Crystal Recognition

Crystal recognition is the identification of ordered crystalline material within a sample, a crucial step in determining whether biomolecular crystallization has produced crystals suitable for structural analysis. In biochemistry, researchers distinguish crystals from amorphous precipitate by examining features such as defined geometric faces, consistent morphology, and birefringence under polarized light, which arise from the regular arrangement of molecules in a lattice. Accurate recognition supports the selection and optimization of protein crystallization conditions, including precipitant concentration, pH, temperature, and incubation time. It helps researchers identify promising samples for X-ray diffraction and obtain structural information about proteins, nucleic acids, and their complexes.

Crystal Recognition - Related Videos

Education

JoVE Science Education - Chemistry

Protein Crystallization

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2023

Protein crystallization, obtaining a solid lattice of biomolecules, elucidates protein structure and enables the study of protein function. Crystallization involves drying purified protein under a combination of many factors, including pH, temperature, ionic strength, and protein concentration. Once crystals are obtained, the protein structure can be elucidated by x-ray diffraction and computation of an electron density model. This video introduces protein crystallization and shows a general...

Physiological Correlates of Emotion Recognition

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2023

Source: Laboratories of Jonas T. Kaplan and Sarah I. Gimbel—University of Southern California The autonomic nervous system (ANS) controls the activity of the body's internal organs and regulates changes in their activity depending on the current environment. The vagus nerve, which innervates many of the internal organs, is an important part of the system. When our brain senses danger, vagal tone is inhibited, leading to a set of changes in the body designed to make us more prepared to fight or...

Research

JoVE Journal - Bioengineering

Synthesis of Biocompatible Liquid Crystal Elastomer Foams as Cell Scaffolds for 3D Spatial Cell Cultures

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Cited by 9 •

2017

This study presents a methodology to prepare 3D, biodegradable, foam-like cell scaffolds based on biocompatible side-chain liquid crystal elastomers (LCEs). Confocal microscopy experiments show that foam-like LCEs allow for cell attachment, proliferation, and the spontaneous alignment of C2C12s myoblasts.

Preparation of Monodomain Liquid Crystal Elastomers and Liquid Crystal Elastomer Nanocomposites

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Cited by 7 •

2016

We demonstrate the preparation of siloxane-based and epoxy-based liquid crystal elastomers (LCEs) and LCE nanocomposites. The LCEs are characterized with respect to reversible strain, liquid crystal ordering, and stiffness. As a potential application, we demonstrate their use as shape-responsive substrates in a custom device for active cell culture.

Ionic Crystal Structures

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2020

Ionic crystals consist of two or more different kinds of ions that usually have different sizes. The packing of these ions into a crystal structure is more complex than the packing of metal atoms that are the same size. Most monatomic ions behave as charged spheres, and their attraction for ions of opposite charge is the same in every direction. Consequently, stable structures for ionic compounds result (1) when ions of one charge are surrounded by as many ions as possible of the opposite...

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