Breakthrough ‘Squishy’ Lasers May Illuminate Tumor and Baby Growth Processes
New ‘squishy’ lasers could help solve the mystery of the biological forces that control the development of embryos and cancerous tumours.
Fundamental biological processes driven by mechanical forces invisible to the human eye are currently poorly understood by scientists. Now a team of physicists at the University of St Andrews and the University of Cologne have developed a new way to precisely measure the forces exerted by biological cells. Their innovative technique could transform our understanding of the development of human embryos and cancerous tumours.
“Embryos and tumors both start with just a few cells,” explained Professor Malte Gather from the University of St Andrews. “It is still very challenging to understand how they expand, contract, squeeze, and fold as they develop. Being able to measure biological forces in real-time could be transformative. It could hold the key to understanding the exact mechanics behind how embryos develop, whether successfully or unsuccessfully, and how cancer grows.”
The research team developed ‘squishy’ microlasers that can be injected directly into embryos or mixed into artificial tumors.
Professor Marcel Schubert, from the University of Cologne, said the microlasers are actually droplets of oil that are doped with a fluorescent dye.
He said: “As the biological forces get to work, the microlasers are squished and deformed by the cells around them. The laser light changes its colour in response and reveals the force that’s acting upon it.”
This innovation allows researchers “to measure and monitor biological forces in real time,” Professor Schubert noted, adding that it works “in thick biological tissue where other methods cannot be applied.”
The oil and fluorescent dye used to create the microlasers are made from non-toxic, readily available materials, ensuring they do not interfere with biological processes. This aspect makes the technology not only effective but also commercially viable.
The researchers tested their method on fruit fly larvae, to see how they developed, a well as in artificial tumours made from brain tumour cells, so-called tumour spheroids.
Professor Gather added: “We measured the 3D distribution of forces within tumour spheroids and made high-resolution long-term force measurements within the fruit fly larvae.”
The team is now seeking funding to adapt their method for clinical trials, aiming to extend its application to larger cell systems.