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Pancreas
explant.
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Wednesday, 25 March 2015
Stem Cells Make Similar Decisions to Humans
Posted by ZenMaster at Wednesday, March 25, 2015
Labels: diabetes, differentiation, embryonic, human, microscopy, pluripotent, proliferation, research, stem cells 0 comments
Thursday, 18 September 2014
Stem Cells Use 'First Aid Kits' to Repair Damage
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Confocal
super resolution imaging of the rapid
(2h) up-take
of CD63-RFP EVs packed via
target cell
fEGFP (green) plasma membrane in
vitro. Credit:
Design and artwork by CongJian
Zhao.
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Posted by ZenMaster at Thursday, September 18, 2014
Labels: brain, microscopy, mouse, neurons, proteasome, research, stem cells 0 comments
Tuesday, 2 March 2010
Predicting the Fate of Stem Cells
New method decodes cell movements, accurately predicts how cells will divide
Monday, 01 March 2010
Researchers at Rensselaer Polytechnic Institute have discovered a new method for predicting – with up to 99 percent accuracy – the fate of stem cells.
Using advanced computer vision technology to detect subtle cell movements that are impossible to discern with the human eye, Professor Badri Roysam and his former student Andrew Cohen can successfully forecast how a stem cell will split and what key characteristics the daughter cells will exhibit.
By allowing the isolation of cells with specific capabilities, this discovery could one day lead to effective methods for growing stem cells on a large scale for therapeutic use.
"If you have many cells in a culture, they all look the same. But our new method senses all sorts of tiny differences in the shapes and movements of the cells, and uses these cues to predict what kind of cells it will divide into," said Roysam, professor of electrical, computer, and systems engineering at Rensselaer.
"We believe this method will be beneficial for one day taking cells from a patient, and then growing large amounts of the kind of cells that patient is in need of. This could enable many new and exciting types of medical treatments using stem cells."
Results of the study, titled "Computational prediction of neural progenitor cell fates," were published recently in the journal Nature Methods.
In order to achieve successful stem cell-based therapies, researchers require access to large amounts of specific cells. This has proven difficult, as there are currently no methods for controlling or manipulating the division of bulk quantities of cells. When stem cells or progenitor cells divide via mitosis, the resulting daughter cells can be self-renewing or terminal. A self-renewing cell will go on to split into two daughter cells, while a terminally differentiated cell is fated to be a specific, specialized cell type. Researchers want the ability to influence this division in order to produce large volumes of the correct type of cells.
Roysam and Cohen tracked the development of rat retinal progenitor cells cultured in their collaborator's laboratory at McGill University. The computer system they developed took images of the cells every five minutes, and employed algorithmic information theoretic prediction (AITP) to observe the behaviour of the cells, analyze the behaviour, and discern whether each individual cell is fated to split into self-replicating or terminal daughter cells. This process occurs in real time, so researchers know the fate of cells before they actually divide.
The researchers predicted with 99 percent accuracy if the rat retinal progenitor cells would split into self-renewing or specialized cells, and predicted with 87 percent accuracy certain characteristics of the specialized cells.
"Our results suggest that stem cells display subtle dynamic patterns that can be sensed computationally to predict the outcome of their next division using AITP," Roysam said.
"In theory, AITP can be used to analyze nearly any type of cell, and could lead to advances in many different fields."
Roysam said prototyping and development of the system leveraged the processing power of Rensselaer's supercomputer, the Computational Center for Nanotechnology Innovations (CCNI).
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ZenMaster
For more on stem cells and cloning, go to CellNEWS at http://cellnews-blog.blogspot.com/
Posted by ZenMaster at Tuesday, March 02, 2010
Labels: differentiation, microscopy, neurons, research, stem cells 0 comments
Thursday, 20 August 2009
Using Light to Manipulate Cell Movement
New technique expected to enhance understanding of how cancer spreads
Thursday, 20 August 2009
One of the biggest challenges in scientists' quest to develop new and better treatments for cancer is gaining a better understanding of how and why cancer spreads. Recent breakthroughs have uncovered how different cellular proteins are turned 'on' or 'off' at the molecular level, but much remains to be understood about how protein signalling influences cell behaviour.
