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当社では、科学的発見と革新の推進を支援しています。日々の業務において当社の製品を使用されている研究者の方々に、研究についてや当社製品についてお話を伺いました。| Title | Description |
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| {D62418F5-2B8B-4155-AC0E-3ABFBF3E7911}|{AF9E1A10-BC29-46AA-A2A1-05BB530B6198} | |
| {D62418F5-2B8B-4155-AC0E-3ABFBF3E7911}|{AF9E1A10-BC29-46AA-A2A1-05BB530B6198} | |
| {D62418F5-2B8B-4155-AC0E-3ABFBF3E7911}|{AF9E1A10-BC29-46AA-A2A1-05BB530B6198} | |
| {D62418F5-2B8B-4155-AC0E-3ABFBF3E7911}|{AF9E1A10-BC29-46AA-A2A1-05BB530B6198} | |
| {D62418F5-2B8B-4155-AC0E-3ABFBF3E7911}|{AF9E1A10-BC29-46AA-A2A1-05BB530B6198} | |
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| {AF9E1A10-BC29-46AA-A2A1-05BB530B6198} | |
| {AF9E1A10-BC29-46AA-A2A1-05BB530B6198} | |
| {AF9E1A10-BC29-46AA-A2A1-05BB530B6198} | |
| {AF9E1A10-BC29-46AA-A2A1-05BB530B6198} | |
| {AF9E1A10-BC29-46AA-A2A1-05BB530B6198} | |
| {AF9E1A10-BC29-46AA-A2A1-05BB530B6198} | |
| {AF9E1A10-BC29-46AA-A2A1-05BB530B6198} | |
| {AF9E1A10-BC29-46AA-A2A1-05BB530B6198} | |
| {AF9E1A10-BC29-46AA-A2A1-05BB530B6198} | |
| {AF9E1A10-BC29-46AA-A2A1-05BB530B6198} | |
| {AF9E1A10-BC29-46AA-A2A1-05BB530B6198} | |
| {AF9E1A10-BC29-46AA-A2A1-05BB530B6198} | |
| {AF9E1A10-BC29-46AA-A2A1-05BB530B6198} | |
| {AF9E1A10-BC29-46AA-A2A1-05BB530B6198} | |
| {AF9E1A10-BC29-46AA-A2A1-05BB530B6198} | |
| {AF9E1A10-BC29-46AA-A2A1-05BB530B6198} | |
| {AF9E1A10-BC29-46AA-A2A1-05BB530B6198} |
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- 17-Marker, 18-Color Human Blood Phenotyping Made Easy with Flow Cytometry
- 21 CFR Part 11 Data Integrity for On-line WFI Instruments
- 8011+ Reporting Standards Feature and Synopsis
- Achieving Compliant Batch Release – Sterile Parenteral Quality Control
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- Analyzing Mussel/Mollusk Propagation using the Multisizer 4e Coulter Counter
- Automated 3D Cell Culture and Screening by Imaging and Flow Cytometry
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- Automated Cord Blood Cell Viability and Concentration Measurements Using the Vi‑CELL XR
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- Automated salt-assisted liquid-liquid extraction
- Automated Sample Preparation for the Monitoring of Pharmaceutical and Illicit Drugs by LC-MS/MS
- Automated Transfection Methods
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- Automating a Linear Density Gradient for Purification of a Protein:Ligand Complex
- Automating Biopharma Quality Control to Reduce Costs and Improve Data Integrity
- Automating Bradford Assays
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- Automating the Cell Line Development Workflow
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- The New Avanti J-15 Centrifuge Time Saving Deceleration Profile Improves Workflow Efficiency
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- Cell Counting Performance of Vi–Cell BLU Cell Viability Analyzer
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- Consistent Cell Maintenance and Plating through Automation
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- Counting Efficiency: MET ONE Air Particle Counters and Compliance to ISO-21501
- Critical Particle Size Distribution for Cement using Laser Diffraction
- CytoFLEX
- Detecting Moisture in Hydraulic Fluid, Oil and Fuels
- Determination of Size and Concentration of Particles in Oils
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- Efficient Factorial Optimization of Transfection Conditions
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- How to Use Violet Laser Side Scatter Detect Nanoparticle
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- ICH Q2 – The Challenge of Measuring Total Organic Carbon in Modern Pharmaceutical Water Systems
- Importance of TOC measurement in WFI in light of European Pharmacopoeia change
- Temperature dependence of hydrodynamic radius of an intrinsically disordered protein measured in the Optima AUC analytical ultracentrifuge.
