Genomics seminars
July 2026
Learning Genetic Perturbation Effects at Single-Cell Resolution for Virtual Cells
Jiaqi Zhang· MIT at the seminar; incoming Assistant Professor, Columbia University
Tue, Jul 14 · 14:30 UTC · Cambridge
Jiaqi Zhang examines how computational models can learn the effects of genetic interventions from single-cell experiments. Such experiments reveal causal relationships, but their high-dimensional measurements are costly to collect and difficult to interpret. The seminar connects identifiable causal representations with a predictive method for previously unseen perturbations. The approach incorporates prior biological knowledge and changes in data distributions to estimate responses at individual-cell resolution. It also uses predictions to guide subsequent experiments. An application identifies and experimentally validates previously unknown T-cell regulators with potential relevance to cancer immunotherapy. The recording follows the original July seminar; the series lists Zhang at MIT, while the recording biography describes her incoming Columbia appointment.
Computational GenomicsMachine LearningSeries: Microsoft Research New England Generative Modeling & Sampling SeminarVideo+3 more
September 2025
Who We Are and How We Got Here: Ancient DNA as a Window into Human History and Biology
David Reich· Harvard Medical School; Harvard Faculty of Arts and Sciences; Howard Hughes Medical Institute, USA
Mon, Sep 15 · 20:00 UTC · Cambridge, United States
David Reich examines how sequencing DNA from ancient human remains has changed the reconstruction of population history. Genetic evidence from past cultures can reveal relationships and movements that are difficult to infer from living populations alone, sometimes challenging interpretations based on archaeology, language and written history. The lecture explores what these discoveries imply for understanding shared and complex human ancestries, and how knowledge of the past could inform the study of human health. A discussion with Carl Zimmer connects the research to the interpretation and communication of evidence about human history. The programme extends the paleogenomic research associated with the 2022 medicine prize through recent work on ancient and modern human DNA.
July 2023
Comparative transcriptomics of retinal cell types
Karthik Shekhar· University of California, Berkeley
Mon, Jul 24 · 15:00 UTC
May 2023
Organoid-based single-cell spatiotemporal gene expression landscape of human embryonic development and hematopoiesis
Yiming Chao· University of Hong Kong
Thu, May 25 · 04:30 UTC
February 2023
The person-to-person transmission landscape of the gut and oral microbiomes
Mireia Valles Colomer· U Trento
Thu, Feb 16 · 06:00 UTC
January 2023
A framework for detecting noncoding rare variant associations of large-scale whole-genome sequencing studies
Zilin Li· Indiana University School of Medicine
Tue, Jan 10 · 04:00 UTC
December 2022
Microglial efferocytosis: Diving into the Alzheimer's Disease gene pool
Carmen Romero-Molina, Francesca Garretti· Icahn School of Medicine at Mount Sinai
Tue, Dec 20 · 06:00 UTC
Genome-wide association studies and functional genomics studies have linked specific cell types, genes, and pathways to Alzheimer’s disease (AD) risk. In particular, AD risk alleles primarily affect the abundance or structure, and thus the activity, of genes expressed in macrophages, strongly implicating microglia (the brain-resident macrophages) in the etiology of AD. These genes converge on pathways (endocytosis/phagocytosis, cholesterol metabolism, and immune response) with critical roles in core macrophage functions such as efferocytosis. Here, we review these pathways, highlighting relevant genes identified in the latest AD genetics and genomics studies, and describe how they may contribute to AD pathogenesis. Investigating the functional impact of AD-associated variants and genes in microglia is essential for elucidating disease risk mechanisms and developing effective therapeutic approaches." https://doi.org/10.1016/j.neuron.2022.10.015
The Neandertal Genome and the Evolution of Modern Humans — Svante Pääbo
Svante Pääbo· Max Planck Institute for Evolutionary Anthropology, Leipzig, Germany; Okinawa Institute of Science and Technology, Japan
Wed, Dec 7 · 14:00 UTC · Solna, Sweden
Svante Pääbo explains how DNA recovered from ancient remains opened an experimental route to studying extinct human relatives. The lecture follows the technical challenge of extracting reliable genetic information from small, degraded and contaminated samples, through the reconstruction of Neanderthal genomes and the identification of Denisovans. Comparisons with living people reveal interbreeding between archaic hominins and the ancestors of present-day humans. Pääbo connects those findings to questions about human origins, the genetic changes that distinguish modern humans, and the continuing biological effects of inherited archaic variants. The account shows how methodological advances in paleogenomics changed both the history of human populations and the questions that can be asked about human biology.
August 2022
Linking GWAS to pharmacological treatments for psychiatric disorders
Aurina Arnatkeviciute· Monash University
Fri, Aug 19 · 21:00 UTC
Genome-wide association studies (GWAS) have identified multiple disease-associated genetic variations across different psychiatric disorders raising the question of how these genetic variants relate to the corresponding pharmacological treatments. In this talk, I will outline our work investigating whether functional information from a range of open bioinformatics datasets such as protein interaction network (PPI), brain eQTL, and gene expression pattern across the brain can uncover the relationship between GWAS-identified genetic variation and the genes targeted by current drugs for psychiatric disorders. Focusing on four psychiatric disorders---ADHD, bipolar disorder, schizophrenia, and major depressive disorder---we assess relationships between the gene targets of drug treatments and GWAS hits and show that while incorporating information derived from functional bioinformatics data, such as the PPI network and spatial gene expression, can reveal links for bipolar disorder, the overall correspondence between treatment targets and GWAS-implicated genes in psychiatric disorders rarely exceeds null expectations. This relatively low degree of correspondence across modalities suggests that the genetic mechanisms driving the risk for psychiatric disorders may be distinct from the pathophysiological mechanisms used for targeting symptom manifestations through pharmacological treatments and that novel approaches for understanding and treating psychiatric disorders may be required.
