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A novel model for ectopic, chronic, intravital multiphoton imaging of bone marrow vasculature and architecture in split femurs. 一个新的模型异位,慢性,活体多光子成像骨髓血管和结构的分裂股骨。
Pub Date : 2015-06-30 eCollection Date: 2015-05-01 DOI: 10.1080/21659087.2015.1066949
Mirela Bălan, Friedemann Kiefer

Creating a model for intravital visualization of femoral bone marrow, a major site of hematopoiesis in adult mammalian organisms, poses a serious challenge, in that it needs to overcome bone opacity and the inaccessibility of marrow. Furthermore, meaningful analysis of bone marrow developmental and differentiation processes requires the repetitive observation of the same site over long periods of time, which we refer to as chronic imaging. To surmount these issues, we developed a chronic intravital imaging model that allows the observation of split femurs, ectopically transplanted into a dorsal skinfold chamber of a host mouse. Repeated, long term observations are facilitated by multiphoton microscopy, an imaging technique that combines superior imaging capacity at greater tissue depth with low phototoxicity. The transplanted, ectopic femur was stabilized by its sterile environment and rapidly connected to the host vasculature, allowing further development and observation of extended processes. After optimizing transplant age and grafting procedure, we observed the development of new woven bone and maturation of secondary ossification centers in the transplanted femurs, preceded by the sprouting of a sinusoidal-like vascular network, which was almost entirely composed of femoral endothelial cells. After two weeks, the transplant was still populated with stromal and haematopoietic cells belonging both to donor and host. Over this time frame, the transplant partially retained myeloid progenitor cells with single and multi-lineage differentiation capacity. In summary, our model allowed repeated intravital imaging of bone marrow angiogenesis and hematopoiesis. It represents a promising starting point for the development of improved chronic optical imaging models for femoral bone marrow.

股骨骨髓是成年哺乳动物造血的主要部位,建立一个用于活体可视化的模型是一个严峻的挑战,因为它需要克服骨不透明和骨髓的不可接近性。此外,对骨髓发育和分化过程进行有意义的分析需要长时间重复观察同一部位,我们称之为慢性成像。为了克服这些问题,我们开发了一种慢性活体成像模型,可以观察分离的股骨,异位移植到宿主小鼠的背侧皮褶腔中。通过多光子显微镜进行重复的长期观察,这种成像技术结合了更大组织深度的优越成像能力和低光毒性。移植的异位股骨因其无菌环境而稳定,并迅速连接到宿主脉管系统,允许进一步发展和观察扩展过程。在优化移植年龄和移植程序后,我们观察到移植股骨中新编织骨的发育和二级骨化中心的成熟,在此之前出现了一个几乎完全由股内皮细胞组成的窦状血管网络。两周后,移植细胞仍然充满了供体和宿主的基质细胞和造血细胞。在这段时间内,移植部分保留了具有单系和多系分化能力的骨髓祖细胞。总之,我们的模型允许骨髓血管生成和造血功能的重复活体成像。它代表了一个有希望的起点,为发展改进的慢性光学成像模型的股骨骨髓。
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引用次数: 2
Imaging CD8+ T cells during diverse viral infections. 在多种病毒感染过程中对 CD8+ T 细胞进行成像。
Pub Date : 2015-06-19 eCollection Date: 2015-01-01 DOI: 10.1080/21659087.2015.1055425
Heather D Hickman

CD8+ T cells play a critical role in host defense against pathogens and tumors. Much of our current knowledge of the activation and subsequent effector activities of CD8+ T cells has been gained using ex vivo approaches examining the T cell population en masse for surface phenotype, activation status and the production of effector molecules. Thus, the precise behaviors and diversity of individual CD8+ T cells responding to virus infection in vivo have not been extensively explored, leaving many unanswered questions relevant to the rational design of antiviral vaccines and therapeutics. Recently, intravital multiphoton microscopy (MPM) has been used to image CD8+ T cell priming after infection with disparate viral pathogens ranging from small RNA viruses encoding few proteins to DNA viruses producing hundreds of viral proteins (many immunomodulatory). After priming, effector CD8+ T cells have been visualized in virus-infected tissue, both during primary infection and after transitioning to tissue resident memory cells (TRM). Here, I highlight recent advances in our understanding of antiviral CD8+ T cell responses revealed through intravital MPM.

