Year on, Siraj Bazar awaits road repairs

Thursday, 23 May 2013

Srinagar,: The residents of Siraj Bazar, Zaina Kadal and its adjoining areas in Shaher-e-Khaas are up in arms against the authorities for failing to macadamize the road in the area, post excavation.

A delegation from the area told Greater Kashmir that “Nearly a year ago the roads were excavated for laying of water pipes coming in the way of renovated Zaina Kadal bridge. Since then, the department has failed to macadamize the vital link road of Siraj Bazar connecting with Zaina Kadal and Maharaj Gunj,” the locals said.

 “The road is full of potholes and there is every possibility of anyone slipping on it... We have been facing lots of hardships walking on the dilapidated roads,” the inhabitants complained.

 They said while rains leave the potholes inundated, sunshine triggers billows of dust. “Several people are suffering from the chest related disorders due to the dust,” said the residents.
 When contacted an R&B official said the matter would be looked into.

Meanwhile the locals have appealed District Development Commissioner, Er Farooq Ahmed Shah to look into the matter and get the road repaired.

 “In the wake of recent constitution of a Task Force to look into timely road repairs, the administration must take a serious note of the issue,” the residents said.

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No sponge in human family tree: sponges descended from unique ancestor

Islamabad, : Since the days of Charles Darwin, researchers are interested in reconstructing the "Tree of Life", and in understanding the development of animal and plant species during their evolutionary history. 

In the case of vertebrates, this research has already come quite a long way. But there is still much debate about the relationships between the animal groups that made their apparation very early in evolutionary history, probably in the late Precambrian, some 650 to 540 million years ago.

An international research group led by LMU Munich Geobiology Professor Gert Wörheide and colleagues from France and Canada has now managed to explain the relationships between some of these very early animal groups with a high degree of confidence. In the most comprehensive study of its kind, the researchers show that all sponges descended from a unique sponge ancestor, who in turn was not the ancestor of all other animals. That means that humans did not descend from a sponge-like organism either, as some scientists have put forward. Moreover, the results also suggest that the nervous system only evolved once in animal history.

The most ancient animal groups (phyla) include the Porifera (sponges), Placozoa, Cnidaria, and Ctenophora (comb jellies). The sponges are extremely simply built, and have no organs. The placozoans also have a very simple structure. They have a flat, disk-shaped body, and no organs either. Comb jellies, the ctenophores, are life forms that resemble jellyfish. The true jellyfish, however, are part of the cnidarians, a phylum that also includes corals and sea anemones. The exact relationships among these early animal groups are still controversial, as different research groups have often obtained conflicting results. In particular, results from morphological studies, which look for structural similarities between different organisms, frequently contradict the results from molecular biological studies. The latter explore the functions of genes, and deduce phylogenetic relationships from gene sequences.

Aiming to resolve these controversies, a group of international scientists led by Hervé Philippe (Université de Montréal, Canada), Gert Wörheide (LMU Munich, Germany) and Michael Manuel (University of Paris, France) performed the most comprehensive study to date and investigated 128 genes from a total of 55 species – including nine poriferans, eight cnidarians, three ctenophores and the single known species of placozoans. Their analyses were based on a relatively new approach called phylogenomics, which determines the evolutionary relationships of life forms by comparing large datasets of gene sequences. Together with biochemists, evolutionary and computational biologists from Germany, France and Canada, the team analyzed more than 30,000 amino acid positions. Using computer analyses, the researchers then estimated a phylogenetic tree that displays how related the studied animals are.

One of the most significant outcomes of this study is new evidence that all species of sponges are descendants of a single ancestor. On the other hand, Bilateria, which include worms, mollusks, insects, and vertebrates, did not descend directly from this "spongy" ancestor. "If the ancestral animal would have had a sponge-like organization or body, as some earlier molecular studies repeatedly claimed, then we would all be descendents of such sponge-like organisms," explains Wörheide. "This proposition generated a lot of attention in the past. But our results clearly disagree with it." The analyses also revealed that ctenophores and cnidarians most likely belong to a common group. "This group, the "coelenterates", is most closely related to the bilaterians," explains Wörheide. "Our results support, after much controversy, a hypothesis that was already formulated back in 1848."

The investigation also provides new insights into the development of individual organ systems. "Both coelenterates and bilaterians already have nerve cells. Their now corroborated close relationship also suggests that the nervous system developed only once in animal history," Wörheide states. And yet, another recent and less comprehensive study concerning the non-bilaterians proposed the unorthodox hypothesis that the comb jellies had already diverged from all other species even before the sponges. "Since the comb jellies already have nerve and muscle cells, this would suggest that these features developed several times independently in animal history, or that they were lost in sponges and placozoans," explains the LMU researcher.

This new study, which compared more evolutionarily ancient life forms than ever before, presents a stimulating framework for future studies. "Our results can now be used to explore how certain key features evolved among animals," says Wörheide. There is evidence, for example, that part of the genetic toolkit responsible for building the nervous system in other animals was already present in sponges. Similarly, eye-like sensory organs can already be detected in box jellyfish. "One of the goals of future studies will now be to find out how and when the genetic toolkit for the nervous system, muscles and sensory organs evolved in animal history," Wörheide concludes.

