Sort by
Refine Your Search
-
Category
-
Employer
- Institute of Biochemistry and Biophysics Polish Academy of Sciences
- Institute of Physical Chemistry, Polish Academy of Sciences
- The International Institute of Molecular Mechanisms and Machines Polish Academy of Sciences
- Institute of Molecular Physics, Polish Academy of Sciences
- Jagiellonian University
- Lodz University of Technology
- Nicolaus Copernicus University in Torun
- University of Lodz
- Uniwersytet Jagielloński
- Łukasiewicz PORT
- Łukasiewicz Research Network - Krakow Institute of Technology
- 1 more »
- « less
-
Field
-
specializing in the synthesis of proton conductors and metal complexes;. - Investigation of the thermal, conductive, and spectroscopic properties of proton conductors with a hydrogen-bond network using
-
architectures. It focuses on two bioinspired strategies: periodic precipitation (PP) and chemobrionic systems, which enable the construction of functional architectures from nanoparticles and metal-organic
-
complexes. Like PE, CL is synthesized locally and is a well-established structural factor for other major machineries, such as respiratory chain complexes. Modulating CL will serve a dual purpose: acting as a
-
The International Institute of Molecular Mechanisms and Machines Polish Academy of Sciences | Poland | 24 days ago
therapeutic use. However, traditional medicinal chemistry often restricts itself to low structural complexity molecules that cover only a small portion of the theoretically accessible chemical space. This
-
eukaryotic cell is its internal segmentation into sub-cellular structures called organelles, such as the nucleus, mitochondria, or endoplasmic reticulum. The segmentation allows for spatial separation and
-
systems. 3. Structural characterization of selected complex/micelle systems. This will be accomplished by NMR, including 19F spectra for Cu(II) complexes and isostructural Cu(II) replacements with
-
structures of spliceosomes captured at different stages of the process is now available, these structures show a remarkably static view of the RNA core of the complex. The proposed project will attempt to fill
-
for the TIM23 complex to uncover previously unrecognized factors that contribute to its functionality. In addition, the project will examine structural rearrangements of the TIM23 complex by capturing and
-
), bacterial proteomics; structural studies of biologically active compounds in the aspect of application in medicine and biotechnology; crystallographic studies of native proteins and their complexes with
-
activity in vitro; basic knowledge of bioinformatics, molecular modelling and docking and/or structural analysis of protein–ligand complexes, as well as the ability to use in silico results to guide