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CoPixie 是一种用于单颗粒轨迹共定位的新型算法,能够有效地定量端粒酶在端粒处的动力学。

CoPixie, a novel algorithm for single-particle track colocalization, enables efficient quantification of telomerase dynamics at telomeres.

机构信息

Department of Biochemistry and Molecular Medicine, Université de Montréal, Montréal, Québec H3T 1J4, Canada.

出版信息

Nucleic Acids Res. 2024 Sep 9;52(16):9417-9430. doi: 10.1093/nar/gkae669.

DOI:10.1093/nar/gkae669
PMID:39082280
原文链接:https://pmc.ncbi.nlm.nih.gov/articles/PMC11381360/
Abstract

Single-particle imaging and tracking can be combined with colocalization analysis to study the dynamic interactions between macromolecules in living cells. Indeed, single-particle tracking has been extensively used to study protein-DNA interactions and dynamics. Still, unbiased identification and quantification of binding events at specific genomic loci remains challenging. Herein, we describe CoPixie, a new software that identifies colocalization events between a theoretically unlimited number of imaging channels, including single-particle movies. CoPixie is an object-based colocalization algorithm that relies on both pixel and trajectory overlap to determine colocalization between molecules. We employed CoPixie with live-cell single-molecule imaging of telomerase and telomeres, to test the model that cancer-associated POT1 mutations facilitate telomere accessibility. We show that POT1 mutants Y223C, D224N or K90E increase telomere accessibility for telomerase interaction. However, unlike the POT1-D224N mutant, the POT1-Y223C and POT1-K90E mutations also increase the duration of long-lasting telomerase interactions at telomeres. Our data reveal that telomere elongation in cells expressing cancer-associated POT1 mutants arises from the dual impact of these mutations on telomere accessibility and telomerase retention at telomeres. CoPixie can be used to explore a variety of questions involving macromolecular interactions in living cells, including between proteins and nucleic acids, from multicolor single-particle tracks.

摘要

单颗粒成像和追踪可以与共定位分析相结合,用于研究活细胞中大分子之间的动态相互作用。事实上,单颗粒追踪已被广泛用于研究蛋白质-DNA 相互作用和动力学。然而,在特定基因组位置上对结合事件进行无偏识别和定量仍然具有挑战性。本文中,我们描述了 CoPixie,这是一种新的软件,可以识别理论上不受限制的成像通道(包括单颗粒电影)之间的共定位事件。CoPixie 是一种基于对象的共定位算法,它依赖于像素和轨迹的重叠来确定分子之间的共定位。我们使用 CoPixie 对端粒酶和端粒进行活细胞单分子成像,以测试癌症相关 POT1 突变促进端粒可及性的模型。我们表明,POT1 突变体 Y223C、D224N 或 K90E 增加了端粒酶与端粒相互作用的可及性。然而,与 POT1-D224N 突变体不同,POT1-Y223C 和 POT1-K90E 突变体还增加了端粒酶在端粒上的长时间持久相互作用的持续时间。我们的数据表明,表达癌症相关 POT1 突变体的细胞中的端粒延伸源于这些突变对端粒可及性和端粒酶在端粒上的保留的双重影响。CoPixie 可用于探索涉及活细胞中大分子相互作用的各种问题,包括蛋白质和核酸之间的相互作用,从多色单颗粒轨迹。

