Vi-CELL MetaFLEX

 細胞培地環境分析

研究開発、品質管理、工程管理における
培地分析をよりスピーディーに

Vi-CELL MetaFLEXは、素早く、簡単に培地の状態を分析できるように設計された培地分析装置です。pH、グルコース、乳酸、pCO2(二酸化炭素分圧)、pO2(酸素分圧)などの液中ガス濃度、およびカリウム、ナトリウム、カルシウム、Cl- などの電解質濃度などを自動測定することが出来ます。⼩スケールのみならず、⼤規模な細胞培養の⼯程管理にも安⼼してご使⽤いただけます。

  • 高速測定  わずか35秒で測定結果が得られるため、多検体処理をストレスなく行えます
  • 少量サンプルで測定  65 μLで全パラメータの測定ができるため、スクリーニングに最適です。
  • コンパクトサイズ  A4サイズのフットプリント設計により、設置場所を選びません。
  • 安定稼働  一日23時間稼働できるため、測定したい時にすぐに測定できます。

アプリケーション情報:

  細胞代謝活性モニタリングにおける Vi-CELL MetaFLEXの有用性
  Vi-CELL MetaFLEXによる細胞培養モニタリング

Vi-CELL metaFLEX 製品カタログ

カタログダウンロード

製品モデル

特長

操作

  • わずか35秒で測定結果を取得可能*
  • 少量のサンプル(65 µL)で全パラメータを測定*
  • 1時間で44サンプルを処理*
  • 1サンプルのサイクル時間は1分*
  • 1日の稼働時間は平均23.5時間**

*稼動開始時は異なる可能性があります。 
**稼動開始時は異なる可能性があります。また、長時間稼働している場合、キャリブレーション(2分30秒)を行う場合があります。

品質管理

  • 3点校正のQC試薬
  • 試薬漏れや消費期限などを全自動で検出
  • 連続して使用でき、測定結果のチェックが可能
  • QC不適合の測定項目を自動的にロックアウト
  • QCスケジュールの任意設定が可能

21 CFR Part 11準拠

  • サンプル測定結果:2,000件
  • アクティビティログ:5,000件
  • キャリブレーションアジャストログ:1,000件
  • パスワードプロテクション機能
  • 電子署名機能
  • 8段階のユーザー権限
  • 管理設定ツール

 

アプリケーション

  • 研究開発における細胞培養分析および代謝分析
  • 培地分析をとおした代謝モニタリングによる細胞の品質管理
  • 製造時における培養槽の細胞培養管理

Vi-CELL MetaFLEXは、ミクロから大規模な細胞培養アプリケーションに最適です。迅速で正確培地分析ができるように設計されています。

See the Vi-CELL MetaFLEX Bioanalyte Analyzer in action

 

Frequently Asked Questions

At the core of biotechnological manufacturing lies the cultivation of living cells or microorganisms under tightly controlled and reproducible conditions to safeguard cell health, metabolic balance and long-term productivity.

Within a bioprocess, the biological system formed by these cells operates in continuous interaction with its physical and chemical environment, and its metabolic state, activity and productivity are highly sensitive to even subtle environmental perturbations. Nutrients consumed by the cells and metabolites produced during cultivation serve as essential indicators of cellular physiology, providing direct insight into:

  • Cell viability
  • Stress responses
  • Metabolic flux
  • Product formation

Metabolites reflect the physiological state of cultures in real time (or near real time) and their analysis provides important data on:

  • Cell health and viability: Detecting stress and maintaining favorable growth conditions.
  • Metabolic balance: Understanding fluxes to minimize byproduct accumulation.
  • Process consistency: Reducing batch-to-batch variability through informed control.
  • Productivity and quality: Aligning upstream conditions with downstream requirements and critical quality attributes (CQAs).

Across cell culture-based bioprocesses, including microbial and mammalian systems, tight control of key bioanalytes and metabolites is fundamental to maintaining cell health, preserving metabolic balance, ensuring reproducible batch performance, and maximizing yield. Cell growth and productivity are governed by the dynamic consumption of nutrients such as carbon sources, amino acids, vitamins, and trace elements, along with the accumulation of metabolic byproducts including lactate and ammonium, all of which can significantly influence process performance and product quality. Comprehensive metabolite monitoring provides critical insight into intracellular and extracellular environments, enabling informed control strategies during upstream cultivation and media optimization. Beyond cultivation, downstream processing frequently represents a major bottleneck, requiring efficient recovery of target products from complex reaction matrices; here again, detailed bioanalytical monitoring is essential to optimize recovery efficiency, preserve biological activity, and meet stringent regulatory and sustainability requirements. Collectively, analytics across upstream and downstream stages constitute a cornerstone of bioprocess understanding, optimization, quality assurance and consistent manufacturing outcomes [Scheper et al., 1999; Vijayasankaran, 2014].

Regulatory agencies are increasingly setting expectations for real-time monitoring and enhanced process control through the adoption of Process Analytical Technology (PAT) and Quality by Design (QbD) frameworks.

Introduced by the U.S. FDA, PAT promotes real time (or near real time) measurement of critical process parameters and bioanalytes to enable proactive control strategies, moving away from reliance on end product testing. This regulatory shift reflects a broader transition toward manufacturing approaches that emphasize process understanding, transparency and lifecycle management.

As biologic drugs continue to expand in complexity and clinical importance, regulators now expect manufacturers to demonstrate robust control strategies supported by timely, high-quality process data to ensure consistent product safety, efficacy and quality throughout commercial production [FDA, 2004; Rathore & Winkle, 2009].

The complex interplay between cells, environment, and metabolite dynamics ultimately determines batch consistency, yield and product quality, making comprehensive monitoring and control indispensable for steering biochemical reaction networks toward desired outcomes [Scheper et al., 1999].

These considerations are especially critical in the production of biotherapeutics that are used for treating a wide range of medical conditions, including:

  • Cancers
  • Cardiovascular diseases
  • Organ transplant rejection
  • Respiratory diseases
  • Autoimmune diseases
  • Neurological diseases

The steadily increasing number of approved biotherapeutic products reflects both their clinical importance and the pharmaceutical industry’s progress in developing robust, scalable bioproduction processes, particularly for complex modalities such as monoclonal antibodies [Coulet et al., 2022].

A rapid and accurate bioanalyte analyzer designed for applications across R&D, quality control and manufacturing must prioritize fast, precise measurement of critical culture variables using minimal sample volumes. By providing multiparameter readouts from small samples, such systems deliver actionable insights closer to the time of sampling, enabling earlier detection of metabolic shifts and more consistent control of the cell culture environment. This tight integration of rapid measurement with existing workflows: [Michelle et al. 2023]

  • Supports timely decision-making
  • Enhances process robustness
  • Improves alignment with PAT and QbD principles
  • Contributes to more reliable and efficient bioprocess development and manufacturing 

An example of this class of solutions is the Vi-CELL MetaFLEX Analyzer, which illustrates how advances in sensor miniaturization, automation and integrated quality management can be applied to routine bioanalyte monitoring in mammalian and insect cell culture processes [Michelle et al.]. The system includes automated quality checks and continuous performance monitoring, with features such as air detection and configurable QC routines to help ensure reliable measurements and maintain data integrity during routine operation.

技術資料

資料が見つからない場合は、 こちらの検索ページでご確認ください