A new technique developed by Klaus Hahn, Ph.D. and his colleagues uses light to manipulate the activity of a protein at precise times and places within a living cell, providing a new tool for scientists who study the fundamentals of protein function. Hahn is the Thurman Professor of Pharmacology at the University of North Carolina at Chapel Hill and a member of UNC Lineberger Comprehensive Cancer Center.
In a paper published today in the journal Nature, Hahn described the technique, which uses light to control protein behaviour in cells and animals simply by shining light on the cells where they want the protein to be active.
A photo-activatable protein enables control of cell movement in living cells. Activation of Rac in the red circle led to localized cell protrusion and translocation of the kinase PAK to the cell edge (right hand image, Pak in red). Credit: Yi Wu, UNC-Chapel Hill.
"The technology has exciting applications in basic research – in many cases the same protein can be either cancer-producing or beneficial, depending on where in a cell it is activated. Now researchers can control where that happens and study this heretofore inaccessible level of cellular control," said Hahn.
"Because we first tested this new technology on a protein that initiates cell movement, we can now use light to control where and how cells move. This is quite valuable in studies where cell movement is the focus of the research, including embryonic development, nerve regeneration and cancer metastasis," he added.
The new technology is an advance over previous light-directed methods of cellular control that used toxic wavelengths of life, disrupted the cell membrane or could switch proteins 'on' but not 'off'.
Reference:
A genetically encoded photoactivatable Rac controls the motility of living cells
Yi I. Wu, Daniel Frey, Oana I. Lungu, Angelika Jaehrig, Ilme Schlichting, Brian Kuhlman & Klaus M. Hahn
Nature advance online publication 19 August 2009, doi:10.1038/nature08241
See also:
Coordination of Rho GTPase activities during cell protrusion
Matthias Machacek, Louis Hodgson, Christopher Welch, Hunter Elliott, Olivier Pertz, Perihan Nalbant, Amy Abell, Gary L. Johnson, Klaus M. Hahn & Gaudenz Danuser
Nature advance online publication 19 August 2009, doi:10.1038/nature08242
.........
ZenMaster
For more on stem cells and cloning, go to CellNEWS at http://cellnews-blog.blogspot.com/ and http://www.geocities.com/giantfideli/index.html
Monday, 9 March 2009
Stem Cells Replace Stroke-damaged Tissue
A stem-cell matrix can repair brain damage in rodents.
Monday, 09 March 2009
Effective stem cell treatment for strokes has taken a significant step forward today (09 March) as scientists reveal how they have replaced stroke-damaged brain tissue in rats.
The team of scientists is funded by the Biotechnology and Biological Sciences Research Council (BBSRC) and led by Dr Mike Modo of the Institute of Psychiatry, King's College London. The work, carried out at the Institute of Psychiatry and University of Nottingham, shows that by inserting tiny scaffolding with stem cells attached, it is possible to fill a hole left by stroke damage with brand new brain tissue within 7 days. The work is published in Biomaterials.
Previous experiments where stem cells have been injected into the void left by stroke damage have had some success in improving outcomes in rats. The problem is that in the damaged area there is no structural support for the stem cells and so they tend to migrate into the surrounding healthy tissues rather than filling up the hole left by the stroke.
"We would expect to see a much better improvement in the outcome after a stroke if we can fully replace the lost brain tissue, and that is what we have been able to do with our technique," Dr Modo said.
Using individual particles of a biodegradable polymer called PLGA that have been loaded with neural stem cells, the team of scientists have filled stroke cavities with stem cells on a ready-made support structure.
"This works really well because the stem cell-loaded PLGA particles can be injected through a very fine needle and then adopt the precise shape of the cavity. In this process the cells fill the cavity and can make connections with other cells, which helps to establish the tissue,” Dr Modo continued.
"Over a few days we can see cells migrating along the scaffold particles and forming a primitive brain tissue that interacts with the host brain. Gradually the particles biodegrade leaving more gaps and conduits for tissue, fibres and blood vessels to move into."
The research published today uses an MRI scanner to pinpoint precisely the right place to inject the scaffold-cell structure. MRI is also used to monitor the development of the new brain tissue over time.
