生命科学研究

生命科学研究

生命科学研究

在生命科学研究中心,您可以掌握最新的关于先进显微镜、成像技术、电镜样品制备和图像分析的前沿应用和创新,涵盖的主题包括细胞生物学、神经科学和癌症研究。希望在这里可以帮助您提升研究能力和精进显微镜在各个科学领域实际应用,并了解徕卡如何通过精确的可视化、图像解读和推进研究进展来赋能您的工作。
These images illustrate the need for multiple z-slices to capture all gH2Ax foci in a given cell and get an accurate count.

Development and Derisking of CRISPR Therapies for Rare Diseases

This on-demand presentation by Dr. Fyodor Urnov and Dr. Sadik Kassim, originally delivered at ASGCT 2025, focused on a critical challenge in genetic medicine: how to scale CRISPR therapies from…

Integrated Serial Sectioning and Cryo-EM Workflows for 3D Biological Imaging

This on-demand webinar explores how integrated tools can support electron microscopy workflows from sample preparation to image analysis. Experts Andreia Pinto, Adrian Boey, and Hoyin Lai present the…
Cell DIVE multiplexed image of FFPE tissue section from human colon adenocarcinoma tissue.

Multiplexed Imaging Reveals Tumor Immune Landscape in Colon Cancer

Cancer immunotherapy benefits few due to resistance and relapse, and combinatorial therapeutic strategies that target multiple steps of the cancer-immunity cycle may improve outcomes. This study shows…
Cell DIVE multiplexed image of FFPE tissue section from human invasive ductal carcinoma (IDC)

AI-Powered Hi-Plex Spatial Analysis Tools for Breast Cancer Research

Breast cancer (BC) is the leading cause of cancer-related deaths in women. Investigating the tumor microenvironment (TME) is crucial to elucidate the mechanisms of tumor progression. Systematic…
Zebrafish-embryo image captured using a THUNDER Imager Tissue and live instant computational clearing.

Improving Zebrafish-Embryo Screening with Fast, High-Contrast Imaging

Discover from this article how screening of transgenic zebrafish embryos is boosted with high-speed, high-contrast imaging using the DM6 B microscope, ensuring accurate targeting for developmental…
Digital microscopy simplifies documenting cell-culture results electronically while following 21 CFR part 11 guidelines for biopharma.

细胞培养电子记录的 21 CFR 第 11 部分简介

本文介绍了 FDA 21 CFR 第 11 部分的建议,特别关注细胞培养实验室中的审计追踪和用户管理。本文旨在为负责确保电子记录和电子签名符合 21 CFR 第 11 部分的生物技术和制药行业专业人士提供指导。数字式显微镜方法,例如 Mateo FL,相较于纸质方法,提供了更一致和高效的细胞培养结果电子文档记录的优势。
Automated Laser Microdissection for Proteome Analysis

深度视觉蛋白质组学提供精确的空间蛋白质组信息

尽管可使用基于成像和质谱的方法进行空间蛋白质组学研究,但是图像与单细胞分辨率蛋白丰度测量值的关联仍然是个巨大的挑战。最近引入的一种方法,深层视觉蛋白质组学(DVP),将细胞表型的人工智能图像分析与自动化的单细胞或单核激光显微切割及超高灵敏度的质谱分析结合在了一起。DVP在保留空间背景的同时,将蛋白丰度与复杂的细胞或亚细胞表型关联在一起。
GLP-1 and PYY localized to distinct secretory pools in L-cells.

前沿成像技术用于 GPCR 信号传导

通过这个按需网络研讨会,提升您的药理研究,了解 GPCR 信号传导,并探索旨在理解 GPCR 信号如何转化为细胞和生理反应的尖端成像技术。发现领先的研究,扩展我们对这些关键通路的认识,以寻找新的药物发现途径。
Stripe assay performed on a THUNDER Imager Cell. Courtesy of Maria Carrasquero Ordaz, University of Oxford.

揭示神经元迁移的分子奥秘

研究发育中大脑神经元向生态位迁移可采用多种方法。在本场研讨会中,牛津大学的专家们将展示他们用于阐明神经发育期间神经元向皮层功能层迁移的分子机制的显微技术与实验方法。理解这些过程将有助于更深入地认识健康大脑的发育机制,并可能为神经发育障碍提供更优治疗方案。
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