Mostrando entradas con la etiqueta Órganos. Mostrar todas las entradas
Mostrando entradas con la etiqueta Órganos. Mostrar todas las entradas

viernes, 3 de enero de 2014

Getting CLARITY: Hydrogel process developed at Stanford creates transparent brain

Stanford bioengineers have transformed an intact, post-mortem mouse brain into a transparent three-dimensional structure that keeps all the fine wiring and molecular structures in place. Known as CLARITY, the technique stands to transform our understanding of the brain and indeed of any biological tissue.
Combining neuroscience and chemical engineering, researchers at Stanford University have developed a process that renders a mouse brain transparent. The postmortem brain remains whole — not sliced or sectioned in any way — with its three-dimensional complexity of fine wiring and molecular structures completely intact and able to be measured and probed with visible light and chemicals.

The process, called CLARITY, ushers in an entirely new era of whole-organ imaging that stands to fundamentally change our scientific understanding of the most important, but least understood of organs, the brain, and potentially other organs, as well.

The process is described in a paper to be published online April 10 in Nature by bioengineer and psychiatrist Karl Deisseroth leading a multidisciplinary team, including postdoctoral scholar Kwanghun Chung.

Studying intact systems with this sort of molecular resolution and global scope — to be able to see the fine detail and the big picture at the same time — has been a major unmet goal in biology, and a goal that CLARITY begins to address,” Deisseroth said.



CLARITY provides the ability to do a fly-through of an intact mouse brain using a fluorescent imaging technique on a complete brain that previously could only be performed on a brain sectioned into thin slices. (Video: Karl Deisseroth and Kwanghun Chung, Stanford University)

This feat of chemical engineering promises to transform the way we study the brain’s anatomy and how disease changes it,” said Thomas Insel, MD, director of the National Institute of Mental Health. “No longer will the in-depth study of our most important three-dimensional organ be constrained by two-dimensional methods.

The research in this study was performed primarily on a mouse brain, but the researchers have used CLARITY on zebrafish and on preserved human brain samples with similar results, establishing a path for future studies of human samples and other organisms.

CLARITY promises to revolutionize our understanding of how local and global changes in brain structure and activity translate into behavior,” said Paul Frankland, PhD, a senior scientist in neurosciences and mental health at the Hospital for Sick Children Research Institute in Toronto, who was not involved in the research. Frankland’s colleague, senior scientist Sheena Josselyn, PhD, added that the process could turn the brain from “a mysterious black box” into something essentially transparent. 

An inscrutable place

The mound of convoluted grey matter and wiring that is the brain is a complex and inscrutable place. Neuroscientists have struggled to fully understand its circuitry in their quest to comprehend how the brain works, and why, sometimes, it doesn’t.

CLARITY is the result of a research effort in Deisseroth’s lab to extract the opaque elements — in particular the lipids — from a brain and yet keep the important features fully intact. Lipids are fatty molecules found throughout the brain and body. In the brain, especially, they help form cell membranes and give the brain much of its structure. Lipids pose a double challenge for biological study, however, because they make the brain largely impermeable both to chemicals and to light.

Neuroscientists would have liked to extract the lipids to reveal the brain’s fine structure without slicing or sectioning, but for one major hitch: removing these structurally important molecules causes the remaining tissue to fall apart.

Prior investigations have focused instead on automating the slicing/sectioning approach, or in treating the brain with organic molecules that facilitate the penetration of light only, but not macromolecular probes. With CLARITY, Deisseroth’s team has taken a fundamentally different approach.

“We drew upon chemical engineering to transform biological tissue into a new state that is intact but optically transparent and permeable to macromolecules,” said Chung, the paper’s first author.

This new form is created by replacing the brain’s lipids with a hydrogel. The hydrogel is built from within the brain itself in a process conceptually similar to petrification, using what is initially a watery suspension of short, individual molecules known as hydrogel monomers. The intact, postmortem brain is immersed in the hydrogel solution and the monomers infuse the tissue. Then, when “thermally triggered,” or heated slightly to about body temperature, the monomers begin to congeal into long molecular chains known as polymers, forming a mesh throughout the brain. This mesh holds everything together, but, importantly, it does not bind to the lipids.

With the tissue shored up in this way, the team is able to vigorously and rapidly extract lipids through a process called electrophoresis. What remains is a 3-D, transparent brain with all of its important structures — neurons, axons, dendrites, synapses, proteins, nucleic acids and so forth — intact and in place.

Going things one better

CLARITY then goes one better. In preserving the full continuity of neuronal structures, CLARITY not only allows tracing of individual neural connections over long distances through the brain, but also provides a way to gather rich, molecular information describing a cell’s function is that is not possible with other methods.

We thought that if we could remove the lipids nondestructively, we might be able to get both light and macromolecules to penetrate deep into tissue, allowing not only 3-D imaging, but also 3-D molecular analysis of the intact brain,” said Deisseroth, who holds the D.H. Chen Professorship.

