Cargando…

Structural insights into the interactions and epigenetic functions of human nucleic acid repair protein ALKBH6

Human AlkB homolog 6, ALKBH6, plays key roles in nucleic acid damage repair and tumor therapy. However, no precise structural and functional information are available for this protein. In this study, we determined atomic resolution crystal structures of human holo-ALKBH6 and its complex with ligands...

Descripción completa

Detalles Bibliográficos
Autores principales: Ma, Lulu, Lu, Hongyun, Tian, Zizi, Yang, Meiting, Ma, Jun, Shang, Guohui, Liu, Yunlong, Xie, Mengjia, Wang, Guoguo, Wu, Wei, Zhang, Ziding, Dai, Shaodong, Chen, Zhongzhou
Formato: Online Artículo Texto
Lenguaje:English
Publicado: American Society for Biochemistry and Molecular Biology 2022
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC8892091/
https://www.ncbi.nlm.nih.gov/pubmed/35120926
http://dx.doi.org/10.1016/j.jbc.2022.101671
_version_ 1784662064645537792
author Ma, Lulu
Lu, Hongyun
Tian, Zizi
Yang, Meiting
Ma, Jun
Shang, Guohui
Liu, Yunlong
Xie, Mengjia
Wang, Guoguo
Wu, Wei
Zhang, Ziding
Dai, Shaodong
Chen, Zhongzhou
author_facet Ma, Lulu
Lu, Hongyun
Tian, Zizi
Yang, Meiting
Ma, Jun
Shang, Guohui
Liu, Yunlong
Xie, Mengjia
Wang, Guoguo
Wu, Wei
Zhang, Ziding
Dai, Shaodong
Chen, Zhongzhou
author_sort Ma, Lulu
collection PubMed
description Human AlkB homolog 6, ALKBH6, plays key roles in nucleic acid damage repair and tumor therapy. However, no precise structural and functional information are available for this protein. In this study, we determined atomic resolution crystal structures of human holo-ALKBH6 and its complex with ligands. AlkB members bind nucleic acids by NRLs (nucleotide recognition lids, also called Flips), which can recognize DNA/RNA and flip methylated lesions. We found that ALKBH6 has unusual Flip1 and Flip2 domains, distinct from other AlkB family members both in sequence and conformation. Moreover, we show that its unique Flip3 domain has multiple unreported functions, such as discriminating against double-stranded nucleic acids, blocking the active center, binding other proteins, and in suppressing tumor growth. Structural analyses and substrate screening reveal how ALKBH6 discriminates between different types of nucleic acids and may also function as a nucleic acid demethylase. Structure-based interacting partner screening not only uncovered an unidentified interaction of transcription repressor ZMYND11 and ALKBH6 in tumor suppression but also revealed cross talk between histone modification and nucleic acid modification in epigenetic regulation. Taken together, these results shed light on the molecular mechanism underlying ALKBH6-associated nucleic acid damage repair and tumor therapy.
format Online
Article
Text
id pubmed-8892091
institution National Center for Biotechnology Information
language English
publishDate 2022
publisher American Society for Biochemistry and Molecular Biology
record_format MEDLINE/PubMed
spelling pubmed-88920912022-03-10 Structural insights into the interactions and epigenetic functions of human nucleic acid repair protein ALKBH6 Ma, Lulu Lu, Hongyun Tian, Zizi Yang, Meiting Ma, Jun Shang, Guohui Liu, Yunlong Xie, Mengjia Wang, Guoguo Wu, Wei Zhang, Ziding Dai, Shaodong Chen, Zhongzhou J Biol Chem Research Article Human AlkB homolog 6, ALKBH6, plays key roles in nucleic acid damage repair and tumor therapy. However, no precise structural and functional information are available for this protein. In this study, we determined atomic resolution crystal structures of human holo-ALKBH6 and its complex with ligands. AlkB members bind nucleic acids by NRLs (nucleotide recognition lids, also called Flips), which can recognize DNA/RNA and flip methylated lesions. We found that ALKBH6 has unusual Flip1 and Flip2 domains, distinct from other AlkB family