Sunday, April 10, 2016

Researchers create 'mini-brains' in lab to study neurological diseases

Researchers create 'mini-brains' in lab to study neurological diseases

Use of human-derived structures could allow for better research and reduce animal testing

Date:
February 12, 2016
Source:
Johns Hopkins University Bloomberg School of Public Health
Summary:
Researchers say they have developed tiny 'mini-brains' made up of many of the neurons and cells of the human brain -- and even some of its functionality -- and which can be replicated on a large scale.
FULL STORY

Neurons (stock illustration).
Credit: © ktsdesign / Fotolia
Researchers at the Johns Hopkins Bloomberg School of Public Health say they have developed tiny "mini-brains" made up of many of the neurons and cells of the human brain -- and even some of its functionality -- and which can be replicated on a large scale.
The researchers say that the creation of these "mini-brains," which will be discussed at the American Association for the Advancement of Science conference in Washington, DC on Feb. 12 at a press briefing and in a session on Feb. 13, could dramatically change how new drugs are tested for effectiveness and safety, taking the place of the hundreds of thousands of animals used for neurological scientific research in the United States. Performing research using these three-dimensional "mini-brains" -- balls of brain cells that grow and form brain-like structures on their own over the course of eight weeks -- should be superior to studying mice and rats because they are derived from human cells instead of rodents, they say.
"Ninety-five percent of drugs that look promising when tested in animal models fail once they are tested in humans at great expense of time and money," says study leader Thomas Hartung, MD, PhD, the Doerenkamp-Zbinden Professor and Chair for Evidence-based Toxicology at the Bloomberg School. "While rodent models have been useful, we are not 150-pound rats. And even though we are not balls of cells either, you can often get much better information from these balls of cells than from rodents.
"We believe that the future of brain research will include less reliance on animals, more reliance on human, cell-based models."
Hartung and his colleagues created the brains using what are known as induced pluripotent stem cells (iPSCs). These are adult cells that have been genetically reprogrammed to an embryonic stem cell-like state and then are stimulated to grow into brain cells. Cells from the skin of several healthy adults were used to create the mini-brains, but Hartung says that cells from people with certain genetic traits or certain diseases can be used to create brains to study various types of pharmaceuticals. He says the brains can be used to study Alzheimer's disease, Parkinson's disease, multiple sclerosis and even autism. Projects to study viral infections, trauma and stroke have been started.
Hartung's mini-brains are very small -- at 350 micrometers in diameter, or about the size of the eye of a housefly, they are just visible to the human eye -- and hundreds to thousands of exact copies can be produced in each batch. One hundred of them can grow easily in the same petri dish in the lab. After cultivating the mini-brains for about two months, the brains developed four types of neurons and two types of support cells: astrocytes and oligodendrocytes, the latter of which go on to create myelin, which insulates the neuron's axons and allows them to communicate faster.
The researchers could watch the myelin developing and could see it begin to sheath the axons. The brains even showed spontaneous electrophysiological activity, which could be recorded with electrodes, similar to an electroencephalogram, also known as EEG. To test them, the researchers placed a mini-brain on an array of electrodes and listened to the spontaneous electrical communication of the neurons as test drugs were added.
"We don't have the first brain model nor are we claiming to have the best one," says Hartung, who also directs the School's Center for Alternatives to Animal Testing.
"But this is the most standardized one. And when testing drugs, it is imperative that the cells being studied are as similar as possible to ensure the most comparable and accurate results."
Hartung is applying for a patent for the mini-brains and is also developing a commercial entity called ORGANOME to produce them. He hopes production can begin in 2016. He says they are easily reproducible and hopes to see them used by scientists in as many labs as possible. "Only when we can have brain models like this in any lab at any time will we be able to replace animal testing on a large scale," he says.
The work was supported by the National Institutes of Health's National Center for Advancing Translational Sciences (U18TR000547), the Alternatives Research & Development Foundation and the Bart McLean Fund for Neuroimmunology Research/Project Restore.
Other researchers involved in the project include David Pamies; Paula Barreras, Katharina Block; Georgia Makri; Anupama Kumar; Daphne Wiersma; Lena Smirnova; Che Zang; Joseph Bressler; Kimberly M. Christian; Georgina Harris; Guo-li Ming; Cindy J. Berlincke; Kelly Kyro; Hongjun Song; Carlos Pardo; Thomas Hartung and Helena T. Hogberg.

