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Johannes Kepler University Linz (JKU)

10 Fully Funded PhD Positions in Molecular Transport and Molecular Recognition

2025-05-31 (Europe/Vienna)
Spara jobbet

The FWF-funded doctoral program Molecular Transport and Molecular Recognition at Johannes Kepler University Linz (JKU) and the Kepler University Hospital (KUK) will launch in the 2025 Summer Semester under the coordination of Prof. Peter Pohl. The program brings together experts in biophysics, chemistry, physics, and medicine to investigate the microscopic machinery that governs vital biological processes—how molecules move across membranes, how cells signal, and how these mechanisms are altered by disease or aging.

Doctoral candidates will conduct innovative research ranging from individual molecules to entire organisms. Projects involve the use of advanced microscopy and other high-resolution techniques to uncover molecular functions that are invisible to the naked eye. The program fosters interdisciplinary training and collaborative research between the natural sciences and medicine, preparing the next generation of scientists to address key biomedical questions.

Ideal applicants hold, or are close to completing, an MSc in biophysics, physics, biochemistry, biomedical sciences, pharmacy, biology, chemistry, bioinformatics, biomedical engineering, chemical engineering, or a related discipline. Strong academic achievement, independent and analytical thinking, communication and teamwork skills, and proficiency in English are essential.

  1. Synaptopodin-associated gap junctions in ion dynamics at the AISEngelhardt
    This project investigates the role of synaptopodin at the axon initial segment and its potential link to electrical and ion-based coupling via gap junctions.
  2. Structure and interaction of the intrinsically disordered protein synaptopodinMulder
    The project aims to characterize the structural ensembles and binding interactions of synaptopodin to better understand its functional mechanisms.
  3. Two-pore channels regulate organellar ion homeostasis and anaphylaxisZierler
    The project explores the physiological and structural role of two-pore channels in endolysosomes, with implications for anaphylaxis and organelle ion regulation.
  4. Water flux through narrow membrane channelsPohl
    This project investigates water permeability and coupling to ion movement through narrow channels, particularly aquaporins, using electrophysiology and advanced spectroscopy.
  5. Structure-based simulations of aquaporins and other channel proteinsMüh
    The project uses molecular dynamics simulations to study how aquaporins and other channels regulate water and ion transport.
  6. NanocontainerKlar
    This project develops optically addressable nanocontainers for the targeted release of calcium ions within cells to investigate signaling processes.
  7. Nano-scale cellular structural dynamics and mechanics during senescence and calcificationHinterdorfer
    The project uses high-resolution atomic force microscopy to study structural and mechanical changes in membranes during cell senescence and calcification.
  8. Mechanics at focal adhesions – towards mechanodiagnostics and -therapeuticsBlank
    This project examines how physical forces and local membrane properties at focal adhesions influence cellular signaling and responses to mechanical stimuli.
  9. Physical property of plasma membrane and ion channel activity during senescence of cancer cellsLee
    The project studies how changes in membrane fluidity and lipid composition affect ion channel function and calcium signaling in aging cancer cells.
  10. Membrane phosphate transport mechanisms in vascular calcificationVölkl
    This project investigates how plasma membrane transporters regulate phosphate and calcium homeostasis in vascular smooth muscle cells and their role in calcification.

Ready to explore the molecular mechanisms of life? This is your opportunity to dive in and make a difference.

To help us process applications efficiently and avoid spam, we kindly ask you to attach a document specifying the project you are applying for. Please ensure that the final file in your application is clearly named according to the relevant project code.

For this doc.funds Call, valid project codes are: Project 1-10

We look forward to receiving your application!

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Allowed file types: PDF, DOC, DOCX, TXT, RTF
Allowed file types: PDF, DOC, DOCX, TXT, RTF
Allowed file types: PDF, DOC, DOCX, TXT, RTF
Allowed file types: PDF, DOC, DOCX, TXT, RTF
Allowed file types: PDF, DOC, DOCX, TXT, RTF

*Genom att ansöka om en tjänst som listas på Academic Positions godkänner du våra villkor och integritetspolicy.

Genom att skicka in denna ansökan samtycker du till att vi behåller dina personuppgifter för ändamål relaterade till tjänsten. Vi värdesätter din integritet och kommer att hantera din information på ett säkert sätt. Om du önskar att dina uppgifter tas bort, vänligen kontakta oss direkt.

Om tjänsten

Titel
10 Fully Funded PhD Positions in Molecular Transport and Molecular Recognition
Plats
Altenberger Straße 69 Linz, Österrike
Publicerad
2025-05-02
Sista ansökningsdag
2025-05-31 23:59 (Europe/Vienna)
2025-05-31 23:59 (CET)
Befattning
Spara jobbet