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Showing posts with label palmore. Show all posts
Showing posts with label palmore. Show all posts

Tuesday, 29 January 2013

A better way to culture central nervous cells

Posted on 09:15 by Unknown
A protein associated with neuron damage in Alzheimer's patients provides a superior scaffold for growing central nervous system cells in the lab. The findings could have clinical implications for producing neural implants and offers new insights on the complex link between the apoE4 apolipoprotein and Alzheimer's disease. Results appear in the journal Biomaterials.

PROVIDENCE, R.I. [Brown University] — A protein associated with neuron damage in people with Alzheimer’s disease is surprisingly useful in promoting neuron growth in the lab, according to a new study by engineering researchers at Brown University. The findings, in press at the journal Biomaterials, suggest a better method of growing neurons outside the body that might then be implanted to treat people with neurodegenerative diseases.

A more dependable scaffold for neural cell culture
Rat
central nervous system cells cultured in the apoE4
protein (right) fare better, with more axons and dendrites
than cells cultured in laminin (left). Ironically, apoE4 is
associated with the neural deficits of Alzheimer's disease
in the body. Credit: Palmore Lab/Brown University
The research compared the effects of two proteins that can be used as an artificial scaffold for growing neurons (nerve cells) from the central nervous system. The study found that central nervous system neurons from rats cultured in apolipoprotein E-4 (apoE4) grew better than neurons cultured in laminin, which had been considered the gold standard for growing mammalian neurons in the lab.

“Most scientists assumed that laminin was the best protein for growing CNS (central nervous system),” said Kwang-Min Kim, a biomedical engineering graduate student at Brown University and lead author of the study, “but we demonstrated that apoE4 has substantially better performance for mammalian CNS neurons.”

Kim performed the research under the direction of Tayhas Palmore, professor of engineering and medical science and Kim’s Ph.D. adviser. Also involved in the project was Janice Vicenty, an undergraduate from the University of Puerto Rico, who was working in the Palmore lab as a summer research fellow through the Leadership Alliance.

One size doesn't fit all
Tayhas Palmore and Kwang-Min Kim showed that lamnin,
the preferred scaffold for peripheral nerve cells, is not the
best choice for culturing cells from the central nervous
system. The protein apoE4 works much better.
Credit: Mike Cohea/Brown University
The results are surprising partly because of the association of apoE4 with Alzheimer’s. Apolipoproteins are responsible for distributing and depositing cholesterols and other lipids in the brain. They come in three varieties: apoE2, apoE3 and apoE4. People with the gene that produces apoE4 are at higher risk for amyloid plaques and neurofibrillary tangles, the hallmarks of Alzheimer’s. But exactly how the protein itself contributes to Alzheimer’s is not known.

This study suggests that outside the body, where the protein can be separated from the cholesterols it normally carries, apoE4 is actually beneficial in promoting neuron growth.


Growing new neurons
In the body, neurons grow in what’s called an extracellular matrix (ECM), a protein-rich scaffold that provides cells with nutrients and a molecular structure in which to grow. To grow neurons in the lab, scientists try to mimic the ECM present in the body. Laminin is a common protein in the body’s ECM, and studies have shown that laminin aids the growth of neurons from the peripheral nervous system (nerve cells that grow outside the brain and spinal cord).

It was largely assumed, Kim said, that because laminin was good for growing peripheral nerve cells, it would also be good for growing central nerve cells. That turns out not to be the case.

Kim was inspired to test the effects of apoE4 by a previous study that found that a mixture of apoE4 and laminin promoted CNS cell growth better than laminin alone. “The previous work hadn’t tested the effects apoE4 by itself,” Kim said. “So we started working on a side-by-side comparison of apoE4 and laminin.”

Kim and his colleagues cultured rat hippocampal cells — a model for mammalian CNS neurons — in four different treatments: laminin, laminin and apoE4 mixed, apoE4 alone, and bare glass. They found that cells cultured in apoE4 alone performed substantially better than any other treatment. The apoE4 cells were more likely to adhere to the protein scaffold, which is necessary for proper growth. They also showed more robust growth of axons and dendrites, the wire-like appendages that enable neurons to send and receive nerve signals.

Laminin doesn’t seem to be of much benefit at all for culturing CNS cells, according to the study. Cells cultured on laminin alone did not perform any better than cells cultured on bare glass.

That was another big surprise, Kim said, because laminin is so widely used in all kinds of neuron cultures.

