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A few good reasons to use nanobodies for cancer treatment.
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- European Journal of Immunology, 2023, v. 53, n. 9, p. 1, doi. 10.1002/eji.202250024
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- Article
Molecular imaging of liver inflammation using an anti-VCAM-1 nanobody.
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- Nature Communications, 2023, v. 14, n. 1, p. 1, doi. 10.1038/s41467-023-36776-7
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Optimizing the Safety and Efficacy of Bio-Radiopharmaceuticals for Cancer Therapy.
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- Pharmaceutics, 2023, v. 15, n. 5, p. 1378, doi. 10.3390/pharmaceutics15051378
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- Article
Beyond the Barrier: Targeted Radionuclide Therapy in Brain Tumors and Metastases.
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- Pharmaceutics, 2019, v. 11, n. 8, p. 376, doi. 10.3390/pharmaceutics11080376
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Expanding Theranostic Radiopharmaceuticals for Tumor Diagnosis and Therapy.
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- Pharmaceuticals (14248247), 2022, v. 15, n. 1, p. 13, doi. 10.3390/ph15010013
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Site-Specific Radiolabeling of a Human PD-L1 Nanobody via Maleimide–Cysteine Chemistry.
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- Pharmaceuticals (14248247), 2021, v. 14, n. 6, p. 550, doi. 10.3390/ph14060550
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Sortase A-mediated site-specific labeling of camelid single-domain antibody-fragments: a versatile strategy for multiple molecular imaging modalities.
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- Contrast Media & Molecular Imaging, 2016, v. 11, n. 5, p. 328, doi. 10.1002/cmmi.1696
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Generation and characterization of nanobodies targeting PSMA for molecular imaging of prostate cancer.
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- Contrast Media & Molecular Imaging, 2014, v. 9, n. 3, p. 211, doi. 10.1002/cmmi.1558
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Development of <sup>177</sup>Lu-nanobodies for radioimmunotherapy of HER2-positive breast cancer: evaluation of different bifunctional chelators.
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- Contrast Media & Molecular Imaging, 2012, v. 7, n. 2, p. 254, doi. 10.1002/cmmi.491
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- Article
Localization, mechanism and reduction of renal retention of technetium-99m labeled epidermal growth factor receptor-specific nanobody in mice.
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- Contrast Media & Molecular Imaging, 2011, v. 6, n. 2, p. 85, doi. 10.1002/cmmi.408
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- Article
Nanobodies for the Early Detection of Ovarian Cancer.
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- International Journal of Molecular Sciences, 2022, v. 23, n. 22, p. 13687, doi. 10.3390/ijms232213687
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- Article
Mechanisms Underlying Connexin Hemichannel Activation in Disease.
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- International Journal of Molecular Sciences, 2021, v. 22, n. 7, p. 3503, doi. 10.3390/ijms22073503
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- Article
The Next-Generation Immune Checkpoint LAG-3 and Its Therapeutic Potential in Oncology: Third Time's a Charm.
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- International Journal of Molecular Sciences, 2021, v. 22, n. 1, p. 75, doi. 10.3390/ijms22010075
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- Article
Identification of Nanobodies against the Acute Myeloid Leukemia Marker CD33.
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- International Journal of Molecular Sciences, 2020, v. 21, n. 1, p. 310, doi. 10.3390/ijms21010310
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- Article
Generic semi-automated radiofluorination strategy for single domain antibodies: [<sup>18</sup>F]FB-labelled single domain antibodies for PET imaging of fibroblast activation protein-α or folate receptor-α overexpression in cancer.
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- EJNMMI Radiopharmacy & Chemistry, 2024, v. 9, n. 1, p. 1, doi. 10.1186/s41181-024-00286-8
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- Article
Single Domain Antibody-Mediated Blockade of Programmed Death-Ligand 1 on Dendritic Cells Enhances CD8 T-cell Activation and Cytokine Production.
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- Vaccines, 2019, v. 7, n. 3, p. 85, doi. 10.3390/vaccines7030085
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- Article
Radiotheranostic Agents in Hematological Malignancies.
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- Frontiers in Immunology, 2022, v. 13, p. 1, doi. 10.3389/fimmu.2022.911080
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- Article
Imaging of Glioblastoma Tumor-Associated Myeloid Cells Using Nanobodies Targeting Signal Regulatory Protein Alpha.
