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Researchers at RIKEN study artificial cells to understand living cell shape changes.

Researchers at RIKEN have discovered that artificial cells can reveal fundamental physical principles governing how living cells change shape, driven by the actin cytoskeleton rather than just biocheโ€ฆ

Artificial cells reveal how living ones take shape
Phys.org โ€” 5 August 2026
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A research team led by Makito Miyazaki at the RIKEN Center for Integrative Medical Sciences in Japan has made a significant breakthrough in understanding how living cells change shape. Using simple artificial cells, the researchers conducted experiments that revealed the fundamental physical principles governing these changes. The findings were supported by computer simulations and theoretical analyses in collaboration with Purdue University.

This research is particularly timely as scientists continue to explore the complexities of cellular behavior, which plays a crucial role in various biological processes, including development, immune responses, and tissue regeneration. Understanding how cells alter their shapes can provide insights into many health issues, from cancer metastasis to wound healing. The study highlights that these shape changes do not depend solely on complex biochemical signals, as previously thought, but can also be driven by the cell's internal structure.

The researchers focused on the actin cytoskeleton, a network of protein fibers that provides structural support to cells. They found that this cytoskeleton can generate significant changes in cell shape and establish a front-rear polarity, which is essential for directional movement. The study's innovative approach combines experimental work with theoretical frameworks, offering new perspectives on cellular mechanics that could reshape how scientists understand cell behavior.

Looking ahead, this research could pave the way for advancements in biotechnology and medicine. By applying these fundamental principles, scientists could develop new strategies for controlling cell behavior, which may lead to improved therapies for various diseases. The implications of this work extend beyond basic science, potentially influencing fields such as regenerative medicine and cancer treatment.

Read Full Story at Phys.org โ†’
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