Sort by
Refine Your Search
-
Category
-
Employer
- Newcastle University
- University of Cambridge
- University of Cambridge;
- University of Exeter
- University of Surrey
- The University of Manchester
- University of East Anglia
- University of Nottingham
- University of Warwick
- University of Warwick;
- Durham University
- Newcastle University;
- The Rosalind Franklin Institute
- University of Bedfordshire
- University of Plymouth
- University of Sussex
- 6 more »
- « less
-
Field
-
, physiology-aware models of bacteriophage infection by combining high-throughput single-cell microscopy, microfluidics, image analysis, and mathematical modelling. The work will contribute to understanding how
-
interdisciplinary training in molecular biology, transcriptomics, bioinformatics, advanced imaging, and 3D cell culture, within a collaborative and well-supported research environment. Supervisors:Dr Susan Armstrong
-
mechanistically using an epithelial cell model. This interdisciplinary project provides training in developmental biology, bioinformatics, spatial transcriptomics, cell culture, imaging and molecular genetics
-
mechanistically using an epithelial cell model. This interdisciplinary project provides training in developmental biology, bioinformatics, spatial transcriptomics, cell culture, imaging and molecular genetics
-
questions include what compliance means formally when no party sees the whole picture, how enforcement can be verifiable rather than trusted, and what these guarantees cost. The work spans cryptography
-
-physics optimisation, ultimately delivering prototype-oriented design methodologies for future industrial applications. Who we are looking for: We are seeking an enthusiastic and self-motivated candidate
-
models of glaucoma. This interdisciplinary project will provide comprehensive training in molecular and cell biology, regenerative medicine, disease modelling, and advanced imaging technologies. You will
-
resistance requires a deep understanding of the molecular mechanisms underlying pathogenesis. This project will utilize single cell transcriptomics and advanced live cell imaging approaches in combination
-
models or image generation, have recently also taken the atmospheric dynamics and weather forecast communities by storm. At the same time, due to anthropogenetic climate change, society faces elevated risk
-
potential in ultrasensitive detection, nanoscale electronics, and medical imaging, but finding promising molecules for these applications is challenging because exceptional optical and electronic performance