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- Frontiers in Immunology, 2021, v. 12, p. 1, doi. 10.3389/fimmu.2021.777524
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- Article
A nanobody-based nuclear imaging tracer targeting dipeptidyl peptidase 6 to determine the mass of human beta cell grafts in mice.
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- Diabetologia, 2020, v. 63, n. 4, p. 825, doi. 10.1007/s00125-019-05068-5
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Specificity Evaluation and Disease Monitoring in Arthritis Imaging with Complement Receptor of the Ig superfamily targeting Nanobodies.
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- Scientific Reports, 2016, p. 35966, doi. 10.1038/srep35966
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Secretory Leukocyte Protease Inhibitor in Cancer Development.
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- Annals of the New York Academy of Sciences, 2004, v. 1028, n. 1, p. 380, doi. 10.1196/annals.1322.044
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Nanobodies for Medical Imaging: About Ready for Prime Time?
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- Biomolecules (2218-273X), 2021, v. 11, n. 5, p. 637, doi. 10.3390/biom11050637
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The Design and Preclinical Evaluation of a Single-Label Bimodal Nanobody Tracer for Image-Guided Surgery.
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- Biomolecules (2218-273X), 2021, v. 11, n. 3, p. 360, doi. 10.3390/biom11030360
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Broad Reactivity Single Domain Antibodies against Influenza Virus and Their Applications to Vaccine Potency Testing and Immunotherapy.
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- Biomolecules (2218-273X), 2021, v. 11, n. 3, p. 407, doi. 10.3390/biom11030407
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Therapeutic Nanobodies Targeting Cell Plasma Membrane Transport Proteins: A High-Risk/High-Gain Endeavor.
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- Biomolecules (2218-273X), 2021, v. 11, n. 1, p. 63, doi. 10.3390/biom11010063
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Anti-Human PD-L1 Nanobody for Immuno-PET Imaging: Validation of a Conjugation Strategy for Clinical Translation.
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- Biomolecules (2218-273X), 2020, v. 10, n. 10, p. 1388, doi. 10.3390/biom10101388
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Increased Expression of Adherens Junction Components in Mouse Liver following Bile Duct Ligation.
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- Biomolecules (2218-273X), 2019, v. 9, n. 10, p. 636, doi. 10.3390/biom9100636
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Noninvasive Imaging of the Immune Checkpoint LAG-3 Using Nanobodies, from Development to Pre-Clinical Use.
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- Biomolecules (2218-273X), 2019, v. 9, n. 10, p. 548, doi. 10.3390/biom9100548
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- Article
Promising Diagnostic and Therapeutic Approaches Based on VHHs for Cancer Management.
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- Cancers, 2024, v. 16, n. 2, p. 371, doi. 10.3390/cancers16020371
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Preclinical Targeted α- and β−-Radionuclide Therapy in HER2-Positive Brain Metastasis Using Camelid Single-Domain Antibodies.
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- Cancers, 2020, v. 12, n. 4, p. 1017, doi. 10.3390/cancers12041017
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In Vivo Assessment of VCAM-1 Expression by SPECT/CT Imaging in Mice Models of Human Triple Negative Breast Cancer.
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- Cancers, 2019, v. 11, n. 7, p. 1039, doi. 10.3390/cancers11071039
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Evaluating a Single Domain Antibody Targeting Human PD-L1 as a Nuclear Imaging and Therapeutic Agent.
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- Cancers, 2019, v. 11, n. 6, p. 872, doi. 10.3390/cancers11060872
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Generation and Characterization of Novel Pan‐Cancer Anti‐uPAR Fluorescent Nanobodies as Tools for Image‐Guided Surgery.
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- Advanced Science, 2024, v. 11, n. 30, p. 1, doi. 10.1002/advs.202400700
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Development and evaluation of nanobody tracers for noninvasive nuclear imaging of the immune-checkpoint TIGIT.
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- Frontiers in Immunology, 2023, p. 1, doi. 10.3389/fimmu.2023.1268900
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Preclinical screening of anti-HER2 nanobodies for molecular imaging of breast cancer.