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1
CoPixie, a novel algorithm for single-particle track colocalization, enables efficient quantification of telomerase dynamics at telomeres.CoPixie 是一种用于单颗粒轨迹共定位的新型算法,能够有效地定量端粒酶在端粒处的动力学。
Nucleic Acids Res. 2024 Sep 9;52(16):9417-9430. doi: 10.1093/nar/gkae669.
2
Single-Molecule Imaging of Telomerase RNA Reveals a Recruitment-Retention Model for Telomere Elongation.单分子成像揭示端粒酶 RNA 募集-保留模型用于端粒延长。
Mol Cell. 2020 Jul 2;79(1):115-126.e6. doi: 10.1016/j.molcel.2020.05.005. Epub 2020 Jun 3.
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POT1-TPP1 Binding and Unfolding of Telomere DNA Discriminates against Structural Polymorphism.端粒DNA的POT1-TPP1结合与解链可区分结构多态性。
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POT1 mutations cause differential effects on telomere length leading to opposing disease phenotypes.POT1 突变导致端粒长度产生不同的影响,从而导致相反的疾病表型。
J Cell Physiol. 2023 Jun;238(6):1237-1255. doi: 10.1002/jcp.31034. Epub 2023 May 14.
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TPP1 is a homologue of ciliate TEBP-beta and interacts with POT1 to recruit telomerase.端粒相关蛋白1是纤毛虫端粒酶结合蛋白β的同源物,可与端粒保护蛋白1相互作用以募集端粒酶。
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Human protection of telomeres 1 (POT1) is a negative regulator of telomerase activity in vitro.人端粒保护蛋白1(POT1)在体外是端粒酶活性的负调节因子。
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The Insertion in Fingers Domain in Human Telomerase Can Mediate Enzyme Processivity and Telomerase Recruitment to Telomeres in a TPP1-Dependent Manner.人类端粒酶中的手指插入结构域可通过依赖TPP1的方式介导酶的持续合成能力以及端粒酶向端粒的募集。
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Structural and functional analysis of the human POT1-TPP1 telomeric complex.人类 POT1-TPP1 端粒复合物的结构与功能分析。
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A POT1 mutation implicates defective telomere end fill-in and telomere truncations in Coats plus.一种POT1突变表明科茨综合征存在端粒末端填充缺陷和端粒截短。
Genes Dev. 2016 Apr 1;30(7):812-26. doi: 10.1101/gad.276873.115. Epub 2016 Mar 24.

本文引用的文献

1
Familial Clonal Hematopoiesis in a Long Telomere Syndrome.长端粒综合征中的家族性克隆性造血
N Engl J Med. 2023 Jun 29;388(26):2422-2433. doi: 10.1056/NEJMoa2300503. Epub 2023 May 4.
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Single-molecule tracking (SMT): a window into live-cell transcription biochemistry.单分子追踪(SMT):活细胞转录生物化学的一扇窗。
Biochem Soc Trans. 2023 Apr 26;51(2):557-569. doi: 10.1042/BST20221242.
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Population-based analysis of variants in a cutaneous melanoma case-control cohort.基于人群的皮肤黑素瘤病例对照队列中变异的分析。
J Med Genet. 2023 Jul;60(7):692-696. doi: 10.1136/jmg-2022-108776. Epub 2022 Dec 20.
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SpotitPy: a semi-automated tool for object-based co-localization of fluorescent labels in microscopy images.SpotitPy:一种用于显微镜图像中荧光标记物基于对象共定位的半自动工具。
BMC Bioinformatics. 2022 Oct 21;23(1):439. doi: 10.1186/s12859-022-04988-1.
5
Endoplasmic reticulum stress activates human IRE1α through reversible assembly of inactive dimers into small oligomers.内质网应激通过将无活性的二聚体可逆组装成小寡聚体来激活人 IRE1α。
Elife. 2022 Jun 22;11:e74342. doi: 10.7554/eLife.74342.
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TrackMate 7: integrating state-of-the-art segmentation algorithms into tracking pipelines.TrackMate 7:将最先进的分割算法集成到跟踪管道中。
Nat Methods. 2022 Jul;19(7):829-832. doi: 10.1038/s41592-022-01507-1. Epub 2022 Jun 2.
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Analysis of conditional colocalization relationships and hierarchies in three-color microscopy images.分析三色显微镜图像中的条件共定位关系和层次结构。
J Cell Biol. 2022 Jul 4;221(7). doi: 10.1083/jcb.202106129. Epub 2022 May 13.
8
Cancer-associated POT1 mutations lead to telomere elongation without induction of a DNA damage response.癌症相关的 POT1 突变导致端粒延长,而不会诱导 DNA 损伤反应。
EMBO J. 2021 Jun 15;40(12):e107346. doi: 10.15252/embj.2020107346. Epub 2021 May 2.
9
Bound2Learn: a machine learning approach for classification of DNA-bound proteins from single-molecule tracking experiments.Bound2Learn:一种基于机器学习的方法,用于从单分子追踪实验中对 DNA 结合蛋白进行分类。
Nucleic Acids Res. 2021 Aug 20;49(14):e79. doi: 10.1093/nar/gkab186.
10
Role of POT1 in Human Cancer.POT1在人类癌症中的作用。
Cancers (Basel). 2020 Sep 24;12(10):2739. doi: 10.3390/cancers12102739.