Genetics seminars
October 2020
Transposable element activation in Alzheimer's disease and related tauopathies
Bess Frost· Barshop Institute for Longevity and Aging Studies
Thu, Oct 1 · 15:00 UTC
Transposable elements, known colloquially as ‘jumping genes’, constitute approximately 45% of the human genome. Cells utilize epigenetic defenses to limit transposable element jumping, including formation of silencing heterochromatin and generation of piwi-interacting RNAs (piRNAs), small RNAs that facilitate clearance of transposable element transcripts. We have utilized fruit flies, mice and postmortem human brain samples to identify transposable element dysregulation as a key mediator of neuronal death in tauopathies, a group of neurodegenerative disorders that are pathologically characterized by deposits of tau protein in the brain. Mechanistically, we find that heterochromatin decondensation and reduction of piwi and piRNAs drive transposable element dysregulation in tauopathy. We further report a significant increase in transcripts of the endogenous retrovirus class of transposable elements in human Alzheimer’s disease and progressive supranuclear palsy, suggesting that transposable element dysregulation is conserved in human tauopathy. Taken together, our data identify heterochromatin decondensation, piwi and piRNA depletion and consequent transposable element dysregulation as a pharmacologically targetable, mechanistic driver of neurodegeneration in tauopathy.
September 2020
La investigación del cerebro: Esperanzas e incertidumbres
Carlos Belmonte· Real Academia Española de Ciencias Exactas, Físicas y Naturales
Mon, Sep 21 · 04:00 UTC
Esta conferencia pretende ofrecer una visión panorámica de los progresos en el conocimiento del cerebro, desde la fundación por Cajal de la moderna neurociencia hasta los muy recientes hallazgos aportados por la genética, la biología molecular, la microscopia y la electrofisiología al conocimiento de la estructura, conectividad y función de las células nerviosas, asi como sobre el funcionamiento integrado del cerebro humano aportado por las nuevas técnicas de imagen y el registro y estimulación selectivos de las distintas áreas cerebrales y su análisis con técnicas de computación. Finalmente se discutirán las repercusiones médicas y sociales que implica un mejor conocimiento del cerebro, sus limitaciones en el momento actual y los riesgo que conlleva el mal uso de los avances científicos de la neurociencia.
A challenge in neurogenetics: Huntington disease in kids
Ferdinando Squitieri· Fondazione IRCCS Casa Sollievo Sofferenza & CSS-Mendel Institute, Italy
Tue, Sep 15 · 15:00 UTC
August 2020
Can we predict the diversity of real populations? Part I: What is linked selection doing to populations?
Workshop, Multiple Speakers: Christelle Fraïsse (IST Austria/CNRS), Derek Setter (U Edinburgh), Kim Gilbert (U Lausanne/U Bern), Ivana Cvijovic (Stanford U)· Emory University
Tue, Aug 18 · 06:30 UTC
Natural selection affects not only selected alleles, but also indirectly affects all genes near selected sites on the genome. An increasing body of evidence suggests that this linked selection is an important driver of evolutionary dynamics throughout the genomes of many species, implying that we need to substantially revise our basic understanding of molecular evolution. This session brings together early-career researchers working towards a quantitative understanding of the prevalence and effects of linked selection.