The next stage of the research will be to include a factor called VEGF with the particles. VEGF will encourage blood vessels to enter the new tissue.
"Stroke is a leading cause of disability in industrialised countries. It is reassuring to know that the technology for treating stroke by repairing brain damage is getting ever closer to translation into the clinic. This crucial groundwork by Dr Modo and his colleagues will surely be a solid foundation of basic research for much better treatments in the future," Professor Douglas Kell, BBSRC Chief Executive said.
"This research is another step towards using stem cell therapy in treating and reversing the brain damage caused by stroke. It is exciting because researchers have shown they are able to overcome some of the many challenges in translating the potential of using stem cells into reality,” Joe Korner, Director of Communications at The Stroke Association commented.
"The potential to reverse the disabling effects of stroke seems to have been proved. However the development of stem cell therapy for stroke survivors is still in the early stages and much more research will be needed before it can be tested in humans or used in practice.”
"Every five minutes someone in the UK has a stroke and it is vital that we do all we can to help those affected by stroke."
Reference:
The support of neural stem cells transplanted into stroke-induced brain cavities by PGLA particles
Bible, E. et al.
Biomaterials (2009), doi:10.1016/j.biomaterials.2009.02.012
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Left: A microscope image showing the stroke site (the dark area on the right), which is beginning to fill in with new tissue. (Modified from Figure 4, Bible E et al. Biomaterials (2009)) Right: A magnification of the area on the left indicated by the red square. Here, all the dark spots are scaffold particles and we see tissue - the coloured parts - forming between them. (Modified from Figure 5, Bible E et al. Biomaterials (2009)) Credit: Bible E et al., The support of neural stem cells transplanted into stroke-induced brain cavities by PGLA particles, Biomaterials (2009), doi:10.1016/j.biomaterials.2009.02.012.
For more on stem cells and cloning, go to CellNEWS at http://cellnews-blog.blogspot.com/ and http://www.geocities.com/giantfideli/index.html
Posted by ZenMaster at Monday, March 09, 2009
Labels: brain, differentiation, microscopy, neurons, rat, research, stem cells, UK 0 comments
Friday, 27 February 2009
Spun-sugar Fibres Spawn Sweet Technique for Nerve Repair
Spun-sugar Fibres Spawn Sweet Technique for Nerve Repair
Friday, 27 February 2009
Researchers at Purdue University have developed a technique using spun-sugar filaments to create a scaffold of tiny synthetic tubes that might serve as conduits to regenerate nerves severed in accidents or blood vessels damaged by disease.
The sugar filaments are coated with a corn-based degradable polymer, and then the sugar is dissolved in water, leaving behind bundles of hollow polymer tubes that mimic those found in nerves, said Riyi Shi, an associate professor in Purdue's Weldon School of Biomedical Engineering and Department of Basic Medical Sciences.
The scaffold could be used to promote nerve regeneration by acting as a bridge placed between the ends of severed nerves, said biomedical engineering doctoral student Jianming Li, who is a member of Shi's research team that developed the technique.
Purdue researchers have developed a technique using sugar filaments spun like cotton candy and coated with a polymer to create a scaffold of tiny synthetic tubes that might serve as conduits to regenerate nerves severed in accidents or damaged by disease. The image on the left, taken with a scanning electron microscope and artificially coloured, shows the sugar strands in yellow and the polymer coating in blue. Images on the right, taken with the same instrument, show a side view of the tubes and tiny pores that are ideal for supplying nutrients to growing nerve cells and removing waste products from the cells. Credit: Weldon School of Biomedical Engineering, Department of Basic Medical Sciences and the Center for Paralysis Research, Purdue University.
The researchers are initially concentrating on the peripheral nerves found in the limbs and throughout the body because nerve regeneration is more complex in the spinal cord. About 800,000 peripheral nerve injuries are reported annually in the United States, with about 50,000 requiring surgery.
The approach also might have applications in repairing blood vessels damaged by trauma and disease such as atherosclerosis and diabetes, Shi said.
The new approach represents a potential alternative to the conventional surgical treatment, which uses a nerve "autograft" taken from the leg or other part of the body to repair the injured nerves. Researchers are trying to develop artificial scaffolds to replace the autografts because removing the donor nerve causes a lack of sensation in the portion of the body where it was removed.
