Showing posts with label environmental factors. Show all posts
Showing posts with label environmental factors. Show all posts

Saturday, December 4, 2010

Gene-Environment Interactions Could Influence Several Psychiatric Disorders; 'Schizophrenia Gene' May Also Trigger Anxiety, Depression


A December 3rd media release from Johns Hopkins University:
BALTIMORE, Dec. 3 (AScribe Newswire) -- Male mice born with a genetic mutation that's believed to make humans more susceptible to schizophrenia develop behaviors that mimic other major psychiatric illnesses when their mothers are exposed to an assault to the immune system while pregnant, according to new Johns Hopkins research.

What was most surprising to researchers was that the mental illnesses the mice developed didn't look like schizophrenia, which they were genetically predisposed to, but more like mood and anxiety disorders, suggesting that one gene mutation can lead to different mental illnesses when influenced by the same environmental factor.

"Psychiatric diseases have genetic roots, but genes alone do not explain the entire disease," says Mikhail V. Pletnikov, M.D., Ph.D. [pictured], an associate professor of psychiatry and behavioral sciences at the Johns Hopkins University School of Medicine and the study's leader. "When we study genes in conjunction with environmental challenges, we can better understand how diseases develop."

Pletnikov hopes his research, which appears in the December issue of the journal Biological Psychiatry, may be a small step toward eventually finding ways to prevent mental illnesses in humans. "The main goal here is to understand how gene-environment interactions take place on the molecular level so that you can find suitable drug targets, ultimately stopping these diseases before they happen," he says. "It all can start before birth."

Pletnikov and his team studied a mutant human form of the Disrupted-in-Schizophrenia 1 gene (mhDISC1), breeding mice in the laboratory with this mutation. This genetic variation is believed to be associated with vulnerability to major mental illnesses in humans. The mhDISC1 mice were impregnated, and at the ninth day of gestation (the equivalent to the middle or end of the first trimester in a human pregnancy), one group was given a drug to stimulate the immune system, forcing it to react as if it had been exposed to a virus like influenza or a parasite like toxoplasma. The rest of the pregnant mice - whose fetuses also had the mutated gene- were kept as a control group and their immune systems were left unchallenged.

The study found that prenatal immune stimulation in mhDISC1 mice produced behavioral abnormalities that were not present in the unchallenged mice: elevated anxiety, depression-like responses, an altered pattern of sociability and a weakened response to stress. The unchallenged mice did not show those behaviors, even though they also had the mutant gene. Pletnikov says the findings suggest that the same mutation, in this case mhDISC1, can lead to different illnesses, depending on interactions with environmental factors.

This may provide an explanation, he says, for why the extended Scottish family in which scientists first discovered this genetic mutation had members who suffered not solely from schizophrenia but also from major depression and bipolar disorder. "This one gene mutation can lead to very different clinical manifestations," Pletnikov says.

Along with the behavior differences, Pletnikov and his team also found that parts of the brain, including the amygdala and the hypothalamus, were smaller in the mice that had been prenatally challenged. A similar abnormality can be found in those same areas of the brain in humans with major depression and bipolar disorder.

Previous studies have suggested that the prenatal immune response to a microbe - be it a major illness or just transient flu-like symptoms barely noticed by the pregnant woman - may be responsible for the increased incidence of adult psychopathology in humans. But this hypothesis, Pletnikov says, has been difficult to prove. Using this mouse model, he suggests, is a valuable way to study the relationship between gene-environment interactions and mental illness, and should be replicated to find more of these interactions to gain a better understanding of these relationships.

Future studies, he says, will try to sort out whether different timing or stimulating different parts of the immune system might lead to specific types of mental illness, as well as explore the consequences of other environmental adverse events such as stress or drug abuse.

Other Johns Hopkins researchers on the study include Bagrat Abazyan, M.D.; Jun Nomura, Ph.D.; Geetha Kannan; Koko Ishizuka, Ph.D.; Kellie L. Tamashiro, Ph.D.; Frederick Nucifora, Ph.D.; Vladimir Pogorelov, Ph.D.; Chunxia Yang; Carlos Pardo, M.D.; Susumu Mori, Ph.D.; Atsushi Kamiya, M.D., Ph.D.; Akira Sawa, M.D., Ph.D.; and Christopher A. Ross, M.D., Ph.D.

The study was supported by the National Institute of Mental Health, Autism Speaks, the National Alliance for Research on Schizophrenia and Depression, the Mortimer W. Sackler Foundation, the Cell Science Research Foundation and the National Institutes of Health/National Institute on Drug Abuse-Intramural Research Program.

