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Oliver Harschnitz· Human Technopole, Milan, Italy
Sun, Dec 7, 2025 · 11:00
Igor Adameyko· Karolinska & MedUni, Wien, Austria
Tue, Nov 12, 2024 · 12:15
Igor Adameyko· Medical University of Vienna; Karolinska Institutet
Tue, Nov 12, 2024 · 12:15
Recent research on the neural crest has revealed the multipotency and plasticity of nerve-associated Schwann cell precursors, which can differentiate into diverse cell types, including parasympathetic neurons, neuroendocrine cells, and mesenchymal stem cells. These findings challenge the traditional view of peripheral nerves, highlighting their role as niches for migratory progenitor cells that contribute to tissue formation and regeneration.
Yiming Chao· University of Hong Kong
Wed, May 24, 2023 · 10:30
Meritxell Sáez· Briscoe lab, Francis Crick Institute; IQS Barcelona
Tue, Jun 28, 2022 · 17:00
Fate decisions in developing tissues involve cells transitioning between a set of discrete cell states. Geometric models, often referred to as Waddington landscapes, are an appealing way to describe differentiation dynamics and developmental decisions. We consider the differentiation of neural and mesodermal cells from pluripotent mouse embryonic stem cells exposed to different combinations and durations of signalling factors. We developed a principled statistical approach using flow cytometry data to quantify differentiating cell states. Then, using a framework based on Catastrophe Theory and approximate Bayesian computation, we constructed the corresponding dynamical landscape. The result was a quantitative model that accurately predicted the proportions of neural and mesodermal cells differentiating in response to specific signalling regimes. Taken together, the approach we describe is broadly applicable for the quantitative analysis of differentiation dynamics and for determining the logic of developmental cell fate decisions.
Christian Mayer· Max Planck Institute of Neurobiology, Martinsried
Wed, Dec 15, 2021 · 17:00
Hannah Yevick· MIT
Sun, Oct 24, 2021 · 09:00
Tissue folding is a ubiquitous shape change event during development whereby a cell sheet bends into a curved 3D structure. This mechanical process is remarkably robust, and the correct final form is almost always achieved despite internal fluctuations and external perturbations inherent in living systems. While many genetic and molecular strategies that lead to robust development have been established, much less is known about how mechanical patterns and movements are ensured at the population level. I will describe how quantitative imaging, physical modeling and concepts from network science can uncover collective interactions that govern tissue patterning and shape change. Actin and myosin are two important cytoskeletal proteins involved in the force generation and movement of cells. Both parts of this talk will be about the spontaneous organization of actomyosin networks and their role in collective tissue dynamics. First, I will present how out-of-plane curvature can trigger the global alignment of actin fibers and a novel transition from collective to individual cell migration in culture. I will then describe how tissue-scale cytoskeletal patterns can guide tissue folding in the early fruit fly embryo. I will show that actin and myosin organize into a network that spans a domain of the embryo that will fold. Redundancy in this supracellular network encodes the tissue’s intrinsic robustness to mechanical and molecular perturbations during folding.
Aixa V. Morales· Cajal Institute
Thu, May 6, 2021 · 19:00
Dr. Aixa V. Morales has been working for more than 20 years in the field of Developmental Biology and from 2005, she is the PI of the laboratory on “Molecular Control of Neurogenesis” at Cajal Institute. Along these years, she has contributed to understanding the control of neurogenesis during development, the dorsoventral specification of neural progenitors, and the temporal control of the migration of neural crest cells. More recently, her lab interest moved towards understanding modulation of adult neurogenesis. Her lab current interest is the control of quiescence, as a mechanism of long-term neural stem cell maintenance in adult niches.
Sylvie Rétaux· CNRS-Institut de Neurobiologie Alfred Fessard
Wed, May 5, 2021 · 17:00
Mustafa Mir· University of Pennsylvania
Thu, Apr 22, 2021 · 11:00
Miki Ebisuya· RIKEN Center for Biosystems Dynamics Research
Wed, Apr 21, 2021 · 17:00
Olivier Goureau· Sorbonne Université, INSERM, CNRS
Mon, Apr 19, 2021 · 12:00
David Lubensky· University of Michigan
Thu, Feb 25, 2021 · 11:30
Elaine Lim· University of Massachusetts Medical School
Tue, Dec 1, 2020 · 11:00
Pierre Leopold· Centre de recherche de l'Institut Curie
Sun, Nov 8, 2020 · 16:00
Hui Chen (Good Lab)· University of Pennsylvania, USA
Mon, Oct 19, 2020 · 08:00
Thomas Lecuit· IBDM
Thu, Aug 20, 2020 · 09:00
Jane Kondev· Brandeis University
Sun, Aug 16, 2020 · 09:00
Alexander Aulehla· EMBL
Wed, Aug 12, 2020 · 09:00
Benjamin Towbin· University of Bern, Switzerland
Mon, Aug 10, 2020 · 08:00