Cell Biology seminars
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.
Brain cancer and the single-cell architecture of human brain development
Sten Linnarsson· Karolinska Institutet
Thu, Jan 28 · 17:00 UTC
December 2020
Human TREM2 knockout microglia fail to activate towards Alzheimer’s disease pathology
Amanda McQuade· UC Irvine
Wed, Dec 16 · 08:00 UTC
Beyond energy - an unconventional role of mitochondria in cone photoreceptors
Wei Li· NIH Bethesda
Tue, Dec 8 · 15:00 UTC
The long-term goal of my research is to study the mammalian retina as a model for the central nervous system (CNS) -- to understand how it functions in physiological conditions, how it is formed, how it breaks down in pathological conditions, and how it can be repaired. I have focused on two research themes: 1) Photoreceptor structure, synapse, circuits, and development, 2) Hibernation and metabolic adaptations in the retina and beyond. As the first neuron of the visual system, photoreceptors are vital for photoreception and transmission of visual signals. I am particularly interested in cone photoreceptors, as they mediate our daylight vision with high resolution color information. Diseases affecting cone photoreceptors compromise visual functions in the central macular area of the human retina and are thus most detrimental to our vision. However, because cones are much less abundant compared to rods in most mammals, they are less well studied. We have used the ground squirrel (GS) as a model system to study cone vision, taking advantage of their unique cone-dominant retina. In particular, we have focused on short-wavelength sensitive cones (S-cones), which are not only essential for color vision, but are also an important origin of signals for biological rhythm, mood and cognitive functions, and the growth of the eye during development. We are studying critical cone synaptic structures – synaptic ribbons, the synaptic connections of S-cones, and the development of S-cones with regard to their specific connections. These works will provide knowledge of normal retinal development and function, which can also be extended to the rest of CNS; for example, the mechanisms of synaptic targeting during development. In addition, such knowledge will benefit the development of optimal therapeutic strategies for regeneration and repair in cases of retinal degenerative disease. Many neurodegenerative diseases, including retinal diseases, are rooted in metabolic stress in neurons and/or glial cells. Using the same GS model, we aim to learn from this hibernating mammal, which possesses an amazing capability to adapt to the extreme metabolic conditions during hibernation. By exploring the mechanisms of such adaptation, we hope to discover novel therapeutic tactics for neurodegenerative diseases.
November 2020
Senescencia celular y su impacto en enfermedades neurodegenerativas
Luis Barbeito, MD· Responsable Científico, Laboratorio de Neurodegeneración, Instituto Pasteur Montevideo
Mon, Nov 23 · 05:00 UTC
Las enfermedades neurodegenerativas como la Enfermedad de Alzheimer, Enfermedad de Parkinson y la Esclerosis Lateral Amiotrófica tienen una prevalencia creciente en nuestra sociedad, de acuerdo con el aumento de la expectativa de vida. Durante el envejecimiento, las células gliales sufren cambios funcionales favoreciendo la “neuroinflamación”, que tiene un reconocido papel patogénico en la progresión de la enfermedad neurodegenerativa. Estudios recientes demuestran que durante el envejecimiento del sistema nervioso se acumulan notablemente células senescentes, tanto de estirpe neuronal como glial. Las células senescentes no proliferan, muchas de ellas exhiben un fenotipo secretor (SASP) con capacidad de inducir inflamación. La eliminación de células senescentes por ablación genética inducida farmacológicamente o por bloqueos de fármacos senolíticos mejoran la neuroinflamación y disminuyen la neurotoxicidad. En la presentación, se realizará una revisión de la bibliografía sobre este tema y se realizará un análisis del potencial terapéutico de fármacos senolíticos como una aproximación terapéutica novedosa de las enfermedades neurodegenerativas.
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.
Inter-cellular interactions during neural circuit development
Ruediger Klein· Max Planck Institute for Biological Intelligence
Thu, Nov 12 · 17:00 UTC
Heterogeneity in environment, growth, and cell size in Mycobacterium tuberculosis
Bree Aldridge· Tufts University, USA
Mon, Nov 2 · 23:00 UTC
October 2020
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.