For more information: http://www.hopkinsmedicine.org/psychiatry/research/neurobiology/research_labs/behavioral_pletnikov.html

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CONTACT: Stephanie Desmon, Johns Hopkins Medicine Media Relations and Public Affairs, 410-955-8665, sdesmon1@jhmi.edu

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Saturday, July 17, 2010

Largest effort to find gene-environment interactions underlying schizophrenia risk



An article posted on July 16th by news-medical.net:
At the 23rd ECNP Congress 2010 in Amsterdam, Professor Dr. Jim van Os, Chairman of the Department of Psychiatry and Neuropsychology at Maastricht University Medical Centre, The Netherlands, will present the EU-GEI project, involving more than 7,500 patients and their families, which brings together a multidisciplinary research team from 15 countries in the largest effort to date to find gene-environment interactions underlying schizophrenia risk. In particular, he will explain the development of tools that will make it possible to monitor, and possibly modify, vulnerability at the behavioural level, thus preventing transition to overt illness.

Schizophrenia and related psychotic disorders are the most mysterious and costliest of mental disorders in terms of human suffering and societal expenditure, representing a major challenge to scientists. Until recently, researchers had relatively few starting points in trying to unravel the causes of psychosis and to identify better treatments. While epidemiological research has characterised powerful environmental effects on schizophrenia risk, twin and family studies have established that more than half of the vulnerability for schizophrenia is of genetic origin. However, despite enormous investments, it has proven extremely difficult to identify molecular genetic variants underlying schizophrenia liability. According to the model of gene-environment interaction, genes influencing schizophrenia risk may do so indirectly by making individuals more sensitive to the effects of causal environmental risk factors (e.g. urbanisation, migration, cannabis use, childhood trauma). Now, for the first time, a focused scientific collaboration has been organised in Europe in order to elucidate the causes of schizophrenia, focussing on both genes and environments in the same research project.

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Tuesday, March 2, 2010

Scientists identify age-associated defects in schizophrenia


A March 1st news release from The Scripps Research Institute:
Gene network-based analysis reveals unexpected results

LA JOLLA, CA – March 1, 2010 –The underlying causes of the debilitating psychiatric disorder schizophrenia remain poorly understood. In a new study published online in Genome Research March 2, 2010, however, scientists report that a powerful gene network analysis has revealed surprising new insights into how gene regulation and age play a role in schizophrenia.

Researchers are actively working to identify the direct cause of schizophrenia, likely rooted in interactions between genes and the environment resulting in abnormal gene expression in the central nervous system. Scientists have been studying expression changes in schizophrenia on an individual gene basis, yet this strategy has explained only a portion of the genetic risk.

In the new work, a team of researchers led by Associate Professor Elizabeth Thomas [pictured] of The Scripps Research Institute has taken a novel approach to this problem, performing a gene network-based analysis that revealed surprising insight into schizophrenia development.

The group analyzed gene expression data from the prefrontal cortex, a region of the brain associated with schizophrenia, sampled post-mortem from normal individuals and schizophrenia patients ranging from 19 to 81 years old. However, instead of just looking at genes individually, Thomas and colleagues at the Scripps Translational Science Institute, Nicholas Schork and Ali Torkamani, considered interactions between genes, as well as groups of genes that showed similar patterns of expression, to identify dysfunctional cellular pathways in schizophrenia.

"Once gene co-expression networks are identified," said Thomas, "we can then ask how they are affected by factors such as age or drug treatment, or if they are associated with particular cell types in the brain."

The gene network analysis suggested that normal individuals and schizophrenia patients have an unexpectedly similar connectivity between genes, but the most surprising finding was a significant link between aging and gene expression patterns in schizophrenia. The team identified several groups of co-expressed genes that behaved differently in schizophrenia patients compared to normal subjects when age was considered.

A particularly striking age-related difference in co-expression was found in a group of 30 genes related to developmental processes of the nervous system. Normally these genes are turned off as a person ages, but in schizophrenia patients the genes remain active. This critical finding strongly suggests that age-related aberrant regulation of genes important for development can explain at least part of the manifestation of schizophrenia.

Thomas explained that these findings help to refine the developmental hypothesis of schizophrenia, which states that one or more pathogenic "triggers" occur during critical periods of development to increase risk of the disease. Specifically, this work indicates that abnormal gene expression in developmentally related genes might be a significant pathogenic trigger, occurring over a broader time-scale than expected.

"Rather than a pathological trigger occurring at a critical developmental time point," said Thomas, "the trigger is ongoing throughout development and aging."

Furthermore, Thomas noted that the new study supports early intervention and treatment of schizophrenia. Treatment approaches aimed at averting gene expression changes and altering the course of the disease could be specifically tailored to the age of the patient.

