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New Insights Into Cleft Palate Unlocked With 10x Genomics' Single Cell and Spatial Technologies

New Insights Into Cleft Palate Unlocked With 10x Genomics' Single Cell and Spatial Technologies

使用10x genomics的单细胞和空间技术解锁了唇裂的新见解。
PR Newswire ·  06/27 09:00

Researchers used Chromium Single Cell products and Xenium In Situ to profile how gene expression is spatially regulated during secondary palate formation

研究人员使用Chromium Single Cell产品和Xenium In Situ技术,分析基因表达在次生腭形成过程中的空间调控

PLEASANTON, Calif., June 27, 2024 /PRNewswire/ -- 10x Genomics, Inc. (Nasdaq: TXG), a leader in single cell and spatial biology, announced today that its Xenium In Situ platform was used in a study published in the Journal of Dental Research, offering novel insights into cellular mechanisms regulating the formation of the secondary palate. The study was led by researchers at the National Institutes of Health (NIH) in collaboration with computational experts at the University of Connecticut's Schools of Medicine and Dental Medicine.

加州普莱森顿,2024年6月27日 /PRNewswire/ -- 10x Genomics, Inc.(纳斯达克:TXG),单细胞和/或空间生物学领域的领导者,宣布其Xenium In Situ平台被用于一项发表在《牙科研究杂志》的研究中,为细胞机制调控次生腭形成提供了新的见解。该研究由国家卫生研究院(NIH)的研究人员与康涅狄格大学医学和牙科学院的计算专家合作领导。

Annually, clefts of the lip and/or palate occur in ~1 in every 700 live births. Despite its prevalence, there is still a very limited understanding of how the bones forming these foundational facial structures develop and pattern as an embryo develops. In this study, "Spatial Multi-omics Reveals the Role of the Wnt Modulator, Dkk2, in Palatogenesis," the researchers set out to clearly define how the Pax9 protein functions as a transcription factor in the context of Wnt signaling, a crucial pathway known to regulate many elements of embryonic development.

每年有约700个新生儿中有1个会出现唇和/或腭裂。尽管其流行,但我们对于形成面部基础结构的骨骼如何发育和定型的认识仍非常有限。在这项名为“Spatial Multi-omics Reveals the Role of the Wnt Modulator, Dkk2, in Palatogenesis”的研究中,研究人员旨在清晰地定义Pax9蛋白在Wnt信号通路环境中作为转录因子的功能,这是一个被广泛知道可以调控胚胎发育的关键通路。

The study's first author, Jeremie Oliver Piña, PhD, MS, MBA, a Postdoctoral Fellow in Dr. Rena D'Souza's lab (Eunice Kennedy Shriver National Institute of Child Health and Human Development, NIH), said, "The higher spatial resolution of compartment-specific gene enrichment using Xenium allowed us to extend our understanding of these molecules at greater depth and breadth than prior studies could using traditional in situ hybridization approaches. With this more detailed understanding of signaling pathway target genes in the developing palate, we will be able to more effectively pave the way toward innovative diagnostic and therapeutic strategies for cleft palate anomalies.

研究的第一作者Jeremie Oliver Piña博士,是Rena D'Souza博士实验室(Eunice Kennedy Shriver国家儿童健康与人类发展研究所,NIH)的博士后研究员,他表示:“使用Xenium技术进行区域特异性基因富集的更高空间分辨率,让我们在深度和广度上扩展了我们对于分子的理解,这相比使用传统的原位杂交技术最大的区别。有了对于发育腭期信号通路的更加详细的瞭解,我们将能够更有效地为腭裂畸形开创创新的诊断和治疗策略。”尤尼斯·肯尼迪·施莱弗国家儿童健康与人类发展研究所,NIH)

"Xenium In Situ's workflow and analysis pipeline allowed us to optimize the assay conditions for our target tissue, run the whole protocol and analyze all replicates in-house in less than one month. The intuitive design of the bench workflow and post-run analysis software may be the most valuable aspects of this high-throughput in situ technology to accelerate science."