Molecular controls over corticospinal neuron axon branching at specific spinal segments
Yasuhiro Itoh· Harvard
Wed, Oct 28 · 09:00 UTC
Corticospinal neurons (CSN) are the cortical projection neurons that innervate the spinal cord and some brainstem targets with segmental precision to control voluntary movement of specific functional motor groups, limb sections, or individual digits, yet molecular regulation over CSN segmental target specificity is essentially unknown. CSN subpopulations exhibit striking axon targeting specificity from development into maturity: Evolutionarily newer rostrolateral CSN exclusively innervate bulbar-cervical targets (CSNBC-lat), while evolutionarily older caudomedial CSN (CSNmed) are more heterogeneous, with distinct subpopulations extending axons to either bulbar-cervical or thoraco-lumbar segments. The cervical cord, with its evolutionarily enhanced precision of forelimb movement, is innervated by multiple CSN subpopulations, suggesting inter-neuronal interactions in establishing corticospinal connectivity. I identify that Lumican, previously unrecognized in axon development, controls the specificity of cervical spinal cord innervation by CSN. Remarkably, Lumican, an extracellular matrix protein expressed by CSNBC-lat, non-cell-autonomously suppresses axon collateralization in the cervical cord by CSNmed. Intersectional viral labeling and mouse genetics further identify that Lumican controls axon collateralization by multiple subpopulations in caudomedial sensorimotor cortex. These results identify inter-axonal molecular crosstalk between CSN subpopulations as a novel mechanism controlling corticospinal connectivity and competitive specificity. Further, this mechanism has potential implications for evolutionary diversification of corticospinal circuitry with finer scale precision. "" Complementing this work, to comprehensively elucidate related axon projection mechanisms functioning at tips of growing CSN axons in vivo, I am currently applying experimental and analytic approaches recently developed in my postdoc lab (Poulopoulos*, Murphy*, Nature, 2019) to quantitatively and subcellularly “map” RNA and protein molecular machinery of subtype-specific growth cones, in parallel to their parent somata, isolated directly in vivo from developing subcerebral projection neurons (SCPN; the broader cortical output neuron population targeting both brainstem and spinal cord; includes CSN). I am investigating both normal development and GC-soma dysregulation with mutation of central CSN-SCPN transcriptional regulator Ctip2/Bcl11b.
Cell Size and Zygotic Genome Activation
Hui Chen (Good Lab)· University of Pennsylvania, USA
Mon, Oct 19 · 23:00 UTC
Microglia function and dysfunction in Alzheimer’s disease
Beth Stevens· Harvard Medical School
Thu, Oct 8 · 15:00 UTC
Emerging genetic studies of late-onset Alzheimer’s Disease implicate the brain’s resident macrophages in the pathogenesis of AD. More than half the risk genes associated with late-onset AD are selectively expressed in microglia and peripheral myeloid cells; yet we know little about the underlying biology or how myeloid cells contribute to AD pathogenesis. Using single-cell RNA sequencing and spatial transcriptomics we identified molecular signatures that can be used to localize and monitor distinct microglia functional states in the human and mouse brain. Our results show that microglia assume diverse functional states in development, aging and injury, including populations corresponding to known microglial functions including proliferation, migration, inflammation, and synaptic phagocytosis. We identified several innate immune pathways by which microglia recognize and prune synapses during development and in models of Alzheimer’s disease, including the classical complement cascade. Illuminating the mechanisms by which developing synaptic circuits are sculpted is providing important insight on understanding how to protect synapses in Alzheimer’s and other neurodegenerative diseases of synaptic dysfunction.
A mechanism for nuclear size scaling based upon osmotic pressure
Fred Chang· UCSF, USA
Mon, Oct 5 · 23:30 UTC
Measuring protein and lipid mass in single cells in tissue environment
Seungeun Oh (Kirschner Lab)· Harvard, USA
Mon, Oct 5 · 23:00 UTC
About time: the temporal control of cell fate in the developing vertebrate nervous system
James Briscoe· Francis Crick Institute
Thu, Oct 1 · 17:00 UTC
September 2020
Control of axon growth and branching
Britta Eickholt· Charité – Universitätsmedizin Berlin, Germany
Mon, Sep 21 · 23:30 UTC
Mechanical Homeostasis of the Actin Cytoskeleton
Margaret Gardel· University of Chicago
Fri, Sep 18 · 14:00 UTC
My lab studies the design principles of cytoskeletal materials the drive cellular morphogenesis, with a focus on contractile machinery in adherent cells. In addition to force generation, a key feature of these materials are distributed force sensors which allow for rapid assembly, adaptation, repair and disintegration. Here I will describe how optogenetic control of RhoA GTPase is a powerful and versatile force spectroscopy approach of cytoskeletal assemblies and its recent use to probe repair response in actomyosin stress fibers. I will also describe our recent identification of 18 proteins from the zyxin, paxillin, Tes and Enigma families with mechanosensitive LIM (Lin11, Isl- 1 & Mec-3) domains that bind exclusively to mechanically stressed actin filaments. Our results suggest that the evolutionary emergence of contractile F-actin machinery coincided with, or required, proteins that could report on the stresses present there to maintain homeostasis of actively stressed networks.
In this talk, I will describe my lab’s recent efforts to understand the design principles of the active, soft materials that drive cell morphogenesis. In particular, we are interested in how collections of myosin II motors and actin polymers generate, relax, sense and adapt to mechanical force. I will discuss how motor-filament interactions lead to either distributed extensile or contractile stresses as the mechanics of the system changes from fluid to solid. Using optical control of motors, we are now exploring how spatially structured stress can be used to drive local flows and motion. If time, I will also describe how feedbacks between local geometry and activity can be harnessed to drive morphogenetic changes in model systems.
Transcription regulates histone homeostasis
Kora-Lee Claude (Schmoller Lab)· Institute of Functional Epigenetics, Helmholtz, Germany
Mon, Sep 7 · 23:00 UTC