Saxena Sandeep, Purushothaman Sruthi, Meghah Vuppalapaty, Bhatti Bhawna, Poruri Akhila, Meena Lakshmi Mula G, Sarath Babu Nukala, Narasimha Murthy Ch Lakshmi, Mandal Komal K, Kumar Arvind, Idris Mohammed M
CSIR-Centre for Cellular and Molecular Biology (CCMB), Hyderabad, India.
Wound Repair Regen. 2016 May;24(3):551-9. doi: 10.1111/wrr.12429. Epub 2016 May 6.
The molecular mechanism of epimorphic regeneration is elusive due to its complexity and limitation in mammals. Epigenetic regulatory mechanisms play a crucial role in development and regeneration. This investigation attempted to reveal the role of epigenetic regulatory mechanisms, such as histone H3 and H4 lysine acetylation and methylation during zebrafish caudal fin regeneration. It was intriguing to observe that H3K9,14 acetylation, H4K20 trimethylation, H3K4 trimethylation and H3K9 dimethylation along with their respective regulatory genes, such as GCN5, SETd8b, SETD7/9, and SUV39h1, were differentially regulated in the regenerating fin at various time points of post-amputation. Annexin genes have been associated with regeneration; this study reveals the significant up-regulation of ANXA2a and ANXA2b transcripts and their protein products during the regeneration process. Chromatin immunoprecipitation and PCR analysis of the regulatory regions of the ANXA2a and ANXA2b genes demonstrated the ability to repress two histone methylations, H3K27me3 and H4K20me3, in transcriptional regulation during regeneration. It is hypothesized that this novel insight into the diverse epigenetic mechanisms that play a critical role during the regeneration process may help to strategize the translational efforts, in addition to identifying the molecules involved in vertebrate regeneration.
由于其复杂性以及在哺乳动物中的局限性,形态再生的分子机制尚不清楚。表观遗传调控机制在发育和再生过程中起着关键作用。本研究试图揭示表观遗传调控机制的作用,如组蛋白H3和H4赖氨酸乙酰化和甲基化在斑马鱼尾鳍再生过程中的作用。有趣的是,观察到H3K9、14乙酰化、H4K20三甲基化、H3K4三甲基化和H3K9二甲基化及其各自的调控基因,如GCN5、SETd8b、SETD7/9和SUV39h1,在截肢后的不同时间点在再生鳍中受到差异调节。膜联蛋白基因与再生有关;本研究揭示了在再生过程中ANXA2a和ANXA2b转录本及其蛋白质产物的显著上调。对ANXA2a和ANXA2b基因调控区域的染色质免疫沉淀和PCR分析表明,在再生过程的转录调控中,它们能够抑制两种组蛋白甲基化,即H3K27me3和H4K20me3。据推测,这种对在再生过程中起关键作用的多种表观遗传机制的新见解,除了有助于识别参与脊椎动物再生的分子外,还可能有助于制定转化研究策略。
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