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Vol. 9, Issue 11, 3031-3040, November 1998
Department of Radiation Oncology, State University of New York,
Health Science Center at Brooklyn, Brooklyn, New York 11203
A quantitative model of interphase chromosome higher-order
structure is presented based on the isochore model of the genome and
results obtained in the field of copolymer research. G1 chromosomes are
approximated in the model as multiblock copolymers of the 30-nm
chromatin fiber, which alternately contain two types of 0.5- to
1-Mbp blocks (R and G minibands) differing in GC content and DNA-bound
proteins. A G1 chromosome forms a single-chain string of loop clusters
(micelles), with each loop ~1-2 Mbp in size. The number of ~20
loops per micelle was estimated from the dependence of geometrical
versus genomic distances between two points on a G1 chromosome. The
greater degree of chromatin extension in R versus G minibands and a
difference in the replication time for these minibands (early S phase
for R versus late S phase for G) are explained in this model as a
result of the location of R minibands at micelle cores and G minibands
at loop apices. The estimated number of micelles per nucleus is close
to the observed number of replication clusters at the onset of S phase.
A relationship between chromosomal and nuclear sizes for several types
of higher eukaryotic cells (insects, plants, and mammals) is well
described through the micelle structure of interphase chromosomes. For
yeast cells, this relationship is described by a linear coil
configuration of chromosomes.
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