- Isolation of cell-free DNA (cfDNA) from plasma using Apostle MiniMax™ High Efficiency cfDNA Isolation kit— comparison of fully automated, semi-automated and manual workflow processing
- Issues with Testing Jet Fuels for Contamination
- Leveraging the Vi-CELL MetaFLEX for Monitoring Cell Metabolic Activity
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- 光学式パーティクルカウンターにおける「Long Life Lasers(長寿命レーザー)」の検証
- LS 13 320 XR: Sample Preparation - How to measure success
- Particle Size Analysis Simple, Effective and Precise
- Matching Cell Counts between Vi–CELL XR and Vi–CELL BLU
- MET ONE センサーの過酸化水素ガス(VHP)耐性
- 超遠心分離法による 金属コロイド精製と濃縮
- 密度勾配遠心法による 金ナノロッドの分離精製
- Method for Determining Cell Type Parameter Adjustment to Match Legacy Vi CELL XR
- Minimal Sample to Sample Carry Over with the HIAC 8011+
- ミネラルウォーター製造工程のばらつき最小化
- Modern Trends in Non‐Viable Particle Monitoring during Aseptic Processing
- Multi-Wavelength Analytical Ultracentrifugation of Human Serum Albumin complexed with Porphyrin
- ナノ粒子複合材の粒子径測定 - 密度勾配超遠心法と動的光散乱法を用いて -
- What to do now that ACFTD is discontinued
- Optimizing the HIAC 8011+ Particle Counter for Analyzing Viscous Fluids
- Optimizing the Multisizer 4e Coutler Counter for use with Small Apertures
- Optimizing Workflow Efficiency of Cleanroom Routine Environmental Monitoring
- Particle Counting in Mining Applications
- パーティクルカウンター資料集 高圧ガス配管内の清浄度測定- MET ONE 3400ガス校正オプションで ISO 14644の計測を簡単に -
- 無菌医薬品製造区域の環境モニタリング
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- Principles of Continuous Flow Centrifugation
- Protein purification workflow
- Background Subtraction
- Calibrating the QbD1200 TOC Analyzer
- Detection Limit
- Inorganic Carbon Removal
- JP SDBS Validation
- Method Overview
- Overload Recovery
- QbD1200 Preparing Reagent Solution
- USP System Suitability
- Quality Control Electronic Records for 21 CFR part 11 Compliance
- Using the Coulter Principle to Quantify Particles in an Electrolytic Solution for Copper Acid Plating
- RCC A standardized automated approach for exosome isolation and characterization
- RCC Avanti J 15 Series Maximizing Sample Protection and Sample Recovery
- RCC Avanti J 15 Series Time Savings and Workflow Efficiency
- Root Cause Investigations for Pharmaceutical Water Systems
- Scalable Plasmid Purification using CosMCPrep
- Specification Comparison of Vi–CELL XR and Vi–CELL BLU
- Specifying Non-Viable Particle Monitoring for Aseptic Processing
- A Standardized, Automated Approach For Exosome Isolation And Characterization Using Beckman Coulter Instrumentation
- Switching from Oil Testing to Water and back using the HIAC 8011+ and HIAC PODS+
- Advanced analysis of human T cell subsets on the CytoFLEX flow cytometer using a 13 color tube-based DURAClone dry reagent
- Using k-Factor to Compare Rotor Efficiency
- 新規格 USP HIAC System 9703+における 少容量サンプルテストへの適用
- Validation of On-line Total Organic Carbon Analysers for Release Testing Using ICH Q2
- Vaporized Hydrogen Peroxide Decontamination of Vi–CELL BLU Instrument
- Vi CELL BLU FAST Mode Option
- Vi-CELL BLU Regulatory Compliance - 21 CFR Part 11
- A workflow for medium-throughput isolation of cfDNA from plasma samples using Apostle MiniMax™ on the KingFisher™ Technology
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- Applications of Ultracentrifugation in Purification and Characterization of Biomolecules
- Automating Genomic DNA Extraction from Whole Blood and Serum with GenFind V3 on the Biomek i7 Hybrid Genomic Workstation
- ABRF 2019: Automated Genomic DNA Extraction from Large Volume Whole Blood
- AACR 2019: Isolation and Separation of DNA and RNA from a Single Tissue or Cell Culture Sample
- AACR 2019: Correlation between Mutations Found in FFPE Tumor Tissue and Paired cfDNA Samples
- AGBT 2019: A Scalable and Automatable Method for the Extraction of cfDNA
- ABRF 2019: Simultaneous DNA and RNA Extraction from Formalin-Fixed Paraffin Embedded (FFPE) Tissue
- AMP 2019: Correlation Between Mutations Found in FFPE Tumor Tissue and Paired cfDNA Samples
- Automated library preparation for the MCI Advantage Cancer Panel at Miami Cancer Institute utilizing the Beckman Coulter Biomek i5 Span-8 NGS Workstation
- Automating Cell Line Development for Biologics
- Cellular Challenges: Taking an Aim at Cancer
- Cell-Line Engineering
- Characterizing the Light-Scatter Sensitivity of the CytoFLEX Flow Cytometer
- ASHG 2019: Comparison between Mutation Profiles of Paired Whole Blood and cfDNA Samples
- ASHG 2019: Correlation Between Mutations Found in FFPE Tumor Tissue and Paired cfDNA Samples
- Mastering Cell Counting
- Preparing a CytoFLEX for Nanoscale Flow Cytometry
- A Prototype CytoFLEX for High-Sensitivity, Multiparametric Nanoparticle Analysis
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ホワイトペーパー
- Centrifugation is a complete workflow solution for protein purification and protein aggregation quantification
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