CD8+ T 细胞在宿主抵御病原体和肿瘤的过程中发挥着至关重要的作用。目前,我们对 CD8+ T 细胞的活化和后续效应活动的了解大多是通过体外方法获得的,这种方法是对 T 细胞群体的表面表型、活化状态和效应分子的产生进行整体检测。因此,人们还没有广泛探索单个 CD8+ T 细胞在体内对病毒感染做出反应的精确行为和多样性,这给合理设计抗病毒疫苗和疗法留下了许多未解之谜。最近,人们利用体内多光子显微镜(MPM)对 CD8+ T 细胞在感染不同病毒病原体(从编码少量蛋白质的小 RNA 病毒到产生数百种病毒蛋白质(其中许多具有免疫调节作用)的 DNA 病毒)后的启动过程进行了成像。病毒感染组织中的效应 CD8+ T 细胞在初次感染和转变为组织常驻记忆细胞(TRM)后都能看到。在这里,我将重点介绍我们通过体内显微镜(intravital MPM)了解抗病毒 CD8+ T 细胞反应的最新进展。
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引用次数: 0
In vivo imaging of the tumor and its associated microenvironment using combined CARS / 2-photon microscopy. 利用 CARS 和双光子显微镜对肿瘤及其相关微环境进行活体成像。
Pub Date : 2015-06-08 eCollection Date: 2015-01-01 DOI: 10.1080/21659087.2015.1055430
Martin Lee, Andy Downes, You-Ying Chau, Bryan Serrels, Nick Hastie, Alistair Elfick, Valerie Brunton, Margaret Frame, Alan Serrels

The use of confocal and multi-photon microscopy for intra-vital cancer imaging has impacted on our understanding of cancer cell behavior and interaction with the surrounding tumor microenvironment in vivo. However, many studies to-date rely on the use fluorescent dyes or genetically encoded probes that enable visualization of a structure or cell population of interest, but do not illuminate the complexity of the surrounding tumor microenvironment. Here, we show that multi-modal microscopy combining 2-photon fluorescence with CARS can begin to address this deficit, enabling detailed imaging of the tumor niche without the need for additional labeling. This can be performed on live tumor-bearing animals through optical observation windows, permitting real-time and longitudinal imaging of dynamic processes within the tumor niche.

使用共焦和多光子显微镜进行体内癌症成像,有助于我们了解体内癌细胞的行为以及与周围肿瘤微环境的相互作用。然而,迄今为止的许多研究都依赖于使用荧光染料或基因编码探针,这些探针能对感兴趣的结构或细胞群进行可视化,但无法显示周围肿瘤微环境的复杂性。在这里,我们展示了结合双光子荧光和 CARS 的多模式显微镜可以开始解决这一不足,无需额外标记就能对肿瘤龛进行详细成像。这可以通过光学观察窗在活体肿瘤动物身上进行,允许对肿瘤龛内的动态过程进行实时和纵向成像。
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引用次数: 0
The caspase 3 sensor Phiphilux G2D2 is activated non-specifically in S1 renal proximal tubules caspase 3传感器philphilux G2D2在S1肾近端小管中非特异性激活
Pub Date : 2015-05-04 DOI: 10.1080/21659087.2015.1067352
T. Hato, R. Sandoval, P. Dagher
Tubular cell apoptosis is a major phenotype of cell death in various forms of acute kidney injury. Quantifying apoptosis in fixed tissues is problematic because apoptosis evolves over time and dead cells are rapidly cleared by the phagocytic system. Phiphilux is a fluorescent probe that is activated specifically by caspase 3 and does not inhibit the subsequent activity of this effector caspase. It has been used successfully to quantify apoptosis in cell culture. Here we examined the feasibility of using Phiphilux to measure renal tubular apoptosis progression over time in live animals using intravital 2-photon microscopy. Our results show that Phiphilux can detect apoptosis in S2 tubules but is activated non-specifically in S1 tubules.
小管细胞凋亡是各种形式急性肾损伤中细胞死亡的主要表型。定量固定组织中的细胞凋亡是有问题的,因为细胞凋亡随着时间的推移而演变,死亡细胞被吞噬系统迅速清除。Phiphilux是一种荧光探针,可以被caspase 3特异性激活,并且不会抑制该效应caspase的后续活性。它已成功地用于定量细胞培养中的凋亡。在这里,我们通过活体双光子显微镜研究了使用Phiphilux测量活体动物肾小管凋亡随时间进展的可行性。我们的研究结果表明Phiphilux可以检测S2小管的凋亡,但在S1小管中非特异性激活。
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引用次数: 3
The Use of Second Harmonic Generation to Image the Extracellular Matrix During Tumor Progression. 肿瘤进展过程中利用二次谐波成像细胞外基质。
Pub Date : 2015-01-06 eCollection Date: 2014-12-01 DOI: 10.4161/21659087.2014.984509
Kathleen Burke, Edward Brown