Saturday, March 26, 2016

HOW HEART ATTACK OCCURS?




THIS VIDEO DESCRIBES ABOUT HOW THE HEART ATTACK OCCURS TO HUMANS...

THIS IS A SHORT & CLEAR DESCRIPTION ON THE HEART ATTACK ........

The above described one given as video as per the convenience
-CLICK HERE FOR THE VIDEO

Monday, March 21, 2016

INPLANT TRAINIG

STUDENTS TRAINIGS AND WORSHOPS

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Bioklone Biotech Private Limited conducts workshops and offers in-plant training to college students on various laboratory techniques pertaining to Animal Cell Culture, Molecular Biology, Protein Biochemistry and Immunology including Hybridoma Technology for development of monoclonal antibodies using laboratory animals. The firm’s excellent animal house and animal cell culture facilities provide the students with highly inspiring research ambience in addition to giving them an exposure to an industry environment. Training is offered throughout the year but the number of students enrolling for the programme is maximum during the summer and winter breaks. The duration of the training varies from ten days to three weeks based on the programme offered. Students are given certificates on successful completion of the course. Bioklone has entered into Memorandum of Agreements with various colleges and universities to provide training on laboratory skills as well as to facilitate students to undertake projects to fulfill the criteria for their B. Tech, M. Sc or M. Tech programmes.

Projects

The firm allows students to carry out projects on various novel research areas. Project duration varies from one month to one year based on the student’s needs. Highly qualified and experienced scientists at Bioklone Biotech provide excellent and continuous guidance to the project students.

