Molecular Biology seminars
May 2021
Energy landscapes, order and disorder, and protein sequence coevolution: From proteins to chromosome structure
Jose Onuchic· Rice University
Fri, May 14 · 14:00 UTC
In vivo, the human genome folds into a characteristic ensemble of 3D structures. The mechanism driving the folding process remains unknown. A theoretical model for chromatin (the minimal chromatin model) explains the folding of interphase chromosomes and generates chromosome conformations consistent with experimental data is presented. The energy landscape of the model was derived by using the maximum entropy principle and relies on two experimentally derived inputs: a classification of loci into chromatin types and a catalog of the positions of chromatin loops. This model was generalized by utilizing a neural network to infer these chromatin types using epigenetic marks present at a locus, as assayed by ChIP-Seq. The ensemble of structures resulting from these simulations completely agree with HI-C data and exhibits unknotted chromosomes, phase separation of chromatin types, and a tendency for open chromatin to lie at the periphery of chromosome territories. Although this theoretical methodology was trained in one cell line, the human GM12878 lymphoblastoid cells, it has successfully predicted the structural ensembles of multiple human cell lines. Finally, going beyond Hi-C, our predicted structures are also consistent with microscopy measurements. Analysis of both structures from simulation and microscopy reveals that short segments of chromatin make two-state transitions between closed conformations and open dumbbell conformations. For gene active segments, the vast majority of genes appear clustered in the linker region of the chromatin segment, allowing us to speculate possible mechanisms by which chromatin structure and dynamics may be involved in controlling gene expression. * Supported by the NSF
Mathematical ModelingBiophysicsSeries: Imperial College Physics of Life Network SeminarsVideo+3 more
Molecular and functional heterogeneity of neural stem cells
Sebastian Jessberger· Brain Research Institute, University of Zurich
Thu, May 13 · 17:00 UTC
Understanding and treating epilepsy in tuberous sclerosis complex
Angelique Bordey· Yale University
Wed, May 5 · 16:00 UTC
Tuberous sclerosis complex (TSC) and focal cortical dysplasia type II (FCDII) are caused by mutations in mTOR pathway genes leading to mTOR hyperactivity, focal malformations of cortical development (fMCD), and seizures in 80-90% of the patients. The current definitive treatments for epilepsy are surgical resection or treatment with everolimus, which inhibits mTOR activity (only approved for TSC). Because both options have severe limitations, there is a major need to better understand the mechanisms leading to seizures to improve life-long epilepsy treatment in TSC and FCDII. To investigate such mechanisms, we recently developed a murine model of fMCD-associated epilepsy that recapitulates the human TSC and FCDII disorders. fMCD are defined by the presence of misplaced, dysmorphic cortical neurons expressing hyperactive mTOR – for simplicity we will refer to these as “mutant” neurons. In our model and in human TSC tissue, we made a surprising finding that mutant neurons express HCN4 channels, which are not normally functionally expressed in cortical neurons, and increased levels of filamin A (FLNA). FLNA is an actin-crossing linking molecule that has also multiple binding partners inside cells. These data led us to ask several important questions: (1) As HCN4 channels are responsible for the pacemaking activity of the heart, can HCN4 channel expression lead to repetitive firing of mutant neurons resulting in seizures? (2) HCN4 is the most cAMP-sensitive of the four HCN isoforms. Does increase in cAMP lead to the firing of mutant neurons? (3) Does increase in FLNA contribute to neuronal alterations and seizures? (4) Is the abnormal HCN4 and FLNA expression in mutant neurons due to mTOR? These questions will be discussed and addressed in the lecture.
April 2021
New genetically encoded sensors to track addiction-relevant neuromodulators in vivo
Tommaso Patriarchi· University of Zurich
Thu, Apr 15 · 18:00 UTC
The Blurry Beginnings: What nature’s strangest eyes tell us about the evolution of vision
Michael Bok· Lund University
Mon, Apr 12 · 15:00 UTC
Our study reveals the most elaborate opsin expression patterns ever described in any animal eye. In mantis shrimp, a pugnacious crustacean renowned for its visual sophistication, we found unexpected retinal expression patterns highlighting the potential for cryptic photoreceptor functional diversity, including single photoreceptors that coexpress opsins from different spectral clades and a single opsin with a putative nonvisual function important in color vision. This study demonstrates the evolutionary potential for increasing visual system functional diversity through opsin gene duplication and diversification, as well as changes in patterns of gene coexpression among photoreceptors and retinula cells. These results have significant implications for the function of other visual systems, particularly in arthropods where large numbers of retinally expressed opsins have been documented.
