Skip to main content
What types of page to search?

Alternatively use our A-Z index.

Understanding the molecular mechanisms of Wnt and Notch signalling during embryonic development

Funding
Self-funded
Study mode
Full-time
Apply by
Year round
Start date
Year round
Subject area
Biological and Biomedical Sciences
Change country or region

We’re currently showing entry requirements and other information for applicants with qualifications from United Kingdom.

Please select from our list of commonly chosen countries below or choose your own.

If your country or region isn’t listed here, please contact us with any questions about studying with us.

Overview

This project uses cutting-edge 3D gastruloid models to reveal how the integration of Wnt and Notch (Wntch) signalling pathways drives cell fate decisions in the early mammalian embryo. The student will uncover how Wntch controls cell fate and axial development by combining live quantitative imaging, engineered reporter lines, and precise pathway perturbations.

About this opportunity

This project is an exciting opportunity for a motivated and talented student to contribute to new understanding of the cellular decision mechanisms that control cell fate in the early mammalian embryo.

During embryonic development, the embryo needs to convert a mass of identical cells into an organism with multiple axes of symmetry (anteroposterior, dorsoventral, mediolateral). Traditional approaches using forward and reverse genetics in animal models have elucidated many of the signals that specify these processes, however we still don’t fully understand the mechanisms that the embryo uses to integrate both mechanical and chemical signals over time, and how these impact cell fate allocation and morphogenesis.

To get a better understanding of these processes, this project will take an innovative in vitro organoid approach using gastruloids as an experimental system. Gastruloids are 3D aggregates of mouse embryonic stem cells that mimic many embryonic patterning events in culture, including the development of all three orthogonal embryonic axes. The highly-controlled and scalable nature of gastruloids provides the means to access, observe and quantify the unfolding of early developmental patterning in detail.

The successful applicant will utilise gastruloids to uncover how Wnt and Notch interact to control cell fate during early cell fate specification. They will use quantitative microscopy of fixed and live gastruloids, following reporter and protein dynamics in real time, assessing how specific inputs alter cell fate. The supervisory team will provide training and support in all relevant techniques.

Project Structure

In the first year, the student will learn all aspects of embryonic stem cell and gastruloid culture, as well as our advanced imaging techniques and analysis pipelines. As this transitions into the second year, the student will begin perturbations of Notch and Wnt signalling in reporter lines, and lines harbouring mutations in key Notch signalling components. Throughout the first and second year, the student will be generating new tools to visualise Notch and Wnt signalling in gastruloids, coupled with reporters of specific germ-layer markers. The latter parts of the second year into the third year will allow the student to explore the implications of their data, developing their independence in research, and consolidating the data they will have gathered. Their thesis writing will take up much of the last few months of their final year.

Further reading

Balayo, T et al. (2025) N2B27 formulations influence gastruloid development. Development; https://doi.org/10.1242/dev.204774

 

van den Brink, S. C.  et al. (2014) Symmetry breaking, germ layer specification and axial organisation in aggregates of mouse embryonic stem cells. Development; https://doi.org/10.1242/dev.113001

 

Turner, D. A., et al. (2017) Anteroposterior polarity and elongation in the absence of extra-embryonic tissues and spatially localised signalling in gastruloids: mammalian embryonic organoids. Development; https://doi.org/10.1242/dev.150391

 

Beccari L., et al. (2018) Multi-axial self-organisation properties in ES cell-derived murine Gastruloids. Nature; https://www.nature.com/articles/s41586-018-0578-0

 

Veenvliet, J.V., et al. (2021) Sculpting with stem cells: how models of embryo development take shape. Development; https://doi.org/10.1242/dev.192914

Back to top

Who is this for?

This project is ideally suited to a highly-motivated student who has an interest in embryonic stem cells, mammalian development, cell signalling, and quantitative approaches. The successful candidate should have, or expect to have, an Honours Degree at 2.1 or above (or equivalent) in a relevant biological sciences subject.

Candidates whose first language is not English should have an IELTS score of 6.5 or equivalent.

 

Back to top

How to apply

  1. 1. Contact supervisors

    Supervisors Email address Staff profile URL
    Dr David Turner david.turner@liverpool.ac.uk https://www.liverpool.ac.uk/people/david-turner
    Dr Bettina Wilm bwilm@liverpool.ac.uk https://www.liverpool.ac.uk/people/bettina-wilm
  2. 2. Prepare your application documents

    You may need the following documents to complete your online application:

    • A research proposal (this should cover the research you’d like to undertake)
    • University transcripts and degree certificates to date
    • Passport details (international applicants only)
    • English language certificates (international applicants only)
    • A personal statement
    • A curriculum vitae (CV)
    • Contact details for two proposed supervisors
    • Names and contact details of two referees.
  3. 3. Apply

    Finally, register and apply online. You'll receive an email acknowledgment once you've submitted your application. We'll be in touch with further details about what happens next.

Back to top

Fees and funding

Your tuition fees, funding your studies, and other costs to consider.

Tuition fees

UK fees (applies to Channel Islands, Isle of Man and Republic of Ireland)

Full-time place, per year - £5,238

International fees

Full-time place, per year - £32,200

fees stated are applicable for 2026/27 academic year


Additional costs

We understand that budgeting for your time at university is important, and we want to make sure you understand any costs that are not covered by your tuition fee. This could include buying a laptop, books, or stationery.

Find out more about the additional study costs that may apply to this project, as well as general student living costs.


Funding your PhD

The successful applicant will be expected to provide the funding for tuition fees, living expenses, and attendance at conferences.

A research bench fee of £20,000 p.a. will be levied as a contribution to laboratory consumables, specific chemically-defined media and supplements, research facility access, and RNAseq.

There is NO institutional funding attached to this project. Details of costs can be found on the University website.

If you're a UK national, or have settled status in the UK, you may be eligible to apply for a Postgraduate Doctoral Loan worth up to £30,301 to help with course fees and living costs.

There’s also a variety of alternative sources of funding. These include funded research opportunities and financial support from UK research councils, charities and trusts. Your supervisor may be able to help you secure funding.


We've set the country or region your qualifications are from as United Kingdom.

Scholarships and bursaries

We offer a range of scholarships and bursaries that could help pay your tuition fees and living expenses.

Duncan Norman Research Scholarship

If you’re awarded this prestigious scholarship, you’ll receive significant funding to support your postgraduate research. This includes full payment of your PhD fees and a cash bursary of £23,000 per year while you study. One award is available in each academic year.

John Lennon Memorial Scholarship

If you’re a UK student, either born in or with strong family connections to Merseyside, you could be eligible to apply for financial support worth up to £12,000 per year for up to three years of full-time postgraduate research (or up to five years part-time pro-rata).

Sport Liverpool Performance Programme

Apply to receive tailored training support to enhance your sporting performance. Our athlete support package includes a range of benefits, from bespoke strength and conditioning training to physiotherapy sessions and one-to-one nutritional advice.

Back to top

Contact us

Have a question about this research opportunity or studying a PhD with us? Please get in touch with us, using the contact details below, and we’ll be happy to assist you.

Back to top