Cooperative binding of transcription factors is a hallmark of active enhancers
Srinivas Ramachandran· University of Colorado
Wed, Aug 12 · 16:00 UTC
Genetic dissection of the Fgf5 enhancer cluster
Henry Fabian Thomas· MPL Vienna
Wed, Aug 12 · 16:00 UTC
July 2020
Developmental origins and emerging therapeutic perspectives in genetic epilepsies
Stéphanie Baulac· Institut du Cerveau et de la Moëlle
Thu, Jul 23 · 17:00 UTC
Untangling the web of behaviours used to produce spider orb webs
Andrew Gordus· John Hopkins University
Wed, Jul 8 · 06:00 UTC
Many innate behaviours are the result of multiple sensorimotor programs that are dynamically coordinated to produce higher-order behaviours such as courtship or architecture construction. Extendend phenotypes such as architecture are especially useful for ethological study because the structure itself is a physical record of behavioural intent. A particularly elegant and easily quantifiable structure is the spider orb-web. The geometric symmetry and regularity of these webs have long generated interest in their behavioural origin. However, quantitative analyses of this behaviour have been sparse due to the difficulty of recording web-making in real-time. To address this, we have developed a novel assay enabling real-time, high-resolution tracking of limb movements and web structure produced by the hackled orb-weaver Uloborus diversus. With its small brain size of approximately 100,000 neurons, the spider U. diversus offers a tractable model organism for the study of complex behaviours. Using deep learning frameworks for limb tracking, and unsupervised behavioural clustering methods, we have developed an atlas of stereotyped movement motifs and are investigating the behavioural state transitions of which the geometry of the web is an emergent property. In addition to tracking limb movements, we have developed algorithms to track the web’s dynamic graph structure. We aim to model the relationship between the spider’s sensory experience on the web and its motor decisions, thereby identifying the sensory and internal states contributing to this sensorimotor transformation. Parallel efforts in our group are establishing 2-photon in vivo calcium imaging protocols in this spider, eventually facilitating a search for neural correlates underlying the internal and sensory state variables identified by our behavioural models. In addition, we have assembled a genome, and are developing genetic perturbation methods to investigate the genetic underpinnings of orb-weaving behaviour. Together, we aim to understand how complex innate behaviours are coordinated by underlying neuronal and genetic mechanisms.
June 2020
The Genetics of Parkinson's Disease: Understanding the Differences Between European and African Populations
John Hardy· University College London
Tue, Jun 23 · 15:00 UTC
In this talk, Professor Hardy will discuss the different causes and predispositions of PD that exist in Africa, and the differences to European populations. He will go on to discuss the importance of highlighting these differences and the impact of this vital research to people living with PD in Africa, as well as their families and caregivers.
May 2020
Following neuronal trajectories
Silvia Cappello· Max Planck Institute of Psychiatry
Thu, May 14 · 17:00 UTC
Malformations of the human cerebral cortex represent a major cause of developmental disabilities. To date, animal models carrying mutations of genes so far identified in human patients with brain malformations only partially recapitulate the expected phenotypes and therefore do not provide reliable models to entirely understand the molecular and cellular mechanisms responsible for these disorders. Hence, we combine the in vivo mouse model and the human brain organoids in order to better comprehend the mechanisms involved in the migration of neurons during human development and tackle the causes of neurodevelopmental disorders. Our results show that we can model human brain development and disorders using human brain organoids and contribute to open new avenues to bridge the gap of knowledge between human brain malformations and existing animal models.
April 2020
A human-specific modifier of synaptic development, cortical circuit connectivity and function
Franck Polleux· Columbia University
Thu, Apr 30 · 17:00 UTC
The remarkable cognitive abilities characterizing humans has been linked to unique patterns of connectivity characterizing the neocortex. Comparative studies have shown that human cortical pyramidal neurons (PN) receive a significant increase of synaptic inputs when compared to other mammals, including non-human primates and rodents, but how this may relate to changes in cortical connectivity and function remained largely unknown. We previously identified a human-specific gene duplication (HSGD), SRGAP2C, that, when induced in mouse cortical PNs drives human-specific features of synaptic development, including a correlated increase in excitatory (E) and inhibitory (I) synapse density through inhibition of the ancestral SRGAP2A protein (Charrier et al. 2012; Fossatti et al. 2016; Schmidt et al. 2019). However, the origin and nature of this increased connectivity and its impact on cortical circuit function was unknown. I will present new results exploring these questions (see Schmidt et