A second part of the research looked at the chemical pathways through which proteins may enhance neuron growth. Previous work had found two neuron receptors, the gateways through which neurons interact with the outside world, that play a role in how external proteins trigger cell growth. However, when Kim blocked these two receptors, known as integrin and HSPG, he found that apoE4 still enhanced neuron growth. That finding suggests that neurons use an as yet unknown pathway to interact with apoE4.

“This discovery opens up a new target for researchers who are interested in identifying receptors that are important for spurring neural growth,” Palmore said.

Application to neural prosthetics
Unlike other cells in the body, nerve cells tend not to regenerate after being damaged by disease or trauma. So researchers hope that they can eventually implant lab-grown cells in the body to treat trauma or neurodegenerative diseases like Alzheimer’s.

“People are looking at all these different proteins to see if we can make a material — a scaffold — that to a neuron, looks and feels like their natural environment,” said Palmore. “The finding that apoE4 is a better protein to add to neural scaffolds is a good breakthrough because most people have been using laminin for the central nervous system models, which turns out to be less than optimal.”

The research was supported by the National Science Foundation (HRD-0548311) and the National Institutes of Health.

- by Kevin Stacey
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Posted in apoE4, Kim, palmore | No comments

Thursday, 11 October 2012

Grant for Chemical Innovation Center

Posted on 08:53 by Unknown
Researchers at Brown have been awarded $1.75 million to explore the potential of using carbon dioxide instead of fossil fuels in the production of common industrial chemicals. Advances could reduce the chemical industry’s carbon footprint and help stabilize production costs in the face of ever increasing fuel prices. 

“The goal is to find new ways to produce some of the world’s largest-volume chemicals from a sustainable carbon source that the earth not only has in excess but urgently needs to reduce,” said Tayhas Palmore, professor of engineering and principal investigator on the grant.

The funding comes from the National Science Foundation’s Centers for Chemical Innovation Program. The research team includes Wesley Bernskoetter, Christoph Rose-Petruck, Dwight Sweigart, and Shouheng Sun from the Department of Chemistry, as well as Robert Hurt and Andrew Peterson from the School of Engineering and Nilay Hazari from the Department of Chemistry at Yale. The team is administered by Brown’s Institute for Molecular and Nanoscale Innovation (IMNI).



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Posted in chemical innovation program, IMNI, palmore | No comments

Friday, 23 March 2012

Building a better battery via technology crowdsourcing

Posted on 06:43 by Unknown
Brown is one of the first participants to join Allied MindStorm, an open innovation website that invites the public (thinkers) to brainstorm new commercial applications around exciting technologies (challenges) developed by university researchers. In its initial submission on a Paper-Thin Plastic Battery Mashup, the public is invited to participate in postulating on new uses of the technology in the open innovation setting.

The new battery device submitted uses plastic, not metal, to conduct electrical current. It combines the power of a capacitor with the storage capacity of a battery. Tayhas Palmore, professor of engineering, worked with a team to develop the new type of battery that is a hybrid. It can store and deliver charge over long periods of time with greater power and with twice the storage of a double-layer capacitor.

Its power and paper-thin dimensions could be used for wrapping electronic devices but also be made into a fabric-like material. A description of the prototype is published in Advanced Materials: 18, 1764–1768.

Allied Mindstorm has a new website where university researchers can submit new technologies and then invites the public to come up with new applications for these technologies.

One of the first participants to join Allied MindStorm, Katherine Gordon, managing director of Brown University's Technology Ventures Office, said, "The decision regarding which application to pursue first is a complex and important one. Allied Minds is creating an entirely new way for universities to make this decision, while showcasing their most interesting research, but also improving them through open collaboration."

  • Learn more about the Paper-Thin Plastic Battery Mashup and its submission on Allied Mindstorm.

- Courtesy of the Technology Ventures Office
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Tuesday, 31 January 2012

Biochip measures glucose in saliva, not blood

Posted on 12:59 by Unknown
Engineers at Brown University have designed a biological device that can measure glucose concentrations in human saliva. The technique could eliminate the need for diabetics to draw blood to check their glucose levels. The biochip uses plasmonic interferometers and could be used to measure a range of biological and environmental substances. Results are published in Nano Letters.

PROVIDENCE, R.I. [Brown University] — For the 26 million Americans with diabetes, drawing blood is the most prevalent way to check glucose levels. It is invasive and at least minimally painful. Researchers at Brown University are working on a new sensor that can check blood sugar levels by measuring glucose concentrations in saliva instead.

