Disruption of histone acetylation homeostasis reveals multilayered chromatin regulation for transcriptional resiliency

Abstract Background Epigenetic modifications, nucleosome occupancy, and three-dimensional chromatin architecture collectively create a multi-layered, highly interactive regulatory system for controlling genomic functionality. Dysregulation of epigenetic processes leads to a plethora of abnormalities...

وصف كامل

التفاصيل البيبلوغرافية
الحاوية / القاعدة:Epigenetics & Chromatin
المؤلفون الرئيسيون: Vrinda Venu, Eric M. Small, Cullen Roth, Samantha H. Adikari, Anna Hendrika Cornelia Vlot, Kyle A. Sullivan, Chanaka Roshan Abeyratne, Daniel Jacobson, Shawn R. Starkenburg, Karissa Y. Sanbonmatsu, Christina R. Steadman
التنسيق: مقال
اللغة:الإنجليزية
منشور في: BMC 2025-10-01
الموضوعات:
الوصول للمادة أونلاين:https://doi.org/10.1186/s13072-025-00631-4
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author Vrinda Venu
Eric M. Small
Cullen Roth
Samantha H. Adikari
Anna Hendrika Cornelia Vlot
Kyle A. Sullivan
Chanaka Roshan Abeyratne
Daniel Jacobson
Shawn R. Starkenburg
Karissa Y. Sanbonmatsu
Christina R. Steadman
author_facet Vrinda Venu
Eric M. Small
Cullen Roth
Samantha H. Adikari
Anna Hendrika Cornelia Vlot
Kyle A. Sullivan
Chanaka Roshan Abeyratne
Daniel Jacobson
Shawn R. Starkenburg
Karissa Y. Sanbonmatsu
Christina R. Steadman
author_sort Vrinda Venu
collection DOAJ
container_title Epigenetics & Chromatin
description Abstract Background Epigenetic modifications, nucleosome occupancy, and three-dimensional chromatin architecture collectively create a multi-layered, highly interactive regulatory system for controlling genomic functionality. Dysregulation of epigenetic processes leads to a plethora of abnormalities including disease states. Therapies focused on epigenetic modulation can alter gene expression to correct dysfunction, though the perpetuation of these states and the relationships among chromatin regulatory layers is not well understood. Results Here, we investigated global and local chromatin structural and functional responses after acute histone deacetylase inhibitor treatment (suberoylanilide hydroxamic acid) in lung cancer cells across time. Treatment substantially increased global histone acetylation resulting in a pervasive but not distinctive signature. The spread of acetylation did not significantly impact global chromatin accessibility, and nucleosome remodeling largely occurred at finer scales in functionally relevant genomic regions. Indeed, both H3K4 trimethylation, a mark of active transcription, and gene expression changes were altered in a controlled locus-specific manner, suggesting aberrant acetylation indirectly leads to balanced and bidirectional gene expression profiles from tighter regulation of other chromatin features. HDACi treatment induced (13%) genomic rearrangement in chromatin compartmentalization and moderate weakening of topologically associating domains. Conclusions Continuous wavelet analysis of these features demonstrates that scale-dependent, locus-specific factors influence the relationship between chromatin architecture and functional output, suggesting that regulation of transcription and nucleosome remodeling is not entirely (nor linearly) dependent upon large scale compartment exchange. Structural and functional responses are most pronounced early after treatment with partial persistence of differential local chromatin features and expression later in time; this highlights the plasticity of chromatin regulation, which may have implications for the efficacy of epigenetic treatments. These results demonstrate the effectiveness of multi-layered regulation of transcription: in resilient systems, disruption of one chromatin feature does not distort the regulation of other features in supporting a transcriptional program that allows for survival.
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spelling doaj-art-e4dacb81b08f4e2882764471dbe35b542025-10-06T07:38:37ZengBMCEpigenetics & Chromatin1756-89352025-10-0118112310.1186/s13072-025-00631-4Disruption of histone acetylation homeostasis reveals multilayered chromatin regulation for transcriptional resiliencyVrinda Venu0Eric M. Small1Cullen Roth2Samantha H. Adikari3Anna Hendrika Cornelia Vlot4Kyle A. Sullivan5Chanaka Roshan Abeyratne6Daniel Jacobson7Shawn R. Starkenburg8Karissa Y. Sanbonmatsu9Christina R. Steadman10Genomics and Bioanalytics Group, Los Alamos National LaboratoryGenomics and Bioanalytics Group, Los Alamos National LaboratoryGenomics and Bioanalytics Group, Los Alamos National LaboratoryBiochemistry and Biotechnology Group, Los Alamos