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1
Timing of Phagosome Maturation Depends on Their Transport Switching from Actin to Microtubule Tracks.吞噬体成熟的时间取决于其从肌动蛋白向微管轨道的运输转换。
J Phys Chem B. 2023 Nov 2;127(43):9312-9322. doi: 10.1021/acs.jpcb.3c05647. Epub 2023 Oct 23.
2
Phagosome resolution regenerates lysosomes and maintains the degradative capacity in phagocytes.吞噬体的降解能恢复溶酶体并维持吞噬细胞的降解能力。
J Cell Biol. 2021 Sep 6;220(9). doi: 10.1083/jcb.202005072. Epub 2021 Jun 28.
3
PIKfyve inhibition interferes with phagosome and endosome maturation in macrophages.PIKfyve抑制作用会干扰巨噬细胞中吞噬体和内体的成熟过程。
Traffic. 2014 Oct;15(10):1143-63. doi: 10.1111/tra.12199. Epub 2014 Aug 16.
4
Transient assembly of F-actin by phagosomes delays phagosome fusion with lysosomes in cargo-overloaded macrophages.吞噬体介导的F-肌动蛋白瞬时组装会延迟货物过载巨噬细胞中吞噬体与溶酶体的融合。
J Cell Sci. 2009 Aug 15;122(Pt 16):2935-45. doi: 10.1242/jcs.048355. Epub 2009 Jul 28.
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The sodium proton exchanger NHE9 regulates phagosome maturation and bactericidal activity in macrophages.钠氢交换蛋白 9(NHE9)调节巨噬细胞吞噬体成熟和杀菌活性。
J Biol Chem. 2022 Aug;298(8):102150. doi: 10.1016/j.jbc.2022.102150. Epub 2022 Jun 16.
6
Microfilaments and microtubules regulate recycling from phagosomes.微丝和微管调节吞噬体的再循环。
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7
Ezrin promotes actin assembly at the phagosome membrane and regulates phago-lysosomal fusion.埃兹蛋白促进吞噬体膜上的肌动蛋白组装,并调节吞噬溶酶体融合。
Traffic. 2011 Apr;12(4):421-37. doi: 10.1111/j.1600-0854.2011.01158.x. Epub 2011 Feb 8.
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Myosin Va bound to phagosomes binds to F-actin and delays microtubule-dependent motility.与吞噬体结合的肌球蛋白Va与F-肌动蛋白结合,并延迟微管依赖性运动。
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cAMP synthesis and degradation by phagosomes regulate actin assembly and fusion events: consequences for mycobacteria.吞噬体的cAMP合成与降解调节肌动蛋白组装和融合事件:对分枝杆菌的影响
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Role of microtubules and myosins in Fc gamma receptor-mediated phagocytosis.微管和肌球蛋白在Fcγ受体介导的吞噬作用中的作用。
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Propulsive cell entry diverts pathogens from immune degradation by remodeling the phagocytic synapse.推进细胞进入通过重塑吞噬突触来转移病原体,使其免受免疫降解。
Proc Natl Acad Sci U S A. 2023 Dec 5;120(49):e2306788120. doi: 10.1073/pnas.2306788120. Epub 2023 Nov 30.
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Propulsive cell entry diverts pathogens from immune degradation by remodeling the phagocytic synapse.推进性细胞内吞通过重塑吞噬突触将病原体从免疫降解中转移出来。
bioRxiv. 2023 Apr 28:2023.04.25.538287. doi: 10.1101/2023.04.25.538287.

