F. Guerra

ORCID: 0000-0001-8604-6373
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About
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Research Areas
  • Radioactive contamination and transfer
  • Radioactive element chemistry and processing
  • Lichen and fungal ecology
  • Radioactivity and Radon Measurements
  • Isotope Analysis in Ecology
  • Nuclear Physics and Applications
  • Advanced biosensing and bioanalysis techniques
  • DNA and Nucleic Acid Chemistry
  • Bacteriophages and microbial interactions
  • RNA and protein synthesis mechanisms
  • Protein Structure and Dynamics
  • Diatoms and Algae Research
  • Marine and fisheries research
  • Fish Biology and Ecology Studies
  • RNA modifications and cancer
  • Bryophyte Studies and Records
  • Nuclear and radioactivity studies
  • Marine and environmental studies
  • Marine Biology and Ecology Research

Sapienza University of Rome
2024

University of Minnesota
2009

University of Urbino
1995-1999

The folding of RNA and DNA strands plays crucial roles in biological systems bionanotechnology. However, studying these processes with high-resolution numerical models is beyond current computational capabilities due to the timescales system sizes involved. In this article, we present a new coarse-grained model for investigating dynamics nucleic acids. Our represents three nucleotides patchy particle parameterized using well-established nearest-neighbor models. Thanks reduction degrees...

10.1063/5.0202829 article EN The Journal of Chemical Physics 2024-05-28

Soil concentrations of 239+240Pu, 238Pu, 241Am, 90Sr, and 137Cs are investigated in the Marche Region Central Italy. Mean values uncultivated soils (0.721 +/- 0.456, 0.023 0.014, 0.241 0.165, 5.40 3.32, 62.3 33.9 Bq kg(-1), respectively) 3.5-8 times higher than corresponding cultivated (0.147 0.054, 0.005 0.002, 0.047 0.021, 1.53 0.44, 7.70 2.07 kg(-1)). Radionuclide inventories ratios consistent with reported by United Nations Scientific Committee on Effect Atomic Radiation for this...

10.1097/00004032-199907000-00010 article EN Health Physics 1999-07-01

The folding of RNA and DNA strands plays crucial roles in biological systems bionanotechnology. However, studying these processes with high-resolution numerical models is beyond current computational capabilities due to the timescales system sizes involved. In this article, we present a new coarse-grained model for investigating dynamics nucleic acids. Our represents 3 nucleotides patchy particle parametrized using well-established nearest-neighbor models. Thanks reduction degrees freedom...

10.48550/arxiv.2311.03317 preprint EN cc-by arXiv (Cornell University) 2023-01-01
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