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- FASEB Journal, 2011, v. 25, n. 7, p. 2433, doi. 10.1096/fj.10-180331
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Rational Design of Nanobody80 Loop Peptidomimetics: Towards Biased β<sub>2</sub> Adrenergic Receptor Ligands.
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- Chemistry - A European Journal, 2017, v. 23, n. 40, p. 9632, doi. 10.1002/chem.201701321
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The antigen‐binding moiety in the driver's seat of CARs.
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- Medicinal Research Reviews, 2022, v. 42, n. 1, p. 306, doi. 10.1002/med.21818
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Development and Characterization of Nanobodies Targeting the Kupffer Cell.
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- Frontiers in Immunology, 2021, v. 11, p. N.PAG, doi. 10.3389/fimmu.2021.641819
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The alarm anti-protease, secretory leukocyte protease inhibitor, is a proliferation and survival factor for ovarian cancer cells.
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- Carcinogenesis, 2008, v. 29, n. 3, p. 466
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Bone marrow-derived monocytes give rise to self-renewing and fully differentiated Kupffer cells.
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- Nature Communications, 2016, v. 7, n. 1, p. 10321, doi. 10.1038/ncomms10321
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Preclinical Evaluation of a Radiotheranostic Single-Domain Antibody Against Fibroblast Activation Protein α.
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- Journal of Nuclear Medicine, 2023, v. 64, n. 12, p. 1941, doi. 10.2967/jnumed.123.266381
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- Article
Phase I Study of [<sup>68</sup>Ga]Ga-Anti-CD206-sdAb for PET/CT Assessment of Protumorigenic Macrophage Presence in Solid Tumors (MMR Phase I).
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- Journal of Nuclear Medicine, 2023, v. 64, n. 9, p. 1378, doi. 10.2967/jnumed.122.264853
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Targeted α-Therapy Using <sup>225</sup>Ac Radiolabeled Single-Domain Antibodies Induces Antigen-Specific Immune Responses and Instills Immunomodulation Both Systemically and at the Tumor Microenvironment.
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- Journal of Nuclear Medicine, 2023, v. 64, n. 5, p. 751, doi. 10.2967/jnumed.122.264752
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Nanobody nuclear imaging allows noninvasive quantification of LAG-3 expression by tumor-infiltrating leukocytes and predicts response of immune checkpoint blockade.
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- Journal of Nuclear Medicine, 2021, v. 62, n. 12, p. 1, doi. 10.2967/jnumed.120.258871
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Nanobody nuclear imaging allows noninvasive quantification of LAG-3 expression by tumor-infiltrating leukocytes and predicts response of immune checkpoint blockade.
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- Journal of Nuclear Medicine, 2021, v. 62, n. 11, p. 1, doi. 10.2967/jnumed.120.258871
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Nanobody nuclear imaging allows noninvasive quantification of LAG-3 expression by tumor-infiltrating leukocytes and predicts response of immune checkpoint blockade.
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- Journal of Nuclear Medicine, 2021, v. 62, n. 10, p. 1, doi. 10.2967/jnumed.120.258871
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Nanobody nuclear imaging allows noninvasive quantification of LAG-3 expression by tumor-infiltrating leukocytes and predicts response of immune checkpoint blockade.
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- Journal of Nuclear Medicine, 2021, v. 62, n. 8, p. 1, doi. 10.2967/jnumed.120.258871
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Nanobody nuclear imaging allows noninvasive quantification of LAG-3 expression by tumor-infiltrating leukocytes and predicts response of immune checkpoint blockade.
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- Journal of Nuclear Medicine, 2021, v. 62, n. 7, p. 1, doi. 10.2967/jnumed.120.258871
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Nanobody nuclear imaging allows noninvasive quantification of LAG-3 expression by tumor-infiltrating leukocytes and predicts response of immune checkpoint blockade.
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- Journal of Nuclear Medicine, 2021, v. 62, n. 6, p. 1, doi. 10.2967/jnumed.120.258871
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Nanobody nuclear imaging allows noninvasive quantification of LAG-3 expression by tumor-infiltrating leukocytes and predicts response of immune checkpoint blockade.
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- Journal of Nuclear Medicine, 2021, v. 62, n. 5, p. 1, doi. 10.2967/jnumed.120.258871
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- Article