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A novel model for ectopic, chronic, intravital multiphoton imaging of bone marrow vasculature and architecture in split femurs

机译:异位,慢性,活体多光子成像的股骨骨髓血管和结构的新型模型

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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.
机译:建立用于股骨骨髓活体可视化的模型,该模型是成年哺乳动物生物体造血的主要部位,因此提出了严峻的挑战,因为它需要克服骨的混浊和骨髓的不可及性。此外,对骨髓发育和分化过程的有意义的分析需要长时间重复观察同一部位,我们将其称为慢性成像。为了解决这些问题,我们开发了一种慢性玻璃体内成像模型,可以观察股骨裂开的情况,并将其异位移植到宿主小鼠的背部皮褶腔中。多光子显微镜技术促进了重复的长期观察,这种技术结合了在更大组织深度的卓越成像能力和低光毒性的成像技术。移植的异位股骨通过其无菌环境得以稳定,并迅速与宿主脉管系统连接,从而可以进一步发育并观察延伸过程。在优化移植年龄和移植程序后,我们观察到移植股骨新编织骨的发育和次生骨化中心的成熟,然后出现正弦状血管网络的萌芽,该网络几乎完全由股血管内皮细胞组成。两周后,移植物仍充满着属于供体和宿主的基质细胞和造血细胞。在这个时间范围内,移植物部分保留了具有单系和多系分化能力的骨髓祖细胞。总之,我们的模型允许对骨髓血管生成和造血作用进行重复活体成像。它代表了改进的股骨髓慢性光学成像模型开发的有希望的起点。

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