National LaboratoryComputational and Predictive Biology Group, Oak Ridge National LaboratoryComputational and Predictive Biology Group, Oak Ridge National LaboratoryComputational and Predictive Biology Group, Oak Ridge National LaboratoryComputational and Predictive Biology Group, Oak Ridge National LaboratoryGenomics and Bioanalytics Group, Los Alamos National LaboratoryTheoretical Biology and Biophysics Group, Los Alamos National LaboratoryGenomics and Bioanalytics Group, Los Alamos National LaboratoryAbstract Background Epigenetic modifications, nucleosome occupancy, and three-dimensional chromatin architecture collectively create a multi-layered, highly interactive regulatory system for controlling genomic functionality. Dysregulation of epigenetic processes leads to a plethora of abnormalities including disease states. Therapies focused on epigenetic modulation can alter gene expression to correct dysfunction, though the perpetuation of these states and the relationships among chromatin regulatory layers is not well understood. Results Here, we investigated global and local chromatin structural and functional responses after acute histone deacetylase inhibitor treatment (suberoylanilide hydroxamic acid) in lung cancer cells across time. Treatment substantially increased global histone acetylation resulting in a pervasive but not distinctive signature. The spread of acetylation did not significantly impact global chromatin accessibility, and nucleosome remodeling largely occurred at finer scales in functionally relevant genomic regions. Indeed, both H3K4 trimethylation, a mark of active transcription, and gene expression changes were altered in a controlled locus-specific manner, suggesting aberrant acetylation indirectly leads to balanced and bidirectional gene expression profiles from tighter regulation of other chromatin features. HDACi treatment induced (13%) genomic rearrangement in chromatin compartmentalization and moderate weakening of topologically associating domains. Conclusions Continuous wavelet analysis of these features demonstrates that scale-dependent, locus-specific factors influence the relationship between chromatin architecture and functional output, suggesting that regulation of transcription and nucleosome remodeling is not entirely (nor linearly) dependent upon large scale compartment exchange. Structural and functional responses are most pronounced early after treatment with partial persistence of differential local chromatin features and expression later in time; this highlights the plasticity of chromatin regulation, which may have implications for the efficacy of epigenetic treatments. These results demonstrate the effectiveness of multi-layered regulation of transcription: in resilient systems, disruption of one chromatin feature does not distort the regulation of other features in supporting a transcriptional program that allows for survival.https://doi.org/10.1186/s13072-025-00631-4Multiscale chromatin organizationChromatin architectureChromatin accessibilityTranscriptional dynamicsFunctional epigenomicsHistone acetylation
spellingShingle Vrinda Venu
Eric M. Small
Cullen Roth
Samantha H. Adikari
Anna Hendrika Cornelia Vlot
Kyle A. Sullivan
Chanaka Roshan Abeyratne
Daniel Jacobson
Shawn R. Starkenburg
Karissa Y. Sanbonmatsu
Christina R. Steadman
Disruption of histone acetylation homeostasis reveals multilayered chromatin regulation for transcriptional resiliency
Multiscale chromatin organization
Chromatin architecture
Chromatin accessibility
Transcriptional dynamics
Functional epigenomics
Histone acetylation
title Disruption of histone acetylation homeostasis reveals multilayered chromatin regulation for transcriptional resiliency
title_full Disruption of histone acetylation homeostasis reveals multilayered chromatin regulation for transcriptional resiliency
title_fullStr Disruption of histone acetylation homeostasis reveals multilayered chromatin regulation for transcriptional resiliency
title_full_unstemmed Disruption of histone acetylation homeostasis reveals multilayered chromatin regulation for transcriptional resiliency
title_short Disruption of histone acetylation homeostasis reveals multilayered chromatin regulation for transcriptional resiliency
title_sort disruption of histone acetylation homeostasis reveals multilayered chromatin regulation for transcriptional resiliency
topic Multiscale chromatin organization
Chromatin architecture
Chromatin accessibility
Transcriptional dynamics
Functional epigenomics
Histone acetylation
url https://doi.org/10.1186/s13072-025-00631-4
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