作为初始评估的一部分,研究人员使用Chromium Single Cell Multiome ATAC + Gene Expression(Multiome)方法对野生型和Pax9缺陷小鼠的转录和表观基因组剖析进行了综合评估。与3D显微计算机断层摄影术(micro-CT)显示Pax9缺陷小鼠腭的错位图像分析相结合,作者假设失去Pax9表达会以一种影响正确骨形态的方式破坏Wnt信号动态过程。

As part of their initial assessment, the researchers performed an integrated assessment of the transcriptomic and epigenomic profiles of wild-type and Pax9-deficient mice using the Chromium Single Cell Multiome ATAC + Gene Expression (Multiome) assay. Paired with 3D-micro-computerized tomography (micro-CT) bone imaging analysis showing disrupted patterning of the palate in Pax9-deficient mice, the authors hypothesized that loss of Pax9 expression disrupts Wnt signaling dynamics in a way that influences the process of proper bone formation.

Pax9Chromium Single Cell Multiome ATAC + Gene Expression技术。Paired with 3D-micro-computerized tomography (micro-CT) bone imaging analysis showing disrupted patterning of the palate inPax9-deficient mice,作者推测失去Pax9表达会以一种影响正确骨形态的方式破坏Wnt信号动态过程。Pax9

To further investigate the relationship between Pax9 and Wnt signaling, the researchers created a fully custom gene expression panel to profile 350 genes at single cell spatial resolution with the Xenium In Situ platform. The researchers customized their gene panel to focus on cell-type specific markers, genes involved in signaling interactions and other genes of interest uncovered in the Multiome data.

为了进一步研究Pax9与Wnt信号之间的关系,研究人员创建了一个完全定制的基因表达面板,在单个电芯空间分辨率下对350个基因进行了分析。Xenium In Situ平台。研究人员根据细胞类型特异性标记物、参与信号交互的基因和在Multiome数据中发现的其他感兴趣的基因来定制他们的基因面板。

The Xenium analysis revealed significant spatial gene expression differences between wild-type and Pax9-deficient mice, indicating a role for Pax9 in regulating the differentiation and maturation of a specific subset of progenitor cells. Of particular note, Xenium revealed that disrupting Wnt signals blocks the extension of the palate to the midline in this cleft palate model, a process that could be targeted for discovery of potential in utero and early postnatal treatments to correct cleft palate anomalies.

Xenium分析显示,与Pax9缺陷小鼠相比,野生型小鼠存在显著的空间基因表达差异,表明Pax9在调节一种特定的祖细胞亚群的分化和成熟中发挥作用。Pax9。值得注意的是,Xenium显示,破坏Wnt信号会阻止腭的延伸到中线,在这种裂腭模型中,这一过程可以成为发现潜在的产前和早期新生儿治疗以矫正裂腭异常的治疗靶点。

Ben Hindson, Co-Founder and Chief Scientific Officer, said, "This paper by Piña et. al is a strong demonstration of the power of single cell multiomics coupled with targeted in-situ sequencing. The detailed spatial analysis of cleft palate dynamics also shows how researchers can take advantage of the fully custom gene panel options on Xenium to answer their specific research questions."

Ben Hindson,Co-Founder和首席科学官说:“Piña等人的论文是单细胞多组学与定向原位测序相结合的强有力的证明。对裂腭动态的详细空间分析也展示了研究人员如何利用Xenium上的完全定制基因面板选项来回答他们的具体研究问题。”

To learn more about this study, read the full article.

了解更多关于该研究的信息,请阅读完整文章。关于10x Genomics.

About 10x Genomics

10x Genomics是一家生命科学技术公司,致力于打造能够加速生物学掌握和促进人体健康的产品。我们的综合解决方案包括单细胞和空间生物学的仪器、消耗品和软件,帮助学术和转化研究人员以及生物制药公司以与生物学复杂性相匹配的分辨率和尺度理解生物系统。我们的产品在肿瘤学、免疫学、神经科学等方面取得了突破性进展,推动了深入理解健康和疾病的强大发现。如欲了解更多信息,敬请访问10xgenomics.com。

10x Genomics is a life science technology company building products to accelerate the mastery of biology and advance human health. Our integrated solutions include instruments, consumables and software for single cell and spatial biology, which help academic and translational researchers and biopharmaceutical companies understand biological systems at a resolution and scale that matches the complexity of biology. Our products are behind breakthroughs in oncology, immunology, neuroscience and more, fueling powerful discoveries that are transforming the world's understanding of health and disease. To learn more, visit 10xgenomics.com or connect with us on LinkedIn or X (Twitter).

来源10x Genomics,Inc。10xgenomics.com“或在上述渠道与我们联系” LinkedIn或。X (Twitter).

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