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Assembly of Nucleosomal Arrays from Recombinant Core Histones and Nucleosome Positioning DNA
Published on: September 10, 2013
Estructura de rayos X de un tetranucleosoma y sus implicaciones para la fibra de cromatina
Thomas Schalch1, Sylwia Duda, David F Sargent
1ETH Zürich, Institute for Molecular Biology and Biophysics, ETH-Hönggerberg, CH-8093 Zürich, Switzerland.
Nature
|July 8, 2005
Resumen
La estructura cristalina de un tetranucleosoma revela que el ADN de enlace forma un patrón en zigzag, apoyando un modelo de hélice de dos inicios para la organización de la fibra de cromatina, no un solenoide de un solo comienzo.
Área de la Ciencia:
- Biología Molecular Biología Molecular
- Biología Estructural Biología estructural.
- Genética La genética.
Sus antecedentes:
- El ADN eucariótico está organizado en fibras de cromatina compuestas de nucleosomas.
- La estructura de orden superior de la cromatina es crucial para la replicación, transcripción y reparación del ADN.
- Los aspectos fundamentales de la organización de los nucleosomas dentro de las fibras de cromatina siguen siendo objeto de debate.
Objetivo del estudio:
- Para determinar la estructura de orden superior de los nucleosomas dentro de las fibras de cromatina.
- Para resolver controversias con respecto a la disposición de los nucleosomas en la fibra de cromatina.
- Proporcionar un modelo estructural de alta resolución para la organización de la cromatina.
Principales métodos:
- Determinación de la estructura cristalina de un oligonucleosoma (tetranucleosoma) a una resolución de 9 Å.
- Sustitución molecular utilizando estructuras conocidas del núcleo del nucleosoma.
- Modelado computacional para construir estructuras de fibra continua.
Principales resultados:
- La estructura cristalina revela una hélice truncada de dos puntos de partida, con el ADN del eslabón en zigzag entre las pilas de núcleos nucleosómicos.
- La trayectoria de ADN observada es incompatible con un modelo de hélice solenoidal de un solo inicio.
- La longitud del ADN de enlace parece estar acomodada por el estiramiento dentro de los núcleos nucleosómicos.
- Las fibras continuas modeladas se asemejan al modelo de enlace cruzado, lo que sugiere interfaces polimórficas entre nucleosomas.
Conclusiones:
- El estudio proporciona una base estructural de alta resolución para la organización de la fibra de cromatina.
- Los hallazgos apoyan un modelo de hélice de dos arranques sobre un modelo solenoidal para la estructura de la cromatina.
- El estiramiento del núcleo del nucleosoma es un mecanismo probable para acomodar las variaciones de longitud del ADN del enlace.
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