Metastasis is the leading cause of cancer mortality, resulting from changes in the tumor microenvironment which increases tumor cell migration, dispersal to distant organs, and subsequent survival. This is accompanied by changes in tumor collagen which may allow cells to travel more efficiently away from a primary tumor and invade the surrounding tissue. Second Harmonic generation (SHG) is an intrinsic optical signal that has expanded our understanding of collagen evolution throughout tumor progression. This article addresses current research into tumor progression using SHG, as well as the future prospects of using SHG to advance our understanding of the tumor microenvironment.

转移是癌症死亡的主要原因,是由于肿瘤微环境的改变,增加了肿瘤细胞的迁移、扩散到远处器官,以及随后的生存。这伴随着肿瘤胶原蛋白的变化,这可能使细胞更有效地离开原发肿瘤并侵入周围组织。二次谐波产生(SHG)是一种固有的光信号,它扩大了我们对肿瘤进展过程中胶原蛋白进化的理解。本文阐述了利用SHG对肿瘤进展的当前研究,以及利用SHG促进我们对肿瘤微环境的理解的未来前景。
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引用次数: 20
Intravital imaging of dendritic spine plasticity. 树突脊柱可塑性的活体成像。
Pub Date : 2015-01-06 eCollection Date: 2014-12-01 DOI: 10.4161/21659087.2014.984504
Cora Sau Wan Lai

Dendritic spines are the postsynaptic part of most excitatory synapses in the mammalian brain. Recent works have suggested that the structural and functional plasticity of dendritic spines have been associated with information coding and memories. Advances in imaging and labeling techniques enable the study of dendritic spine dynamics in vivo. This perspective focuses on intravital imaging studies of dendritic spine plasticity in the neocortex. I will introduce imaging tools for studying spine dynamics and will further review current findings on spine structure and function under various physiological and pathological conditions.

树突棘是哺乳动物大脑中大多数兴奋性突触的突触后部分。最近的研究表明,树突棘的结构和功能可塑性与信息编码和记忆有关。成像和标记技术的进步使树突脊柱动力学在体内的研究成为可能。这一观点侧重于新皮层树突脊柱可塑性的活体成像研究。我将介绍研究脊柱动力学的成像工具,并进一步回顾在各种生理和病理条件下脊柱结构和功能的最新发现。
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引用次数: 2
Flying back to the nest: Intravital microscopy reveals how the niche can induce stemness. 飞回巢穴:肉眼显微镜揭示了生态位如何诱导干性。
Pub Date : 2014-08-11 eCollection Date: 2014-01-01 DOI: 10.4161/intv.29653
Narges M Rashidi, Cristina Lo Celso
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引用次数: 0
Imaging windows for long-term intravital imaging: General overview and technical insights. 长期活体成像的成像窗口:一般概述和技术见解。
Pub Date : 2014-08-11 eCollection Date: 2014-01-01 DOI: 10.4161/intv.29917
Maria Alieva, Laila Ritsma, Randy J Giedt, Ralph Weissleder, Jacco van Rheenen