Using fluorescent antibodies that are known to seek out and attach themselves only to specific proteins, Deisseroth’s team showed that 
  • it can target specific structures within the CLARITY-modified — or “clarified” — mouse brain and 
  • make those structures and only those structures light up under illumination. The researchers 
  • can trace neural circuits through the entire brain or 
  • explore deeply into the nuances of local circuit wiring. They 
  • can see the relationships between cells and 
  • investigate subcellular structures. They
  • can even look at chemical relationships of protein complexes, nucleic acids and neurotransmitters.
Being able to determine the molecular structure of various cells and their contacts through antibody staining is a core capability of CLARITY, separate from the optical transparency, which enables us to visualize relationships among brain components in fundamentally new ways,” said Deisseroth, who is one of 15 experts on the “dream team” that will map out goals for the $100 million brain research initiative announced April 2 by President Obama.

A three-dimensional rendering of clarified brain imaged from below (ventral half). (Image: Courtesy of the Deisseroth lab)

And in yet another significant capability from a research standpoint, researchers are now able to destain the clarified brain, flushing out the fluorescent antibodies and repeating the staining process anew using different antibodies to explore different molecular targets in the same brain. This staining/destaining process can be repeated multiple times, the authors showed, and the different data sets aligned with one another.

Opening the door

CLARITY has accordingly made it possible to perform highly detailed, fine-structural analysis on intact brains — even human tissues that have been preserved for many years, the team showed. Transforming human brains into transparent-but-stable specimens with accessible wiring and molecular detail may yield improved understanding of the structural underpinnings of brain function and disease.

Beyond the immediate and apparent benefit to neuroscience, Deisseroth cautioned that CLARITY has leapfrogged our ability to deal with the data. “Turning massive amounts of data into useful insight poses immense computational challenges that will have to be addressed. We will have to develop improved computational approaches to image segmentation, 3-D image registration, automated tracing and image acquisition,” he said.

Indeed, such pressures will increase as CLARITY could begin to support a deeper understanding of large-scale intact biological systems and organs, perhaps even entire organisms.

Of particular interest for future study are intrasystem relationships, not only in the mammalian brain but also in other tissues or diseases for which full understanding is only possible when thorough analysis of single, intact systems can be conducted,” Deisseroth said. “CLARITY may be applicable to any biological system, and it will be interesting to see how other branches of biology may put it to use.

Other co-authors include undergraduate student Jenelle Wallace; graduate students Sung-Yon Kim, Kelly Zalocusky, Joanna Mattis, Aleksandra Denisin and Logan Grosenick; research assistants Sandhiya Kalyanasundaram, Julie Mirzabekov, Sally Pak and Charu Ramakrishnan; postdoctoral scholars Aaron Andalman, PhD, and Tom Davidson, PhD; former undergraduate student Hannah Bernstein; and former staff scientist Viviana Gradinaru.

The research is supported by the National Institute of Mental Health (grant MH099647); the National Science Foundation; the Simons Foundation; the President and Provost of Stanford University; the Wiegers, Snyder, Reeves, Gatsby and Yu foundations; the DARPA REPAIR program; and the Burroughs Wellcome Fund.

Information about Stanford’s Department of Bioengineering, which also supported the work, is available at http://bioengineering.stanford.edu. The department is jointly operated by the School of Engineering and the School of Medicine.

Andrew Myers is associate director of communications for the Stanford University School of Engineering.


ORIGINAL: Stanford U
Andrew Myers | Stanford Engineering 

 Tom Abate
tabate@stanford.edu
Jamie Beckett
jbeckett@stanford.edu
April 10, 2013

jueves, 15 de noviembre de 2012

Organ Printing from Stem Cells


Researchers Have Figured Out How to Use Modified Inkjet Technology to Print Cells

Tissue engineering is bringing together advances from stem cell biology, microfluidics, robotics, and 3-D cell culture to develop novel products for the drug development and toxicity testing sectors. The ability to create miniature tissue or even human organs-on-a-chip is valuable for a number of reasons.

First, it has been shown that cells growing in more physiological 3-D cultures behave differently to the same cells when grown in the type of 2-D cultures currently being used in the drug development sector. Second, when analyzing the potential toxic effects that drug metabolites may have on other cell types, it would be useful to have an in vitro system that links the human liver to a chamber containing the test cell type.

Third, current analysis of potential metabolite toxicity involves the use of a large number of experimental animals (mostly rodents). This is not ideal as animal models are both costly to run and less likely to give an accurate representation of metabolism and toxicity in the human organ. Ongoing model development also seeks to reduce the number of animals used in such work for ethical reasons.

