CAR-T(CAR-T)细胞疗法在非肿瘤性疾病中的应用
Chimeric antigen receptor T (CAR-T) cell therapy in non-oncological diseases.
CELL INTELLIGENCE · 肿瘤细胞治疗研究
肿瘤细胞治疗研究
英文原题:Elaborating the potential of Artificial Intelligence in automated CAR-T cell manufacturing.
Elaborating the potential of Artificial Intelligence in automated CAR-T cell manufacturing.
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本文讨论癌症治疗用CAR-T 细胞生产面临的挑战,以及人工智能(AI)改进生产的潜力。CAR-T 细胞疗法于2018年获批,成为首个用于治疗急性白血病和淋巴瘤的先进治疗药品(ATMP)。ATMP是基于细胞和基因的疗法,在治疗多种癌症及遗传性疾病方面前景广阔。已有一些新型ATMP获批,持续进行的临床试验预计还将推动更多疗法获批。
然而,CAR-T 细胞生产面临重大挑战:制造成本高昂,导致治疗费用很高(约40万美元)。此外,自体CAR-T 治疗只能按需定制生产,难以实现经济性规模化制造。目前已开始尝试自动化这一多步骤生产流程,这不仅可直接降低高昂的制造成本,也能实现全面数据收集。AI技术能够分析这些数据并转化为知识和见解。为发挥这些机会,本文分析自动化CAR-T 生产过程中的数据潜力,并将其映射到AI应用能力;同时探讨AI分析自动化过程中产生的数据及进一步提高CAR-T 生产效率和成本效益的可能性。
This paper discusses the challenges of producing CAR-T cells for cancer treatment and the potential for Artificial Intelligence (AI) for its improvement. CAR-T cell therapy was approved in 2018 as the first Advanced Therapy Medicinal Product (ATMP) for treating acute leukemia and lymphoma. ATMPs are cell- and gene-based therapies that show great promise for treating various cancers and hereditary diseases. While some new ATMPs have been approved, ongoing clinical trials are expected to lead to the approval of many more.
However, the production of CAR-T cells presents a significant challenge due to the high costs associated with the manufacturing process, making the therapy very expensive (approx. $400,000).
Furthermore, autologous CAR-T therapy is limited to a make-to-order approach, which makes scaling economical production difficult. First attempts are being made to automate this multi-step manufacturing process, which will not only directly reduce the high manufacturing costs but will also enable comprehensive data collection. AI technologies have the ability to analyze this data and convert it into knowledge and insights.
In order to exploit these opportunities, this paper analyses the data potential in the automated CAR-T production process and creates a mapping to the capabilities of AI applications. The paper explores the possible use of AI in analyzing the data generated during the automated process and its capabilities to further improve the efficiency and cost-effectiveness of CAR-T cell production.
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