Postdoc in epigenetics and chromatin dynamics
Lund University's Epigenetics and Chromatin Dynamics group is recruiting a postdoctoral researcher to study how the repetitive genome is regulated in neural stem-cell models and how chromatin mechanisms shape brain development and disease. The project combines chromatin biochemistry, genomics and cell-based experimentation.
PhD student in Plant Physiology
Stockholm University's Department of Ecology, Environment and Plant Sciences is recruiting a doctoral student to investigate the epigenetic basis of reproductive thermotolerance in plants. The work addresses how plants preserve reproduction under heat stress using molecular, physiological and genetic approaches.
Transcription and chromatin
The seventeenth EMBL conference on transcriptional regulation covers polymerase function, chromatin modification and remodeling, epigenetic inheritance, genome topology, condensates, development, disease, and quantitative methods.
Genetic and epigenetic underpinnings of neurodegenerative disorders
Pluripotent cells, including embryonic stem (ES) and induced pluripotent stem (iPS) cells, are used to investigate the genetic and epigenetic underpinnings of human diseases such as Parkinson’s, Alzheimer’s, autism, and cancer. Mechanisms of somatic cell reprogramming to an embryonic pluripotent state are explored, utilizing patient-specific pluripotent cells to model and analyze neurodegenerative diseases.
Neural epigenetic mechanisms of early life exercise interventions
Don't forget the gametes: Neurodevelopmental pathogenesis starts in the sperm and egg
Proper development of the nervous system depends not only on the inherited DNA sequence, but also on proper regulation of gene expression, as controlled in part by epigenetic mechanisms present in the parental gametes. In this presentation an internationally recognized research advocate explains why researchers concerned about the origins of increasingly prevalent neurodevelopmental disorders such as autism and attention deficit hyperactivity disorder should look beyond genetics in probing the origins of dysregulated transcription of brain-related genes. The culprit for a subset of cases, she contends, may lie in the exposure history of the parents, and thus their germ cells. To illustrate how environmentally informed, nongenetic dysfunction may occur, she focuses on the example of parents' histories of exposure to common agents of modern inhalational anesthesia, a highly toxic exposure that in mammalian models has been seen to induce heritable neurodevelopmental abnormality in offspring born of exposed germline.
One by one: brain organoid modelling of neurodevelopmental disorders at single cell resolution
Making memories in mice
Understanding how the brain uses information is a fundamental goal of neuroscience. Several human disorders (ranging from autism spectrum disorder to PTSD to Alzheimer’s disease) may stem from disrupted information processing. Therefore, this basic knowledge is not only critical for understanding normal brain function, but also vital for the development of new treatment strategies for these disorders. Memory may be defined as the retention over time of internal representations gained through experience, and the capacity to reconstruct these representations at later times. Long-lasting physical brain changes (‘engrams’) are thought to encode these internal representations. The concept of a physical memory trace likely originated in ancient Greece, although it wasn’t until 1904 that Richard Semon first coined the term ‘engram’. Despite its long history, finding a specific engram has been challenging, likely because an engram is encoded at multiple levels (epigenetic, synaptic, cell assembly). My lab is interested in understanding how specific neurons are recruited or allocated to an engram, and how neuronal membership in an engram may change over time or with new experience. Here I will describe both older and new unpublished data in our efforts to understand memories in mice.
From epigenetics to stratified therapies in neuropsychiatric diseases
The establishment of effective therapies for neurodegenerative and neuropsychiatric diseases is still challenging and one of the reasons is that especially for age-associated neurodegenerative diseases pathology accumulates long before there are any clinical signs of disease. Thus, patients are often only diagnosed at an already advanced state of molecular pathology, when causative therapies fail. Thus, there is an urgent need for molecular biomarkers that could detect individuals at risk for developing a CNS disease and stratify patients. I will address epigenetic processes such as histone-modifications and non-coding RNAs as potential approaches for patient stratification and therapeutic interaction, with a specific focus on RNA-therapies. Here, I plan to cover examples from our recent research on Alzheimer’s disease and Schizophrenia.
Brain Awareness Week @ IITGN
A quarter century of the maddening hunt for madness genes: what is to be done
Epigenetics and Dementia: Lessons From the 20-Year Indianapolis-Ibadan Dementia Study
Dementia is of global interest because of the rapid increase in both the number of individuals affected and the population at risk. It is essential that the risk factors be carefully delineated for the formulation of preventive strategies. Epigenetics refers to external modifications that turn genes "on" or "off”, and cross-cultural studies of migrant populations provide information on the interplay of environmental factors on genetic predisposition. The Indianapolis-Ibadan Dementia Study compared the prevalence, incidence and risk factors of dementia in African Americans and Yoruba to tease out the role of epigenetics in dementia. The presentation will provide details on biomarkers of dementia, vascular risk factors and the association with apolipoprotein E in the Yoruba. The purpose will be to inspire early career researchers on possibilities and research strategies applicable in African populations
Stress and the developing brain - molecular mechanisms of risk and resilience
Epigenetic Reprogramming of Taste by Diet
Diets rich in sugar, salt, and fat alter taste perception and food intake, leading to obesity and metabolic disorders, but the molecular mechanisms through which this occurs are unknown. Here we show that in response to a high sugar diet, the epigenetic regulator Polycomb Repressive Complex 2.1 (PRC2.1) persistently reprograms the sensory neurons of D. melanogaster flies to reduce sweet sensation and promote obesity. In animals fed high sugar, the binding of PRC2.1 to the chromatin of the sweet gustatory neurons is redistributed to repress a developmental transcriptional network that modulates the responsiveness of these cells to sweet stimuli, reducing sweet sensation. Importantly, half of these transcriptional changes persist despite returning the animals to a control diet, causing a permanent decrease in sweet taste. Our results uncover a new epigenetic mechanism that, in response to the dietary environment, regulates neural plasticity and feeding behavior to promote obesity.