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Differences in Alu Vs L1-rich Chromosome Bands Underpin Architectural Reorganization of the Inactive-X Chromosome and SAHFs

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Journal bioRxiv
Date 2024 Jan 23
PMID 38260534
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Abstract

The linear DNA sequence of mammalian chromosomes is organized in large blocks of DNA with similar sequence properties, producing a pattern of dark and light staining bands on mitotic chromosomes. Cytogenetic banding is essentially invariant between people and cell-types and thus may be assumed unrelated to genome regulation. We investigate whether large blocks of Alu-rich R-bands and L1-rich G-bands provide a framework upon which functional genome architecture is built. We examine two models of large-scale chromatin condensation: X-chromosome inactivation and formation of senescence-associated heterochromatin foci (SAHFs). XIST RNA triggers gene silencing but also formation of the condensed Barr Body (BB), thought to reflect cumulative gene silencing. However, we find Alu-rich regions are depleted from the L1-rich BB, supporting it is a dense core but not the entire chromosome. Alu-rich bands are also gene-rich, affirming our earlier findings that genes localize at the outer periphery of the BB. SAHFs similarly form within each territory by coalescence of syntenic L1 regions depleted for highly Alu-rich DNA. Analysis of senescent cell Hi-C data also shows large contiguous blocks of G-band and R-band DNA remodel as a segmental unit. Entire dark-bands gain distal intrachromosomal interactions as L1-rich regions form the SAHF. Most striking is that sharp Alu peaks within R-bands resist these changes in condensation. We further show that Chr19, which is exceptionally Alu rich, fails to form a SAHF. Collective results show regulation of genome architecture corresponding to large blocks of DNA and demonstrate resistance of segments with high Alu to chromosome condensation.

References
1.
Brockdorff N, Bowness J, Wei G . Progress toward understanding chromosome silencing by Xist RNA. Genes Dev. 2020; 34(11-12):733-744. PMC: 7263139. DOI: 10.1101/gad.337196.120. View

2.
Hall L, Smith K, Byron M, Lawrence J . Molecular anatomy of a speckle. Anat Rec A Discov Mol Cell Evol Biol. 2006; 288(7):664-75. PMC: 2563428. DOI: 10.1002/ar.a.20336. View

3.
Clemson C, Hall L, Byron M, McNeil J, Lawrence J . The X chromosome is organized into a gene-rich outer rim and an internal core containing silenced nongenic sequences. Proc Natl Acad Sci U S A. 2006; 103(20):7688-93. PMC: 1472506. DOI: 10.1073/pnas.0601069103. View

4.
Sultana T, van Essen D, Siol O, Bailly-Bechet M, Philippe C, El Aabidine A . The Landscape of L1 Retrotransposons in the Human Genome Is Shaped by Pre-insertion Sequence Biases and Post-insertion Selection. Mol Cell. 2019; 74(3):555-570.e7. DOI: 10.1016/j.molcel.2019.02.036. View

5.
Chadwick B, Willard H . Multiple spatially distinct types of facultative heterochromatin on the human inactive X chromosome. Proc Natl Acad Sci U S A. 2004; 101(50):17450-5. PMC: 534659. DOI: 10.1073/pnas.0408021101. View