Students
Tuition Fee
USD 24,949
Per year
Start Date
Medium of studying
On campus
Duration
73 months
Details
Program Details
Degree
PhD
Major
Biotechnology | Genetics | Molecular Biology
Area of study
Natural Science
Education type
On campus
Timing
Full time
Course Language
English
Tuition Fee
Average International Tuition Fee
USD 24,949
Intakes
Program start dateApplication deadline
2023-04-24-
2023-09-19-
2024-01-09-
About Program

Program Overview


Research profile

The overall aim of the Synthetic Biology is to address major environmental, health and societal challenges by engineering biological systems such that they display functions that do not exist in nature, as well as re-designing existing biological systems so that they perform new functions. Our research focuses on three key areas of activity.

  • Gene therapy

    : Some diseases and disorders happen because certain genes work incorrectly or no longer work at all. We are designing therapeutic interventions for human diseases and disorders by developing the technologies to correct defective genes. Our current projects within this area look at vector development for effective gene therapy, assessing and avoiding the risks of gene therapy (genotoxicity) and using the technologies of gene therapy to give new insights into cancer development.
  • Microbial bioengineering:

    The most exploitable and engineerable organisms are bacteria, so we want to harness their capacity and diversity to create white technologies –those which cause no harm. Our research uses integrated genomics strategies to direct bacterial engineering for a number of translational applications. We look at possible ways to create novel bacteria –bacteria that can produce clean proteins, for example, or bacteria that can improve the performance of cement. Using bioengineered microbes, we look at ways to degrade environmental pollutants; generate products using alternatives to petrochemicals; and reuse waste biomaterials from biomass and biodiesel manufacture. There are even investigations within our theme into ways of addressing antibiotic resistance in medically important bacteria. We are exploring other areas, and are open to developing new lines of research that will make the best use of the strain and widely applicable tools for strain assessment and development, especially when they are directed at projects that have sustainability as part of what they seek to achieve.
  • Computer sciences, statistics and maths

    : We are working on data analysis, bioinformatics, and system modelling to inform synthetic system 30 design and efficient laboratory engineering strategies. These outcomes will support our other strands of research.
  • Find out about the exciting research we do: browse profiles of our experts, discover the research groups and their inspirational research activities you too could be part of. We’ve also made available extensive reading materials published by our academics and PhD students.

    Learn more about research in this area.





    Browse the work of subject-relevant research groups

  • Advanced Powertrain and Fuels
  • Bioprocess and Biopharmaceutical Engineering
  • Inflammation Research and Translational Medicine
  • Energy Efficient and Sustainable Technologies
  • Two Phase Flow and Heat Transfer
  • Cardiovascular and Metabolic Research Group
  • Brunel Partners Academic Centre for Health Sciences
  • Institute of Energy Futures
  • Assessment of Structures and Materials under Extreme Conditions
  • Experimental Techniques Centre
  • Organ-on-a-Chip
  • Institute of Health, Medicine and Environments
  • Wolfson Centre for Sustainable Materials Development and Processing
  • Institute of Materials and Manufacturing
  • Genome Engineering and Maintenance
  • Mechanics of Solids and Structures
  • Pollution Research and Policy
  • You can explore our campus and facilities for yourself by taking our virtual tour.

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