A data-driven chromatin model reveals spatial and dynamic features of genome organization
成果类型:
Article
署名作者:
Oliveira Junior, Antonio B.; Mello, Matheus F.; Oliveira, Ronaldo J.; Dodero-Rojas, Esteban; Brahmachari, Sumitabha; Contessoto, Vinicius G.; Onuchic, Jose N.
署名单位:
Rice University; Universidade Federal do Triangulo Mineiro; Rice University; Rice University; Rice University
刊物名称:
PROCEEDINGS OF THE NATIONAL ACADEMY OF SCIENCES OF THE UNITED STATES OF AMERICA
ISSN/ISSBN:
0027-8424; 1091-6490
DOI:
10.1073/pnas.2530583123
发表日期:
2026-01-27
页码:
e2530583123
关键词:
genome architecture
chromatin dynamics
polymer physics
INTERNUCLEOSOME INTERACTIONS
CHROMOSOME STRUCTURES
gene-regulation
ctcf
principles
nucleosome
domains
yeast
摘要:
Compacting chromatin within the cellular nucleus presents a significant challenge for biology. Chromosomes must be both condensed and spatially organized to enable essential processes such as transcription and replication. Chromosome conformation capture experiments (e.g., Hi-C) provide valuable information about the spatial organization and, therefore, the connectivity between different genomic regions. These experiments inspired polymer models that describe the physical mechanism of the chromosomal energy landscape. The Full-Inversion Chromatin model (FI-Chrom), a data-driven approach for modeling genome organization, uses Hi-C contact maps to infer pairwise interaction potentials between all chromosomal loci. It combines Graphics Processing Unit (GPU)-accelerated simulations with efficient training of tens of millions of parameters derived from the maximum-entropy principle to determine 3D structures of chromosomes that accurately reproduce Hi-C-like data. FI-Chrom does not make any a priori assumptions regarding chromosome architecture, making it applicable to any chromosome conformation capture experiment. Its derived structural ensembles capture all essential features from the short-and long-range interactions of typical chromosome organization, such as segregated compartments, chromosome territories, and fully or partially formed loops. Although Hi-C contains only structural information, FI-Chrom extends these data by revealing an emergent dynamical mechanism encoded in the inferred energy landscape. For example, simulations show that chromatin loops are not static architectural features but rather transient structural elements. Statistical analyses further indicate that loops confined within a single compartment occur more frequently than those spanning multiple compartments, highlighting the dynamic and compartment-dependent nature of chromatin organization.
来源URL: