HEDoctoral network2023–2027

TACsy · Training Alliance for Computational Systems chemistry

Horizon Europe — Marie Skłodowska-Curie Actions

Duration
2023-03-01 → 2027-02-28
EU contribution
€3,872,336
Participants
11
Scheme
HORIZON-TMA-MSCA-DN-JD

Lines connect the coordinator with its partners.

Results in brief

Training Alliance for Computational Systems chemistry

Many key questions and challenges in research, industry, and society involve large and complex Chemical Reaction Networks (CRNs). Examples of such challenges include: understanding the regulation of metabolic networks in humans; planning and optimizing chemical synthesis in industry and research labs; modeling the fragmentation of molecular ions inside mass spectrometers; developing personalized medicine; probing hypotheses on the origins of life; and monitoring environmental pollution in air, water and soil. Much of classical chemistry focuses on a small set of molecules and reactions at a time. Systems chemistry is an emerging field that addresses the need to study larger CRNs, such as those in the challenges listed above. Due to the size and combinatorial complexity of these systems, it is unfeasible to manually analyze their properties and explore their design space. The field is therefore in strong need of new computational methods to assist in analysis, modeling, and design. Members of the consortium behind the Training Alliance for Computational Systems Chemistry (TACsy) are constructing ground-breaking new computational methods for analyzing large CRNs. In TACsy, we will develop and unfold the potential of these methods and we will train a new generation of 14 excellent Doctoral Candidates (DCs) capable of evolving and applying these methods in research and industry. In project TACsy, we will develop ground-breaking new computational methods for analyzing such networks of chemical reactions and we will train a new generation of excellent and innovative early stage researchers (DCs) capable of evolving and applying these methods in research and industry. Combined, these efforts carry very strong potential for impact on the grand challenges mentioned above, on the EU commission priority on jobs, growth, investment, and competitiveness, and on the well-being of EU citizens. The research methodology of TACsy arises from the novel application of formalisms, algorithms, and computational methods from computer science to questions in systems chemistry. The first steps demonstrating the strong capabilities of this approach have recently been made. In TACsy, the DCs will vastly expand these methods and their formal foundations, they will create efficient algorithms and implementations of them, and they will use these implementations for research in complex chemical systems in three flagship application areas.

Data: CORDIS, © European Union

Project objective

Many important questions and grand challenges in research, industry, and society involve large and complex networks of chemical reactions. Some examples are: studying metabolic networks in humans; planning and optimizing chemical synthesis in industry and research labs; modeling the fragmentation process in mass spectrometry; developing personalized medicine; probing hypotheses of the origins of life; monitoring environmental pollution in air, water, and soil.In project TACsy, we will develop ground-breaking new computational methods for analyzing such networks of chemical reactions and we will train a new generation of excellent and innovative early stage researchers (ESRs) capable of evolving and applying these methods in research and industry. Combined, these efforts carry very strong potential for impact on the grand challenges mentioned above, on the EU commission priority on jobs, growth, investment, and competitiveness, and on the well-being of EU citizens.The research methodology of TACsy arises from the novel application of formalisms, algorithms, and computational methods from computer science to questions in systems chemistry. The first steps demonstrating the strong capabilities of this approach have recently been made. In TACsy, the ESRs will vastly expand these methods and their formal foundations, they will create efficient algorithms and implementations of them, and they will use these implementations for research in complex chemical systems in three flagship application areas. TACsy is a consortium of world-class, experienced scientists which will ensure excellent research training conditions for the ESRs in this highly interdisciplinary field. Through a carefully designed training programme and secondments at leading industry partners, the ESR will acquire a broad career perspective and a strong set of transferable skills. Their unique blend of competences from computer science and chemistry will further increase their high employment.

Original text from CORDIS.

Participants

  • SYDDANSK UNIVERSITET · Odense MCoordinatorDenmark
  • BASF SE · Ludwigshafen Am RheinGermany
  • EUROPEAN MOLECULAR BIOLOGY LABORATORY · HeidelbergGermany
  • FLUIGENT SA · Le Kremlin-BicetreFrance
  • FRIEDRICH-SCHILLER-UNIVERSITÄT JENA · JENAGermany
  • Harvard Medical School · BostonUnited States
  • TECHNISCHE UNIVERSITAET WIEN · WienAustria
  • THE UNIVERSITY OF SHEFFIELD · SHEFFIELDUnited Kingdom
  • THERMO FISHER SCIENTIFIC (BREMEN) GMBH · BremenGermany
  • UNIVERSITAET LEIPZIG · LeipzigGermany
  • UNIVERSITAT WIEN · WienAustria

Links

Data: CORDIS, © European Union