Structural domains and matrix attachment regions along colinear chromosomal segments of maize and sorghum

被引:45
作者
Tikhonov, AP [1 ]
Bennetzen, JL [1 ]
Avramova, ZV [1 ]
机构
[1] Purdue Univ, Dept Biol Sci, W Lafayette, IN 47907 USA
关键词
D O I
10.1105/tpc.12.2.249
中图分类号
Q5 [生物化学]; Q7 [分子生物学];
学科分类号
071010 ; 081704 ;
摘要
Although a gene's location can greatly influence its expression, genome sequencing has shown that orthologous genes may exist in very different environments in the genomes of closely related species. Four genes in the maize alcohol dehydrogenase (adh1) region represent solitary genes dispersed among large repetitive blocks, whereas the orthologous genes in sorghum are located in a different setting surrounded by low-copy-number DNAs. A specific class of DNA sequences, matrix attachment regions (MARs), was found to be in comparable positions in the two species, often flanking individual genes. If these MARs define structural domains, then the orthologous genes in maize and sorghum should experience similar chromatin environments. In addition, MARs were divided into two groups, based on the competitive affinity of their association with the matrix. The "durable" MARs retained matrix associations at the highest concentrations of competitor DNA. Most of the durable MARs mapped outside genes, defining the borders of putative chromatin loops. The "unstable" MARs lost their association with the matrix under similar competitor conditions and mapped mainly within introns. These results suggest that MARs possess both domain-defining and regulatory roles. Miniature inverted repeat transposable elements (MITEs) often were found on the same fragments as the MARs. Our studies showed that many MITEs can bind to isolated nuclear matrices, suggesting that MITEs may function as MARs in vivo.
引用
收藏
页码:249 / 264
页数:16
相关论文
共 52 条
[1]   SCAFFOLD ATTACHMENT REGIONS INCREASE REPORTER GENE-EXPRESSION IN STABLY TRANSFORMED PLANT-CELLS [J].
ALLEN, GC ;
HALL, GE ;
CHILDS, LC ;
WEISSINGER, AK ;
SPIKER, S ;
THOMPSON, WF .
PLANT CELL, 1993, 5 (06) :603-613
[2]  
AVRAMOVA Z, 1995, PLANT CELL, V7, P1667, DOI 10.1105/tpc.7.10.1667
[3]   Gene identification in a complex chromosomal continuum by local genomic cross-referencing [J].
Avramova, Z ;
Tikhonov, A ;
SanMiguel, P ;
Jin, YK ;
Liu, CN ;
Woo, SS ;
Wing, RA ;
Bennetzen, JL .
PLANT JOURNAL, 1996, 10 (06) :1163-1168
[4]   ISOLATION OF MATRICES FROM MAIZE LEAF NUCLEI - IDENTIFICATION OF A MATRIX-BINDING SITE ADJACENT TO THE ADH1 GENE [J].
AVRAMOVA, Z ;
BENNETZEN, JL .
PLANT MOLECULAR BIOLOGY, 1993, 22 (06) :1135-1143
[5]   Matrix attachment regions and structural colinearity in the genomes of two grass species [J].
Avramova, Z ;
Tikhonov, A ;
Chen, MS ;
Bennetzen, JL .
NUCLEIC ACIDS RESEARCH, 1998, 26 (03) :761-767
[6]   MATRIX ATTACHMENT SITES IN THE MURINE ALPHA-GLOBIN GENE [J].
AVRAMOVA, Z ;
PANEVA, E .
BIOCHEMICAL AND BIOPHYSICAL RESEARCH COMMUNICATIONS, 1992, 182 (01) :78-85
[7]   Are scs and scs′ 'neutral' chromatin domain boundaries of 87A7 locus in vivo? [J].
Avramova, Z ;
Tikhonov, A .
TRENDS IN GENETICS, 1999, 15 (04) :138-139
[8]   Stress-induced duplex DNA destabilization in scaffold/matrix attachment regions [J].
Benham, C ;
KohwiShigematsu, T ;
Bode, J .
JOURNAL OF MOLECULAR BIOLOGY, 1997, 274 (02) :181-196
[9]   ELEMENTS REGULATING SOMATIC HYPERMUTATION OF AN IMMUNOGLOBULIN-KAPPA GENE - CRITICAL ROLE FOR THE INTRON ENHANCER MATRIX ATTACHMENT REGION [J].
BETZ, AG ;
MILSTEIN, C ;
GONZALEZFERNANDEZ, A ;
PANNELL, R ;
LARSON, T ;
NEUBERGER, MS .
CELL, 1994, 77 (02) :239-248
[10]   Scaffold/matrix-attached regions: Topological switches with multiple regulatory functions [J].
Bode, J ;
StengertIber, M ;
Kay, V ;
Schlake, T ;
DietzPfeilstetter, A .
CRITICAL REVIEWS IN EUKARYOTIC GENE EXPRESSION, 1996, 6 (2-3) :115-138