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In addition to Thomas, Torkamani, and Schork, authors of the study, "Coexpression network analysis of neural tissue reveals perturbations in developmental processes in schizophrenia," include Brian Dean of the Mental Health Research Institute (Australia). See Genome Res doi:10.1101/gr.101956.109.

This work was supported by the Scripps Translational Science Institute Clinical Translational Science Award, the National Institutes of Health, and a Scripps Dickinson Fellowship.

Interested reporters may obtain copies of the manuscript from Peggy Calicchia, Editorial Secretary, Genome Research (calicchi@cshl.edu; +1-516-422-4012).


About The Scripps Research Institute


The Scripps Research Institute is one of the world's largest independent, non-profit biomedical research organizations, at the forefront of basic biomedical science that seeks to comprehend the most fundamental processes of life. Scripps Research is internationally recognized for its discoveries in immunology, molecular and cellular biology, chemistry, neurosciences, autoimmune, cardiovascular, and infectious diseases, and synthetic vaccine development. Established in its current configuration in 1961, it employs approximately 3,000 scientists, postdoctoral fellows, scientific and other technicians, doctoral degree graduate students, and administrative and technical support personnel. Scripps Research is headquartered in La Jolla, California. It also includes Scripps Florida, whose researchers focus on basic biomedical science, drug discovery, and technology development. Scripps Florida is located in Jupiter, Florida.

Contact: Keith McKeown
kmckeown@scripps.edu
858-784-8134
Scripps Research Institute


About Genome Research


Launched in 1995, Genome Research (www.genome.org) is an international, continuously published, peer-reviewed journal that focuses on research that provides novel insights into the genome biology of all organisms, including advances in genomic medicine. Among the topics considered by the journal are genome structure and function, comparative genomics, molecular evolution, genome-scale quantitative and population genetics, proteomics, epigenomics, and systems biology. The journal also features exciting gene discoveries and reports of cutting-edge computational biology and high-throughput methodologies.


About Cold Spring Harbor Laboratory Press


Cold Spring Harbor Laboratory is a private, nonprofit institution in New York that conducts research in cancer and other life sciences and has a variety of educational programs. Its press, originating in 1933, is the largest of the laboratory's five education divisions and is a publisher of books, journals, and electronic media for scientists, students, and the general public.

Photo by Dana Neibert.

Friday, January 15, 2010

Understanding What Causes Schizophrenia: A Developmental Perspective


An editorial published in the January 2010 edition of the American Journal of Psychiatry:
By John H. Gilmore, M.D.

Understanding what causes schizophrenia is becoming harder and harder. We know that schizophrenia has genetic causes, since the most significant risk factor is having a first-degree relative with schizophrenia. However, most people with schizophrenia do not have an affected relative, and while the overall genetic contribution to schizophrenia may be large, the contribution of specific genes is very small. Candidate gene studies and more recent genome-wide association studies have had inconsistent results and indicate, at best, individual genes increase risk by less than 2 times—from an average population rate of 1 in 100 to 1.5 in 100. Pre- and perinatal complications and environmental exposures appear to have somewhat stronger effects than individual genes, as prenatal exposure to infection or hypoxia increases risk of schizophrenia from 1 in 100 to 2–4 in 100 (1). Schizophrenia is likely the result of an interaction between genetic risk and environmental exposures, and recent studies have attempted to describe that interaction.

To read the entire editorial, please click here.

I thank Dr. David Whitehorn for bringing this article to my attention.

Saturday, July 18, 2009

Understanding Complex Interactions Key to Preventing Alcohol Abuse


An article published in the July 17th edition of Psychiatric News:
A genetically associated characteristic — the level of response to alcohol — connects genetic vulnerabilities with the environment to reveal the complicated process through which alcohol use disorders develop.

By Jun Yan

Like other mental illnesses, alcohol use disorders (AUDs) develop through interactions of multiple genetic vulnerabilities and environmental factors over a long period. By understanding these interactions, psychiatrists can devise and apply targeted, effective, and efficient prevention methods.

These were the messages of Marc Schuckit, M.D. [pictured], in his Adolf Meyer Award lecture at APA's 2009 annual meeting in May in San Francisco. Schuckit is a professor of psychiatry at the University of California, San Diego, and director of the Alcohol and Drug Treatment Program and Alcohol Research Center at the Veterans Affairs San Diego Healthcare System.

His lecture, "How Alcoholism Develops: Identification of Genetic and Environmental Influences in a 25-Year Longitudinal Study," examined groundbreaking research by him and his colleagues on the intricate dynamics between genes and environment that reveal much about AUDs as well as other mental illnesses.

To read the entire article, please click here.

Photograph by David Hathcox