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fellowship funded by the São Paulo Research Foundation (FAPESP). The research will focus on the molecular analysis of muscle tissue samples from systemic autoimmune myopathies (SAM). Activities - Management
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on the Phenotype”, coordinated by Dr. Maria Isabel Melaragno. The postdoctoral fellow will participate in the analysis of genomic data generated by different ongoing projects with the molecular study of different
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validate the predictions of the ML models by means of atomistic modeling, in particular density functional theory (DFT) calculations, obtaining simulated electronic and emission spectra for the CDs. Finally
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stipend of BRL 12,570.00 (USD 2,373.85), tax-exempt, plus a 10% annual fund for research-related expenses. Applications: send CV, motivation letter, copy of your doctoral thesis, and up to three contacts
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staff position within a Research Infrastructure? No Offer Description It is necessary to demonstrate experience in basic and exercise biochemistry, molecular biology (extraction and quantification of RNA
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strong expertise in quantum computing, quantum algorithms, and physical simulations, including: - Quantum optimization (preferably Quantum Walk-based methods) - Quantum simulation (cold-atom/quantum-optics
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skills: PhD in biological or biomedical sciences; strong experience in molecular and cell biology, genomic analysis, and 3D organoid culture; proficiency in bioinformatics pipelines and functional assays
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experience in microbiological research tools, molecular biology (including gene expression and sequencing), biochemistry, and specialized microscopy. The applicants should email the Principal Investigator, Dr
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to elucidate cellular and molecular mechanisms underlying DMD and healthy aging, employing iPSC-derived cellular models, skeletal muscle differentiation, and three-dimensional muscle tissue engineering
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genetics and cell biology applied to Duchenne Muscular Dystrophy (DMD) and aging, using induced pluripotent stem cells (iPSCs). The project aims to elucidate cellular and molecular mechanisms underlying DMD