Tripping the light fantastic Each plasmonic interferometer -thousands of themper square millimeter - consists of a slit flanked by
two grooves etched in a silver metal film. The
schematic shows glucose molecules "dancing" on the
sensor surface illumniated by light with different colors.
Changes in light intensity transmitted through the slit
of each plasmonic interferometer yield information
about the concentration of glucose molecules in solution.
Credit: Domenico Pacifici



The technique takes advantage of a convergence of nanotechnology and surface plasmonics, which explores the interaction of electrons and photons (light). The engineers at Brown etched thousands of plasmonic interferometers onto a fingernail-size biochip and measured the concentration of glucose molecules in water on the chip. Their results showed that the specially designed biochip could detect glucose levels similar to the levels found in human saliva. Glucose in human saliva is typically about 100 times less concentrated than in the blood.
“This is proof of concept that plasmonic interferometers can be used to detect molecules in low concentrations, using a footprint that is ten times smaller than a human hair,” said Domenico Pacifici, assistant professor of engineering and lead author of the paper published in Nano Letters, a journal of the American Chemical Society.
The technique can be used to detect other chemicals or substances, from anthrax to biological compounds, Pacifici said, “and to detect them all at once, in parallel, using the same chip.”
To create the sensor, the researchers carved a slit about 100 nanometers wide and etched two 200 nanometer-wide grooves on either side of the slit. The slit captures incoming photons and confines them. The grooves, meanwhile, scatter the incoming photons, which interact with the free electrons bounding around on the sensor’s metal surface. Those free electron-photon interactions create a surface plasmon polariton, a special wave with a wavelength that is narrower than a photon in free space. These surface plasmon waves move along the sensor’s surface until they encounter the photons in the slit, much like two ocean waves coming from different directions and colliding with each other. This “interference” between the two waves determines maxima and minima in the light intensity transmitted through the slit. The presence of an analyte (the chemical being measured) on the sensor surface generates a change in the relative phase difference between the two surface plasmon waves, which in turns causes a change in light intensity, measured by the researchers in real time.
“The slit is acting as a mixer for the three beams — the incident light and the surface plasmon waves,” Pacifici said.
The engineers learned they could vary the phase shift for an interferometer by changing the distance between the grooves and the slit, meaning they could tune the interference generated by the waves. The researchers could tune the thousands of interferometers to establish baselines, which could then be used to accurately measure concentrations of glucose in water as low as 0.36 milligrams per deciliter.
“It could be possible to use these biochips to carry out the screening of multiple biomarkers for individual patients, all at once and in parallel, with unprecedented sensitivity,” Pacifici said.
The engineers next plan to build sensors tailored for glucose and for other substances to further test the devices. “The proposed approach will enable very high throughput detection of environmentally and biologically relevant analytes in an extremely compact design. We can do it with a sensitivity that rivals modern technologies,” Pacifici said.
Tayhas Palmore, professor of engineering, is a contributing author on the paper. Graduate students Jing Feng (engineering) and Vince Siu (biology), who designed the microfluidic channels and carried out the experiments, are listed as the first two authors on the paper. Other authors include Brown engineering graduate student Steve Rhieu and undergraduates Vihang Mehta, Alec Roelke.
The National Science Foundation and Brown (through a Richard B. Salomon Faculty Research Award) funded the research.

- by Richard Lewis
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Posted in pacifici, palmore | No comments

Tuesday, 19 May 2009

Biosensor to Measure Vitamin D Levels

Posted on 05:51 by Unknown
A team from Professor Palmore's lab consisting of two grad students (Steve Rhieu and Vince Siu) and one undergraduate (Daniel Ludwig, '09) is in the Finalist round of the BMEIdea 2009 competition on June 9th – June 11th, in New York City, New York. This work was made possible by an OVPR seed grant and has a preliminary patent application submitted.

Here is the brief project summary:

We propose a new methodology to measure vitamin D levels in serum using electrochemical detection. Vitamin D is a prohormone that is hydroxylated in the liver to become 25(OH)D, which is further hydroxylated in the kidney by the enzyme CYP27B1 to become the biologically active form. The electrochemical approach is based on the hypothesis that the hydroxylation of 25(OH)D can be measured via the catalytic reaction of CYP27B1 immobilized on an electrode. The reaction requires a supply of electrons, generating a detectable current that is proportional to the concentration of 25(OH)D. Similar to a commercial glucose meter, our proposed vitamin D biosensor will use a disposable testing strip that is inserted in the portable device along with a sub-microliter sample. The sample is analyzed and the result is displayed both qualitatively and quantitatively on a liquid crystal display. Specific recognition of 25(OH)D by a CYP27B1-based electrode system eliminates the need for extensive extraction and/or purification of the sample allowing for inexpensive, accurate, and rapid measurements.
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Posted in bme, competition, palmore | No comments
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