bioRxiv Science⌕ Search

Biology subjects

Trappmann, B.

Publications and source records attributed to Trappmann, B..

4 recordsLinked to original sources

Heparin flexibility within the extracellular matrix determines the bioactivity of bound vascular endothelial growth factor

Vascular endothelial growth factor (VEGF), a major regulator of blood vessel formation, is naturally bound to heparan sulfate proteoglycans in the extracellular matrix (ECM). Yet, how the physical presentation of VEGF by the matrix impacts its signaling potential remains fully unknown. To address this question, we have developed a tunable heparin-containing hydrogel model that recapitulates natural VEGF binding modes with full and independent control over physical properties. Using this model, we show that the degree of heparin flexibility in the hydrogel network determines the mobility of bound VEGF and, in turn, its ability to interact with VEGF receptor 2. We demonstrate that VEGF mobility is driven by a relay mechanism, in which VEGF molecules directly switch from one heparin chain to another. When strong electrostatic interactions between heparin and other hydrogel constituents immobilize the sugar backbone, this relay mechanism is impeded, in turn reducing VEGFs ability to reach its target receptor at the cell membrane, thereby reducing its bioactivity. This work identifies heparin flexibility within the ECM as a previously unknown regulator of the microenvironment, which will not only contribute to a better mechanistic understanding of how the ECM regulates growth factor bioactivity, but it will also provide an important design criterion for the development of tissue-engineered biomaterials that require vascularization.

bioengineering↗

Membrane tension regulation is required for wound repair

Disruptions of the eukaryotic plasma membrane due to chemical and mechanical challenges are frequent and detrimental, and thus need to be repaired to maintain proper cell function and avoid cell death. However, the cellular mechanisms involved in wound resealing and restoration of homeostasis are diverse and contended. Here, we show that clathrin-mediated endocytosis is induced at later stages of plasma membrane wound repair following the actual resealing of the wound. This compensatory endocytosis occurs near the wound, predominantly at sites of previous early endosome exocytosis which is required in the initial stage of membrane resealing, suggesting a spatio-temporal co-ordination of exo- and endocytosis during wound repair. Using cytoskeletal alterations and modulation of membrane tension and membrane area, we identify membrane tension as a major regulator of the wounding-associated exo- and endocytic events that mediate efficient wound repair. Thus, membrane tension changes are a universal trigger for plasma membrane wound repair modulating the exocytosis of early endosomes required for resealing and subsequent clathrin-mediated endocytosis acting at later stages to restore cell homeostasis and function.

cell biology↗

Mechanical Strain Activates Planar Cell Polarity Signaling to Coordinate Vascular Cell Dynamics

Mechanical stimuli, particularly laminar blood flow, play a crucial role in shaping the vascular system. Changes in the rate of blood flow manifest in altered shear stress, which activates signaling cascades that drive vascular remodeling. Consistently, dysregulation of the endothelial response to fluid shear forces and aberrant flow patterns both lead to pathological conditions, including impaired blood vessel development and atherosclerosis. Despite its importance, the mechanisms driving the coordinated cell behavior underlying vascular remodeling are not fully understood. Combining classical cell biological approaches with advanced image analysis, mathematical modeling, biomimetic strategies, and in vivo studies, we identify the planar cell polarity (PCP) protein Vangl1 as an enforcer of flow-dependent cell dynamics in the vascular system. We demonstrate that shear stress triggers the relocation of Vangl1 from an internal reservoir to the plasma membrane at the initiation of cell remodeling. Membrane enrichment of Vangl1 is mediated by a Coronin1C-dependent shift in the equilibrium between endo- and exocytosis and results in the spatial reorganization of another essential PCP protein, Frizzled6 (Fzd6). The resulting mutual exclusion of the core PCP proteins Fzd6 and Vangl1 augments differential junctional and cytoskeletal dynamics along the flow axis. Loss of Vangl1 limits the ability of endothelial cells to respond to shear forces in a coordinated fashion, resulting in irregular cell alignment along the flow direction and erroneous vessel sprouting. Together, these studies introduce core PCP signaling as a determinant of collective cell dynamics and organization of the vascular system.

cell biology↗

Primordial germ cells adjust their protrusion type while migrating in different tissue contexts in vivo

In both physiological processes and disease contexts, migrating cells have the ability to adapt to conditions in their environment. As an in vivo model for this process, we use zebrafish primordial germ cells that migrate throughout the developing embryo. When migrating within an ectodermal environment, the germ cells form fewer and smaller blebs as compared with their behavior within mesodermal environment. We find that cortical tension of neighboring cells is a parameter that affects blebbing frequency. Interestingly, the change in blebbing activity is accompanied by the formation of more actin-rich protrusions. These alterations in cell behavior that correlate with changes in RhoA activity could allow the cells to maintain dynamic motility parameters, such as migration speed and track straightness, in different settings. In addition, we find that the polarity of the cells can be affected by stiff structures positioned in their migration path.

cell biology↗