Chiara Lombardi, from ENEA, Italy, said: "Studies like ours can help substantially advance our predictive ability on the fate of marine biodiversity simply based on species characteristic, such as their reproductive strategy."
Ms Lucey added: "This study brings us one step closer to understanding which marine species will be more resilient to climate changes. In fact, our work helps in establishing a fundamental principle to be used to guide decisions on the conservation of marine ecosystems and to help better manage the fisheries and aquaculture industries."

Story Source:
The above post is reprinted from materials provided by University of Plymouth. The original item was written by Andrew Merrington. Note: Materials may be edited for content and length.

2015年8月11日星期二

International Journal of Electrical Components and Energy Conversion


International Journal of Electrical Components an Energy Conversion (IJECEC) is a journal published bimonthly. It is dedicated to providing a multidisciplinary platform for the discussion of issues arising in the innovation and the development of robust methodologies dedicated to the design, control and optimization of electrical components and systems for varied electric power applications. It aims to promote rapid communication and dialogue among the researchers, scientists, engineers and policy makers working in the areas of design, optimization and control of electrical systems.
International Journal of Electrical Components and Energy Conversion (IJECEC) concern mainly the innovation and the development of robust methodologies dedicated to the design, control and optimization of electrical components and systems for various electric power applications. IJECEC covers the following topics:

  • • Energy conversion
  • • Power electronics
  • • Electrical systems
  • • AC Motors
  • • Brushless DC motors
  • • Asynchronous Motors
  • • Electrical machines and drives
  • • Optimization of electrical systems performances
  • • Technology and design of electrical components
  • • Control of electrical systems
  • • Identification of the electric motors
  • • Electro-thermal modeling of power systems
  • • Electrical transportation
  • • Renewable energy
  • • Experimental validations of designs and controls approaches of electrical systems
  • If you like, you can read this and download all scientific article in this journal for free in SciencePG.

2015年8月10日星期一

Big data maps world's ocean floor


Summary:

The creation of the world's first digital map of the seafloor's geology is underway. It is the first time the composition of the seafloor, covering 70 percent of Earth's surface, has been mapped in 40 years; the most recent map was hand drawn in the 1970s.
This is a still shot of the world's first digital map of the seafloor's geology.
Credit: EarthByte Group, School of Geosciences, University of Sydney, Sydney, NSW 2006, Australia National ICT Australia (NICTA), Australian Technology Park, Eveleigh, NSW 2015, Australia
Scientists from the University of Sydney's School of Geosciences have led the creation of the world's first digital map of the seafloor's geology.
It is the first time the composition of the seafloor, covering 70 percent of Earth's surface, has been mapped in 40 years; the most recent map was hand drawn in the 1970s.
Published in the latest edition of Geology, the map will help scientists better understand how our oceans have responded, and will respond, to environmental change. It also reveals the deep ocean basins to be much more complex than previously thought.
"In order to understand environmental change in the oceans we need to better understand what is preserved in the geological record in the seabed," says lead researcher Dr Adriana Dutkiewicz from the University of Sydney.
"The deep ocean floor is a graveyard with much of it made up of the remains of microscopic sea creatures called phytoplankton, which thrive in sunlit surface waters. The composition of these remains can help decipher how oceans have responded in the past to climate change."
A special group of phytoplankton called diatoms produce about a quarter of the oxygen we breathe and make a bigger contribution to fighting global warming than most plants on land. Their dead remains sink to the bottom of the ocean, locking away their carbon.
The new seafloor geology map demonstrates that diatom accumulations on the seafloor are nearly entirely independent of diatom blooms in surface waters in the Southern Ocean.
"This disconnect demonstrates that we understand the carbon source, but not the sink," says co-author Professor Dietmar Muller from the University of Sydney. More research is needed to better understand this relationship.
Dr Dutkiewicz said, "Our research opens the door to future marine research voyages aimed at better understanding the workings and history of the marine carbon cycle. Australia's new research vessel Investigator is ideally placed to further investigate the impact of environmental change on diatom productivity. We urgently need to understand how the ocean responds to climate change."
Some of the most significant changes to the seafloor map are in the oceans surrounding Australia.
"The old map suggests much of the Southern Ocean around Australia is mainly covered by clay blown off the continent, whereas our map shows this area is actually a complex patchwork of microfossil remains," said Dr Dutkiewicz. "Life in the Southern Ocean is much richer than previously thought."
Dr Dutkiewicz and colleagues analysed and categorised around 15,000 seafloor samples -- taken over half a century on research cruise ships to generate the data for the map. She teamed with the National ICT Australia (NICTA) big data experts to find the best way to use algorithms to turn this multitude of point observations into a continuous digital map.
"Recent images of Pluto's icy plains are spectacular, but the process of unveiling the hidden geological secrets of the abyssal plains of our own planet was equally full of surprises!" co-author Dr Simon O'Callaghan from NICTA said.

