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Showing posts with label Viruses. Show all posts
Showing posts with label Viruses. Show all posts

Saturday, December 21, 2013

Herpes viruses associated with cognitive impairment

The herpes virus that produces cold sores during times of stress now has been linked to cognitive impairment throughout life, according to a new University of Michigan study that for the first time shows an impact on children ages 12-16.

Researchers at the U-M School of Public Health study examined the association between two latent herpes viruses—Herpes Simplex Virus Type 1 and cytomegalovirus (CMV)—and cognitive impairment among individuals across three age groups: 6-16, 20-59, and 60 and older. The researchers used data from the National Health and Nutrition Examination Survey.

HSV-1 is the oral herpes virus. Previous research has linked it with neurological disorders associated with aging, including Alzheimer’s disease and dementia, but few studies have examined whether these pathogens may influence cognition beginning early in life.

“This study is a first step in establishing an association between these viruses and cognition across a range of ages in the U.S. population,” said Allison Aiello, associate professor of epidemiology at the U-M School of Public Health.

The research, published in the Journal of Infectious Diseases, demonstrates that HSV-1 is associated with lower reading and spatial reasoning test scores among children ages 12-16; impaired coding speed, which is a measure of visual motor speed and attention, among middle-aged adults; and immediate memory impairment in older adults. CMV also was associated with impairment in coding speed, learning and recall in middle-aged adults.

More than one third of the U.S. population is positive for these viruses by early childhood. Some individuals may not be symptomatic.

“If HSV-1 begins to have impact on cognitive function early in life, HSV-1 infection in childhood may have important consequences for educational attainment and social mobility across the lifespan,” said Amanda Simanek, formerly an assistant research scientist in the U-M Department of Epidemiology and now an assistant professor of epidemiology at the University of Wisconsin-Milwaukee.

“Once acquired, herpes viruses are never cleared from the body and instead persist in a latent state. Such pathogens are, however, subject to reactivation and capable of invading the central nervous system, where they may exert direct damage to brain.”

Simanek said reactivation of herpes viruses triggers the release of pro-inflammatory cytokines, which have been linked to cognitive impairment. Cytokines are hormones involved in cell signaling and regulation; pro-inflammatory cytokines play an important role in the immunological response to infection and tissue injury. Excessive inflammation, however, has been linked to various chronic disease outcomes.

To date, much of the public health focus surrounding herpes viruses has been on treating symptoms and some on prevention.

Herpes viruses associated with cognitive impairment “If future research continues to support this work and identifies a definitive mechanistic pathway, there are several implications for public health preventive measures,” Aiello said. “For example, antivirals targeted against these infections may be recommended as well as continued efforts in developing vaccines to target HSV-1 and CMV.

“These viruses are very ubiquitous and reactivate in response to exposure to stressors. If they are truly detrimental to cognitive function, individuals may want to consider reducing stress to avoid reactivation and possible damage associated with these infections, especially if they are known to be positive for HSV-1 as indicated by the presence of cold sores during times of stress.”

The researchers say further studies are warranted to examine the biological pathways by which these herpes viruses may affect cognitive impairment over time.

Herpes viruses associated with cognitive impairment

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Friday, December 7, 2012

How and why herpes viruses reactivate to cause disease

ScienceDaily (Oct. 31, 2012) — The mere mention of the word "herpes" usually conjures negative images and stereotypes, but most people have been infected with some form of the virus. For most, a sore appears, heals and is forgotten, although the virus remains latent just waiting for the right circumstances to come back. Now, the mystery behind what triggers the virus to become active again is closer to being solved thanks to new research published in the Journal of Leukocyte Biology's November 2012 issue.

In the report, scientists show how the immune system may lose its control over the virus when facing new microbial threats, such as when it must fend off other viral invaders or bacteria.

"Because almost all people are infected by one or more herpes family viruses during their lifetime, the potential impact of these findings are significant," said Charles H. Cook, M.D., FACS, FCCM, director of surgical critical care at The Ohio State University College of Medicine in Columbus, Ohio, and a researcher involved in the work. "We hope that by understanding how these latent viral infections are controlled that we can prevent reactivation events and improve people's lives."

