PhD position: Rationally engineered hydrogels to control osteogenesis via mechanoregulation (P2603)

Karlstad University

Basel

Vor Ort

CHF 42.000 - 54.000

Vollzeit

Vor 8 Tagen
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Benefits dieser Stelle

Fully paid PhD position
Interdisciplinary team
State-of-the-art facilities
Supervisory guidance

Zusammenfassung

The University of Basel invites applications for a PhD position focusing on rationally engineered hydrogels to control osteogenesis via mechanoregulation. The project combines material science, biology, and computational modelling in an international team.

The successful candidate will engineer environmentally instructive hydrogels, perform mammalian cell culture, and contribute to data analysis and modelling, with a salary in line with Swiss National Science Foundation guidelines.

Qualifikationen

  • Master in a relevant field; conduct hydrogel synthesis and characterisation.
  • Perform cell culture, data analysis, and computational modelling.
  • Collaborate with interdisciplinary team and publish findings.

Aufgaben

  • Synthesize and characterise hydrogels with controlled viscoelastic properties.
  • Culture and analyze mammalian cells to study mechanoregulation of osteogenesis.
  • Develop and test computational models to link matrix properties with cell responses.

Kenntnisse

Cell culture
Hydrogel formulation
Data analysis
English fluency

Ausbildung

Master's degree in Nanosciences / Biomedical Engineering / Health Sciences and Technology / Biology / Chemistry

Tools

Rheometry
Atomic Force Microscopy
MATLAB
GraphPad
R

Jobbeschreibung

PhD position: Rationally engineered hydrogels to control osteogenesis via mechanoregulation (P2603)

University of Basel ranks among the world’s one hundred best universities and boast a top-ten place among German-speaking universities.

We aim to pursue a new interdisciplinary approach, combining the synthesis of multi-functional culture-matrices with cell-instructive viscoelastic properties, in-depth cell characterisation, and computational modelling to investigate the relationship between matrix properties and osteogenesis. This will contribute to deciphering the importance of mechanical stimulation of the cellular microenvironment, and advance understanding of osteoinductive scaffold development in bone tissue engineering. Our three objectives are a) to rationally engineer hydrogels tuned to the specific mechanical requirements for osteogenesis b) to dissect how targeted manipulation of the hydrogel affects mechanoregulation in human dental pulp stem cells, and c) to propose a computational model to elucidate and predict the cell response.
A key innovation in this PhD project is to engineer environmentally (cell)-instructive hydrogels with controlled architecture (pore size, network interconnectivity) and mechanical properties (viscoelasticity) to recapitulate the mechanical micro-environment of the jawbone. Mechanosensitive complexes within the hydrogel form stimuli-responsive cross-links that adjust hydrogel viscoelasticity as a function of cytoskeletal tension, guiding cell growth.
We aim to pursue a new interdisciplinary approach, combining the synthesis of multi-functional culture-matrices with cell-instructive viscoelastic properties, in-depth cell characterisation, and computational modelling to investigate the relationship between matrix properties and osteogenesis. This will contribute to deciphering the importance of mechanical stimulation of the cellular microenvironment, and advance understanding of osteoinductive scaffold development in bone tissue engineering. Our three objectives are a) to rationally engineer hydrogels tuned to the specific mechanical requirements for osteogenesis b) to dissect how targeted manipulation of the hydrogel affects mechanoregulation in human dental pulp stem cells, and c) to propose a computational model to elucidate and predict the cell response.
A key innovation in this PhD project is to engineer environmentally (cell)-instructive hydrogels with controlled architecture (pore size, network interconnectivity) and mechanical properties (viscoelasticity) to recapitulate the mechanical micro-environment of the jawbone. Mechanosensitive complexes within the hydrogel form stimuli-responsive cross-links that adjust hydrogel viscoelasticity as a function of cytoskeletal tension, guiding cell growth.

We are looking for a highly self-driven candidate with a hands-on work attitude who is interested in pursuing an interdisciplinary project in the field of biology, tissue engineering, material science, and chemistry. Complementary to experimental work, the candidate will work on computational models to understand and predict correlations. Candidates should hold a Master in Nanosciences, Biomedical Engineering, Health Sciences and Technology, Biology, Chemistry, or similar, from an institute of higher education that is accepted by the University of Basel. Experience in the following areas are of special interest:

  • Mammalian cell culture and analysis (Microscopy, qRT-PCR)
  • Hydrogel formulations and characterisation (Rheometry, Atomic Force Microscopy)
  • Data analysis and graphical representation (GraphPad, MATLAB, R or similar)
  • Fluency in English and good communication skills

We are an interdisciplinary and international team with highly collaborative research questions and therefore value diversity in interest and personal background. We offer a friendly and pleasant working atmosphere with freedom to develop your own ideas. Specifically, we offer

  • Fully paid PhD position, affiliated with the Swiss Nanoscience Institute, University of Basel, with a salary based on the guidelines from the Swiss National Science Foundation.
  • Close guidance from supervisor and co-supervisor as well as technical and administrative support.
  • Possibilities for collaborative work within the Medical Faculty and the Faculty of Science.
  • Access to state-of-the art core facilities for FACS, Confocal Microscopy and the Nano Imaging Lab for electron microscopy.
Job details

Title

PhD position: Rationally engineered hydrogels to control osteogenesis via mechanoregulation (P2603)

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