"The autograft is the lesser of two evils because you have to sacrifice a healthy nerve to repair a damaged segment," said Li, who led the research.
New findings were published online in December and this month in the print edition of the journal Langmuir. The paper was written by Li, biomedical engineering doctoral student Todd A. Rickett and Shi. Rickett also is attending the Indiana University School of Medicine in an MD-Ph.D. program.
Researchers from Cornell University published similar findings online Feb. 9 in the journal Soft Matter. Those findings focused on using the technique to create vascular networks for providing blood and nutrients to tissues and grafts.
Researchers at Purdue have developed a technique using sugar filaments spun like cotton candy and coated with a polymer to create a scaffold of tiny synthetic tubes that might serve as conduits to regenerate nerves severed in accidents or damaged by disease. These images, taken with fluorescent-dyed samples, show nerve-insulating cells called Schwann cells (on left) growing on a tubule, and a combination of Schwann cells and neurons aligned lengthwise along the tubes (on right). This alignment is critical for the fast growth of nerves. Credit: Weldon School of Biomedical Engineering, Department of Basic Medical Sciences, and the Center for Paralysis Research, Purdue University.
The synthetic scaffold resembles the structural assembly of natural nerves, which are made of thousands of small tubes bundled together. These tubes act as sheaths that house the conducting elements of the nerve cell.
The first step in making the tubes is to spin sugar fibres from melted sucrose.
"It's basically like making cotton candy," Li said.
The sugar filaments were coated with a polymer called poly L-lactic acid. After the filaments were dissolved, hollow tubes of the polymer remained. The researchers then grew nerve-insulating cells called Schwann cells on these polymer tubes. These cells automatically aligned lengthwise along the tubes, as did nerve cells grown on top of the Schwann cells.
This alignment is critical for the fast growth of nerves, Shi said.
Nerve cells grew not only inside the hollow tubes but also around the outside of the tubes.
"This finding is important because the increased surface area may accelerate the regeneration process following an accident," Li said.
The scaffolds are designed specifically to regenerate a portion of a nerve cell called the axon, a long fibre attached to the cell body that transmits signals. Fast regeneration is essential to prevent the atrophy of muscles and organs connected to severed nerves.
The researchers also discovered that the polymer tubes contain pores that are ideal for supplying nutrients to growing nerve cells and removing waste products from the cells.
Images of the polymer-coated sugar strands were taken using a scanning electron microscope. Another instrument, called an atomic force microscope, was used to obtain images of the hollow tubes and pores in the walls of the tubules. Other images using fluorescent dyes revealed the nerve cell alignment along the tubes.
The work was done using cell cultures in Petri-dishes, but ongoing work focuses on implanting the scaffolds in animals.
The method for creating the scaffolds is relatively simple and inexpensive and does not require elaborate laboratory equipment, Shi said.
"This is low-tech," he said.
"We used the same kind of sugar found in candy and a cheap polymer to make samples of these scaffolds for a few dollars. The process easily lends itself to mass production. It is a unique idea, and the simplicity and efficiency of this technology distinguish it from other approaches for nerve repair."
A provisional patent application on the material has been filed.
Reference:
Biomimetic Nerve Scaffolds with Aligned Intraluminal Microchannels: A "Sweet" Approach to Tissue Engineering
Jianming Li, Todd A. Rickett and Riyi Shi
Langmuir, 2009, 25 (3), pp 1813–1817, DOI: 10.1021/la803522f
.........
ZenMaster
For more on stem cells and cloning, go to CellNEWS at http://cellnews-blog.blogspot.com/ and http://www.geocities.com/giantfideli/index.html
Posted by ZenMaster at Friday, February 27, 2009
Labels: microscopy, neurons, patent, research, stem cells, US 0 comments
Tuesday, 10 February 2009
Nerve-muscle ‘Connectome’ Diversity Mapped
Axons in the connectomes of the left and right interscutularis muscles of a 1-month old animal were colour-coded based on the rank-order of their motor unit sizes (the number of muscle fibres innervated by each axon) in each connectome. Thus, each axon and its contra-lateral counterpart can be identified in the connectomes, and subsequently their morphologies can be compared. Credit: Ju Lu, Harvard University.
