JAA-F11 is a highly specific mouse monoclonal to the Thomsen-Friedenreich Antigen (TF-Ag) which is an alpha-O-linked disaccharide antigen on the surface of ~80% of human carcinomas, including breast, lung, colon, bladder, ovarian, and prostate cancers, and is cryptic on normal cells. JAA-F11 has potential, when humanized, for cancer immunotherapy for multiple cancer types. Humanization of JAA-F11, was performed utilizing complementarity determining regions grafting on a homology framework. The objective herein is to test the specificity, affinity and biology efficacy of the humanized JAA-F11 (hJAA-F11). Using a 609 target glycan array, 2 hJAA-F11 constructs were shown to have excellent chemical specificity, binding only to TF-Ag alpha-linked structures and not to TF-Ag beta-linked structures. The relative affinity of these hJAA-F11 constructs for TF-Ag was improved over the mouse antibody, while T20 scoring predicted low clinical immunogenicity. The hJAA-F11 constructs produced antibody-dependent cellular cytotoxicity in breast and lung tumor lines shown to express TF-Ag by flow cytometry. Internalization of hJAA-F11 into cancer cells was also shown using a surface binding ELISA and confirmed by immunofluorescence microscopy. Both the naked hJAA-F11 and a maytansine-conjugated antibody (hJAA-F11-DM1) suppressed in vivo tumor progression in a human breast cancer xenograft model in SCID mice. Together, our results support the conclusion that the humanized antibody to the TF-Ag has potential as an adjunct therapy, either directly or as part of an antibody drug conjugate, to treat breast cancer, including triple negative breast cancer which currently has no targeted therapy, as well as lung cancer.
Theranostics through the utilization of immunohistochemistry followed by radioimaging to determine if metastatic foci will react with a therapeutic antibody will allow for the selection of the patient population that will most benefit from this immunotherapy. The Thomsen-Friedenreich antigen (TF-Ag) has been shown to be involved in ∼90% of carcinomas, specifically breast carcinomas, making it a suitable target for radioimaging and therapy. The anti-TF-Ag antibody, JAA-F11, a mouse monoclonal antibody (mAb), has had success in localization, blocking metastasis, and inhibiting cell proliferation, and binds to ∼80% of breast cancer cell lines, without preference to receptor status. This is significant since the triple negative breast cancer (ER-/PR-/HER2-) has no current targeted treatment. Studies are extended to human breast cancer tissue microarray immunohistochemical (IHC) analysis, which was scored blindly by a pathologist on a semi- quantitative scale. JAA-F11 stained approximately 76% of all breast cancer specimens, which included cases of mucinous, medullary, invasive ductal and neuroendocrine carcinomas. The staining observed was irrespective of receptor status, whereas in normal breast tissue, staining was either absent or very weak/weak. In addition, all available matched lymph node metastasis stained, with greater intensity observed in 39% of cases. JAA-F11 IHC studies performed on human normal organ tissue arrays, showed staining that for the most part was not significantly different from staining obtained with isotype control antibody, or was observed in areas that would not be therapeutically accessible. Furthermore, in an additional IHC study, preliminary results suggest that JAA-F11 significantly stained other carcinomas including those of the colon, bladder, ovary and prostate. In vitro studies show that the humanized JAA-F11 (hJAA-F11) has similar chemical specificity and higher affinity towards the TF-Ag. Imaging studies were performed in a BALB/c mouse breast cancer model with the hJAA-F11 to determine biological reactivity and to predict the feasibility of theranostic imaging prior to therapy. After ∼10 days of tumor growth, mice pretreated with cold iodine water and rabbit IgG to inhibit binding to Fc receptors, were given tail vein injections of hJAA-F11 conjugated with [124]-I. Clear tumor images were obtained up to 144 hours post injection. Biodistribution analysis has provided further results indicating increased%ID/g (7.0±3.9%) in tumor tissue as compared to healthy tissues (brain%ID/g to be 0.21±.09, stomach 0.80±0.19%, and bone 0.90±2.4%). Results support that the hJAA-F11 antibody can be used in a multi-step theranostic approach, with analysis of tumor binding in IHC, followed by imaging to determine in vivo tumor targeting prior to direct immunotherapy or antibody drug conjugate therapy with hJAA-F11. Citation Format: Loukia Karacosta, Holly Johnson, Julia Abdullah, Taylor Chrisikos, Rachel Ludwig, Bradley Turner, Swetha Tati, Diala Ghazal, Munnawar Sajjad, Stephen Koury, Susan Morey, Julie Adams, Kate Rittenhouse-Olson. Immunohistochemistry and radioimaging with hJAA-11 antibody to the Thomsen-Friedenreich antigen: Potential theranostic application for breast cancer. [abstract]. In: Proceedings of the 107th Annual Meeting of the American Association for Cancer Research; 2016 Apr 16-20; New Orleans, LA. Philadelphia (PA): AACR; Cancer Res 2016;76(14 Suppl):Abstract nr 576.