members both in sequence and conformation. Moreover, we show that its unique Flip3 domain has multiple unreported functions, such as discriminating against double-stranded nucleic acids, blocking the active center, binding other proteins, and in suppressing tumor growth. Structural analyses and substrate screening reveal how ALKBH6 discriminates between different types of nucleic acids and may also function as a nucleic acid demethylase. Structure-based interacting partner screening not only uncovered an unidentified interaction of transcription repressor ZMYND11 and ALKBH6 in tumor suppression but also revealed cross talk between histone modification and nucleic acid modification in epigenetic regulation. Taken together, these results shed light on the molecular mechanism underlying ALKBH6-associated nucleic acid damage repair and tumor therapy. American Society for Biochemistry and Molecular Biology 2022-02-01 /pmc/articles/PMC8892091/ /pubmed/35120926 http://dx.doi.org/10.1016/j.jbc.2022.101671 Text en © 2022 The Authors https://creativecommons.org/licenses/by-nc-nd/4.0/This is an open access article under the CC BY-NC-ND license (http://creativecommons.org/licenses/by-nc-nd/4.0/).
spellingShingle Research Article
Ma, Lulu
Lu, Hongyun
Tian, Zizi
Yang, Meiting
Ma, Jun
Shang, Guohui
Liu, Yunlong
Xie, Mengjia
Wang, Guoguo
Wu, Wei
Zhang, Ziding
Dai, Shaodong
Chen, Zhongzhou
Structural insights into the interactions and epigenetic functions of human nucleic acid repair protein ALKBH6
title Structural insights into the interactions and epigenetic functions of human nucleic acid repair protein ALKBH6
title_full Structural insights into the interactions and epigenetic functions of human nucleic acid repair protein ALKBH6
title_fullStr Structural insights into the interactions and epigenetic functions of human nucleic acid repair protein ALKBH6
title_full_unstemmed Structural insights into the interactions and epigenetic functions of human nucleic acid repair protein ALKBH6
title_short Structural insights into the interactions and epigenetic functions of human nucleic acid repair protein ALKBH6
title_sort structural insights into the interactions and epigenetic functions of human nucleic acid repair protein alkbh6
topic Research Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC8892091/
https://www.ncbi.nlm.nih.gov/pubmed/35120926
http://dx.doi.org/10.1016/j.jbc.2022.101671
work_keys_str_mv AT malulu structuralinsightsintotheinteractionsandepigeneticfunctionsofhumannucleicacidrepairproteinalkbh6
AT luhongyun structuralinsightsintotheinteractionsandepigeneticfunctionsofhumannucleicacidrepairproteinalkbh6
AT tianzizi structuralinsightsintotheinteractionsandepigeneticfunctionsofhumannucleicacidrepairproteinalkbh6
AT yangmeiting structuralinsightsintotheinteractionsandepigeneticfunctionsofhumannucleicacidrepairproteinalkbh6
AT majun structuralinsightsintotheinteractionsandepigeneticfunctionsofhumannucleicacidrepairproteinalkbh6
AT shangguohui structuralinsightsintotheinteractionsandepigeneticfunctionsofhumannucleicacidrepairproteinalkbh6
AT liuyunlong structuralinsightsintotheinteractionsandepigeneticfunctionsofhumannucleicacidrepairproteinalkbh6
AT xiemengjia structuralinsightsintotheinteractionsandepigeneticfunctionsofhumannucleicacidrepairproteinalkbh6
AT wangguoguo structuralinsightsintotheinteractionsandepigeneticfunctionsofhumannucleicacidrepairproteinalkbh6
AT wuwei structuralinsightsintotheinteractionsandepigeneticfunctionsofhumannucleicacidrepairproteinalkbh6
AT zhangziding structuralinsightsintotheinteractionsandepigeneticfunctionsofhumannucleicacidrepairproteinalkbh6
AT daishaodong structuralinsightsintotheinteractionsandepigeneticfunctionsofhumannucleicacidrepairproteinalkbh6
AT chenzhongzhou structuralinsightsintotheinteractionsandepigeneticfunctionsofhumannucleicacidrepairproteinalkbh6