PO.ET02.11 · 实验与分子治疗

靶点不可知的噬菌体展示技术用于筛选改变免疫细胞功能的纳米抗体

Target agnostic phage display for nanobodies that alter immune cell function

海报缩略图:靶点不可知的噬菌体展示技术用于筛选改变免疫细胞功能的纳米抗体
编号 434 展板 4 时间 4/19 02:00–05:00 区域 Section 18 主讲 Peter Leung, BA
分会场 Novel Therapeutics and Drug Targets 1
查看 PDF 下载 PDF 🔒 查看 / 下载完整 PDF 需登录并开通下载套餐 · 查看套餐 / 开通 AACR 官方页面

作者与单位 Authors & Affiliations

Peter Qian Leung1, Todd A. Aguilera2, Eslam A. Elghonaimy2, Thillai Sekar3, Mike Whitney4, Isaac Gonzalez2

1UTSW, Dallas, TX,2University of Texas Southwestern Medical Center, Dallas, TX,3Pondicherry University, Puducherry, India,4UCSD, San Diego, CA

摘要 Abstract

中文摘要
引言:新型癌症免疫疗法的发现目前受限于对已知抗原的依赖以及优先考虑结合亲和力而非功能的筛选方法。为克服这一问题,我们开发了INSPIRE-seq,一个整合NGS和噬菌体展示的平台,用于无偏倚地筛选针对肿瘤微环境(TME)内细胞亚型的纳米抗体。在此,我们推进这项技术以满足一项关键的未被满足的需求:直接分离能够功能性调节免疫细胞行为的纳米抗体。我们的目的是超越简单的结合,部署一种严格的靶点不可知策略,仅基于纳米抗体增强T细胞效能的能力来鉴定治疗候选物,而无需事先了解其分子靶点。 实验程序:为验证这一功能性筛选策略,我们使用磁珠纯化的初始CD8 T细胞建立了一个离体模型。在存在重组PD-L1以模拟TME抑制性信号传导的情况下,用alphaCD3和alphaCD28抗体激活细胞。同时,将细胞与展示纳米抗体的噬菌体文库共孵育。通过流式细胞术分选出表达最高水平激活标志物CD69的存活T细胞中前10%的细胞,以捕获能够增强T细胞激活的纳米抗体,而不论其结合靶点如何。通过Oxford Nanopore测序追踪富集动态。随后对单个噬菌体克隆进行扩增,并在同一检测中重新测试其结合和功能性调节能力。 新数据:我们使用一个已确认具有体内疗效的文库启动筛选,验证该活性可转化为我们离体模型中可检测的基线调节,以确保存在可富集的候选物。从这一经验证的起点出发,我们进行了四轮生物淘选和针对CD69表达增加的分选。我们分离出的单个克隆,根据扩增子测序,其总体代表了起始文库群体的25%。对这些优势克隆进行了单独的活性测试。值得注意的是,与对照相比,克隆9-1-12对CD8 T细胞表现出显著结合。至关重要的是,这种结合与激活存在功能性关联:尽管存在PD-L1抑制,被该纳米抗体结合的特定T细胞群体显示出CD69阳性率显著增加。这证明了仅通过表型选择即可回收功能性调节因子的可行性。 结论:我们的发现提供了证据,表明INSPIRE-seq能够以靶点不可知的方式选择并富集能改变细胞功能的纳米抗体。这支持了我们的核心假设,即表型筛选可在无需事先了解抗原的情况下鉴定免疫调节因子,为发现克服TME免疫抑制的治疗候选物提供了一条新的研发管线。
查看英文原文 English abstract
Introduction: The discovery of novel cancer immunotherapies is currently limited by a reliance on known antigens and screens that prioritize binding affinity over function. To overcome this, we developed INSPIRE-seq, a platform integrating NGS and phage display to unbiasedly select for nanobodies against cell subtypes within the tumor microenvironment (TME). Here, we advance this technology to address a critical unmet need: the direct isolation of nanobodies that functionally modulate immune cell behavior. Our objective is to move beyond simple binding and deploy a strictly target-agnostic strategy to identify therapeutic candidates based solely on their ability to enhance T cell efficacy, without prior knowledge of their molecular targets. Experimental Procedures: To validate this functional selection strategy, we established an ex vivo model using bead-purified naïve CD8 T cells. Cells were activated with alphaCD3 and alphaCD28 antibodies in the presence of recombinant PD-L1 to mimic TME inhibitory signaling. Simultaneously, the cells were co-incubated with a library of nanobody-displaying bacteriophage. The top 10% of live T cells expressing the highest levels of the activation marker CD69 were sorted via flow cytometry to capture nanobodies capable of enhancing T cell activation, independent of their binding target. Enrichment dynamics were tracked via Oxford Nanopore sequencing. Individual phage clones were subsequently amplified and re-tested for both binding and functional modulation within the same assay. New Data: We initiated the screen using a library with confirmed in vivo efficacy, verifying that this activity translated to detectable baseline modulation in our ex vivo model to ensure the presence of enrichable candidates. From this validated starting point, we performed four rounds of biopanning and sorting for increased CD69 expression. We isolated individual clones that, based on amplicon sequencing, collectively represented 25% of the starting library population. These dominant clones were individually tested for activity. Notably, clone 9-1-12 exhibited significant binding to CD8 T cells compared to controls. Critically, this binding was functionally linked to activation: the specific population of T cells bound by the nanobody displayed a significantly increased frequency of CD69 positivity despite the presence of PD-L1 inhibition. This demonstrates the feasibility of recovering a functional modulator solely through phenotypic selection. Conclusions: Our findings provide evidence that INSPIRE-seq can select and enrich for nanobodies that alter cell function in a target-agnostic manner. This supports our central hypothesis that phenotypic screening can identify immunomodulators without prior antigen knowledge, offering a novel pipeline to uncover therapeutic candidates that overcome TME immunosuppression.
利益披露 Disclosure
P. Q. Leung, None. T. A. Aguilera, Avelas Biosciences Stock. RenovoRx Travel. ALPA Biosciences g., Board of Directors, non-salaried role). Novocure Other, Advisory Board. E. A. Elghonaimy, ALPA Biosciences Employment, Stock. T. Sekar, None. M. Whitney, Panibody Therapeutics Employment, Other, President and CEO. Alume Biosciences Inc Employment, Other, Scientific Founder and VP of Discovery. I. Gonzalez, None.

← 返回 AACR 2026 检索