细菌
计算生物学
癌症研究
生物
生物信息学
遗传学
作者
Akeem Santos,Zeneng Wang,Rashmi Bharti,Goutam Dey,Naseer Sangwan,William M. Baldwin,Ajay Zalavadia,Alex Myers,Olivia G. Huffman,Justin D. Lathia,Stanley L. Hazen,Ofer Reizes,Mohammed Dwidar
出处
期刊:Science Advances
[American Association for the Advancement of Science]
日期:2025-06-13
卷期号:11 (24): eads1630-eads1630
被引量:1
标识
DOI:10.1126/sciadv.ads1630
摘要
Widespread application of bacterial-based cancer therapy is limited because of the need to increase therapeutic bacteria specificity to the tumor to improve treatment safety and efficacy. Here, we harness the altered tumor metabolism and specifically elevated kynurenine accumulation to target engineered bacteria to the cancer site. We cloned and leveraged kynurenine-responsive transcriptional regulator (KynR) with its cognate promoter in Escherichia coli . Optimizing KynR expression coupled with overexpressing kynurenine transporter and amplifying the response through plasmid copy number–based signal amplification enabled the response to kynurenine at the low micromolar levels. Knocking out genes essential for cell wall synthesis and supplying these genes via kynurenine-controlled circuits allowed tuning Salmonella enterica growth in response to kynurenine. Our kynurenine-controlled S. enterica (hereafter named AD95+) showed superior tumor specificity in breast and ovarian cancer murine models compared to S. enterica VNP20009, one of the best characterized tumor-specific strains. Last, AD95+ showed anticancer properties compared to vehicle controls, demonstrating the potential as an anticancer therapeutic.
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