Biomek i-Series系列自动化工作站学习中心
Biomek i-Series系列工作站采用先进的自动化技术,可提供无与伦比的效率和多功能性,使其成为下一代测序(NGS)、合成生物学、基因组学研究、蛋白质组学、药物研发、样品管理和功能筛选等实验室工作流的首选解决方案。
自 1980 年代中期首次问世以来,Biomek工作站一直代表着卓越的品质,并被 11,000 多份同行评审刊物引用,充分印证其无与伦比的性能和可靠性。
通过验证方法最大限度提高工作流效率和便利性









简化您的工作流程,特别是对NGS二代测序,同时支持保留当前实验方案并利用您首选的试剂和试剂盒。
我们不断扩充的NGS样本制备库使您能够快速采用自动化,而无需编写和优化新方法。
目前,我们的 NGS 样品制备方法库已囊括Illumina、Roche、10x Genomics、Qiagen、Cytiva、Integrated DNA Technologies(IDT)、Agilent等业内首选供应商的试剂盒。
轻松实现自动化工作流,无需复杂编程
- 据近期的一项调查显示,73% 的Biomek i-Series系列工作站用户表示,他们无需寻求IT 部门帮助,即可从 Biomek 中获取所需报告。简便直观的图形用户界面使用户无需学习自动化语言即可轻松获取出色的结果。
- Biomek Method Launcher 软件是一款功能强大的工具,用户仅需轻点鼠标即可轻松选择、设置、运行和跟踪方法。DeckOptix Final Check远程监控系统,助您准确分析台面常见设置错误,并在每次运行前主动提醒您,避免试剂、耗材摆放失误造成的损失。
- DART 数据采集和报告工具)软件安装包 从 Biomek 日志文件中收集数据并综合运行时的信息,以捕获方法运行过程中对样品的每次处理情况。
- 作为一种灵活的一体化解决方案, SAMI EX时序优化软件 旨在支持各种生命科学应用。这款多功能软件可利用经优化、可预测的静态计划来创建计划性实验安排。
- SAMI 过程管理软件是一款日程组织工具,支持用户自定义程序流程,用户可自行添加、监测和安排 SAMI EX 软件中的软件方法和其他事件。
- Biomek PowerPack software 可使数据驱动运行的方法编程变得更简化。PowerPack 软件的多种小工具协同工作,使 Biomek 软件平台具备更高的灵活性及更强大的功能。
适用于可扩展工作流的自动化移液系统
Biomek i系列是一款多功能、灵活的且模块化的自动化解决方案,可与众多设备无缝集成。

