Afanasii I Stepanov, Alexandra A Shuvaeva, Lidia V Putlyaeva, Daniil K Lukyanov, Adelya A Galiakberova, Dmitry A Gorbachev, Dmitry I Maltsev, Valeriya Pronina, Dmitry V Dylov, Alexey V Terskikh, Konstantin A Lukyanov, Nadya G Gurskaya
{"title":"利用荧光基因编码表观遗传探针跟踪诱导多能干细胞分化。","authors":"Afanasii I Stepanov, Alexandra A Shuvaeva, Lidia V Putlyaeva, Daniil K Lukyanov, Adelya A Galiakberova, Dmitry A Gorbachev, Dmitry I Maltsev, Valeriya Pronina, Dmitry V Dylov, Alexey V Terskikh, Konstantin A Lukyanov, Nadya G Gurskaya","doi":"10.1007/s00018-024-05359-0","DOIUrl":null,"url":null,"abstract":"<p><p>Epigenetic modifications (methylation, acetylation, etc.) of core histones play a key role in regulation of gene expression. Thus, the epigenome changes strongly during various biological processes such as cell differentiation and dedifferentiation. Classical methods of analysis of epigenetic modifications such as mass-spectrometry and chromatin immuno-precipitation, work with fixed cells only. Here we present a genetically encoded fluorescent probe, MPP8-Green, for detecting H3K9me3, a histone modification associated with inactive chromatin. This probe, based on the chromodomain of MPP8, allows for visualization of H3K9me3 epigenetic landscapes in single living cells. We used this probe to track changes in H3K9me3 landscapes during the differentiation of induced pluripotent stem cells (iPSCs) into induced neurons. Our findings revealed two major waves of global H3K9me3 reorganization during 4-day differentiation, namely on the first and third days, whereas nearly no changes occurred on the second and fourth days. The proposed method LiveMIEL (Live-cell Microscopic Imaging of Epigenetic Landscapes), which combines genetically encoded epigenetic probes and machine learning approaches, enables classification of multiparametric epigenetic signatures of single cells during stem cell differentiation and potentially in other biological models.</p>","PeriodicalId":10007,"journal":{"name":"Cellular and Molecular Life Sciences","volume":"81 1","pages":"381"},"PeriodicalIF":6.2000,"publicationDate":"2024-09-02","publicationTypes":"Journal Article","fieldsOfStudy":null,"isOpenAccess":false,"openAccessPdf":"https://www.ncbi.nlm.nih.gov/pmc/articles/PMC11368889/pdf/","citationCount":"0","resultStr":"{\"title\":\"Tracking induced pluripotent stem cell differentiation with a fluorescent genetically encoded epigenetic probe.\",\"authors\":\"Afanasii I Stepanov, Alexandra A Shuvaeva, Lidia V Putlyaeva, Daniil K Lukyanov, Adelya A Galiakberova, Dmitry A Gorbachev, Dmitry I Maltsev, Valeriya Pronina, Dmitry V Dylov, Alexey V Terskikh, Konstantin A Lukyanov, Nadya G Gurskaya\",\"doi\":\"10.1007/s00018-024-05359-0\",\"DOIUrl\":null,\"url\":null,\"abstract\":\"<p><p>Epigenetic modifications (methylation, acetylation, etc.) of core histones play a key role in regulation of gene expression. 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Tracking induced pluripotent stem cell differentiation with a fluorescent genetically encoded epigenetic probe.
Epigenetic modifications (methylation, acetylation, etc.) of core histones play a key role in regulation of gene expression. Thus, the epigenome changes strongly during various biological processes such as cell differentiation and dedifferentiation. Classical methods of analysis of epigenetic modifications such as mass-spectrometry and chromatin immuno-precipitation, work with fixed cells only. Here we present a genetically encoded fluorescent probe, MPP8-Green, for detecting H3K9me3, a histone modification associated with inactive chromatin. This probe, based on the chromodomain of MPP8, allows for visualization of H3K9me3 epigenetic landscapes in single living cells. We used this probe to track changes in H3K9me3 landscapes during the differentiation of induced pluripotent stem cells (iPSCs) into induced neurons. Our findings revealed two major waves of global H3K9me3 reorganization during 4-day differentiation, namely on the first and third days, whereas nearly no changes occurred on the second and fourth days. The proposed method LiveMIEL (Live-cell Microscopic Imaging of Epigenetic Landscapes), which combines genetically encoded epigenetic probes and machine learning approaches, enables classification of multiparametric epigenetic signatures of single cells during stem cell differentiation and potentially in other biological models.
期刊介绍:
Journal Name: Cellular and Molecular Life Sciences (CMLS)
Location: Basel, Switzerland
Focus:
Multidisciplinary journal
Publishes research articles, reviews, multi-author reviews, and visions & reflections articles
Coverage:
Latest aspects of biological and biomedical research
Areas include:
Biochemistry and molecular biology
Cell biology
Molecular and cellular aspects of biomedicine
Neuroscience
Pharmacology
Immunology
Additional Features:
Welcomes comments on any article published in CMLS
Accepts suggestions for topics to be covered