Story Source:
The above post is reprinted from materials provided by University of SydneyNote: Materials may be edited for content and length.
Source:http://bit.ly/1Tntuk5

Kinetic Parameters Survey for Manufacture of Pralidoxime


Daniel Antonio Shimizu Kitagawa1, Sabrina Teixeira Martinez2, 3, Erick Braga Ferrao Galante2, Tanos Celmar Costa Franca2, 4
Abstract: Chemical agents represent a serious threat to the modern world. Among them, they stand out nerve agents because of its high lethality and dangerousness. They are typically organophosphate compounds, which act by inhibiting acetylcholinesterase, a key enzyme in the transmission of nerve impulses process. There are several forms of treatment for organophosphate poisoning, and pralidoxime (2-PAM) is the drug most used as reactivator of acetylcholinesterase. In this work, we developed the first three steps for the synthesis of 2-PAM, with the objective of obtaining data to calculate the kinetic parameters of these steps. These parameters may be used for the manufacture of 2-PAM in semi-pilot scale. Through the studies conducted it has been found that the preparation of the oxime has very rapid kinetics.
Keywords: Chemicals warfare agents, Organophosphates compounds, Acetylcholinesterase, Oximes, Pralidoxime
1.Introduction
Chemical agents are a major threat to the modern world. One of its features is its danger, where small amounts can cause numerous poisonings. Moreover, they are easy to obtain and does not require many resources to manufacture. Thus, the use of chemical agents can be a dangerous alternative for organizations with limited resources, as underdeveloped countries and terrorist factions [1].
Among the chemicals the nerve agents stand out due to its high lethality. The neurotoxic substances are organophosphates (OP) which, in addition to its use as weapons, can also be used as pesticides. These compounds are inhibitors of acetylcholinesterase (AChE), an enzyme of great importance in controlling the transmission of nerve impulses.
A number of drugs are used in the treatment of poisoning by OP. Among these drugs are compounds containing the functional group oxime, whose function is to promote the reactivation of AChE. One of the most used oxime is pralidoxime or 2-PAM [(E) -2 - [(hydroxyimino) methyl] – pyridine] [1].
This work aimed to raise kinetic parameters of the reaction of synthesis of 2-PAM. The collection of kinetic parameters is a very important activity for the laboratorial chemical engineering, since it consists on the initial stage of semi pilot plant design for the manufacture of a chemical like 2-PAM.
2.Chemical Agents and Neurotoxics
There is a variety of chemical agents, each with different toxicological properties. According to the field manual C 3-40, chemical agent is any substance that through its chemical activity, produces, when used for military purposes, a toxic effect, smoke or fire. Chemical agents that produce a toxic effect may be classified as disabling, choking, vesicants, nerve and blood agents [2].
Incapacitating agents are those that cause temporary physiological and mental effects, preventing victims of combating. The most used are o-chlorobenzylmalonitrile (CS - cause eye irritation) and adamsite (DM - causes vomiting). Pulmonary toxicants, whose main agent is phosgene, act in the respiratory tract, causing lesions in capillaries and stroke in pulmonary alveoli, leading to suffocation. Vesicants are those that cause irritation and blistering of the skin and mucous membranes, and its most important agent is mustard gas. Blood agents, the most important being hydrogen cyanide, act interfering in tissue oxygenation, causing them quickly the state of necrosis and subsequent death. The neurotoxic, or nerve agents, are those that affect the nervous system, specifically the role of AChE [1].