Researchers at Edinburgh’s Heriot-Watt University have developed valve-based cell-printing processes that are able to deliver cells in specific patterns in volumes as low as 2 nL or less than 5 cells per droplet. Using cells derived by Roslin Cells, sister company Roslin Cellab has demonstrated the first example of printing human embryonic stem cells using this valve-based printing approach. The printed cells are to be subjected to a directed differentiation protocol to produce human hepatocyte-like cells. In order to analyze the printed and differentiated cells, a development product from Reinnervate Limited will be used to enable us to maintain printed 3-D stem cells on the upper surface.

The Cell Printer

Figure 1. Schematic drawing of the cell printer system. Three days after printing, hES cells remained positive for the Oct4 pluripotency marker (right).

In recent years, the use of a simple inkjet technology for cell printing has triggered tremendous interest and established the field of biofabrication. In laboratories, we have seen exciting demonstrations of printing 2-D tissue like skins and 3-D structures such as artery and kidney; however, there are still many challenges to overcome before the technology can be used clinically to generate transplantable organs.

One of the key challenges has been the development of printing nozzles that are more controllable and gentle on the cells to preserve cell and tissue viability. We recently developed a valve-based dual-nozzle printer (Figure 1) that has been validated to print highly viable cells including the first example of printing human embryonic stem cells for tissue regeneration.

The Cells

Figure 2. 2-D culture of RC10 derived hepatocyte-like cells (HLCs). Day 17 HLCs are highly positive (green) for albumin and hepatocyte nuclear factor 4a expression and also show good tight junction formation (ZO-1).
Human embryonic stem cells (hESC) are pluripotent and can thus be used to generate many cell types present in the human body. In addition, the cells are highly expandable, which enables large numbers to be produced prior to differentiation into the cell type required.

A panel of 5 of the 20 hESC lines derived by Roslin Cells were used to make embryoid bodies, which are cell aggregates that are allowed to differentiate in an undirected manner. Our special interest is in the production of hepatocytes, so we selected the hESC line that showed the strongest natural tendency to make these cells (RC10).

After 17 days of directed differentiation, key markers of mature hepatocytes were expressed by RC10 derived hepatocyte-like cells (Figure 2).

In addition, the hepatocyte-like cells were shown to be metabolically active, demonstrating basal CYP3A activity, albumin secretion, urea genesis, and testosterone metabolism.

A feature of hESC lines that has made them more difficult to work with is that, when dissociated into a single-cell suspension and re-seeded into fresh plates, they have a tendency to differentiate spontaneously. For this reason, many laboratories prefer to passage the cells physically without using trypsin; however, this introduces great variance in cell number between wells after re-plating and should be avoided.

Interestingly, the RC10 hESC line is also more resistant to the deleterious effects of single-cell passaging, making it a good choice for producing hepatocytes for cell-based assays. This feature also means that RC10 can be used effectively in cell printing processes to establish artificial stem cell colonies of specific sizes and shapes and to create cell spheroids.


Figure 3. Production of uniform-sized stem cell spheroids for subsequent differentiation.
For some applications it is useful to deliver cell aggregates rather than a cell suspension. For example, when differentiating stem cells into blood cells such as macrophages, it is necessary to proceed via an embryoid body (EB) intermediate. The size of these EBs partly determines the efficiency with which the macrophages can be produced and is controlled by the number of cells used to make the initial pre-EB spheroids.

Printing of pre-formed stem cell spheroids may also enable 3-D tissue to be built up more quickly. Figure 3 shows how stem cell spheroids of varying size can be created reproducibly using a dual printing head that delivers cells in medium or medium alone. After printing, the well plate is inverted to allow cells to gravity aggregate and begin dividing.

Once spheroid growth has reached the required level, the spheroids can be transferred to the surface upon which the new tissue is to be created. Establishing spheroids with between 5 and 140 dissociated cells resulted in spheroids of 0.25–0.6 mm diameter.

Discussion and Perspectives

This work demonstrates that the valve-based printing process is gentle enough to maintain stem cell viability, accurate enough to produce spheroids of uniform size, and that printed cells maintain their pluripotency.

In subsequent experiments, we will print and differentiate cells into hepatocytes and test for metabolic activity and other markers of mature hepatocyte phenotype. Following on from this we will look to establish 3-D stem cell cultures that will be differentiated and analyzed for an expected improvement in metabolic activity and functional life span. These will be made either by delivering the cells to a surface in a hydrogel/medium mixture, or printing them on top of a matrix and building up cell layers with incorporation of additional matrix compounds.

We see these products as being potentially valuable to the in vitro drug development and toxicity-testing sectors, though clearly by demonstrating improved hepatocyte function and longevity in 3-D cultures we will also be paving the way for cells to be incorporated into clinical protocols either for patient implantation or inclusion in a bio-artificial liver device.



Will Wenmiao Shu, Ph.D. (W.Shu@hw.ac.uk), is a lecturer at Heriot-Watt University, Jason King, Ph.D. (Jason.King@RoslinCellab.com), is business development manager at Roslin Cellab. Stem cell printing and analyses were carried out by Seb Greenhough and Alan Faulkner.