Intravital microscopy is increasingly used to visualize and quantitate dynamic biological processes at the (sub)cellular level in live animals. By visualizing tissues through imaging windows, individual cells (e.g., cancer, host, or stem cells) can be tracked and studied over a time-span of days to months. Several imaging windows have been developed to access tissues including the brain, superficial fascia, mammary glands, liver, kidney, pancreas, and small intestine among others. Here, we review the development of imaging windows and compare the most commonly used long-term imaging windows for cancer biology: the cranial imaging window, the dorsal skin fold chamber, the mammary imaging window, and the abdominal imaging window. Moreover, we provide technical details, considerations, and trouble-shooting tips on the surgical procedures and microscopy setups for each imaging window and explain different strategies to assure imaging of the same area over multiple imaging sessions. This review aims to be a useful resource for establishing the long-term intravital imaging procedure.

活体显微镜越来越多地用于活体动物(亚)细胞水平的动态生物过程的可视化和定量。通过成像窗口可视化组织,单个细胞(如癌症、宿主细胞或干细胞)可以在几天到几个月的时间跨度内进行跟踪和研究。已经开发了几种成像窗口,可以进入组织,包括大脑、浅筋膜、乳腺、肝脏、肾脏、胰腺和小肠等。在这里,我们回顾了成像窗口的发展,并比较了癌症生物学中最常用的长期成像窗口:颅成像窗口、背侧皮肤折叠腔、乳腺成像窗口和腹部成像窗口。此外,我们提供技术细节,注意事项和故障排除提示的手术程序和显微镜设置为每个成像窗口,并解释不同的策略,以确保同一区域的成像在多个成像会话。本综述旨在为建立长期的活体成像程序提供有用的资源。
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引用次数: 123
Quantitative intravital two-photon excitation microscopy reveals absence of pulmonary vaso-occlusion in unchallenged Sickle Cell Disease mice. 定量活体双光子激发显微镜显示无挑战镰状细胞病小鼠肺血管闭塞。
Pub Date : 2014-07-07 DOI: 10.4161/intv.29748
Margaret F Bennewitz, Simon C Watkins, Prithu Sundd

Sickle cell disease (SCD) is a genetic disorder that leads to red blood cell (RBC) sickling, hemolysis and the upregulation of adhesion molecules on sickle RBCs. Chronic hemolysis in SCD results in a hyper-inflammatory state characterized by activation of circulating leukocytes, platelets and endothelial cells even in the absence of a crisis. A crisis in SCD is often triggered by an inflammatory stimulus and can lead to the acute chest syndrome (ACS), which is a type of lung injury and a leading cause of mortality among SCD patients. Although it is believed that pulmonary vaso-occlusion could be the phenomenon contributing to the development of ACS, the role of vaso-occlusion in ACS remains elusive. Intravital imaging of the cremaster microcirculation in SCD mice has been instrumental in establishing the role of neutrophil-RBC-endothelium interactions in systemic vaso-occlusion; however, such studies, although warranted, have never been done in the pulmonary microcirculation of SCD mice. Here, we show that two-photon excitation fluorescence microscopy can be used to perform quantitative analysis of neutrophil and RBC trafficking in the pulmonary microcirculation of SCD mice. We provide the experimental approach that enables microscopic observations under physiological conditions and use it to show that RBC and neutrophil trafficking is comparable in SCD and control mice in the absence of an inflammatory stimulus. The intravital imaging scheme proposed in this study can be useful in elucidating the cellular and molecular mechanism of pulmonary vaso-occlusion in SCD mice following an inflammatory stimulus.