The neurotoxics are highly toxic, both in vapor and in liquid form, because they are absorbed by the body through the skin or respiratory system. Symptoms include distress, loss of coordination and seizures leading to death. These compounds cause the collapse of the central nervous system (CNS) [3].
2.1.Neurotransmission
Neurotransmission or synaptic transmission is the transfer of nerve impulses from one neuron to another. Nerve impulses elicit responses in muscles, glands and postsynaptic neurons [4]. The neurotransmission can be divided into the four steps illustrated in Figure 1.
Figure 1. Nerve impulse transmission [5].
The first step is the release of a neurotransmitter, which is a substance stored inside the synaptic vesicles. These vesicles are located in the termination of the axon, which are the branches of neurons. Arriving at the termination of the axon, the nerve impulse causes the fusion of synaptic vesicles with the pre-synaptic membrane, releasing the neurotransmitter into the synaptic cleft.
The next step is the combination of the transmitter with the neurotransmitter receptors. The neurotransmitter diffuses across the synaptic cleft and binds to existing specialized receptors in the post-synaptic membrane.
Then it occurs the beginning of the post-junctional activity. Receptors change their conformation by binding to the transmitter and, then, the post-synaptic membrane becomes permeable to ions. Thus, increasing the concentration of sodium ions in the cytoplasm of the receiving neuron causes a potential difference, leading to a nerve impulse that will propagate in the neuron.
The last step is the dissipation of the transmitter. Because the pulses can be transmitted through the synaptic clefts, often at up to several hundred per second, there must be a mechanism to eliminate the transmitter for each pulse [4]. For this, there are enzymes in synaptic clefts which have the ability to hydrolyze the neurotransmitters, such as AChE (Figure 2), an enzyme belonging to the family of cholinesterase, whose function is to hydrolyze the neurotransmitter acetylcholine (ACh), as shown in Figure 3.
AChE and ACh are present in the CNS and peripheral nervous system (PNS). In the PNS AChE is connected to the control of heart rate, dilation of blood vessels and smooth muscle contraction, whereas in the CNS it is involved in motor control, cognition and memory.
AChE plays an important role, because the accumulation of ACh in the synaptic cleft leads to overstimulation of the innervated structures, generating a cholinergic crisis, which has various effects such as seizures, cardiac arrhythmia and death [6].
In the active site of human AChE (HssAChE) there are three amino acid residues (known as catalytic triad) directly involved in the ACh hydrolysis process, as shown in Figure 3. These amino acids are Ser203, Glu334 and His447. In the anionic active site there is a region, which serves to interact with the cationic portion of ACh by directing this substrate to the position necessary for hydrolysis [8].
The first step of the ACh hydrolysis process occurs through a nucleophilic attack by the hydroxyl group of Ser203 on the ester-carbonyl group of the substrate, promoting breakage of the ester bond [8]. During the enzymatic attack on the ester, it is formed an intermediate between the enzyme and the ester named acetylated Ser203 (acetyl-AChE complex). The acetyl-enzyme complex is easily hydrolyzed and this action, performed by water molecules, results in the formation of the fully regenerated acetate and the free enzyme.
The acetyl-AChE complex has a short life, making AChE one of the most efficient enzymes capable of hydrolyzing ACh on the order of 6 x 105 Ach molecules per molecule of enzyme per minute [8].
Figure 2. Hydrolysis of acetylcholine.
Figure 3. Simplified scheme of the HssAChE active site.

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