To make this discovery, researchers studied mice with latent herpes family cytomegalovirus (CMV) during severe bacterial infections. They found that T-cells responsible for CMV control were reduced significantly during a new infection with bacteria. This, in effect, reduced the "brakes" which kept the virus under control, allowing the virus to reactivate and cause disease. When the immune system eventually sensed the reactivation, the memory T-cell levels returned to normal, effectively restoring the body's control over the virus.

"Finding ways to control herpes flare ups is important, not only for the health of the person with the virus, but also for preventing its transmission," said John Wherry, Ph.D., Deputy Editor of the Journal of Leukocyte Biology. "This report highlights the important interplay when we are 'co-infected' with more than one microbe and provides important insights into why the immune system sometimes fails as well as how it can regain control of latent herpes virus infections."

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The above story is reprinted from materials provided by Federation of American Societies for Experimental Biology, via EurekAlert!, a service of AAAS.

Note: Materials may be edited for content and length. For further information, please contact the source cited above.

Journal Reference:

J. Campbell, J. Trgovcich, M. Kincaid, P. D. Zimmerman, P. Klenerman, S. Sims, C. H. Cook. Transient CD8-memory contraction: a potential contributor to latent cytomegalovirus reactivation. Journal of Leukocyte Biology, 2012; 92 (5): 933 DOI: 10.1189/jlb.1211635

Note: If no author is given, the source is cited instead.

Disclaimer: This article is not intended to provide medical advice, diagnosis or treatment. Views expressed here do not necessarily reflect those of ScienceDaily or its staff.


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Saturday, September 8, 2012

New way to target viruses could make antiviral drugs more effective

ScienceDaily (July 21, 2010) — Scientists have developed a new way to target viruses which could increase the effectiveness of antiviral drugs.

Instead of attacking the virus itself, the method developed at the University of Edinburgh alters the conditions which viruses need to survive and multiply.

By making the site of infection less hospitable for the virus, the virus becomes less able to mutate and build up resistance to drugs. The researchers were also able to target more than one virus at the same time.

Viruses take up residence in host cells within our body, which produce proteins that enable the virus to multiply and survive.

The study, published in the journal Proceedings of the National Academy of Sciences (PNAS), analysed molecules known as microRNAs, which regulate how much of these proteins are made.

The scientists were able to manipulate the microRNA levels, which enabled them to control a network of proteins and stop viruses from growing.

Most existing antiviral therapies only work against one virus. However, by adapting the virus host environment the researchers were able to target different types of viruses.

It is hoped that the research could lead to new treatments for patients suffering from a range of infections.

Dr Amy Buck, of the University's Centre for Immunity, Infection & Evolution, said: "A problem with current antiviral therapies, which generally target the virus, is that viruses can mutate to become resistant. Since new viral strains emerge frequently, and many infections are difficult to diagnose and treat, it is important to find new ways of targeting infection. Our hope is that we will be able to use host-directed therapies to supplement the natural immune response and disable viruses by taking away what they need to survive."

Scientists studied the herpes family of viruses, which can also cause cancer with the Epstein-Barr virus, and the Semliki Forest virus, which is mainly spread by mosquitoes.

Both viruses have different characteristics. Viruses from the herpes family replicate inside the nuclei of cells, while the Semliki Forest multiplies outside the nucleus of a cell.

Further research has begun to look at how this method could be used to target influenza.

The study was funded by the Wellcome Trust and the Biotechnology and Biological Sciences Research Council.

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The above story is reprinted from materials provided by University of Edinburgh.

Note: Materials may be edited for content and length. For further information, please contact the source cited above.

Journal Reference:

Diwakar Santhakumar, Thorsten Forster, Nouf N. Laqtom, Rennos Fragkoudis, Paul Dickinson, Cei Abreu-Goodger, Sergei A. Manakov, Nila Roy Choudhury, Samantha J. Griffiths, Annaleen Vermeulen, Anton J. Enright, Bernadette Dutia, Alain Kohl, Peter Ghazal, and Amy H. Buck. Combined agonist-antagonist genome-wide functional screening identifies broadly active antiviral microRNAs. Proceedings of the National Academy of Sciences, 2010; DOI: 10.1073/pnas.1008861107

Note: If no author is given, the source is cited instead.