优势
- 优化工作流,提高样品通量
- 提高数据一致性和管理能力
- 确保样品可追溯性
- 助力科学家专注于科学研究
- • 高效利用实验室空间

设备和工作流的集成
- 可整合来自 60 多家厂商的 300 多种设备,适用于各种实验室环境的多样化工作流
- 通过定制软件工具增强用户体验并简化数据连接操作

跨职能提供全方位支持
我们的机械、系统和软件工程师、项目经理、服务工程师、应用和软件专家、客户经理以及经验丰富的自动化专家团队与您密切合作,为您提供贴心周到的服务与支持。
集众之所长的自动化工作流
贝克曼库尔特生命科学是丹纳赫集团旗下众多生命科学公司之一。我们的姊妹生命科学公司包括Aldevron、Cytiva、IDBS、Integrated DNA Technologies、Leica Microsystems、Molecular Devices、SCIEX和Phenomenex。我们集众之所长的专业知识可实现实验室工作流创新、日常任务自动化以及复杂的方法和软件解决方案,助您加速推进研究进程。
下载应用说明、海报和案例研究,了解我们的专业知识如何助力研究人员实现自动化工作流。
Citations
- Malinowska JM et al. Automated Sample Preparation and Data Collection Workflow for High-Throughput In Vitro Metabolomics. Metabolites. 2022 Jan 8;12(1):52. doi: 10.3390/metabo12010052. PMID: 35050173
- Pumford AD et al. Automation of On-Resin Enrichment of S-Nitrosylated Proteins for Oxidized Cysteine-Selective cPILOT. Vanderbilt Undergrad Res J. 2021 Apr 30;11:43-51. doi: 10.15695/vurj.v11i1.5096. PMID: 35615079
- Sobreira TJP et al. High-throughput screening of organic reactions in microdroplets using desorption electrospray ionization mass spectrometry (DESI-MS): hardware and software implementation. Anal Methods. 2020 Jul 28;12(28):3654-3669. doi: 10.1039/d0ay00072h. Epub 2020 Jul 6. PMID: 32701099
- Bach A et al. Optimization of Automated Sample Preparation for Vitamin D Determination on a Biomek i7 Workstation. SLAS Technol. 2021 Dec;26(6):615-629. doi: 10.1177/24726303211030291. Epub 2021 Jul 20. PMID: 34282678
- Chen Y et al. Modular automated bottom-up proteomic sample preparation for high-throughput applications. PLoS One. 2022 Feb 25;17(2):e0264467. doi: 10.1371/journal.pone.0264467. PMID: 35213656
- Kapp KL et al. Proteomic changes associated with racial background and sepsis survival outcomes. Mol Omics. 2022 Dec 5;18(10):923-937. doi: 10.1039/d2mo00171c. PMID: 36097965
- Namatame I et al. Screening Station, a novel laboratory automation system for physiologically relevant cell-based assays. SLAS Technol. 2023 Apr 28:S2472-6303(23)00028-6. doi: 10.1016/j.slast.2023.04.002. Epub ahead of print. PMID: 37121549
- Wen Y et al. Comparability study of monocyte derived dendritic cells, primary monocytes, and THP1 cells for innate immune responses. J Immunol Methods. 2021 Nov;498:113147. doi: 10.1016/j.jim.2021.113147. Epub 2021 Sep 9. PMID: 34508774
- Santacruz D et al. Automation of high-throughput mRNA-seq library preparation: a robust, hands-free and time efficient methodology. SLAS Discov. 2022 Mar;27(2):140-147. doi: 10.1016/j.slasd.2022.01.002. Epub 2022 Jan 16. PMID: 35093290
- Kind D et al. Automation enables high-throughput and reproducible single-cell transcriptomics library preparation. SLAS Technol. 2022 Apr;27(2):135-142. doi: 10.1016/j.slast.2021.10.018. Epub 2021 Nov 26. PMID: 35058211
- Arrigoni L et al. AutoRELACS: automated generation and analysis of ultra-parallel ChIP-seq. Sci Rep. 2020 Jul 24;10(1):12400. doi: 10.1038/s41598-020-69443-8. PMID: 32709929
- Roepman P et al. Clinical Validation of Whole Genome Sequencing for Cancer Diagnostics. J Mol Diagn. 2021 Jul;23(7):816-833. doi: 10.1016/j.jmoldx.2021.04.011. Epub 2021 May 6. PMID: 33964451
- Cohen M et al. A fully automated high-throughput plasmid purification workstation for the generation of mammalian cell expression-quality DNA. SLAS Technol. 2022 Aug;27(4):227-236. doi: 10.1016/j.slast.2022.01.005. Epub 2022 Feb 6. PMID: 35139394
- Sharifnia T et al. Mapping the landscape of genetic dependencies in chordoma. Nat Commun. 2023 Apr 6;14(1):1933. doi: 10.1038/s41467-023-37593-8. PMID: 37024492
- Malinowska JM et al. Automated Sample Preparation and Data Collection Workflow for High-Throughput In Vitro Metabolomics. Metabolites. 2022 Jan 8;12(1):52. doi: 10.3390/metabo12010052. PMID: 35050173
- Pumford AD et al. Automation of On-Resin Enrichment of S-Nitrosylated Proteins for Oxidized Cysteine-Selective cPILOT. Vanderbilt Undergrad Res J. 2021 Apr 30;11:43-51. doi: 10.15695/vurj.v11i1.5096. PMID: 35615079
- Sobreira TJP et al. High-throughput screening of organic reactions in microdroplets using desorption electrospray ionization mass spectrometry (DESI-MS): hardware and software implementation. Anal Methods. 2020 Jul 28;12(28):3654-3669. doi: 10.1039/d0ay00072h. Epub 2020 Jul 6. PMID: 32701099
- Bach A et al. Optimization of Automated Sample Preparation for Vitamin D Determination on a Biomek i7 Workstation. SLAS Technol. 2021 Dec;26(6):615-629. doi: 10.1177/24726303211030291. Epub 2021 Jul 20. PMID: 34282678
- Chen Y et al. Modular automated bottom-up proteomic sample preparation for high-throughput applications. PLoS One. 2022 Feb 25;17(2):e0264467. doi: 10.1371/journal.pone.0264467. PMID: 35213656
- Kapp KL et al. Proteomic changes associated with racial background and sepsis survival outcomes. Mol Omics. 2022 Dec 5;18(10):923-937. doi: 10.1039/d2mo00171c. PMID: 36097965
- Namatame I et al. Screening Station, a novel laboratory automation system for physiologically relevant cell-based assays. SLAS Technol. 2023 Apr 28:S2472-6303(23)00028-6. doi: 10.1016/j.slast.2023.04.002. Epub ahead of print. PMID: 37121549
- Wen Y et al. Comparability study of monocyte derived dendritic cells, primary monocytes, and THP1 cells for innate immune responses. J Immunol Methods. 2021 Nov;498:113147. doi: 10.1016/j.jim.2021.113147. Epub 2021 Sep 9. PMID: 34508774
- Santacruz D et al. Automation of high-throughput mRNA-seq library preparation: a robust, hands-free and time efficient methodology. SLAS Discov. 2022 Mar;27(2):140-147. doi: 10.1016/j.slasd.2022.01.002. Epub 2022 Jan 16. PMID: 35093290
- Kind D et al. Automation enables high-throughput and reproducible single-cell transcriptomics library preparation. SLAS Technol. 2022 Apr;27(2):135-142. doi: 10.1016/j.slast.2021.10.018. Epub 2021 Nov 26. PMID: 35058211
- Arrigoni L et al. AutoRELACS: automated generation and analysis of ultra-parallel ChIP-seq. Sci Rep. 2020 Jul 24;10(1):12400. doi: 10.1038/s41598-020-69443-8. PMID: 32709929
- Roepman P et al. Clinical Validation of Whole Genome Sequencing for Cancer Diagnostics. J Mol Diagn. 2021 Jul;23(7):816-833. doi: 10.1016/j.jmoldx.2021.04.011. Epub 2021 May 6. PMID: 33964451
- Cohen M et al. A fully automated high-throughput plasmid purification workstation for the generation of mammalian cell expression-quality DNA. SLAS Technol. 2022 Aug;27(4):227-236. doi: 10.1016/j.slast.2022.01.005. Epub 2022 Feb 6. PMID: 35139394
- Sharifnia T et al. Mapping the landscape of genetic dependencies in chordoma. Nat Commun. 2023 Apr 6;14(1):1933. doi: 10.1038/s41467-023-37593-8. PMID: 37024492
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