Molecular Biology seminars
June 2022
Transcriptional controls over projection neuron fate diversity
Esther Klingler· Jabaudon lab, University of Geneva
Wed, Jun 29 · 17:35 UTC
The cerebral cortex is the most evolved structure of the brain and the site for higher cognitive functions. It consists of 6 layers, each composed of specific types of neurons. Interconnectivity between cortical areas is critical for sensory integration and sensorimotor transformation. Inter-areal cortical projection neurons are located in all cortical layers and form a heterogeneous population, which send their axon across cortical areas, both within and across hemispheres. How this diversity emerges during development remains largely unknown. Here, we address this question by linking the connectome and transcriptome of developing cortical projection neurons and show distinct maturation paces in neurons with distinct projections, which correlates with the sequential development of sensory and motor functions during postnatal period.
May 2022
Mitochondrial leukodystrophies
Anna Ardissone· Institute of Neurology Carlo Besta, Milan, Italy
Tue, May 24 · 14:00 UTC
April 2022
Transcriptional adaptation couples past experience and future sensory responses
Tatsuya Tsukahara· Datta lab, Harvard Medical School
Wed, Apr 27 · 17:00 UTC
Animals traversing different environments encounter both stable background stimuli and novel cues, which are generally thought to be detected by primary sensory neurons and then distinguished by downstream brain circuits. Sensory adaptation is a neural mechanism that filters background by minimizing responses to stable sensory stimuli, and a fundamental feature of sensory systems. Adaptation over relatively fast timescales (milliseconds to minutes) have been reported in many sensory systems. However, adaptation to persistent environmental stimuli over longer timescales (hours to days) have been largely unexplored, even though those timescales are ethologically important since animals typically stay in one environment for hours. I showed that each of the ~1,000 olfactory sensory neuron (OSN) subtypes in the mouse harbors a distinct transcriptome whose content is precisely determined by interactions between its odorant receptor and the environment. This transcriptional variation is systematically organized to support sensory adaptation: expression levels of many genes relevant to transforming odors into spikes continuously vary across OSN subtypes, dynamically adjust to new environments over hours, and accurately predict acute OSN-specific odor responses. The sensory periphery therefore separates salient signals from predictable background via a transcriptional mechanism whose moment-to-moment state reflects the past and constrains the future; these findings suggest a general model in which structured transcriptional variation within a cell type reflects individual experience.
March 2022
Antisense oligonucleotide mediated exon skipping therapy development for Duchenne muscular dystrophy takes more than an oligonucleotide
Annemieke Aartsma-Rus· Leiden University Medical Center, the Netherlands
Tue, Mar 29 · 14:00 UTC
The use of milk exosomes to increase the expression of SYNGAP1 expression in SYNGAP1 mice
Janos Zempleni· University of Nebraska
Thu, Mar 3 · 00:00 UTC
Dissecting the 3D regulatory landscape of the developing cerebral cortex with single-cell epigenomics
Boyan Bonev, PhD· Ludwig-Maximilians-Universität München
Wed, Mar 2 · 17:00 UTC
Understanding how different epigenetic layers are coordinated to facilitate robust lineage decisions during development is one of the fundamental questions in regulatory genomics. Using single-cell epigenomics coupled with cell-type specific high-throughput mapping of enhancer activity, DNA methylation and the 3D genome landscape in vivo, we dissected how the epigenome is rewired during cortical development. We identified and functionally validated key transcription factors such as Neurog2 which underlie regulatory dynamics and coordinate rewiring across multiple epigenetic layers to ensure robust lineage specification. This work showcases the power of high-throughput integrative genomics to dissect the molecular rules of cell fate decisions in the brain and more broadly, how to apply them to evolution and disease.
February 2022
The role of histone methyltransferase SETDB1 on regulating mood behaviors
Yan Jiang· Brain Institutes Fudan University
Wed, Feb 9 · 17:00 UTC
Disrupted mTOR signaling in epileptogenesis
Steve Danzer· University of Cincinnati
Wed, Feb 2 · 16:00 UTC
January 2022
ASO RNA splice modulating therapies for genetic brain disorders
Willeke van Roon-Mom· University of Leiden, the Netherlands
Tue, Jan 25 · 14:00 UTC
December 2021
Molecular recognition and the assembly of feature-selective retinal circuits
Arjun Krishnaswamy· Department of Physiology, McGill University
Tue, Dec 14 · 05:00 UTC
November 2021
Mechanisms to medicines in neurodegeneration
Giovann Mallucci· Department of Clinical Neurosciences, University of Cambridge
Tue, Nov 30 · 15:00 UTC
Dysregulation of protein synthesis both globally and locally in neurons and astrocytes is a key feature of neurodegenerative diseases. Aberrant signalling through the Unfolded Protein Response (UPR) and related Integrated Stress Response (ISR) have become major targets for neuroprotection in these disorders. In addition, other homeostatic mechanisms and stress responses, including the cold shock response, appear to regulate local translation and RNA splicing to control synapse maintenance and regeneration and can also be targeted therapeutically for neuroprotection. We have defined the role of UPR/ISR and the cold-shock response in neurodegenerative disorders and have developed translational strategies targeting them for new treatments for dementia.