Disclaimer: This article is not intended to provide medical advice, diagnosis or treatment. Views expressed here do not necessarily reflect those of ScienceDaily or its staff.


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Friday, August 24, 2012

To spread, nervous system viruses sabotage cell, hijack transportation

ScienceDaily (May 30, 2012) — Herpes and other viruses that attack the nervous system may thrive by disrupting cell function in order to hijack a neuron's internal transportation network and spread to other cells.

Princeton University researchers made the first observation in neurons that common strains of the herpes virus indirectly take control of a cell's mitochondria, the mobile organelles that regulate a cell's energy supply, communication with other cells, and self-destruction response to infection. The team reports in the journal Cell Host and Microbe that viral infection elevates neuron activity, as well as the cell's level of calcium -- a key chemical in cell communication -- and brings mitochondrial motion to a halt in the cell's axon, which connects to and allows communication with other neurons.

The authors propose that the viruses then commandeer the proteins that mitochondria typically use to move about the cell. The pathogens can then freely travel and reproduce within the infected neuron and more easily spread to uninfected cells. When the researchers made the mitochondria less sensitive to calcium the viruses could not spread as quickly or easily.

These findings reveal a previously unknown and highly efficient mechanism that some of the most common strains of herpes viruses in humans may use to proliferate in the nervous system, said lead author Tal Kramer, a doctoral student in the lab of the paper's co-author Lynn Enquist, the Henry L. Hillman Professor of Molecular Biology and chair of Princeton's molecular biology department.

Kramer and Enquist used rat neurons to study two herpes viruses in the alpha-herpes virus subfamily: pseudorabies virus (PRV), a model alpha-herpes virus that infects animals, and herpes simplex virus 1 (HSV-1), an extremely common human virus that causes cold sores and other lesions. Other human alpha-herpes viruses are responsible for causing diseases such as chicken pox and shingles.

"No one before has looked carefully at mitochondrial motion during alpha-herpes virus infection in neurons. We provide new insight into how these viruses damage cells in the nervous system in ways that are important for the virus to propagate," Kramer said.

"If mitochondria are stopped in their tracks and can't go anywhere, that is potentially very bad," he said. "They are not only the power plants of the cell, but regulate important processes. The virus likely acts to interfere with many of those processes."

Beyond herpes, the Princeton findings present a possible explanation for how other neurotropic viruses such as rabies, West Nile and polio attack and disrupt the nervous system, Kramer said. Although these viruses are different from the herpes family, the fact that HSV-1 and PRV had a similar effect on mitochondrial motion and function suggests that other pathogens could corrupt mitochondria in the same way, he said.

In addition, the paper lays out the implications of distorted mitochondrial function on neuron health. Mitochondrial malfunction is a known factor in non-infectious neurodegenerative conditions such as Alzheimer's disease and Parkinson's disease, Kramer said, though the pathway to this disruption is not entirely known.

"Our model raises some new and exciting possibilities for future research on other important human viruses that can invade the nervous system and cause disease," Kramer said.

"And the fact that alpha-herpes infection damages the same key cellular function as neurodegenerative disorders also is striking," he said. "Understanding how viral infection damages neurons might give us insight into how diseases like Alzheimer's do the same. The viruses we study hijack well-studied cellular pathways that might make an effective target for future therapeutic strategies."

In a healthy neuron, mitochondria move throughout the cell's elongated, tree-like structure to provide energy for various processes that occur throughout the cell. For the strenuous task of long distance intercellular communication, mitochondria move along the axon and synapses, sites of cell-to-cell contact where signaling occurs.

Calcium plays a key role in this cell communication, Kramer explained. A neuron experiences a spike in calcium levels in the axon and synapses when it receives a signal from another neuron. Though a natural rover, mitochondria contain a protein called Miro that detects this rush of calcium and stops the organelles in the synapse. The mitochondria then provide energy as the cell passes a signal along to the next neuron.