镰状细胞病(SCD)是一种遗传性疾病,导致红细胞(RBC)镰状、溶血和镰状红细胞粘附分子上调。SCD的慢性溶血导致高炎症状态,其特征是循环白细胞、血小板和内皮细胞的激活,即使在没有危象的情况下。SCD的危象通常由炎症刺激引发,可导致急性胸综合征(ACS),这是一种肺损伤,也是SCD患者死亡的主要原因。尽管人们认为肺血管闭塞可能是导致ACS发生的现象,但血管闭塞在ACS中的作用尚不明确。SCD小鼠乳突微循环的活体成像有助于确定中性粒细胞-红细胞-内皮相互作用在全身血管闭塞中的作用;然而,这类研究虽然有必要,但从未在SCD小鼠的肺微循环中进行过。本研究表明,双光子激发荧光显微镜可用于定量分析SCD小鼠肺微循环中中性粒细胞和红细胞的转运。我们提供了一种实验方法,可以在生理条件下进行显微镜观察,并使用它来表明,在没有炎症刺激的情况下,SCD小鼠和对照组小鼠的红细胞和中性粒细胞运输是相当的。本研究提出的活体成像方案可用于阐明炎症刺激后SCD小鼠肺血管闭塞的细胞和分子机制。
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引用次数: 26
Lighting up microtubule cytoskeleton dynamics in skeletal muscle. 点亮骨骼肌微管细胞骨架动力学。
Pub Date : 2014-05-30 eCollection Date: 2014-01-01 DOI: 10.4161/intv.29293
Andrius Masedunskas, Mark Appaduray, Peter W Gunning, Edna C Hardeman

In the past few decades, live cell microscopy techniques in combination with fluorescent tagging have provided a true explosion in our knowledge of the inner functioning of the cell. Dynamic phenomena can be observed inside living cells and the behavior of individual molecules participating in those events can be documented. However, our preference for simple or easy model systems such as cell culture, has come at a cost of chasing artifacts and missing out on understanding real biology as it happens in complex multicellular organisms. We are now entering a new era where developing meaningful, but also tractable model systems to study biological phenomenon dynamically in vivo in a mammal is not only possible; it will become the gold standard for scientific quality and translational potential.1,2 A study by Oddoux et al. describing the dynamics of the microtubule (MT) cytoskeleton in skeletal muscle is one example that demonstrates the power of developing in vivo/ex vivo models.3 MTs have long attracted attention as targets for cancer therapeutics 4 and more recently as mediators of Duchene muscular dystrophy.5 The muscle fiber MT cytoskeleton forms an intricate rectilinear lattice beneath the sarcolemma and is essential for the structural integrity of the muscle. Cultured cells do not develop such a specialized organization of the MT cytoskeleton and our understanding of it has come from static snapshots of muscle sections.6 In this context, the methodology and the findings reported by Oddoux et al. are a significant step forward.

在过去的几十年里,活细胞显微镜技术与荧光标记相结合,为我们对细胞内部功能的了解提供了一个真正的爆炸。动态现象可以在活细胞内观察到,参与这些事件的单个分子的行为可以被记录下来。然而,我们对简单或容易的模型系统(如细胞培养)的偏好,是以追逐人工产物为代价的,并且错过了对复杂多细胞生物中发生的真实生物学的理解。我们现在正在进入一个新时代,在这个时代中,开发有意义的,而且易于处理的模型系统来动态研究哺乳动物体内的生物现象不仅是可能的;它将成为科学质量和转化潜力的黄金标准。Oddoux等人的一项研究描述了骨骼肌中微管(MT)细胞骨架的动力学,这是一个例子,证明了开发体内/离体模型的力量长期以来,MTs作为癌症治疗的靶点,以及最近作为杜氏肌营养不良的介质,一直备受关注肌纤维MT细胞骨架在肌膜下形成复杂的直线晶格,对肌肉的结构完整性至关重要。培养的细胞不会形成这样一个专门的细胞骨架组织,我们对它的理解来自于肌肉切片的静态快照在此背景下,Oddoux等人报告的方法和发现是向前迈出的重要一步。
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引用次数: 0
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