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Movement without muscles: zoologists on trail of evolution of body contractions

Islamabad,: All animals move -- cheetahs faster, snails more slowly. Muscle contractions are the basis of movement in many, but not all, species. Some animal groups don't have any muscles at all, as they branched off from the evolutionary path before muscle cells evolved. 

Yet these animal groups -- for instance, the sea sponges -- are not incapable of movement. Sponges are able to contract without muscles. But which cells in sponges are actually contracting?

A group of scientists headed by associate professor Dr. Michael Nickel of Friedrich Schiller University Jena (Germany) is looking into movement without muscles. The scientists from the Institute of Systematic Zoology and Evolutionary Biology are especially interested in the question of which evolutionary forerunners did muscle cells derive from.

In a new study published in the Journal of Experimental Biology, the evolutionary biologists are offering new answers to this question. In their paper, the researchers described how they generated three-dimensional (3-D) images, with the help of synchrotron radiation-based X-ray microtomography. Using this technique, the Jena scientists, in co-operation with the Helmholtz-Zentrum Gesthacht at the Deutsches Elektronen Synchrotron Hamburg, were able to compare and visualize the 3-D structure of contracted and expanded sponges.

"A key feature of our approach is the use of 3-D data for measuring the volume and surface of our sponges," says Nickel. "Although the 3-D volumetric analysis is widely known and used in the technical sciences, it has rarely been used in zoology -- in spite of its enormous information potential."

Nickel's team was able to show that the inner and outer surfaces -- and therefore the epithelial cells, so-called pinacozytes -- cause the strong body contractions of the sponges. Ultimately, the Jena scientists believe they have also settled a hundred-year-old debate about the cause of cellular contractions. Until recently, spindle-shaped cells in the tissue of sponges as well as epithelial cells were thought to be possible candidates. But now, the Jena scientists have been able to identify the true initiator of the contractions.

These findings offer new approaches to understanding the evolutionary development of musculature. "The early evolution of muscles has not been fully understood so far. According to current scientific knowledge, muscle cells seem to have surfaced from nowhere," Nickel says. "But surely there must have been evolutionary predecessor systems, that have been unknown until now." The sponge epithelial cells are now moving to the forefront in the evolutionary biologists' continuing research in this field. "There is a lot of evidence that the sponge epithelial cells and the muscle cells of all the other animals are going back to a common contractile cellular predecessor." In future, scientists hope to test this hypothesis using genome and gene expression-related data.

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Human brain's most ubiquitous cell cultivated in lab dish

Islamabad, : Pity the lowly astrocyte, the most common cell in the human nervous system. Long considered to be little more than putty in the brain and spinal cord, the star-shaped astrocyte has found new respect among neuroscientists who have begun to recognize its many functions in the brain, not to mention its role in a range of disorders of the central nervous system.

Now, writing in the journal Nature Biotechnology, a group led by University of Wisconsin-Madison stem cell researcher Su-Chun Zhang reports it has been able to direct embryonic and induced human stem cells to become astrocytes in the lab dish.

The ability to make large, uniform batches of astrocytes, explains Zhang, opens a new avenue to more fully understanding the functional roles of the brain's most commonplace cell, as well as its involvement in a host of central nervous system disorders ranging from headaches to dementia. What's more, the ability to culture the cells gives researchers a powerful tool to devise new therapies and drugs for neurological disorders.

"Not a lot of attention has been paid to these cells because human astrocytes have been hard to get," says Zhang, a researcher at UW-Madison's Waisman Center and a professor of neuroscience in the UW-Madison School of Medicine and Public Health. "But we can make billions or trillions of them from a single stem cell."

Although astrocytes have gotten short shrift from science compared to neurons, the large filamentous cells that process and transmit information, scientists are turning their attention to the more common cells as their roles in the brain become better understood. There are a variety of astrocyte cell types and they perform such basic housekeeping tasks as helping to regulate blood flow, soaking up excess chemicals produced by interacting neurons and controlling the blood-brain barrier, a protective filter that keeps dangerous molecules from entering the brain.

Astrocytes, some studies suggest, may even play a role in human intelligence given that their volume is much greater in the human brain than any other species of animal.

"Without the astrocyte, neurons can't function," Zhang notes. "Astrocytes wrap around nerve cells to protect them and keep them healthy. They participate in virtually every function or disorder of the brain."

The ability to forge astrocytes in the lab has several potential practical outcomes, according to Zhang. They could be used as screens to identify new drugs for treating diseases of the brain, they can be used to model disease in the lab dish and, in the more distant future, it may be possible to transplant the cells to treat a variety of neurological conditions, including brain trauma, Parkinson's disease and spinal cord injury. It is possible that astrocytes prepared for clinical use could be among the first cells transplanted to intervene in a neurological condition as the motor neurons affected by the fatal amyotrophic lateral sclerosis, also known as Lou Gehrig's disease, are swathed in astrocytes.

"With an injury or neurological condition, neurons in the brain have to work harder, and doing so they make more neurotransmitters," chemicals that in excess can be toxic to other cells in the brain, Zhang says.

"One idea is that it may be possible to rescue motor neurons by putting normal, healthy astrocytes in the brain," according to Zhang. "These cells are really useful as a therapeutic target."

The technology developed by the Wisconsin group lays a foundation to make all the different species of astrocytes. What's more, it is possible to genetically engineer them to mimic disease so that previously inaccessible neurological conditions can be studied in the lab.

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