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  • Multiple Alternative Promoters and Alternative Splicing Enable Universal Transcription-Based Logic Computation in Mammalian Cells.

Multiple Alternative Promoters and Alternative Splicing Enable Universal Transcription-Based Logic Computation in Mammalian Cells.

Cell reports (2020-12-03)
Jiten Doshi, Katie Willis, Angela Madurga, Christoph Stelzer, Yaakov Benenson
摘要

Multi-input logic gene circuits can enable sophisticated control of cell function, yet large-scale synthetic circuitry in mammalian cells has relied on post-transcriptional regulation or recombinase-triggered state transitions. Large-scale transcriptional logic, on the other hand, has been challenging to implement. Inspired by a naturally found regulatory strategy of using multiple alternative promoters, followed by alternative splicing, we developed a scalable and compact platform for transcriptional OR logic using inputs to those promoters. The platform is extended to implement disjunctive normal form (DNF) computations capable of implementing arbitrary logic rules. Specifically, AND logic is implemented at individual promoters using synergistic transcriptional inputs, and NOT logic via microRNA inputs targeting unique exon sequences driven by those promoters. Together, these regulatory programs result in DNF-like logic control of output gene expression. The approach offers flexibility for building complex logic programs in mammalian cells.

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氯化钠, Molecular Biology, DNase, RNase, and protease, none detected, ≥99% (titration)
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IGEPAL® CA-630, Molecular Biology
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氨苄西林 钠盐
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氯喹 二磷酸盐, powder or crystals, 98.5-101.0% (EP)
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GenElute质粒小量制备试剂盒, sufficient for 350 purifications
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内消旋 -四苯基卟啉, BioReagent, suitable for fluorescence, ≥99.0% (HPLC)