本文引用的文献

1
Kinetics of phagosome maturation is coupled to their intracellular motility.吞噬体成熟的动力学与它们的细胞内运动相关联。
Commun Biol. 2022 Sep 26;5(1):1014. doi: 10.1038/s42003-022-03988-4.
2
Anisotropic presentation of ligands on cargos modulates degradative function of phagosomes.货物上配体的各向异性呈现调节吞噬体的降解功能。
Biophys Rep (N Y). 2022 Mar 9;2(1). doi: 10.1016/j.bpr.2021.100041. Epub 2021 Dec 10.
3
Single-phagosome imaging reveals that homotypic fusion impairs phagosome degradative function.单吞噬体成像显示同源融合会损害吞噬体的降解功能。
Biophys J. 2022 Feb 1;121(3):459-469. doi: 10.1016/j.bpj.2021.12.032. Epub 2021 Dec 29.
4
It's what's on the inside that counts: Techniques for investigating the uptake and recycling of nanoparticles and proteins in cells.关键在于内在因素:细胞内纳米颗粒和蛋白质摄取与循环利用的研究技术。
J Colloid Interface Sci. 2021 Apr;587:64-78. doi: 10.1016/j.jcis.2020.11.076. Epub 2020 Nov 25.
5
Molecular underpinnings of cytoskeletal cross-talk.细胞骨架相互作用的分子基础。
Proc Natl Acad Sci U S A. 2020 Feb 25;117(8):3944-3952. doi: 10.1073/pnas.1917964117. Epub 2020 Feb 10.
6
Tracking Single Molecules in Biomembranes: Is Seeing Always Believing?追踪生物膜中的单个分子:眼见一定为实吗?
ACS Nano. 2019 Oct 22;13(10):10860-10868. doi: 10.1021/acsnano.9b07445. Epub 2019 Oct 7.
7
"Waltz" of Cell Membrane-Coated Nanoparticles on Lipid Bilayers: Tracking Single Particle Rotation in Ligand-Receptor Binding.细胞膜包覆纳米粒子在脂质双层膜上的“华尔兹”舞:在配体-受体结合中追踪单个粒子的旋转。
ACS Nano. 2018 Dec 26;12(12):11871-11880. doi: 10.1021/acsnano.8b04880. Epub 2018 Nov 13.
8
Myosin V functions as a vesicle tether at the plasma membrane to control neurotransmitter release in central synapses.肌球蛋白 V 在质膜上作为囊泡的连接蛋白,以控制中枢突触中的神经递质释放。
Elife. 2018 Oct 15;7:e39440. doi: 10.7554/eLife.39440.
9
A role for myosin VI in retinal pigment epithelium phagocytosis.肌球蛋白 VI 在视网膜色素上皮细胞吞噬中的作用。
Biochem Biophys Res Commun. 2018 Oct 12;504(4):759-764. doi: 10.1016/j.bbrc.2018.09.006. Epub 2018 Sep 11.
10
Cargos Rotate at Microtubule Intersections during Intracellular Trafficking.货物在细胞内运输过程中在微管交叉处旋转。
Biophys J. 2018 Jun 19;114(12):2900-2909. doi: 10.1016/j.bpj.2018.05.010.

吞噬体成熟的时间取决于其从肌动蛋白向微管轨道的运输转换。

Timing of Phagosome Maturation Depends on Their Transport Switching from Actin to Microtubule Tracks.

机构信息

Department of Chemistry, Indiana University, Bloomington, Indiana 47405-7102, United States.

出版信息

J Phys Chem B. 2023 Nov 2;127(43):9312-9322. doi: 10.1021/acs.jpcb.3c05647. Epub 2023 Oct 23.

DOI:10.1021/acs.jpcb.3c05647
PMID:37871280
原文链接:https://pmc.ncbi.nlm.nih.gov/articles/PMC10759163/
Abstract

Phagosomes, specialized membrane compartments responsible for digesting internalized pathogens, undergo sequential dynamic and biochemical changes as they mature from nascent phagosomes to degradative phagolysosomes. Maturation of phagosomes depends on their transport along actin filaments and microtubules. However, the specific quantitative relationship between the biochemical transformation and transport dynamics remains poorly characterized. The autonomous nature of phagosomes, moving and maturing at different rates, makes understanding this relationship challenging. Addressing this challenge, in this study we engineered particle sensors to image and quantify single phagosomes' maturation. We found that as phagosomes move from the actin cortex to microtubule tracks, the timing of their actin-to-microtubule transition governs the duration of the early phagosome stage before acquiring degradative capacities. Prolonged entrapment of phagosomes in the actin cortex extends the early phagosome stage by delaying the dissociation of early endosome markers and phagosome acidification. Conversely, a shortened transition from actin- to microtubule-based movements causes the opposite effect on phagosome maturation. These results suggest that the actin- and microtubule-based transport of phagosomes functions like a "clock" to coordinate the timing of biochemical events during phagosome maturation, which is crucial for effective pathogen degradation.

摘要

吞噬体是专门负责消化内吞病原体的膜结构,在从初始吞噬体成熟为降解性吞噬溶酶体的过程中,经历连续的动态和生化变化。吞噬体的成熟依赖于它们沿着肌动蛋白丝和微管的运输。然而,生化转化和运输动力学之间的具体定量关系仍未得到充分描述。吞噬体具有自主性,它们以不同的速度运动和成熟,这使得理解这种关系具有挑战性。为了解决这一挑战,在本研究中,我们设计了颗粒传感器来成像和定量单个吞噬体的成熟过程。我们发现,随着吞噬体从肌动蛋白皮层向微管轨道移动,它们从肌动蛋白向微管转变的时间决定了在获得降解能力之前早期吞噬体阶段的持续时间。吞噬体在肌动蛋白皮层中的长时间滞留通过延迟早期内体标记物的解离和吞噬体酸化来延长早期吞噬体阶段。相反,从肌动蛋白到基于微管的运动的缩短转变对吞噬体成熟会产生相反的影响。这些结果表明,吞噬体的肌动蛋白和微管依赖性运输就像一个“时钟”,协调吞噬体成熟过程中生化事件的时间,这对于有效降解病原体至关重要。