"We had expected to find a great degree of neural symmetry in the same mouse's two interscutularis muscles, but this isn't even close to true," says Jeff W. Lichtman, professor of molecular and cellular biology in Harvard's Faculty of Arts and Sciences. "It looks like the mammalian nervous system may be a bit like a football game," he adds. "Even when the rules are the same, every single outcome is unique." Curiously, the connectome of the mouse interscutularis — a muscle also found in dogs, rats, and other mammals that readily move their ears — reveals that some of its neurons are as much as 25 percent longer than is necessary. This casts doubt on a longstanding assumption among neuroscientists that neural wiring length is generally minimized to conserve space, energy, and resources.
In order to understand how each nerve cell integrates into the functional organization of a neural circuit, it is necessary to obtain the complete wiring diagram (connectome) of the circuit by tracing out all the neural processes in the sample. We used confocal laser scanning microscopy to image all the axons that innervate a small ear muscle in transgenic mice that express fluorescent protein in motor neurons. Shown here is one of the reconstructed image stacks containing branches of ~ 10 axons. Each axon was traced out in a semi-automated image processing program and rendered in 3D with a distinct colour. This image stack is representative of the hundreds of image stacks from which the entire connectome was reconstructed. Credit: Ju Lu, Harvard University.
"This well-known hypothesis that wiring length should be minimized has been in the scientific literature for decades," says Ju Lu, a postdoctoral researcher in molecular and cellular biology at Harvard. "It's very surprising, frankly, to find so much excess wiring in the mammalian nervous system." Lichtman and Lu's work represents only the second connectome to date, following one for the worm Caenorhabditis elegans. While their task initially appeared manageable — the entire interscutularis muscle is but a few millimetres in length — teasing out the muscle's tangle of about 15 intricately branched and intertwined axons proved fiendishly complex. "It's a bit like taking a giant plate of spaghetti and, without unravelling it, trying to figure out which strand goes where," says Lu. "Except in this case, each strand of spaghetti has up to 37 branches."
The entire connectome was obtained by montage of hundreds of image stacks individually reconstructed. Each axon was pseudo-coloured to indicate its trajectory and the position of its neuromuscular terminals. The connectome gives the anatomical underpinning of the graded tensions elicited by motor neurons according to Henneman’s size principle. Credit: Ju Lu, Harvard University.
Working with mice containing a gene that causes motor neurons to fluoresce, Lichtman and Lu used an automated microscope to gather tens of thousands of images. These images were analyzed with semi-automated tracing tools, although the need for frequent corrections and manual editing by Lu slowed the pace of the mapping to a scant half-millimetre per hour. Connectomes from a mouse's two interscutularis muscles depict dramatically different neural circuitry even within mirror-image tissues from the same animal. "Comparison of each neuron and its counterpart on the opposite side of the animal revealed that each connectome was unique," Lichtman says, "demonstrating wiring diagrams that differ substantially in form, even within a common genetic background." Lichtman says the research suggests the mammalian nervous system is in some ways unexpectedly primitive, its freeform structure lacking the regimentation seen in insects and worms. But, he adds, this seeming randomness may be advantageous. "This may explain why humans and other mammals can quickly adapt their behaviours to a changing environment," Lichtman says. "We may be less perfected in our genetic evolution, but our flexible neural wiring may allow us to undergo behavioural evolution at a very rapid rate." Such variation in the nervous system, he adds, could help explain why different humans, each equipped with the same neural building blocks, excel at tasks ranging from dancing to mathematical computations, and from crossword puzzles to bowling. Reference: The Interscutularis Muscle Connectome Ju Lu, Juan Carlos Tapia, Olivia L. White, Jeff W. Lichtman PLoS Biol 7(2): e1000032 doi:10.1371/journal.pbio.1000032 ......... ZenMaster
For more on stem cells and cloning, go to CellNEWS at http://cellnews-blog.blogspot.com/ and http://www.geocities.com/giantfideli/index.html
Posted by ZenMaster at Tuesday, February 10, 2009
Labels: microscopy, mouse, neurons, research, US 0 comments
Tuesday, 3 February 2009
Super-resolution Microscopy Takes on a Third Dimension
Super-resolution Microscopy Takes on a Third Dimension
Tuesday, 03 February 2009
The shapes of some of the tiniest cellular structures are coming into sharper focus at the Howard Hughes Medical Institute's Janelia Farm Research Campus, where scientists have developed a new imaging technology that produces the best three-dimensional resolution ever seen with an optical microscope.
