. Scientific Frontline: Mechanics of Blood Vessel Formation

Tuesday, July 28, 2026

Mechanics of Blood Vessel Formation

Fluorescence microscopy image of blood vessels (green) in a zebrafish. Blood cells are stained red.
 Image Credit: Etienne Schmelzer, Biozentrum, University of Basel

Scientific Frontline: Extended "At a Glance" Summary
: Vascular Tube Formation

The Core Concept: Blood vessel formation relies on endothelial cells coordinating their movements to create continuous, hollow tubes. This process requires precise cellular reshaping and merging to establish functional vascular networks that supply the body with oxygen and nutrients.

Key Distinction/Mechanism: Endothelial cells progress in an inchworm-like fashion using junction-based lamellipodia (JBL). These specialized membrane protrusions generate a pushing force, anchor to neighboring cells using the molecule VE-cadherin, and subsequently apply pulling forces to elongate the cell and merge separate segments into uninterrupted lumens.

Origin/History: The detailed sequence of these cellular mechanics was uncovered by a University of Basel research team, led by Markus Affolter and Heinz-Georg Belting, using high-resolution live imaging in zebrafish.

Major Frameworks/Components:

  • Endothelial Cells: The primary cellular building blocks that form the inner lining of blood vessels.
  • Junction-Based Lamellipodia (JBL): Membrane protrusions at the leading edge of cells responsible for generating forward-pushing forces.
  • VE-Cadherin: A molecule that functions dually as the structural "glue" maintaining cell-cell junction stability and as an active mechanical driver in cellular movement.
  • Actomyosin Dynamics: The precise cycle of mechanical pushing and pulling forces essential for extending and connecting neighboring lumens.

Branch of Science: Cell Biology, Developmental Biology, Vascular Biology, and Biomechanics.

Future Application: These discoveries provide a foundational biological mechanism for engineering fully vascularized organoids and laboratory-grown tissues, which are critical prerequisites for advancements in regenerative medicine.

Why It Matters: Because blood vessels accompany the development of almost every organ, understanding the exact mechanical forces driving vascular formation is fundamental to replicating natural organ development in both research and therapeutic applications.

How do blood vessels form to reliably supply the body with oxygen and nutrients? A research team at the University of Basel has uncovered a key mechanism by which cells join to build new blood vessels. Their study reveals how pushing and pulling forces enable individual vessel segments to connect and form a continuous blood vessel. The findings deepen our understanding of vascular development and provide a foundation for the development of vascularized organoids.

To supply the body with blood, billions of cells must be organized into a highly branched vascular network. This process of blood vessel formation relies on the creation of hollow tubes, which contain a continuous lumen through which blood can later flow. How endothelial cells change their shape and precisely coordinate their movements during this process has so far been only partially understood.

Using high-resolution live imaging in zebrafish (Danio rerio), the researchers, led by Professor Markus Affolter and Dr. Heinz-Georg Belting at the Biozentrum, have now unraveled this process in unprecedented detail. Their findings, published in the journal eLife, demonstrate for the first time the complete sequence of events by which neighboring lumens connect and merge into a continuous blood vessel.

Cell Junctions Drive Blood Vessel Formation

During vascular development, endothelial cells remain connected to one another by cell-cell junctions. These junctions must be stable enough to maintain the integrity of the vessel wall while remaining sufficiently dynamic to allow cells to rearrange.

Previous work by the team had shown that specialized membrane protrusions, known as junction-based lamellipodia (JBL), form the leading edge of endothelial cells and are responsible for their rearrangements. The new study now demonstrates for the first time which mechanical forces enable the cells to extend and connect with one another during this process.

Push, Anchor, and Pull

The process starts when a JBL protrusion forms at the tip of an endothelial cell, generating a pushing force that extends the cell forward. At its very tip, the protrusion acts like a molecular anchor that attaches to the neighboring cell, linking the two cells together and stabilizing the developing blood vessel.

Next, pulling forces come into play, drawing the rear of the cell forward and gradually elongating it. "Through this repeated cycle of pushing and pulling, the cells move forward much like an inchworm, progressively extending the lumen," explains first author Dr. Ludovico Maggi. In this way, initially separate segments merge to form blood vessels with uninterrupted lumens.

"We found that the molecule VE-cadherin performs two distinct functions," says last author Heinz-Georg Belting. "It not only acts as the 'glue' that holds endothelial cells together and maintains the stability of the vessel wall but also plays an active role in cell movement. We were also surprised by how remarkably plastic these cells are—both stable and highly flexible at the same time."

Implications Beyond Blood Vessels

The study provides the first detailed description of how endothelial cells coordinate their cell-cell junctions and demonstrates that both pushing and pulling forces are essential for the formation of continuous blood vessels. Because virtually all organs develop in close interaction with the vascular system, a better understanding of blood vessel formation also advances our knowledge of organ development.

"Blood vessels are far more than simple supply lines," says Belting. "They accompany the development of almost every organ. Understanding how blood vessels form means understanding a fundamental aspect of organ formation."

In the long term, these findings could help researchers engineer organoids and other laboratory-grown tissues with functional blood vessels, which are crucial prerequisites for faithfully replicating natural organ development in research and regenerative medicine.

Reference material: What Is: Organoid

Published in journal: Elife

TitleJunctional and Actomyosin Dynamics Drive Endothelial Cell Rearrangements during Vascular Tube Formation

Authors: Ludovico Maggi, Jianmin Yin, Cora Wiesner, Ilkka Paatero, Julian Malchow, Christian Helker, Markus Affolter, and Heinz-Georg Belting

Source/CreditUniversity of Basel | Heike Sacher

Edited by: Scientific Frontline

Reference Number: cbio072826_01

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