This study provides a resource for redefining precision-breeding paradigms by harnessing cryptic 3D chromatin targets by decoupling sequence-level from chromatin-level selection and shifting the subgenome expression balance of 39 homoeologs in cultivated cotton.
Abstract
Three-dimensional (3D) genome folding shapes gene regulation, yet the genetic underpinnings linking 3D genome evolution to phenotypic innovation during domestication remain elusive. Using population-scale Hi-C profiling of 34 semi-wild and 267 cultivated allotetraploid cottons, we generated a pan-3D genome atlas capturing extensive diversity in topologically associating domains (TADs) and chromatin loops. Chromatin interactome-wide association studies identified 105 TAD reconfigurations and 58 loop rewirings that were established as the 3D chromatin basis of fiber quality, boosting heritability estimates for fiber strength by 16% and fiber length by 20%. We reveal that domestication selection within sequence-defined sweeps fixed 57% of 3D conformation signatures, thereby decoupling sequence-level from chromatin-level selection and shifting the subgenome expression balance of 39 homoeologs in cultivated cotton. Sequence-based modeling and mutational analyses identified the C2H2 zinc-finger protein YY1 as a conserved mediator of 3D genome organization. This study provides a resource for redefining precision-breeding paradigms by harnessing cryptic 3D chromatin targets.
Current CRISPR/dCas-based approaches for engineering three-dimensional genome architecture are summarized, their mechanistic basis and applications are discussed, and emerging therapeutic opportunities and major technical challenges in the field are highlighted.
N. Mamaeva, Valeriy A. Yakovlev, Nikolay V. Kristovskiy et al.· International Journal of Mol...· 0 citations
It is found that, although compartments and topologically associating domains (TADs) are largely maintained, regeneration is accompanied by reduced compartmentalization and decreased boundary insulation, and 3D chromatin loops with increased contact frequency during regeneration are identified.
Palmira Llorens-Giralt, Carlos Camilleri-Robles, Leo Zuber et al.· Science Advances· 0 citations
This chapter examines how 3C technologies have refined the understanding of genome organization and gene regulation and supports a model in which genome folding is governed by the biophysical properties of chromatin.
Hang-Peng Li, N. Denny, James O. J. Davies· Current Topics in Developmen...· 0 citations
Cis-regulatory elements (CREs) orchestrate the spatiotemporal precision of gene expression that underlies plant development, adaptation, and domestication. Decoding the cis-regulatory grammar of plant genomes remains a central challenge in modern biology, with profound implications for programmable crop engineering. He...
Li-Bin Zhang, Maoteng Li· Journal of Integrative Plant...· 0 citations
Over the past few decades, chromatin biology has evolved from viewing chromatin as a static structural scaffold to decoding it as a dynamic, programmable regulatory landscape. At the heart of this transformation is the precise mapping of interactions between functional proteins and cognate DNA elements. Although high-t...
Nucleosomes organize genomes and regulate DNA access, yet accumulating evidence suggests that their constituent histones may have functions beyond canonical chromatin regulation, but the breadth of such regulatory diversity remains unclear. Here, we used the six-residue loop 2 (L2) of H2A and H2A.Z to map, at single-re...
Zachary H. Harvey, Benjamin Gundinger, Jian-Yi Kok et al.· bioRxiv· 0 citations
A new machine-learning framework aims to improve the success rate of computational protein design while moving away from results that reproduce sequences found in nature.