March 2021
Sonic hedgehog signaling: from neurons to astrocytes during cortical circuit assembly
Corey Harwell· Harvard Medical School
Thu, Mar 18 · 17:00 UTC
Organization of Midbrain Serotonin System
Jing Ren· MRC Laboratory of Molecular Biology, Cambridge
Tue, Mar 9 · 15:00 UTC
The serotonin system is the most frequently targeted neural system pharmacologically for treating psychiatric disorders, including depression and anxiety. Serotonin neurons of the dorsal and median raphe nuclei (DR, MR) collectively innervate the entire forebrain and midbrain, modulating diverse physiology and behaviour. By using viral-genetic methods, we found that DR serotonin system contains parallel sub-systems that differ in input and output connectivity, physiological response properties, and behavioural functions. To gain a fundamental understanding of the molecular heterogeneity of DR and MR, we used single-cell RNA - sequencing (scRNA-seq) to generate a comprehensive dataset comprising eleven transcriptomically distinct serotonin neuron clusters. We generated novel intersectional viral-genetic tools to access specific subpopulations. Whole-brain axonal projection mapping revealed that the molecular features of these distinct serotonin groups reflect their anatomical organization and provide tools for future exploration of the full projection map of molecularly defined serotonin groups. The molecular architecture of serotonin system lays the foundation for integrating anatomical, neurochemical, physiological, and behavioural functions.
February 2021
Molecular and activity-dependent mechanisms of cortical development underlying corpus callosum dysgenesis
Linda Richards· Queensland Brain Institute, University of Queensland
Thu, Feb 11 · 11:00 UTC
January 2021
RNA-driven phase separation from cells to SARS
Amy Gladfelter· UNC Chapel Hill
Fri, Jan 29 · 14:00 UTC
Biomolecular condensation is a mechanism for controlling cell organization. Many condensates are rich in nuclei acids such as RNA. The role of specific RNA sequences and structures in promoting the molecular identity of condensates formed for cell polarity and division and by the SARS CoV-2 virus will be discussed.
Human neuronal activity-dependent gene regulation in development and disease
Gabriella Boulting· Harvard Medical School
Wed, Jan 13 · 08:00 UTC
December 2020
Cellular-resolution gene expression profiling in the neonatal marmoset brain reveals dynamic species- and region-specific differences
Tomomi Shimogori· Center for Brain Science, RIKEN
Thu, Dec 10 · 16:00 UTC
2020 Nobel Prize Lectures in Chemistry
Emmanuelle Charpentier, Jennifer A. Doudna· Max Planck Unit for the Science of Pathogens, Berlin, Germany
Tue, Dec 8 · 10:00 UTC · Online
Emmanuelle Charpentier and Jennifer Doudna explain the discovery and biochemical development of CRISPR-Cas9 as a programmable tool for modifying DNA. The scientific story begins with bacterial defence against invading genetic material and the role of tracrRNA in the CRISPR system. It proceeds through the reconstruction and simplification of the RNA-guided machinery and the demonstration that a chosen guide can direct DNA cleavage to a specified sequence. The lectures connect basic research on microbes and RNA with a method that transformed experimental genetics. They explain the molecular logic of the system and the possibilities it opened for studying gene function, engineering organisms and developing therapeutic approaches.
2020 Nobel Prize Lectures in Physiology or Medicine
Harvey J. Alter, Michael Houghton, Charles M. Rice· National Institutes of Health, Bethesda, USA
Mon, Dec 7 · 12:00 UTC · Online
Harvey Alter, Michael Houghton and Charles Rice recount how an unexplained form of transfusion-associated hepatitis became an identifiable and treatable viral infection. Alter’s clinical and transmission studies distinguished non-A, non-B hepatitis from the known hepatitis viruses. Houghton’s molecular approach isolated genetic material from the elusive agent and enabled tests for hepatitis C infection. Rice’s experiments with viral RNA established that the newly identified virus could itself cause hepatitis and helped make its replication experimentally tractable. The lectures connect these complementary approaches to the development of safer blood supplies, experimental models and antiviral medicines, while showing how clinical observation, molecular cloning and causal experiments contributed different pieces of the discovery.