al. (2020) https://www.biorxiv.org/content/10.1101/852970v1). Using a combination of transgenic approaches and quantitative monosynaptic tracing, we discovered that humanization of SRGAP2C expression in the mouse cortex leads to a specific increase in local and long-range cortico-cortical inputs received by layer 2/3 cortical PNs. Moreover, using in vivo two-photon imaging in the barrel cortex of awake mice, we show that humanization of SRGAP2C expression increases the reliability and selectivity of sensory- evoked responses in layer 2/3 PNs. We also found that mice humanized for SRGAP2C in all cortical pyramidal neurons and throughout development are characterized by improved behavioural performance in a novel whisker-based sensory discrimination task compared to control wild-type mice. Our results suggest that the emergence of SRGAP2C during human evolution underlie a new substrate for human brain evolution whereby it led to increased local and long-range cortico-cortical connectivity and improved reliability of sensory-evoked cortical coding. References cited Charrier C.*, Joshi K. *, Coutinho-Budd J., Kim, J-E., Lambert N., de Marchena, J., Jin W-L., Vanderhaeghen P., Ghosh A., Sassa T, and Polleux F. (2012) Inhibition of SRGAP2 function by its human-specific paralogs induces neoteny of spine maturation. Cell 149:923-935. * Co-first authors. Fossati M, Pizzarelli R, Schmidt ER, Kupferman JV, Stroebel D, Polleux F*, Charrier C*. (2016) SRGAP2 and Its Human-Specific Paralog Co-Regulate the Development of Excitatory and Inhibitory Synapses. Neuron. 91(2):356-69. * Co-senior corresponding authors. Schmidt E.R.E., Kupferman J.V., Stackmann M., Polleux F. (2019) The human-specific paralogs SRGAP2 and SRGAP2C differentially modulate SRGAP2A-dependent synaptic development. Scientific Rep. 9(1):18692. Schmidt E.R.E, Zhao H.T., Hillman E.M.C., Polleux F. (2020) Humanization of SRGAP2C expression increases cortico-cortical connectivity and reliability of sensory-evoked responses in mouse brain. Submitted. See also: https://www.biorxiv.org/content/10.1101/852970v1
Fate and freedom in developing neocortical circuits
Denis Jabaudon· University of Geneva
Thu, Apr 23 · 15:00 UTC
During brain development, neurons are born in specialized niches and migrate to target regions where they assemble to form the circuits that underlie mammalian behaviour. During their journey, neurons follow cell-intrinsic, genetic programs transmitted by their mother cells but also environmental cues, which together drive their maturation. Here, focusing on the neocortex, I will discuss recent findings from our laboratory in which we untangle and manipulate the programs at play in progenitors and their daughter neurons to better understand the emergence of cellular diversity in the developing brain.
May 2017
History of FoxP3 and Implications for Therapeutic Intervention in Disease
Fred Ramsdell· Parker Institute for Cancer Immunotherapy
Tue, May 16 · 09:35 UTC · Lund, Sweden
Fred Ramsdell traces the discovery of FOXP3 from the striking immune phenotype of the scurfy mouse to the mapping and cloning of the responsible gene. He explains how linking a disease phenotype to its genetic cause opened a route to understanding the regulation of immune responses and the biology of regulatory T cells. The lecture considers FOXP3 as a regulator of immune function and the implications of this history for therapeutic intervention. It argues for the continuing value of phenotype-first research and naturally occurring disease mutations in discovering biological mechanisms and identifying potential treatment targets, even as genome sequencing becomes increasingly routine.
On the Virtue of Restraint
Alexander Rudensky· Memorial Sloan Kettering Cancer Center
Tue, May 16 · 08:25 UTC · Lund, Sweden
Alexander Rudensky examines why an immune system capable of amplifying responses to pathogens also needs a dedicated mechanism of restraint. He connects the activity of effector CD4 T cells to the emergence of regulatory T cells and explores how loss of this regulatory population accounts for the severe disease associated with FOXP3 deficiency. The lecture follows genetic experiments that test the continuing requirement for regulatory T cells and trace the stability of their lineage. It also considers regulatory T cells generated outside the thymus, their relationship with commensal microorganisms, and their role in limiting inflammation at mucosal barriers. Together these studies explain how a specialised cell lineage can maintain immune tolerance throughout life.
Control of Immune Responses by Regulatory T Cells
Shimon Sakaguchi· Osaka University
Tue, May 16 · 07:45 UTC · Lund, Sweden
Shimon Sakaguchi explains how regulatory T cells restrain immune responses and maintain tolerance to the body’s own tissues. He follows experimental evidence linking the removal of particular CD4 T-cell populations to autoimmune disease and the restoration of regulation to protection against excessive immune activity. The lecture connects these mouse experiments with human immune dysregulation, including IPEX, and with the role of FOXP3 in regulatory T-cell biology. It develops the idea that active cellular suppression is a continuing requirement for immune balance, with implications for understanding autoimmunity and for manipulating immune responses therapeutically.
End of results.