AIMThe Thomsen-Friedenreich antigen (TF-Ag) is a disaccharide hidden on normal cells, but selectively exposed on the surface of breast, colon, prostate and bladder cancer cells. JAA-F11, a highly specific monoclonal antibody to TF-Ag, reduces metastasis and prolongs survival in a mouse model. In addition,(124)I-JAA-F11 localizes 4T1 tumors in mice. These studies continue translation of JAA-F11 to human breast cancer. MATERIALS & METHODS & RESULTS: Of the 41 human breast cancer cell lines tested, 78% were positive for reactivity with JAA-F11 by whole-cell enzyme immunoassay and positivity occurred unrelated to estrogen, progesterone or HER2 receptor status. JAA-F11 inhibited the growth rate of the human cancer cell lines tested. At 1 h, approximately 80% of JAA-F11 internalized in the three cell lines tested. (124)I-JAA-F11 specifically imaged human triple-negative tumors in mice by microPET.CONCLUSIONThe results highlight the potential that humanized JAA-F11 may have for immunotherapy and drug conjugate therapy in breast cancer patients.
Thomsen-Friedenreich antigen (TF-Ag) is the disaccharide (Gal beta1-3 GalNAc alpha), which is also known as the core 1 structure. The presence of this disaccharide on the surface of approximately 90 percent of carcinomas is due to altered glycosylation in these tumors. TF-Ag plays a role in the adhesive properties of tumor cells involved in metastasis. Treatment of mice with JAA-F11, a monoclonal antibody to TF-Ag alpha inhibited lung metastasis and improved prognosis in a mouse breast cancer model. The presence of naturally occurring antibodies to TF-Ag in cancer patients is related to improved prognosis. The pancarcinoma expression of TF-Ag, combined with the evidence of a mechanistic role for TF-Ag in cancer spread, show that this target would have clinical utility. The presence of naturally occurring antibody to TF-Ag indicates that increasing the anti-TF-Ag antibody would be safe for the cancer patient and indicates that tolerance would not have to be broken to create this immune response. Finally, the prognostic improvements seen clinically and in animal models indicate that this is an important vaccine target.
ABSTRACT A screening procedure was used to identify cell fusion (hyphal anastomosis) mutants in the Neurospora crassa single gene deletion library. Mutants with alterations in 24 cell fusion genes required for cell fusion between conidial anastomosis tubes (CATs) were identified and characterized. The cell fusion genes identified included 14 genes that are likely to function in signal transduction pathways needed for cell fusion to occur ( mik-1 , mek-1 , mak-1 , nrc-1 , mek-2 , mak-2 , rac-1 , pp2A , so/ham-1 , ham-2 , ham-3 , ham-5 , ham-9 , and mob3 ). The screening experiments also identified four transcription factors that are required for cell fusion ( adv-1 , ada-3 , rco-1 , and snf5 ). Three genes encoding proteins likely to be involved in the process of vesicular trafficking were also identified as needed for cell fusion during the screening ( amph-1 , ham-10 , pkr1 ). Three of the genes identified by the screening procedure, ham-6 , ham-7 , and ham-8 , encode proteins that might function in mediating the plasma membrane fusion event. Three of the putative signal transduction proteins, three of the transcription factors, the three putative vesicular trafficking proteins, and the three proteins that might function in mediating cell fusion had not been identified previously as required for cell fusion.