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使用合成的 Notch 激活 MRI 可视化细胞间通讯。

Visualizing cell-cell communication using synthetic notch activated MRI.

机构信息

Department of Medical Biophysics, Schulich School of Medicine & Dentistry, Western University, London, ON N6A 3K7, Canada.

Imaging Laboratories, Robarts Research Institute, London, ON N6A 5B7, Canada.

出版信息

Proc Natl Acad Sci U S A. 2023 Mar 14;120(11):e2216901120. doi: 10.1073/pnas.2216901120. Epub 2023 Mar 9.

Abstract

Cell-cell communication plays a fundamental role in multicellular organisms. Cell-based cancer immunotherapies rely on the ability of innate or engineered receptors on immune cells to engage specific antigens on cancer cells to induce tumor kill. To improve the development and translation of these therapies, imaging tools capable of noninvasively and spatiotemporally visualizing immune-cancer cell interactions would be highly valuable. Using the synthetic Notch (SynNotch) system, we engineered T cells that upon interaction with a chosen antigen (CD19) on neighboring cancer cells induce the expression of optical reporter genes and the human-derived, magnetic resonance imaging (MRI) reporter gene organic anion transporting polypeptide 1B3 (OATP1B3). Administration of engineered T cells induced the antigen-dependent expression of all our reporter genes in mice bearing CD19-positive tumors but not CD19-negative tumors. Notably, due to the high spatial resolution and tomographic nature of MRI, contrast-enhanced foci within CD19-positive tumors representing OATP1B3-expressing T cells were clearly visible and their distribution was readily mapped. We then extended this technology onto human natural killer-92 (NK-92) cells, observing similar CD19-dependent reporter activity in tumor-bearing mice. Furthermore, we show that when delivered intravenously, engineered NK-92 cells can be detected via bioluminescence imaging in a systemic cancer model. With continued work, this highly modular imaging strategy could aid in the monitoring of cell therapies in patients and, beyond this, augment our understanding of how different cell populations interact within the body during normal physiology or disease.

摘要

细胞间通讯在多细胞生物中起着至关重要的作用。基于细胞的癌症免疫疗法依赖于免疫细胞上固有或工程化受体与癌细胞上特定抗原的结合能力,以诱导肿瘤杀伤。为了促进这些疗法的开发和转化,能够非侵入性、时空可视化免疫-癌细胞相互作用的成像工具将具有极高的价值。我们利用合成 Notch(SynNotch)系统,设计了 T 细胞,当与邻近癌细胞上选择的抗原(CD19)相互作用时,诱导光学报告基因和人源性磁共振成像(MRI)报告基因有机阴离子转运多肽 1B3(OATP1B3)的表达。在携带 CD19 阳性肿瘤但不携带 CD19 阴性肿瘤的小鼠中,给予工程化 T 细胞会诱导所有报告基因的抗原依赖性表达。值得注意的是,由于 MRI 的空间分辨率高且具有断层扫描性质,因此在 CD19 阳性肿瘤内的增强焦点代表表达 OATP1B3 的 T 细胞清晰可见,并且可以轻松绘制其分布。然后,我们将这项技术扩展到人类自然杀伤细胞-92(NK-92)细胞,在荷瘤小鼠中观察到类似的 CD19 依赖性报告活性。此外,我们表明,当静脉内给药时,工程化的 NK-92 细胞可以在系统性癌症模型中通过生物发光成像进行检测。随着进一步的研究,这种高度模块化的成像策略可以帮助监测患者的细胞疗法,并且超越这一点,可以增强我们对不同细胞群体在正常生理或疾病过程中如何在体内相互作用的理解。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/d0ee/10089199/b2485250b33b/pnas.2216901120fig01.jpg

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