Harnessing the power of artificial intelligence to advance cell therapy

被引:13
|
作者
Capponi, Sara [1 ,2 ]
Daniels, Kyle G. [3 ,4 ,5 ]
机构
[1] IBM Almaden Res Ctr, Dept Funct Genom & Cellular Engn, San Jose, CA USA
[2] Ctr Cellular Construct, San Francisco, CA USA
[3] Univ Calif San Francisco, Dept Cellular & Mol Pharmacol, San Francisco, CA USA
[4] Stanford Univ, Sch Med, Dept Genet, Stanford, CA USA
[5] Stanford Univ, Sch Med, Dept Genet, Stanford, CA 94304 USA
关键词
cell signaling; cell therapy; machine learning; signaling motifs; synthetic biology; CAR-T-CELLS; PROTEIN-STRUCTURE PREDICTION; CHIMERIC RECEPTORS; DESIGN; GENE; PRINCIPLES; LIBRARIES; ACTIVATION; AFFINITY; COMPLEX;
D O I
10.1111/imr.13236
中图分类号
R392 [医学免疫学]; Q939.91 [免疫学];
学科分类号
100102 ;
摘要
Cell therapies are powerful technologies in which human cells are reprogrammed for therapeutic applications such as killing cancer cells or replacing defective cells. The technologies underlying cell therapies are increasing in effectiveness and complexity, making rational engineering of cell therapies more difficult. Creating the next generation of cell therapies will require improved experimental approaches and predictive models. Artificial intelligence (AI) and machine learning (ML) methods have revolutionized several fields in biology including genome annotation, protein structure prediction, and enzyme design. In this review, we discuss the potential of combining experimental library screens and AI to build predictive models for the development of modular cell therapy technologies. Advances in DNA synthesis and high-throughput screening techniques enable the construction and screening of libraries of modular cell therapy constructs. AI and ML models trained on this screening data can accelerate the development of cell therapies by generating predictive models, design rules, and improved designs.
引用
收藏
页码:147 / 165
页数:19
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