Through live-cell imaging of neurons grown in the Enquist lab, Kramer and Enquist observed how this process becomes corrupted by HSV-1 and PRV -- and how the viruses need the process to spread.

The chaos begins when the virus ramps up the neuron's firing of electrical signals, as was first reported in a 2009 paper published in the journal PLoS Pathogens by Enquist; first author Kelly McCarthy, a past member of Enquist's lab who received her doctoral degree from Princeton in 2011; and David Tank, the Henry L. Hillman Professor of Molecular Biology and co-director of the Princeton Neuroscience Institute.

In the latest research, Kramer and Enquist found that this spike in electrical activity floods the axon and synapses with calcium. As a consequence, the Miro proteins detect the increase in calcium and stop mitochondrial motion. The virus' control over the cell immediately dropped off, however, when Kramer and Enquist interfered with Miro's ability to respond to the uptick in calcium levels. Though the viral infection was not completely disrupted, it could not spread within or to other cells with the same efficiency.

Based on these observations, Kramer and Enquist suggest that viruses such as HSV-1 and PRV may bring mitochondria to a standstill in order to hijack their transportation. Mitochondria move about the neuron on the backs of motor proteins dynein and kinesin-1. During viral infection, mitochondria shed these proteins to stop moving when Miro detects an upsurge in cellular calcium.

Previous research has shown that HSV-1 and PRV also use kinesin-1 specifically for transport within an infected cell. Thus, Kramer said, his and Enquist's work suggests that it is very likely that the viruses disrupt mitochondrial motility so that they can hitch themselves to the now available kinesin-1 proteins and move through the nervous system more efficiently.

James Alwine, a University of Pennsylvania professor of cancer biology, said that the Princeton research is a significant contribution to a growing body of research that describes how viruses seize cellular motor proteins such as kinesin-1.

While the findings have therapeutic potential -- particularly in helping show how balancing cellular calcium might subdue viral infection -- the demonstration that viruses can move through an infected cell with the ease of something as essential as mitochondria is notable in itself, said Alwine, who is familiar with the research but had no role in it.

"Determining the specific mechanism by which Miro function is abrogated may provide additional therapeutic avenues, but this also is marvelous basic research that does not have to be justified by its therapeutic potential," he said.

"To disrupt the loading of mitochondria to motor proteins so that virions [complete virus particles] can load instead is a clever way for a virus to be transported and is a great new idea provoked by this data," Alwine said. "While other neurotropic viruses would have to be tested specifically, movement in nerve cells is required by all of them. Thus, this observation provides a starting place and a model mechanism for research with those other pathogens."

This research was published May 17 in the journal Cell Host and Microbe, and supported by the National Institutes of Health and a National Science Foundation Graduate Research Grant.

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Story Source:

The above story is reprinted from materials provided by Princeton University.

Note: Materials may be edited for content and length. For further information, please contact the source cited above.

Journal Reference:

Tal Kramer, Lynn W. Enquist. Alphaherpesvirus Infection Disrupts Mitochondrial Transport in Neurons. Cell Host & Microbe, 2012; 11 (5): 504 DOI: 10.1016/j.chom.2012.03.005

Note: If no author is given, the source is cited instead.

Disclaimer: This article is not intended to provide medical advice, diagnosis or treatment. Views expressed here do not necessarily reflect those of ScienceDaily or its staff.


View the original article here

Saturday, June 9, 2012

To spread, nervous system viruses sabotage cell, hijack transportation

ScienceDaily (May 30, 2012) — Herpes and other viruses that attack the nervous system may thrive by disrupting cell function in order to hijack a neuron's internal transportation network and spread to other cells.

Princeton University researchers made the first observation in neurons that common strains of the herpes virus indirectly take control of a cell's mitochondria, the mobile organelles that regulate a cell's energy supply, communication with other cells, and self-destruction response to infection. The team reports in the journal Cell Host and Microbe that viral infection elevates neuron activity, as well as the cell's level of calcium -- a key chemical in cell communication -- and brings mitochondrial motion to a halt in the cell's axon, which connects to and allows communication with other neurons.