November 2020
The precise spatial localization of molecular signals within tissues richly informs the mechanisms of tissue formation and function. Here, we’ll introduce Slide-seq, a technology which enables transcriptome-wide measurements with near-single cell spatial resolution. We’ll describe recent experimental and computational advances to enable Slide-seq in biological contexts in biological contexts where high detection sensitivity is important. More broadly, we’ll discuss the promise and challenges of spatial transcriptomics for tissue genomics. Lastly, we’ll touch upon novel molecular recording technologies, which allows recording of the absolute time dynamics of gene expression in live systems into DNA sequences.
Virus-like intercellular communication in the nervous system
Jason Shepherd· University of Utah
Tue, Nov 17 · 15:00 UTC
The neuronal gene Arc is essential for long-lasting information storage in the mammalian brain and mediates various forms of synaptic plasticity. We recently discovered that Arc self-assembles into virus-like capsids that encapsulate RNA. Endogenous Arc protein is released from neurons in extracellular vesicles that mediate the transfer of Arc mRNA into new target cells. Evolutionary analysis indicates that Arc is derived from a vertebrate lineage of Ty3/gypsy retrotransposons, which are also ancestral to retroviruses such as HIV. These findings suggest that Gag retroelements have been repurposed during evolution to mediate intercellular communication in the nervous system that may underlie cognition and memory.
October 2020
Lab-on-a-chip and diagnostic tools for COVID-19
Connie B. Chang· Montana State University
Wed, Oct 28 · 10:00 UTC
The SARS-CoV-2 virus has rapidly evolved into a pandemic that is threatening public health, economics, and quality of life worldwide. The gold-standard for testing individuals for COVID-19 is using traditional RT-qPCR, which is expensive and can take up to several hours. Expanding surveillance across a global scale will call for new strategies and tests that are inexpensive, require minimal reagents, decrease assay time, and allow for simple point-of-care (POC) monitoring without need of trained personnel and with quick turnaround time. To expand the speed of COVID-19 surveillance, we are working on a point-of-care microfluidic chip to enable significantly faster and easier testing. This is based upon digital drop loop-mediated isothermal amplification that will allow for rapid testing of large populations at a reasonable cost. The device will employ a nucleic-acid based test called reverse transcriptase LAMP (RT- LAMP) that operates at a temperature of 60-65°C. RT-LAMP removes the bottleneck of thermal cycling and high temperatures required by traditional RT-qPCR thermocycling. The simplicity, speed, and sensitivity will enable early treatment and response to infection.
Microenvironment role in axonal regeneration- looking beyond the neurons
Oshri Avraham· Wash U
Wed, Oct 28 · 09:30 UTC
After an injury in the adult mammalian central nervous system, lesioned axons fail to regenerate. This failure to regenerate contrasts with the remarkable potential of axons to grow during embryonic development and after an injury in the peripheral nervous system. Peripheral sensory neurons with cell soma in dorsal root ganglia (DRG) switch to a regenerative state after nerve injury to enable axon regeneration and functional recovery. Decades of research have focused on the signaling pathways elicited by injury in sensory neurons and in Schwann cells that insulate axons as central mechanisms regulating nerve repair. However, neuronal microenvironment is far more complex and is composed of multiple cell types including endothelial, immune and glial cells. Whether the microenvironment surrounding neuronal soma contribute to the poor regenerative outcomes following central injuries remains largely unexplored. To answer this question, we performed a single cell transcriptional profiling of the DRG neuronal microenvironment response to peripheral and central injuries. In dissecting the roles of the microenvironment contribution, we have focused on a poorly studied population of Satellite Glial Cells (SGC) surrounding the neuronal cell soma. This study has uncovered a previously unknown role for SGC in nerve regeneration and defined SGC as transcriptionally distinct from Schwann cells while sharing similarities with astrocytes. Upon a peripheral injury, SGC contribute to axon regeneration via Fatty acid synthase (Fasn)-PPARα signaling pathway. Through repurposing fenofibrate, an FDA- approved PPARα agonist used for dyslipidemia treatment, we were able to rescue the impaired regeneration in mice lacking Fasn in SGC. Our analysis reveals that in response to central injuries, SGC do not activate the PPAR signaling pathway. However, induction of this pathway with fenofibrate treatment, rescued axon regeneration following an injury to the central nerves. Collectively, our results uncovered a previously unappreciated role of the neuronal microenvironment differential response in central and peripheral injuries.