PO.IM01.02 · 免疫学
cLRRC15-IFNa(一种将IFNa特异性靶向LRRC15+ CAF的条件激活型生物制剂)的安全性与活性
Safety and activity of cLRRC15-IFNa, a conditionally active biologic targeting IFNa specifically to LRRC15+ CAFs
作者与单位 Authors & Affiliations
摘要 Abstract
中文摘要
尽管肿瘤相关成纤维细胞(CAFs)已成为能够影响恶性细胞生长的一种关键细胞类型,但这一癌症生物学轴尚未被用于治疗获益。CAFs通过多种机制促进肿瘤生长,包括细胞外基质的沉积、可溶性因子的产生以及对免疫应答的抑制。近期进展揭示了不同的CAF群体在多种实体瘤类型中如何与患者预后和治疗反应相关。在这些CAF亚群中,LRRC15的表达已被证明可识别一个在支持肿瘤细胞生长和抑制抗肿瘤免疫应答方面具有核心功能作用的肌成纤维细胞群体。重编程或减少这一LRRC15+ CAF群体的方法可能在多种实体瘤适应症中带来治疗获益。
IFN-alpha直接作用于支持肿瘤的CAF上,驱动其重编程,对抗该表型所依赖的TGF-beta信号。IFN-alpha还有效促进固有和适应性免疫应答,包括树突状细胞成熟、抑制性髓系细胞的复极化以及CD8+ T细胞激活。然而,全身性IFN-alpha治疗的应用因显著的剂量限制性毒性而受到限制。
我们生成了一种条件激活型cLRRC15-IFNalpha治疗药物,可将IFN-alpha活性靶向LRRC15+细胞,同时在其他细胞上基本保持无活性。我们的方法采用一种新型双结合抗体(DBA)机制,利用抗体能够特异且竞争性地结合两种不同抗原的能力。借助该技术,IFN-alpha在循环中处于结合且无活性状态,只有当该治疗药物结合到LRRC15时才被激活。
一旦定位到LRRC15+ CAF的表面,cLRRC15-IFNalpha通过IFN-alpha对CAF的直接顺式信号传导以及对相邻免疫细胞的反式信号传导发挥抗肿瘤活性。在体外,报告细胞和受体结合实验表明,cLRRC15-IFNalpha在LRRC15存在的情况下具有大于100倍的IFN-alpha活性优先性。在原代细胞中,cLRRC15-IFNalpha优先诱导表达LRRC15的活化人成纤维细胞中的IFN-alpha信号传导。cLRRC15-IFNalpha在小鼠同基因肿瘤模型中抑制肿瘤生长,避免IFN-alpha介导毒性的临床征象,并与抗PD-1表现出强劲的联合活性。在TME中,cLRRC15-IFNalpha驱动CD8+ T细胞的激活。总之,这些结果证明了DBA平台的潜力,并支持cLRRC15-IFNalpha的临床开发。
查看英文原文 English abstract
While cancer-associated fibroblasts (CAFs) have emerged as a key cell type capable of influencing malignant cell growth, this axis of cancer biology has not yet been exploited for therapeutic benefit. CAFs enable tumor growth through multiple mechanisms including deposition of extracellular matrix, production of soluble factors, and inhibition of the immune response. Recent advancements have revealed how distinct CAF populations correlate with patient prognosis and response to therapies across many solid tumor types. Amongst these CAF subsets, LRRC15 expression has been shown to identify a myofibroblast population with a central functional role in supporting tumor cell growth and inhibiting anti-tumor immune responses. Approaches to reprogram or reduce this LRRC15+ population of CAFs may provide therapeutic benefit in multiple solid tumor indications.
IFN-alpha signaling directly on tumor-supporting CAFs drives reprogramming, countering the TGF-beta signal on which the phenotype depends. IFN-alpha also effectively promotes both innate and adaptive immune responses, including dendritic cell maturation, repolarization of suppressive myeloid cells, and CD8+ T cell activation. However, the use of systemic IFN-alpha therapy has been limited by significant dose-limiting toxicities.
We have generated a conditionally active cLRRC15-IFNalpha therapeutic that targets IFN-alpha activity to LRRC15+ cells while remaining largely inactive on other cells. Our approach uses a novel dual-binding antibody (DBA) mechanism that takes advantage of the ability of an antibody to bind specifically and competitively to two distinct antigens. With this technology, IFN-alpha is bound and inactive in circulation and only becomes active when the therapeutic binds to LRRC15.
Once localized to the surface of an LRRC15+ CAF, cLRRC15-IFNalpha exerts anti-tumor activity both by direct cis-signaling of IFN-alpha on CAFs and by trans-signaling to adjacent immune cells. In vitro, reporter cell and receptor binding assays demonstrate that cLRRC15-IFNalpha has >100-fold preferential IFN-alpha activity in the presence of LRRC15. In primary cells, cLRRC15-IFNalpha preferentially induces IFN-alpha signaling in LRRC15-expressing activated human fibroblasts. cLRRC15-IFNalpha inhibits tumor growth in mouse syngeneic tumor models, avoids clinical signs of IFN-alpha-mediated toxicity, and demonstrates robust combinatorial activity with anti-PD-1. In the TME, cLRRC15-IFNalpha drives the activation of CD8+ T cells. Collectively, these results demonstrate the potential of the DBA platform and support the clinical development of cLRRC15-IFNalpha.
利益披露 Disclosure
J. Killebrew, None..
L. Liang, None..
S. Okada, None..
A. Guinn, None..
A. Etheridge, None.
B. Robison,
Bristol Myers Squibb Employment.
D. Colby, None..
D. Jurchen, None..
J. Pham, None..
J. Nguyen, None..
J. Skonier, None..
K. Daniels, None..
K. Thomas, None..
L. Carlucci, None..
L. Amon, None..
M. Sprague, None..
M. Galindo, None..
R. Lance, None..
S. Wrenn, None..
S. Notonier, None..
S. Fallen, None..
S. McClain, None..
W. Curtis, None..
Z. Kraft, None..
J. Mulligan, None..
D. Hollenbaugh, None.