Nr4a1 and chromatin bivalency in cocaine pathophysiology
Liz Heller· University of Pennsylvania
Thu, Nov 11 · 18:00 UTC
October 2021
Oligonucleotide therapies: a new class of drugs that allow precise genetic targeting
Annemieke Aartsma-Rus· Leiden University Medical Center, the Netherlands
Tue, Oct 19 · 15:00 UTC
Transcriptional and Epigenetic Mechanisms of Addiction
Eric Nestler· Mount Sinai
Thu, Oct 7 · 18:00 UTC
X-linked adrenoleukodystrophies - Update
Caroline Sevin· Reference Center for Leukodystrophies, Hospital Bicêtre and Institute for Brain and Spine, Paris, France
Thu, Oct 7 · 15:00 UTC
Epigenetic regulation of alternative splicing in the context of cocaine reward
Elizabeth A Heller, PhD· The University of Pennsylvania, Penn Epigenetics Institute, Systems Pharmacology & Translational Therapeutics
Wed, Oct 6 · 17:00 UTC
Neuronal alternative splicing is a key gene regulatory mechanism in the brain. However, the spliceosome machinery is insufficient to fully specify splicing complexity. In considering the role of the epigenome in activity-dependent alternative splicing, we and others find the histone modification H3K36me3 to be a putative splicing regulator. In this study, we found that mouse cocaine self-administration caused widespread differential alternative splicing, concomitant with the enrichment of H3K36me3 at differentially spliced junctions. Importantly, only targeted epigenetic editing can distinguish between a direct role of H3K36me3 in splicing and an indirect role via regulation of splice factor expression elsewhere on the genome. We targeted Srsf11, which was both alternatively spliced and H3K36me3 enriched in the brain following cocaine self-administration. Epigenetic editing of H3K36me3 at Srsf11 was sufficient to drive its alternative splicing and enhanced cocaine self-administration, establishing the direct causal relevance of H3K36me3 to alternative splicing of Srsf11 and to reward behavior.
September 2021
Chromosomes are extremely long, active polymers that are spatially organized across multiple scales to promote cellular functions, such as gene transcription and genetic inheritance. During each cell cycle, chromosomes are dramatically compacted as cells divide and dynamically reorganized into less compact, spatiotemporally patterned structures after cell division. These activities are facilitated by DNA/chromatin-binding protein motors called SMC complexes. Each of these motors can perform a unique activity known as “loop extrusion,” in which the motor binds the DNA/chromatin polymer, reels in the polymer fiber, and extrudes it as a loop. Using simulations and theory, I show how loop-extruding motors can collectively compact and spatially organize chromosomes in different scenarios. First, I show that loop-extruding complexes can generate sufficient compaction for cell division, provided that loop-extrusion satisfies stringent physical requirements. Second, while loop-extrusion alone does not uniquely spatially pattern the genome, interactions between SMC complexes and protein “boundary elements” can generate patterns that emerge in the genome after cell division. Intriguingly, these “boundary elements” are not necessarily stationary, which can generate a variety of patterns in the neighborhood of transcriptionally active genes. These predictions, along with supporting experiments, show how SMC complexes and other molecular machinery, such as RNA polymerase, can spatially organize the genome. More generally, this work demonstrates both the versatility of the loop extrusion mechanism for chromosome functional organization and how seemingly subtle microscopic effects can emerge in the spatiotemporal structure of nonequilibrium polymers.
June 2021
miRNA dysregulation in embryo results in autism spectrum disorder
Minoo Rassoulzadegan· Université de Nice, INSERM-CNRS, France; Genome and Stem Cell Center, Erciyes University, Kayseri, Turkey
Thu, Jun 17 · 17:30 UTC
Analysis and manipulation of facilitators and barriers of cell identity reprogramming
Stefan Stricker· Institute of Strem Cell Research, Helmholtz Zentrum Munich
Thu, Jun 17 · 16:00 UTC
Retroviruses and retrotransposons interacting with the 3D genome in mouse and human brain
Schahram Akbarian· Icahn School of Medicine at Mt. Sinai
Thu, Jun 17 · 15:00 UTC
Repeat-rich sequence blocks are considered major determinants for 3D folding and structural genome organization in the cell nucleus in all higher eukaryotes. Here, we discuss how megabase-scale chromatin domain and chromosomal compartment organization in adult mouse cerebral cortex is linked, in highly cell type-specific fashion, to multiple retrotransposon superfamilies which comprise the vast majority of mobile DNA elements in the murine genome. We show that neuronal megadomain architectures include an evolutionarily adaptive heterochromatic organization which, upon perturbation, unleashes proviruses from the Long Terminal Repeat (LTR) Endogenous Retrovirus family that exhibit strong tropism in mature neurons. Furthermore, we mapped, in the human brain, cell type-specific genomic integration patterns of the human pathogen and exogenous retrovirus, HIV, together with changes in genome organization and function of the HIV infected brain. Our work highlights the critical importance of chromosomal conformations and the ‘spatial genome’ for neuron- and glia-specific regulatory mechanisms and defenses aimed at exogenous and endogenous retrotransposons in the brain