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cGAS-STING 免疫调节剂的工程设计与递送及其在癌症和自身免疫性疾病免疫治疗中的应用。

Engineering and Delivery of cGAS-STING Immunomodulators for the Immunotherapy of Cancer and Autoimmune Diseases.

机构信息

Department of Pharmaceutical Sciences, College of Pharmacy; Biointerfaces Institute. University of Michigan. Ann Arbor, Michigan 48109, United States.

State Key Laboratory of Oncogenes and Related Genes, Shanghai Cancer Institute, Ren Ji Hospital, School of Medicine, Shanghai Jiao Tong University, Shanghai 200032, China.

出版信息

Acc Chem Res. 2023 Nov 7;56(21):2933-2943. doi: 10.1021/acs.accounts.3c00394. Epub 2023 Oct 6.

Abstract

The cyclic GMP-AMP synthase-stimulator interferon gene (cGAS-STING) pathway is an emerging therapeutic target for the prophylaxis and therapy of a variety of diseases, ranging from cancer, infectious diseases, to autoimmune disorders. As a cytosolic double stranded DNA (dsDNA) sensor, cGAS can bind with relatively long dsDNA, resulting in conformational change and activation of cGAS. Activated cGAS catalyzes the conversion of adenosine triphosphate (ATP) and guanosine triphosphate (GTP) into cGAMP, a cyclic dinucleotide (CDN). CDNs, including 2'3'-cGAMP, stimulate adapter protein STING on the endoplasmic membrane, triggering interferon regulatory factor 3 (IRF3) phosphorylation and nuclear factor kappa B (NF-κB) activation. This results in antitumor and antiviral type I interferon (IFN-I) responses. Moreover, cGAS-STING overactivation and the resulting IFN-I responses have been associated with a number of inflammatory and autoimmune diseases. This makes cGAS-STING appealing immunomodulatory targets for the prophylaxis and therapy of various related diseases. However, drug development of CDNs and CDN derivatives is challenged by their limited biostability, difficult formulation, poor pharmacokinetics, and inefficient tissue accumulation and cytosolic delivery. Though recent synthetic small molecular CDN- or non-CDN-based STING agonists have been reported with promising preclinical therapeutic efficacy, their therapeutic efficacy and safety remain to be fully evaluated preclinically and clinically. Therefore, it is highly desirable and clinically significant to advance drug development for cGAS-STING activation by innovative approaches, such as drug delivery systems and drug development for pharmacological immunomodulation of cGAS. In this Account, we summarize our recent research in the engineering and delivery of immunostimulatory or immunoregulatory modulators for cGAS and STING for the immunotherapy of cancer and autoimmune diseases. To improve the delivery efficiency of CDNs, we developed ionizable and pH-responsive polymeric nanocarriers to load STING agonists, aiming to improve the cellular uptake and facilitate the endosomal escape to induce efficient STING activation. We also codelivered STING agonists with complementary immunostimulatants in nanoparticle-in-hydrogel composites to synergetically elicit potent innate and adaptive antitumor responses that eradicate local and distant large tumors. Further, taking advantage of the simplicity of manufacturing and the established nucleic acid delivery system, we developed oligonucleotide-based cGAS agonists as immunostimulant immunotherapeutics as well as adjuvants for peptide antigens for cancer immunotherapy. To suppress the overly strong proinflammatory responses associated with cGAS-STING overactivation in some of the autoimmune disorders, we devised nanomedicine-in-hydrogel (NiH) that codelivers a cGAS inhibitor and cell-free DNA (cfDNA)-scavenging cationic nanoparticles (cNPs) for systemic immunosuppression in rheumatoid arthritis (RA) therapy. Lastly, we discussed current drug development by targeting cGAS-STING for cancer, infectious diseases, and autoimmune diseases, as well as the potential opportunities for utilizing cGAS-STING pathway for versatile applications in disease treatment.

摘要

环鸟苷酸-腺苷酸合酶-干扰素基因 (cGAS-STING) 途径是预防和治疗多种疾病的新兴治疗靶点,包括癌症、传染病和自身免疫性疾病。作为一种胞质双链 DNA (dsDNA) 传感器,cGAS 可以与相对较长的 dsDNA 结合,导致构象改变和 cGAS 的激活。激活的 cGAS 催化三磷酸腺苷 (ATP) 和三磷酸鸟苷 (GTP) 转化为环二核苷酸 (CDN),如 2'3'-cGAMP。CDNs,包括 2'3'-cGAMP,可刺激内质网膜上的衔接蛋白 STING,触发干扰素调节因子 3 (IRF3) 磷酸化和核因子 kappa B (NF-κB) 激活。这导致抗肿瘤和抗病毒 I 型干扰素 (IFN-I) 反应。此外,cGAS-STING 的过度激活和由此产生的 IFN-I 反应与许多炎症和自身免疫性疾病有关。这使得 cGAS-STING 成为预防和治疗各种相关疾病的有吸引力的免疫调节靶点。然而,由于 CDNs 和 CDN 衍生物的生物稳定性有限、制剂困难、药代动力学不佳以及组织积累和胞质递送效率低下,其药物开发受到挑战。尽管最近已经报道了一些基于合成小分子的 CDN 或非 CDN 的 STING 激动剂具有有前途的临床前治疗效果,但它们的治疗效果和安全性仍有待在临床前和临床全面评估。因此,通过创新方法(如药物递送系统和 cGAS 的药理学免疫调节药物开发)推进 cGAS-STING 激活的药物开发是非常需要的,并且具有重要的临床意义。在本述评中,我们总结了我们最近在 cGAS 和 STING 的免疫刺激或免疫调节调节剂的工程和递送上的研究进展,用于癌症和自身免疫性疾病的免疫治疗。为了提高 CDNs 的递送效率,我们开发了可离子化和 pH 响应的聚合物纳米载体来负载 STING 激动剂,旨在提高细胞摄取效率并促进内涵体逃逸,以诱导有效的 STING 激活。我们还在纳米颗粒-水凝胶复合材料中共同递送电刺激与互补的免疫刺激剂,以协同引发有效的先天和适应性抗肿瘤反应,从而根除局部和远处的大肿瘤。此外,利用制造的简单性和已建立的核酸递送系统,我们开发了基于寡核苷酸的 cGAS 激动剂作为免疫刺激免疫治疗剂以及用于癌症免疫治疗的肽抗原的佐剂。为了抑制某些自身免疫性疾病中与 cGAS-STING 过度激活相关的过度强烈的促炎反应,我们设计了纳米医学-水凝胶 (NiH),用于在类风湿关节炎 (RA) 治疗中共同递送 cGAS 抑制剂和无细胞 DNA (cfDNA) 清除阳离子纳米颗粒 (cNP) 以进行全身免疫抑制。最后,我们讨论了当前通过靶向 cGAS-STING 治疗癌症、传染病和自身免疫性疾病的药物开发情况,以及利用 cGAS-STING 通路在疾病治疗中的多种应用的潜在机会。

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