May 2022
The evolution and development of visual complexity: insights from stomatopod visual anatomy, physiology, behavior, and molecules
Megan Porter· University of Hawaii
Mon, May 2 · 17:00 UTC
Bioluminescence, which is rare on land, is extremely common in the deep sea, being found in 80% of the animals living between 200 and 1000 m. These animals rely on bioluminescence for communication, feeding, and/or defense, so the generation and detection of light is essential to their survival. Our present knowledge of this phenomenon has been limited due to the difficulty in bringing up live deep-sea animals to the surface, and the lack of proper techniques needed to study this complex system. However, new genomic techniques are now available, and a team with extensive experience in deep-sea biology, vision, and genomics has been assembled to lead this project. This project is aimed to study three questions 1) What are the evolutionary patterns of different types of bioluminescence in deep-sea shrimp? 2) How are deep-sea organisms’ eyes adapted to detect bioluminescence? 3) Can bioluminescent organs (called photophores) detect light in addition to emitting light? Findings from this study will provide valuable insight into a complex system vital to communication, defense, camouflage, and species recognition. This study will bring monumental contributions to the fields of deep sea and evolutionary biology, and immediately improve our understanding of bioluminescence and light detection in the marine environment. In addition to scientific advancement, this project will reach K-college aged students through the development and dissemination of educational tools, a series of molecular and organismal-based workshops, museum exhibits, public seminars, and biodiversity initiatives.
April 2022
A transcriptomic axis predicts state modulation of cortical interneurons
Stephane Bugeon· Harris & Carandini's lab, UCL
Wed, Apr 27 · 17:35 UTC
Transcriptomics has revealed that cortical inhibitory neurons exhibit a great diversity of fine molecular subtypes, but it is not known whether these subtypes have correspondingly diverse activity patterns in the living brain. We show that inhibitory subtypes in primary visual cortex (V1) have diverse correlates with brain state, but that this diversity is organized by a single factor: position along their main axis of transcriptomic variation. We combined in vivo 2-photon calcium imaging of mouse V1 with a novel transcriptomic method to identify mRNAs for 72 selected genes in ex vivo slices. We classified inhibitory neurons imaged in layers 1-3 into a three-level hierarchy of 5 Subclasses, 11 Types, and 35 Subtypes using previously-defined transcriptomic clusters. Responses to visual stimuli differed significantly only across Subclasses, suppressing cells in the Sncg Subclass while driving cells in the other Subclasses. Modulation by brain state differed at all hierarchical levels but could be largely predicted from the first transcriptomic principal component, which also predicted correlations with simultaneously recorded cells. Inhibitory Subtypes that fired more in resting, oscillatory brain states have less axon in layer 1, narrower spikes, lower input resistance and weaker adaptation as determined in vitro and express more inhibitory cholinergic receptors. Subtypes firing more during arousal had the opposite properties. Thus, a simple principle may largely explain how diverse inhibitory V1 Subtypes shape state-dependent cortical processing.
March 2022
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.
November 2021
What transcriptomics tells us about retinal development, disease and evolution
Joshua Sanes· Harvard University
Mon, Nov 22 · 14:00 UTC
Classification of neurons, long viewed as a fairly boring enterprise, has emerged as a major bottleneck in analysis of neural circuits. High throughput single cell RNA-seq has provided a new way to improve the situation. We initially applied this method to mouse retina, showing that its five neuronal classes (photoreceptors, three groups of interneurons, and retinal ganglion cells) can be divided into 130 discrete types. We then applied the method to other species including human, macaque, zebrafish and chick. With the atlases in hand, we are now using them to address questions about how retinal cell types diversify, how they differ in their responses to injury and disease, and the extent to which cell classes and types are conserved among vertebrates.
June 2021
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
The role of the complement pathway in post-traumatic sleep disruption and epilepsy
Jeanne Paz· UCSF
Wed, Jun 16 · 16:00 UTC
While traumatic brain injury (TBI) acutely disrupts the cortex, most TBI-related disabilities reflect secondary injuries that accrue over time. The thalamus is a likely site of secondary damage because of its reciprocal connections with the cortex. Using a mouse model of mild cortical injury that does not directly damage subcortical structures (mTBI), we found a chronic increase in C1q expression specifically in the corticothalamic circuit. Increased C1q expression co-localized with neuron loss and chronic inflammation, and correlated with disruption in sleep spindles and emergence of epileptic activities. Blocking C1q counteracted these outcomes, suggesting that C1q is a disease modifier in mTBI. Single-nucleus RNA sequencing demonstrated that microglia are the source of thalamic C1q. Since the corticothalamic circuit is important for cognition and sleep, which can be impaired by TBI, this circuit could be a new target for treating TBI-related disabilities
March 2021
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.
January 2021
Integrative genomics of paper wasp behavior: Molecular underpinnings of complex traits and insights into social evolution
Amy Toth· Iowa State University
Wed, Jan 20 · 06:00 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
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.