Chromatin loops are selectively anchored using scaffold/matrix-attachment regions
Author(s) -
Henry H.Q. Heng,
Sandra Goetze,
Christine J. Ye,
Guo Liu,
Joshua B. Stevens,
Steven W. Bremer,
Susan M. Wykes,
Juergen Bode,
Stephen A. Krawetz
Publication year - 2004
Publication title -
journal of cell science
Language(s) - English
Resource type - Journals
SCImago Journal Rank - 2.384
H-Index - 278
eISSN - 1477-9137
pISSN - 0021-9533
DOI - 10.1242/jcs.00976
Subject(s) - scaffold/matrix attachment region , chromatin , biology , nuclear matrix , mars exploration program , computational biology , scaffold , matrix (chemical analysis) , microbiology and biotechnology , genetics , biological system , evolutionary biology , chromatin remodeling , dna , computer science , database , astrobiology , materials science , composite material
The biological significance of nuclear scaffold/matrix-attachment regions (S/MARs) remains a topic of long-standing interest. The key to understanding S/MAR behavior relies on determining the physical attributes of in vivo S/MARs and whether they serve as rigid or flexible chromatin loop anchors. To analyze S/MAR behavior, single and multiple copies of the S/MAR-containing constructs were introduced into various host genomes of transgenic mice and transfected cell lines. These in vivo integration events provided a system to study the association and integration patterns of each introduced S/MAR. By utilizing FISH to visualize directly the localization of S/MARs on the nuclear matrix or chromatin loop, we were able to assign specific attributes to the S/MAR. Surprisingly, when multiple-copy S/MARs were introduced they were selected and used as nuclear matrix anchors in a discriminatory manner, even though they all contained identical primary sequences. This selection process was probably mediated by S/MAR availability including binding strength and copy number, as reflected by the expression profiles and association of multi-copy tandem inserted constructs. Whereas S/MARs functioned as the mediators of loop attachment, they were used in a selective and dynamic fashion. Consequently, S/MAR anchors were necessary but not sufficient for chromatin loops to form. These observations reconcile many seemingly contradictory attributes previously associated with S/MARs.
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