With this new tool, scientists can pinpoint fluorescent labels in their images to within 10-20 nanometres – about ten times the size of an average protein – in all three dimensions. The researchers say they now have an extremely powerful technology that will help reveal how biomolecules organize themselves into the structures and signalling complexes that drive cellular functions.
Their new method adds a third dimension to a cutting-edge form of light microscopy that scientists at Janelia Farm have used for the last two years to create two-dimensional images that pinpoint the location of fluorescently labelled proteins with extremely high resolution. To push this form of microscopy to the next level — three-dimensional imaging — the researchers borrowed a strategy widely used in industry to measure vanishingly small distances, such as the subtle variations in height on the surface of a computer chip.
Janelia Farm scientist Harald Hess and his colleagues adapted that technique, known as interferometry, to make it compatible with the fluorescent molecules often used by biologists to visualize proteins. When interferometry is combined with the super-high resolution photo-activated localization microscopy (PALM), researchers can see the three-dimensional architecture of cellular structures in extraordinary detail.
"This will be a good tool to really untangle things right down to the molecular structure level," said Hess, who led the development of the new technology in the applied physics and instrumentation group at Janelia Farm.
Hess and collaborators at the National Institutes of Health, Florida State University, and Janelia Farm, who call their new tool interferometric photo-activated localization microscopy (iPALM), have already created detailed images of three-dimensional structures previously not resolvable with light microscopy. Their "photo gallery" includes images of the microtubules that give cells structure; the two layers of a cell's outer membrane; and the focal adhesions that attach cells to their environment. Some of these images are included in a research article published in the February 2, 2009, issue of the Proceedings of the National Academy of Sciences describing the new technique.
Hess and Janelia Farm colleague Eric Betzig invented the PALM microscope in 2005. Scarcely three years later, it was one of a handful of new methods of "super-resolution" microscopy that were honoured by Nature Methods in January 2009 as the "Method of the Year" for the previous year.Gleb Shtengel saw a way around the problem: They decided to split each particle of light emitted from the fluorescent molecule in two. By splitting the photons, the researchers knew that each fluorescent photon would act as its own reference beam. They adapted the standard PALM microscope to collect this light both above and below the sample. Both of those beams of light travel to a custom-made beam-splitter, which divides the beam and sends it to three different cameras. A molecule's depth within the sample determines how much light reaches each of the cameras.
"We record an image triplet, and depending on how much appears in camera one, two and three, we can say 'this was the height.' This is by far the most sensitive way of measuring vertical height," Hess said.
"iPALM needs only a modest amount of light to generate its sensitive measurements, and that's important for biological imaging," Hess says. Imaging techniques that demand more photons can force researchers to label the proteins they want to see with brighter dyes – which are often bulky and require harsh sample preparations that damage cells. Fluorescent probes such as those compatible with iPALM, on the other hand, can be genetically encoded so that they are manufactured by cells themselves. The power of these glowing markers was recognized with the 2008 Nobel Prize in Chemistry, which was awarded to HHMI investigator Roger Y. Tsien, Osamu Shimomura, and Martin Chalfie for the discovery and development of the first such tool, green fluorescent protein.
"It's beautiful if you can just have the cell attach the label for you," Hess said.
"But the photo-activatable molecules that are used for fluorescence can only spill out so many photons before they finally fizzle. You have to make the most of what you've got. This technique is almost 100 times more efficient than other approaches [for three-dimensional imaging], in terms of harvesting the most information for the brightness of that fluorescent molecule."
