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CRISPR is a widely used molecular biology tool exploiting an immune process discovered in bacteria. Dr David Bikard studies CRISPR in bacterial cells, in conjunction with different DNA repair systems, to create even newer tools. He hopes to gain insight into bacterial genetics, and develop increasingly effective medical treatments.
Prof. Giulio Superti-Furga and his team work on understanding the movement of molecules across human cells. In a paper recently published on Cell Host & Microbe, they outline the significance of a single protein, SLC4A7, in phagocytosis, the body's first line of defence against infection. These results, however, go beyond the context of infectious diseases, with repercussions on our knowledge of processes like inflammation and cancer.
Scientists led by ERC grantee Emma Teeling have identified part of the molecular mechanism that gives bat species Myotis their extraordinary long and healthy lifespans. The longest-lived bats can live over 41 years of age while weighing only 7g, which is the human equivalent of some 234 years. They also maintain good health longer than many other mammals. The findings, published in the journal Science Advances, focus on the protective structures at the end of chromosomes, called telomeres. Bats may have evolved unique telomere maintenance mechanisms which allow them to repair age-related cell damage.