clocks. However, the regulation of these rhythms by environmental cues and lifestyle has not been fully understood.
Obesity stands as a formidable public health burden, with about a quarter of the UK adults living with obesity and comorbidities. These include an increased risk of chronic conditions such as diabetes, cardiovascular diseases, and certain cancers, as well as negative impact on mental health. Tackling obesity demands a comprehensive approach, involving public health initiatives, education, and policy changes to promote healthier lifestyles. Recent advances in circadian neuroscience highlight the importance of food and feeding time as a cue synchronising our body clocks. Additionally, restricting food to a narrow window during the day (e.g., intermittent fasting) proves beneficial for general health and well-being, including management of weight, cardiovascular health, and diabetes.
Various pharmacotherapeutic agents, including glucagon-like peptide-1 receptor (GLP-1R) agonists have been investigated for their efficacy in weight reduction. However, challenges persist in terms of long-term sustainability, side-effect profiles, and patient adherence. This project aims to investigate the effects of intermittent fasting and pharmacological treatments of obesity (e.g., GLP-1R antagonists) on the timekeeping properties extra-SCN oscillators in the mouse brain. It also aims to establish best time of day for obesity drug treatment and potential influence of meal timing on their effectiveness. The student will utilise cutting edge experimental techniques in circadian neuroscience including:
- fluorescent in situ hybridisation and confocal microscopy to investigate molecular rhythms in vivo (e.g., clock gene expression);
- real-time monitoring of clock gene expression ex vivo using PERIOD2::LUCIFERASE reporter mice;
- electrophysiological recordings ex vivo on multi-electrode arrays over 24h;
- automated monitoring of feeding, drinking, and wheel running in home cages;
- range of molecular methods used for quantitative assessment of gene expression.
The student will receive comprehensive training in in vivo physiology and will obtain Home Office animal licence. Additionally, to support the development of advanced data analysis skills they will attend coding courses (e.g., R, Python, MatLab). During the project, they will have a chance to travel between Bristol and Exeter to explore experimental potential of laboratories of all three supervisors.
Initially, the PhD student will focus on characterising the 24h rhythms in GLP-1 receptor expression in the DVC in the DVC. They will investigate using molecular and electrophysiological methods, laying foundations for their in vivo studies. Then, based on already obtained data, the student's interest, and results of their experiments, they can choose which different in vivo and behavioural models to explore. This gives the student the possibility to take control over the project and introduce their own ideas and directions. Ultimately, they will aim to understand what is the best circadian time for treatment with GLP-1 mimetics, and how this can be set up by diet; all through the lens of the circadian rhythms in the brainstem satiety centre.
How to Apply
A list of all the projects and how to apply is available on the GW4 BioMed website at gw4biomed.ac.uk. You may select up to 2 projects and submit one application per candidate only.
Please complete an application to the GW4 BioMed3 for an 'offer of funding'. If successful, you will also need to make an application for an 'offer to study' to your chosen institution later.
Please complete the online application form linked from our website by 5.00pm on Wednesday, 21st October 2026. Please note that we may close the application process before the stated deadline if an unprecedented number of applications are received - check the GW4 BioMed website for details and updates. If you are shortlisted for interview, you will be notified from Tuesday, 22nd December 2026. Interviews will be held virtually on 26th and 27th January 2027. Studentships will start on 1st October 2027.
Further Information
For informal enquiries, please contact GW4BioMed@cardiff.ac.uk
For project related queries, please contact the respective supervisors listed on the project descriptions on the GW4 BioMed website.
Funding Notes
These studentships are funded through GW4 BioMed3 MRC Doctoral Landscape Programme and consist of UK tuition fees, as well as a Doctoral Stipend matching UK Research Council National Minimum (£21, 805 p.a. for 2026/27, updated each year).
Additional research training and support funding of up to £5,000 per annum is also available.