Sunday, February 14, 2016

NEW BIOMARKER DISCOVERED

In a The next link/button will exit from NWFSC web site study published May 2, 2012, NWFSC scientists Kathi Lefebvre, Elizabeth Frame, and Preston Kendrick, together with several collaborators, discovered an antibody in the blood of zebrafish and marine mammals that shows when they have been repeatedly exposed to low levels of a neurotoxin called domoic acid. “This study paves the way for creating reliable blood tests for low-level domoic acid exposure, which could help scientists assess the effects of chronic exposure to both wildlife and people who eat seafood,” said Lefebvre, lead author of the study. What is domoic acid? While little is known about how low-level exposure to domoic acid affects marine animals or humans, high-level exposure through eating contaminated seafood can be toxic. Domoic acid was first identified as a shellfish toxin in 1987, after more than 100 people were sickened from eating contaminated mussels harvested off the Canadian province of Prince Edward Island. This toxin is produced naturally during blooms of a particular species of marine algae, and can accumulate in shellfish, crabs, and fish. Humans who consume seafood with high levels of domoic acid can suffer from amnesic shellfish poisoning, characterized by seizures, memory loss, coma and, in rare cases, death. Each year, hundreds of California sea lions are also exposed to domoic acid and its adverse health effects by ingesting contaminated fish. In 1998, more than 400 California sea lions died on the U.S. West Coast after consuming anchovies containing domoic acid. Since the early 1990s, regular monitoring of shellfish has protected people from amnesic shellfish poisoning caused by high levels of domoic acid. However, several coastal and tribal communities in the Pacific Northwest rely heavily on shellfish like razor clams as a food source, which can accumulate and retain low levels of domoic acid for long periods. Currently, there is no available diagnostic test for chronic, low-level domoic acid exposure in humans or wildlife. Chronic exposure to low levels of domoic acid yields surprising results In the NOAA study, scientists injected zebrafish in the laboratory two to four times a month over a nine-month period with low levels domoic acid. Although the zebrafish appeared healthy after 18 weeks, scientists detected an antibody response for domoic acid in blood samples. Scientists found a similar antibody response in blood samples taken from wild sea lions from central California, confirming that natural exposure to the toxin produces a similar response in marine mammals. Scientists also found that long-term, low-level exposure to domoic acid does not build tolerance or resistance to it, but instead makes zebrafish more sensitive to the neurotoxin. “The findings of this study represent a significant advancement in the tools for addressing the impact of chronic domoic acid exposure on wildlife and potentially human health,” said Dr. John Hansen, research immunologist for the USGS and a co-author in the study. Implications for human health Up until now, the absence of a biomarker for chronic exposure has been a barrier for assessing the possible effects to humans. “We don’t know yet if the same antibody response we found in the laboratory in zebrafish and naturally exposed California sea lions also occurs in humans,” said Lefebvre. Our next step is to team up with human-health experts to answer that question.” Dr. Lefebvre will continue to work with co-authors John D. Hansen, Ph.D, an immunologist with the U.S. Geological Survey-Western Fisheries Research Center, Donald R. Smith, Ph.D., a toxicologist at the University of California at Santa Cruz, and David J. Marcinek, Ph.D., a physiologist at the University of Washington, to look for health consequences of low-level exposure to domoic acid using the antibody marker. The current study, “A Novel Antibody-Based Biomarker for Chronic Algal Toxin Exposure and Sub-Acute Neurotoxicity,” was jointly undertaken by scientists with NOAA, the Marine Mammal Center, the U.S. Geologic Survey-Western Fisheries Research Center, the University of Washington, and the University of California Santa Cruz. Funding was provided by NOAA’s Ecology and Oceanography of Harmful Algal Blooms (NOAA-ECOHAB) program. Bringing the science of seafood toxins to students Over the next year, Kathi Lefebvre and NWFSC’s Education Coordinator Casey Ralston will be working to bring the latest science on seafood toxins like domoic acid to middle-school students. Together with Seattle Public School District science specialist Christine Benita, Lefebvre and Ralston will develop lesson plans and a video as part of an educational kit to help students learn about plankton, understand how HAB toxins move through the marine food web and identify the impacts on seafood safety and wildlife/human health. These lesson plans will be tested in a 6th grade environmental science class at the Jane Addams K-8 School in Seattle. Stay tuned for more information regarding this and other educational projects that bring NWFSC’s science to the classroom. Scientists use a laboratory biomedical model, the zebrafish, to identify biomarkers of chronic low- level algal toxin exposure. Northwest Fisheries Science

Saturday, February 6, 2016

BIO-MARKERS AND ITS APPLICATIONS

WHAT IS A BIOMARKER ?


A biomarker , or biological marker, generally refers to a measurable indicator of some biological state or condition. The term is also occasionally used to refer to a substance the presence of which indicates the existence of a living organism. Further, life forms are known to shed unique chemicals, including DNA, into the environment as evidence of their presence in a particular location.[1]
Biomarkers are often measured and evaluated to examine normal biological processes, pathogenic processes, or pharmacologic responses to a therapeutic intervention. Biomarkers are used in many scientific fields.

molecules that is to be indicate the organic matter
Definition-BIOMARKERS

Monday, January 11, 2016

Monoclonal antibodies

"Mabs" redirects here. For other uses, seeMab.
A general representation of the method used to produce monoclonal antibodies.
Monoclonal antibodies (mAb or moAb) are monospecific antibodies that are made by identical immune cells that are all clones of a unique parent cell, in contrast to polyclonal antibodies which are made from several different immune cells. Monoclonal antibodies havemonovalent affinity, in that they bind to the same epitope.
Given almost any substance, it is possible to produce monoclonal antibodies that specifically bind to that substance; they can then serve to detect or purify that substance. This has become an important tool inbiochemistry, molecular biology andmedicine. When used as medications, the non-proprietary drug name ends in -mab (see "Nomenclature of monoclonal antibodies"), and many immunotherapyspecialists use the word mabanacronymically.