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21 items
Sep 23, 2026
A three-day scientific symposium led by early-career scientists, combining invited talks, selected short talks, poster sessions, workshops, networking, and cross-disciplinary exchange in stem cell and developmental biology.
The cell biology of Parkinson’s disease: a role for primary cilia and synaptic vesicle pleomorphism in dopaminergic neurons
Nisha Mohd Rafiq· Interfaculty Institute of Biochemistry (IFIT), Tübingen University
Jul 18, 2024
Beyond the synapse: SYNGAP1 in primary and motile cilia
Helen Willsey, PhD· University of California San Francisco
May 25, 2024
Spatial Organization of Cellular Reactive States in Human Brain Cancer
Sten Linnarsson· Karolinska Institute Sweden
May 22, 2024
Molecular Characterization of Retinal Cell Types: Insights into Evolutionary Origins and Regional Specializations
Yirong Peng· UCLA Stein Eye Institute
Mar 4, 2024
The role of extracellular vesicles in sickness and in health
Vekrellis Konstantinos· Basic Research Center, Biomedical Research Foundation of the Academy of Athens, Athens, Greece
Jan 10, 2024
CXCL9:SPP1 macrophage polarity identifies a network of cellular programs that control human cancers
Ruben Bill· Inselspital, Bern
Dec 12, 2023
Nov 21, 2023
The adult intestine is a major barrier epithelium and coordinator of multi-organ functions. Stem cells constantly repair the intestinal epithelium by adjusting their proliferation and differentiation to tissue intrinsic as well as micro- and macro-environmental signals. How these signals integrate to control intestinal and whole-body homeostasis is largely unknown. Addressing this gap in knowledge is central to an improved understanding of intestinal pathophysiology and its systemic consequences. Combining Drosophila and mammalian model systems my laboratory has discovered fundamental mechanisms driving intestinal regeneration and tumourigenesis and outlined complex inter-organ signaling regulating health and disease. During my talk, I will discuss inter-related areas of research from my lab, including:1- Interactions between the intestine and its microenvironment influencing intestinal regeneration and tumourigenesis. 2- Long-range signals from the intestine impacting whole-body in health and disease.
Aging promotes reactivation from metastatic melanoma dormancy
Mitchell Fane· Fox Chase Cancer Center
Mar 30, 2023
How does the primary tumor imprint a dormancy signature in disseminated tumor cells?
Lucia Borriello· Lewis Katz School of Medicine and Fox Chase Cancer Center
Mar 30, 2023
PHGDH heterogeneity potentiates cancer cell dissemination and metastasis
Patricia Altea Manzano· VIB-KU Leuven Center for Cancer Biology
Feb 9, 2023
Metastatic recurrence in colorectal cancer arises from residual EMP1+ cells
Adrià Cañellas-Socias· BIST
Feb 9, 2023
‘The functional nano-architecture of axonal actin’
Christophe Leterrier· Neuropathophysiology Institute (INP), University of Marseille
Dec 1, 2022
From the cell biology of synaptic plasticity to SFARI
Kelsey Martin· Simons Foundation Autism Research Initiative
Apr 27, 2022
‘Autophagy regulates neurotransmission by controlling the axonal endoplasmic reticulum’
Marijn Kuijpers· Leibniz-Forschungsinstitut Für Molekulare Pharmakologie (FMP), Berlin
Feb 17, 2022
‘New Possibilities & Opportunities @ CBD Single cell & Microfludics Expertise Unit’
Suresh Poovathingal· VIB-KULeuven Center for Brain and Disease Research
Feb 3, 2022
Dec 6, 2021
Recent advances of single cell techniques catalyzed quantitative studies on the dynamics of cell phenotypic transitions (CPT) emerging as a new field. However, fixed cell-based approaches have fundamental limits on revealing temporal information, and fluorescence-based live cell imaging approaches are technically challenging for multiplex long-term imaging. To tackle the challenges, we developed an integrated experimental/computational platform for reconstructing single cell phenotypic transition dynamics. Experimentally, we developed a live-cell imaging platform to record the phenotypic transition path of A549 VIM-RFP reporter cell line and unveil parallel paths of epithelial-to-mesenchymal transition (EMT). Computationally, we modified a finite temperature string method to reconstruct the reaction coordinate from the paths, and reconstruct a corresponding quasi-potential, which reveals that the EMT process resembles a barrier-less relaxation process. Our work demonstrates the necessity of extracting dynamical information of phenotypic transitions and the existence of a unified theoretical framework describing transition and relaxation dynamics in systems with and without detailed balance.
Investigating the functional single-cell biology of SynGAP1 pathways
Michael Courtney· University of Turku and the Abo Academy University
Nov 4, 2021
Sep 10, 2021
Sep 3, 2021
Spatio-temporal control over near critical-point operation ensures fidelity of bacterial genome partition
Jian Liu· Johns Hopkins
Jul 30, 2021