The authors propose that the viruses then commandeer the proteins that mitochondria typically use to move about the cell. The pathogens can then freely travel and reproduce within the infected neuron and more easily spread to uninfected cells. When the researchers made the mitochondria less sensitive to calcium the viruses could not spread as quickly or easily.

These findings reveal a previously unknown and highly efficient mechanism that some of the most common strains of herpes viruses in humans may use to proliferate in the nervous system, said lead author Tal Kramer, a doctoral student in the lab of the paper's co-author Lynn Enquist, the Henry L. Hillman Professor of Molecular Biology and chair of Princeton's molecular biology department.

Kramer and Enquist used rat neurons to study two herpes viruses in the alpha-herpes virus subfamily: pseudorabies virus (PRV), a model alpha-herpes virus that infects animals, and herpes simplex virus 1 (HSV-1), an extremely common human virus that causes cold sores and other lesions. Other human alpha-herpes viruses are responsible for causing diseases such as chicken pox and shingles.

"No one before has looked carefully at mitochondrial motion during alpha-herpes virus infection in neurons. We provide new insight into how these viruses damage cells in the nervous system in ways that are important for the virus to propagate," Kramer said.

"If mitochondria are stopped in their tracks and can't go anywhere, that is potentially very bad," he said. "They are not only the power plants of the cell, but regulate important processes. The virus likely acts to interfere with many of those processes."

Beyond herpes, the Princeton findings present a possible explanation for how other neurotropic viruses such as rabies, West Nile and polio attack and disrupt the nervous system, Kramer said. Although these viruses are different from the herpes family, the fact that HSV-1 and PRV had a similar effect on mitochondrial motion and function suggests that other pathogens could corrupt mitochondria in the same way, he said.

In addition, the paper lays out the implications of distorted mitochondrial function on neuron health. Mitochondrial malfunction is a known factor in non-infectious neurodegenerative conditions such as Alzheimer's disease and Parkinson's disease, Kramer said, though the pathway to this disruption is not entirely known.

"Our model raises some new and exciting possibilities for future research on other important human viruses that can invade the nervous system and cause disease," Kramer said.

"And the fact that alpha-herpes infection damages the same key cellular function as neurodegenerative disorders also is striking," he said. "Understanding how viral infection damages neurons might give us insight into how diseases like Alzheimer's do the same. The viruses we study hijack well-studied cellular pathways that might make an effective target for future therapeutic strategies."

In a healthy neuron, mitochondria move throughout the cell's elongated, tree-like structure to provide energy for various processes that occur throughout the cell. For the strenuous task of long distance intercellular communication, mitochondria move along the axon and synapses, sites of cell-to-cell contact where signaling occurs.

Calcium plays a key role in this cell communication, Kramer explained. A neuron experiences a spike in calcium levels in the axon and synapses when it receives a signal from another neuron. Though a natural rover, mitochondria contain a protein called Miro that detects this rush of calcium and stops the organelles in the synapse. The mitochondria then provide energy as the cell passes a signal along to the next neuron.

Through live-cell imaging of neurons grown in the Enquist lab, Kramer and Enquist observed how this process becomes corrupted by HSV-1 and PRV -- and how the viruses need the process to spread.

The chaos begins when the virus ramps up the neuron's firing of electrical signals, as was first reported in a 2009 paper published in the journal PLoS Pathogens by Enquist; first author Kelly McCarthy, a past member of Enquist's lab who received her doctoral degree from Princeton in 2011; and David Tank, the Henry L. Hillman Professor of Molecular Biology and co-director of the Princeton Neuroscience Institute.

In the latest research, Kramer and Enquist found that this spike in electrical activity floods the axon and synapses with calcium. As a consequence, the Miro proteins detect the increase in calcium and stop mitochondrial motion. The virus' control over the cell immediately dropped off, however, when Kramer and Enquist interfered with Miro's ability to respond to the uptick in calcium levels. Though the viral infection was not completely disrupted, it could not spread within or to other cells with the same efficiency.

Based on these observations, Kramer and Enquist suggest that viruses such as HSV-1 and PRV may bring mitochondria to a standstill in order to hijack their transportation. Mitochondria move about the neuron on the backs of motor proteins dynein and kinesin-1. During viral infection, mitochondria shed these proteins to stop moving when Miro detects an upsurge in cellular calcium.

