Cell Guidance Systems Blog

Hydrogels and tunability

Hydrogels and tunability

Hydrogels are being increasingly for a wide range of biomedical applications including cell culture, drug delivery, tissue engineering and wound healing. This research has opened up new opportunities to provide materials that are triggerable and tuneable.

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What is scaffold-based 3D culture?

What is scaffold-based 3D culture?

Before a drug is deemed suitable for patients, it must undergo a rigorous testing process and cost-effectiveness analyses. The testing begins in a lab where researchers investigate the process behind a disease at either cellular or molecular level. In the past, this has been completed using 2D cell culture, which is convenient and accessible, but more often, cells are grown in a complex 3D environment.

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Alternatives to animal-derived research reagents

Alternatives to animal-derived research reagents

Animal derived materials remain an important part of biological research. Progress is being made to replace these with better defined non-animal alternatives. This is a huge task. The goal of developing alternatives to materials such as FBS and Matrigel® remains elusive.

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Animal-derived research reagents

Animal-derived research reagents

According to the RSPCA, more than 100 million live animals, mostly mice, rats, fish and birds, are used in scientific research procedures each year. Although this is modest compared to the huge number of animals killed globally for food, which includes 50 billion chickens and 1.4 billion pigs, there is a strong drive to reduce the number of animals used in research. As well as experimentation on live animals, animal-derived materials (ADMs) are used to maintain cells cultured in-vitro.

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Cytokine decorated CAR-T cells

Cytokine decorated CAR-T cells

Adoptive T cell therapies such as CAR-T cells have proven effective in treating some leukemias but have struggled to be useful in solid tumours. A recent study reported in PNAS explores a way of easily functionalizing adoptive cells so that they become decorated with a cytokine of choice. In the melanoma mouse model tested, this approach led to significantly improved efficacy.

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Engineering nature: The world of synthetic biology

Engineering nature: The world of synthetic biology

In recent years, the field of synthetic biology has emerged as a revolutionary branch of science, blending engineering principles with biology to reshape the way we understand and interact with living organisms. This groundbreaking discipline combines the power of genetics, biochemistry, and computer science to design, construct, and optimize new biological systems. With its vast potential to address critical global challenges, synthetic biology has garnered immense attention from researchers, innovators, regulators and policymakers alike.

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