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1.
Phys Chem Chem Phys ; 24(3): 1532-1543, 2022 Jan 19.
Artículo en Inglés | MEDLINE | ID: mdl-34939631

RESUMEN

X-ray free-electrons lasers have revolutionized the method of imaging biological macromolecules such as proteins, viruses and cells by opening the door to structural determination of both single particles and crystals at room temperature. By utilizing high intensity X-ray pulses on femtosecond timescales, the effects of radiation damage can be reduced. Achieving high resolution structures will likely require knowledge of how radiation damage affects the structure on an atomic scale, since the experimentally obtained electron densities will be reconstructed in the presence of radiation damage. Detailed understanding of the expected damage scenarios provides further information, in addition to guiding possible corrections that may need to be made to obtain a damage free reconstruction. In this work, we have quantified the effects of ionizing photon-matter interactions using first principles molecular dynamics. We utilize density functional theory to calculate bond breaking and charge dynamics in three ultracharged molecules and two different structural conformations that are important to the structural integrity of biological macromolecules, comparing to our previous studies on amino acids. The effects of the ultracharged states and subsequent bond breaking in real space are studied in reciprocal space using coherent diffractive imaging of an ensemble of aligned biomolecules in the gas phase.


Asunto(s)
Cisteína/química , Dipéptidos/química , Oligopéptidos/química , Teoría Funcional de la Densidad , Modelos Químicos , Simulación de Dinámica Molecular , Conformación Proteica , Electricidad Estática , Factores de Tiempo
2.
J Synchrotron Radiat ; 28(Pt 5): 1296-1308, 2021 Sep 01.
Artículo en Inglés | MEDLINE | ID: mdl-34475279

RESUMEN

X-rays are routinely used for structural studies through scattering, and femtosecond X-ray lasers can probe ultrafast dynamics. We aim to capture the femtosecond dynamics of liquid samples using simulations and deconstruct the interplay of ionization and atomic motion within the X-ray laser pulse. This deconstruction is resolution dependent, as ionization influences the low momentum transfers through changes in scattering form factors, while atomic motion has a greater effect at high momentum transfers through loss of coherence. Our methodology uses a combination of classical molecular dynamics and plasma simulation on a protic ionic liquid to quantify the contributions to the scattering signal and how these evolve with time during the X-ray laser pulse. Our method is relevant for studies of organic liquids, biomolecules in solution or any low-Z materials at liquid densities that quickly turn into a plasma while probed with X-rays.

3.
J Chem Phys ; 151(14): 144307, 2019 Oct 14.
Artículo en Inglés | MEDLINE | ID: mdl-31615216

RESUMEN

Historically, structure determination of nanocrystals, proteins, and macromolecules required the growth of high-quality crystals sufficiently large to diffract X-rays efficiently while withstanding radiation damage. The development of the X-ray free-electron laser has opened the path toward high resolution single particle imaging, and the extreme intensity of the X-rays ensures that enough diffraction statistics are collected before the sample is destroyed by radiation damage. Still, recovery of the structure is a challenge, in part due to the partial fragmentation of the sample during the diffraction event. In this study, we use first-principles based methods to study the impact of radiation induced ionization of six amino acids on the reconstruction process. In particular, we study the fragmentation and charge rearrangement to elucidate the time scales involved and the characteristic fragments occurring.


Asunto(s)
Aminoácidos/química , Aminoácidos/efectos de la radiación , Teoría Funcional de la Densidad , Modelos Químicos , Simulación de Dinámica Molecular , Electricidad Estática , Factores de Tiempo , Rayos X
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