Literature DB >> 24637746

Approaches to automated protein crystal harvesting.

Marc C Deller1, Bernhard Rupp2.   

Abstract

The harvesting of protein crystals is almost always a necessary step in the determination of a protein structure using X-ray crystallographic techniques. However, protein crystals are usually fragile and susceptible to damage during the harvesting process. For this reason, protein crystal harvesting is the single step that remains entirely dependent on skilled human intervention. Automation has been implemented in the majority of other stages of the structure-determination pipeline, including cloning, expression, purification, crystallization and data collection. The gap in automation between crystallization and data collection results in a bottleneck in throughput and presents unfortunate opportunities for crystal damage. Several automated protein crystal harvesting systems have been developed, including systems utilizing microcapillaries, microtools, microgrippers, acoustic droplet ejection and optical traps. However, these systems have yet to be commonly deployed in the majority of crystallography laboratories owing to a variety of technical and cost-related issues. Automation of protein crystal harvesting remains essential for harnessing the full benefits of fourth-generation synchrotrons, free-electron lasers and microfocus beamlines. Furthermore, automation of protein crystal harvesting offers several benefits when compared with traditional manual approaches, including the ability to harvest microcrystals, improved flash-cooling procedures and increased throughput.

Entities:  

Keywords:  automation; protein crystal harvesting

Mesh:

Substances:

Year:  2014        PMID: 24637746      PMCID: PMC3936438          DOI: 10.1107/S2053230X14000387

Source DB:  PubMed          Journal:  Acta Crystallogr F Struct Biol Commun        ISSN: 2053-230X            Impact factor:   1.056


  105 in total

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3.  Diffraction study of protein crystals grown in cryoloops and micromounts.

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Review 5.  Cryocooling and radiation damage in macromolecular crystallography.

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Journal:  Acta Crystallogr D Biol Crystallogr       Date:  2005-12-14

6.  Development of high-performance X-ray transparent crystallization plates for in situ protein crystal screening and analysis.

Authors:  Ahmed S M Soliman; Matthew Warkentin; Benjamin Apker; Robert E Thorne
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7.  Two-photon excited UV fluorescence for protein crystal detection.

Authors:  Jeremy T Madden; Emma L DeWalt; Garth J Simpson
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8.  Using Microfluidics to Decouple Nucleation and Growth of Protein Crystals.

Authors:  Jung-Uk Shim; Galder Cristobal; Darren R Link; Todd Thorsen; Seth Fraden
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2.  A new view on crystal harvesting.

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5.  Purification, characterization, and preliminary serial crystallography diffraction advances structure determination of full-length human particulate guanylyl cyclase A receptor.

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7.  Acoustic transfer of protein crystals from agarose pedestals to micromeshes for high-throughput screening.

Authors:  Christina M Cuttitta; Daniel L Ericson; Alexander Scalia; Christian G Roessler; Ella Teplitsky; Karan Joshi; Olven Campos; Rakhi Agarwal; Marc Allaire; Allen M Orville; Robert M Sweet; Alexei S Soares
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Review 8.  Practical macromolecular cryocrystallography.

Authors:  J W Pflugrath
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9.  Fully automatic characterization and data collection from crystals of biological macromolecules.

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10.  Improved reproducibility of unit-cell parameters in macromolecular cryocrystallography by limiting dehydration during crystal mounting.

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