PhD Position: Controlling transposable elements (m/f/d)

International PhD Programme (IPP) Mainz

Deutschland

Vor Ort

EUR 36.000 - 48.000

Vollzeit

14 Tage+
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Benefits dieser Stelle

Fully funded positions
Advanced training
Core Facilities access

Zusammenfassung

The International PhD Programme (IPP) Mainz invites talented scientists to join its community of exceptional researchers in the Life Sciences. As an IPP PhD student you will work on cutting-edge projects spanning ageing, DNA repair, epigenetics, and neural memory, in a vibrant international environment with English as working language.

Activity and responsibilities include contributing to a PhD project on target specificity of small RNA pathways, using genetics, genomics, CRISPR-Cas, microscopy

Qualifikationen

  • Master or equivalent degree required.
  • Good command of English and an interactive personality.
  • Two letters of reference required.

Aufgaben

  • Contribute to cutting-edge PhD projects on small RNA pathways.
  • Perform genetics, genomics and RNA sequencing analyses.
  • Collaborate with other labs using CRISPR-Cas, microscopy and bioinformatics.
  • Publish results and present at group meetings.

Kenntnisse

English communication
Team collaboration
Two letters of reference

Ausbildung

Master or equivalent

Tools

CRISPR-Cas
Microscopy
Protein purification
Genomics
Bioinformatics

Jobbeschreibung

Organisation/Company International PhD Programme (IPP) Mainz Department Institute of Molecular Biology Research Field Biological sciences » Biology Researcher Profile First Stage Researcher (R1) Positions PhD Positions Application Deadline 15 Oct 2026 - 12:00 (Europe/Berlin) Country Germany Type of Contract Temporary Job Status Full-time Is the job funded through the EU Research Framework Programme? Not funded by a EU programme Is the Job related to staff position within a Research Infrastructure? No

Offer Description

Thinking of doing your PhD in the Life Sciences? The International PhD Programme (IPP) Mainz is offering talented scientists the chance to work on cutting edge research projects. As an IPP PhD student, you will join a community of exceptional scientists working on diverse topics ranging from how organisms age or how our DNA is repaired, to how epigenetics regulates cellular identity or neural memory.

Activities and responsibilities

The research group of René Ketting offers the following PhD project:

Germ cells can be considered the most important cells of a species, as via these cells the genetic information is passed on to the offspring. Being the only cell type whose genome will be passed on between generations, these cells are the primary target of so-called genetic parasites, or transposons. These selfish pieces of DNA have as only goal to replicate within the genome and in doing so, they often cause mutations in the genome. It is thus not surprising that transposon activity has been responsible for major evolutionary events. However, excessive transposon activity kills a cell, because of genotoxic stress. As transposons are primarily active in the germ cells, these cells have evolved intricate transposon-defense systems. One of these is based on the activity of small non-coding RNAs. These are an important research-target in our laboratory.

Small non-coding RNAs are bound by Argonaute protein, that use these small RNAs as guides to identify target transcripts. These transcripts are then silenced by cleavage or through changes in chromatin that prevent their transcription. Curiously, many different small RNA pathways appear to act in parallel in germ cells. Notably in the germ cells of the nematode C. elegans this is very clear. The various small RNA pathways can have distinct and overlapping targets and can execute their activity in different ways. Understanding how these pathways work, how they can operate in parallel without becoming convoluted, how they select their targets and how they couple to other important RNA-based processes are questions that are currently prime research drivers in our and many other labs across the globe.

One phenomenon that plays an important role in these processes is known as phase separation. This can lead to local enrichments of RNA and protein, creating so-called germ granules. These granules are considered to be like organelles, but then without a membrane. How these granules form and function is therefore also a major research area in our group. Interestingly, this particular research area links to neurological diseases in which inappropriate protein aggregation causes damage. Examples of such diseases are ALS, FTD but also forms of dementia. Understanding how germ granules work will hopefully also shed some light on how such diseases can be treated or prevents.

PhD Project: Controlling target specificity of small RNA pathways

Various lines of research are currently open to fresh input from new PhD students. What exactly the project will be will strongly depend also on your interests and skills. Here I sketch some rough indications in which the research is developing and to which you may be able to contribute.

First, we are looking at how the process of transcription termination couples to small RNA biogenesis. Several lines of evidence indicate that the mode of termination can be decisive about whether a transcript feeds into small RNA production or not. How this happens and what the consequences of these effects are, is currently completely unclear. We want to address this issue using genetics and genomics approaches. With genetics we will screen for factors that affect the link between termination and small RNAs. The genomics aspect will use various RNAseq approaches (short read and direct RNA sequencing) to better understand the genomic features of the loci affected by these effects.

Second, we are using extensive microscopy and biochemistry techniques to better understand the germ granules. What are their properties and how do they recruit specific proteins? Based on both in vivo and in vitro studies we are starting to understand some of the underlying principles of germ granule biology and future work is aimed at gaining much more detailed insights, to the extent that we can maybe design specific ger granules for a dedicated purpose. Here we collaborate closely with the Stelzl Lab, who bring physics into this project, making it a very interdisciplinary research area.

In both these research lines we make extensive use of genome editing using CrisprCas, protein purification, microscopy, genetics and bioinformatics. In collaboration with the Falk lab from the Max Perutz Labs in Vienna, and with Ulrich Hohmann, Katka Luck and Laura Lorenzo-Orts from the IMB we also increasing use structure determination and predictions in our work.

Everything considered, the work in this project will be challenging and exciting, and it will ask for flexibility and dedication to bring to a successful end. In return, our lab offers a stimulating environment, with ample opportunities also for social interactions and activities. We are looking forward to your application!

Qualification profile

Are you an ambitious scientist looking to push the boundaries of research while interacting with colleagues from multiple disciplines and cultures? Then joining the IPP is your opportunity to give your scientific career a flying start!
All you need is:

  • Master or equivalent
  • Interactive personality & good command of English
  • 2 letters of reference

We offer

  • Exciting, interdisciplinary projects in a lively international environment, with English as our working language
  • Advanced training in scientific techniques and professional skills
  • Access to our state-of-the-art Core Facilities and their technical expertise
  • Fully funded positions with financing until the completion of your thesis
  • A lively community ofmore than 200 PhD students from 44 different countries

The deadline for applications is 15 October 2026. Interviews will take place at IMB in Mainz on 18+19 January 2027.
Starting date: 1 February - 31 July 2027

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