Previous research has shown that HSV-1 and PRV also use kinesin-1 specifically for transport within an infected cell. Thus, Kramer said, his and Enquist's work suggests that it is very likely that the viruses disrupt mitochondrial motility so that they can hitch themselves to the now available kinesin-1 proteins and move through the nervous system more efficiently.

James Alwine, a University of Pennsylvania professor of cancer biology, said that the Princeton research is a significant contribution to a growing body of research that describes how viruses seize cellular motor proteins such as kinesin-1.

While the findings have therapeutic potential -- particularly in helping show how balancing cellular calcium might subdue viral infection -- the demonstration that viruses can move through an infected cell with the ease of something as essential as mitochondria is notable in itself, said Alwine, who is familiar with the research but had no role in it.

"Determining the specific mechanism by which Miro function is abrogated may provide additional therapeutic avenues, but this also is marvelous basic research that does not have to be justified by its therapeutic potential," he said.

"To disrupt the loading of mitochondria to motor proteins so that virions [complete virus particles] can load instead is a clever way for a virus to be transported and is a great new idea provoked by this data," Alwine said. "While other neurotropic viruses would have to be tested specifically, movement in nerve cells is required by all of them. Thus, this observation provides a starting place and a model mechanism for research with those other pathogens."

This research was published May 17 in the journal Cell Host and Microbe, and supported by the National Institutes of Health and a National Science Foundation Graduate Research Grant.

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Story Source:

The above story is reprinted from materials provided by Princeton University.

Note: Materials may be edited for content and length. For further information, please contact the source cited above.

Journal Reference:

Tal Kramer, Lynn W. Enquist. Alphaherpesvirus Infection Disrupts Mitochondrial Transport in Neurons. Cell Host & Microbe, 2012; 11 (5): 504 DOI: 10.1016/j.chom.2012.03.005

Note: If no author is given, the source is cited instead.

Disclaimer: This article is not intended to provide medical advice, diagnosis or treatment. Views expressed here do not necessarily reflect those of ScienceDaily or its staff.


View the original article here

Monday, April 16, 2012

Punching Holes Into Herpes Viruses

ScienceDaily (June 11, 2009) — A joint international research effort by Dr. Wouter Roos and Dr. Gijs Wuite from the VU University Amsterdam and Dr. Kerstin Radtke and Dr. Beate Sodeik from the Medizinische Hochschule Hannover has led to the first description of the mechanics of so-called nuclear herpes virus capsids.

These viral particles are complex icosahedral protein shells covering and shielding the genetic material of herpes viruses, and are purified from the nuclei of infected cells. The results of this research were published online on June 1st, 2009 in the journal Proceedings of the National Academy of Sciences USA.

Nuclear Herpes Simplex Virus particles measure only 125 nanometers (approximately one ten-thousandth of a millimeter), therefore, the structure and surface of individual particles can only be studied with methods that have a resolution that is higher than that of a light microscope. With the help of an Atomic Force Microscope, one can now "feel" the particles and image them by scanning systematically over the surface, like the needle on a record player. From these measurements, researchers can assemble a detailed topographic relief of individual viral structures. This can be done in liquid under conditions mimicking living cells. Most importantly, this system allows the mechanical manipulation of particles, as one really touches them.

The researchers used this approach to gain new insights into the mechanics of these viral particles: they punched holes into them, one by one. The force needed to do this gave information about the elastic and mechanical properties of the herpes virus particles. They showed that they are strengthened during the assembly by packaging of the viral DNA into the shell. This reinforcement of the virus probably occurs at the twelve corner points of its icosahedral shell. The unravelling of this viral stabilisation mechanism could open new possibilities to fight herpes infections but could also provide new ways to employ viral particles as nano-containers for delivering drugs or genetic material.

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The above story is reprinted from materials provided by VU University Amsterdam.

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Note: If no author is given, the source is cited instead.

Disclaimer: This article is not intended to provide medical advice, diagnosis or treatment. Views expressed here do not necessarily reflect those of ScienceDaily or its staff.


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