The three-dimensional distribution of membrane proteins within a cell revealed through iPALM imaging. Credit: Harald Hess. PALM permits biologists to visualize cells with far more detail than conventional optical microscopes, which are inherently limited by the wavelength of light. To achieve this resolution, PALM uses fluorescent labels that can be turned on and off with a pulse of light. Cells whose proteins are tagged with these labels are imaged repeatedly with PALM, with only a tiny subset of the fluorescent molecules turned on in each image. By compiling many thousands of these images, PALM creates a complete picture of the structure under study, pinpointing each fluorescently tagged protein. As a result, researchers get a much clearer picture than the overlapping haze that results when all of the tagged proteins are lit up at the same time, as in traditional fluorescence microscopy.
Hess and Betzig designed the concept for the first PALM microscope prior to their arrival at Janelia Farm in 2006. By the time they settled into their new laboratories, Hess says, both were already thinking about ways to improve the technique. Betzig focused on adapting the technique so that it could be used with living cells and with several differently coloured fluorescent labels. For Hess, a major next goal was to expand the extraordinary spatial resolution they had already achieved to all three dimensions.
Hess, who spent 10 years working in the data storage and semiconductor industries, quickly focused his thinking on interferometry as a way to identify a protein's precise depth within a biological sample, and September of 2006 proposed the idea of iPALM.
"Interferometry is one of the more sensitive measurement techniques out there," Hess said.
"If you have bright enough light sources, you can measure ridiculously tiny displacements – way below the size of an atom."
When he worked in the hard disk industry, Hess used interferometry to detect subtle convolutions on the surface of a hard drive disk. The approach, he said, involved bouncing light off the surface of the disk and comparing the returned light wave to a "reference wave," which had been bounced off a mirror a known distance from the light source.
"If light goes down and bounces off a surface, if that surface is a little bit higher or a little bit lower, that wave's going to be coming at you a little bit later or a little bit sooner," he explained. If the mirror and the experimental surface are the same distance from the light source, the waves, when added together, will cancel one another out. But tiny discrepancies in the two distances will shift the waves a measurable amount.
"Depending on the amplitude of the summed waves, you can determine the vertical position to within nanometers," he said.
No one had figured out how to apply the technique to biological samples, however. The primary challenge, Hess explained, was that in fluorescence microscopy, the key light waves travel from fluorescent tags within the sample itself, not from a readily manipulated laser.
"It's a whole new paradigm," he said.
"It isn't like you can go in there and take a piece of the laser to make a reference beam."
Hess and Janelia Farm colleague Gleb Shtengel saw a way around the problem: They decided to split each particle of light emitted from the fluorescent molecule in two. By splitting the photons, the researchers knew that each fluorescent photon would act as its own reference beam. They adapted the standard PALM microscope to collect this light both above and below the sample. Both of those beams of light travel to a custom-made beam-splitter, which divides the beam and sends it to three different cameras. A molecule's depth within the sample determines how much light reaches each of the cameras.
"We record an image triplet, and depending on how much appears in camera one, two and three, we can say 'this was the height.' This is by far the most sensitive way of measuring vertical height," Hess said.
"iPALM needs only a modest amount of light to generate its sensitive measurements, and that's important for biological imaging," Hess says. Imaging techniques that demand more photons can force researchers to label the proteins they want to see with brighter dyes – which are often bulky and require harsh sample preparations that damage cells. Fluorescent probes such as those compatible with iPALM, on the other hand, can be genetically encoded so that they are manufactured by cells themselves. The power of these glowing markers was recognized with the 2008 Nobel Prize in Chemistry, which was awarded to HHMI investigator Roger Y. Tsien, Osamu Shimomura, and Martin Chalfie for the discovery and development of the first such tool, green fluorescent protein.
"It's beautiful if you can just have the cell attach the label for you," Hess said.
"But the photo-activatable molecules that are used for fluorescence can only spill out so many photons before they finally fizzle. You have to make the most of what you've got. This technique is almost 100 times more efficient than other approaches [for three-dimensional imaging], in terms of harvesting the most information for the brightness of that fluorescent molecule."
Source: Howard Hughes Medical Institute
Contact: Jennifer Michalowski
Reference:
See also Nature Collections
Super-Resolution Microscopy
Produced by Nature Methods
A collection of articles from several leaders in the field highlights the diversity of super-resolution microscopy techniques that have been developed.
.........
ZenMaster
For more on stem cells and cloning, go to CellNEWS at
http://cellnews-blog.blogspot.com/

