Machine learning-aided quantification of antibody-based cancer immunotherapy by natural killer cells in microfluidic droplets.
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Songyao Jiang | Wenjing Kang | Kunpeng Li | Alexander R Ivanov | Somak Ray | Saheli Sarkar | Ed Luther | Tania Konry | Wenjing Kang | A. Ivanov | T. Konry | S. Sarkar | E. Luther | Yun Fu | Yun Fu | Somak Ray | Kunpeng Li | Songyao Jiang
[1] Andrew Zisserman,et al. Very Deep Convolutional Networks for Large-Scale Image Recognition , 2014, ICLR.
[2] O. Ortmann,et al. Modular anti‐EGFR and anti‐Her2 targeting of SK‐BR‐3 and BT474 breast cancer cell lines in the presence of ErbB receptor‐specific growth factors , 2011, Cytometry. Part A : the journal of the International Society for Analytical Cytology.
[3] S. Ménard,et al. Elements related to heterogeneity of antibody-dependent cell cytotoxicity in patients under trastuzumab therapy for primary operable breast cancer overexpressing Her2. , 2007, Cancer research.
[4] Luca Antiga,et al. Automatic differentiation in PyTorch , 2017 .
[5] J. Schlom,et al. An NK cell line (haNK) expressing high levels of granzyme and engineered to express the high affinity CD16 allele , 2016, Oncotarget.
[6] Wei Wang,et al. NK Cell-Mediated Antibody-Dependent Cellular Cytotoxicity in Cancer Immunotherapy , 2015, Front. Immunol..
[7] Lin Zhang,et al. Proteomic analysis of human NK-92 cells after NK cell-mediated cytotoxicity against K562 cells , 2007, Biochemistry (Moscow).
[8] J. Boudreau,et al. Naturally Killing the Silent Killer: NK Cell-Based Immunotherapy for Ovarian Cancer , 2019, Front. Immunol..
[9] Damian Szklarczyk,et al. STRING v11: protein–protein association networks with increased coverage, supporting functional discovery in genome-wide experimental datasets , 2018, Nucleic Acids Res..
[10] H. Klingemann,et al. Natural Killer Cells for Immunotherapy – Advantages of the NK-92 Cell Line over Blood NK Cells , 2016, Front. Immunol..
[11] Z. Tian,et al. A Novel NF-κB Binding Site Controls Human Granzyme B Gene Transcription1 , 2006, The Journal of Immunology.
[12] Burak Dura,et al. Longitudinal multiparameter assay of lymphocyte interactions from onset by microfluidic cell pairing and culture , 2016, Proceedings of the National Academy of Sciences.
[13] Dean Anthony Lee,et al. TGFβ Imprinting During Activation Promotes Natural Killer Cell Cytokine Hypersecretion , 2018, Cancers.
[14] Hisakazu Mihara,et al. Phosphate-mediated molecular memory driven by two different protein kinases as information input elements. , 2007, Journal of the American Chemical Society.
[15] L. Weiner,et al. Regulation of Antibody-Dependent Cellular Cytotoxicity by IgG Intrinsic and Apparent Affinity for Target Antigen1 , 2007, The Journal of Immunology.
[16] Xian Zhang,et al. A multi‐scale convolutional neural network for phenotyping high‐content cellular images , 2017, Bioinform..
[17] Jaakko Nevalainen,et al. Segmentation of Image Data from Complex Organotypic 3D Models of Cancer Tissues with Markov Random Fields , 2015, PloS one.
[18] H. Heng,et al. Transient and stable vector transfection: Pitfalls, off-target effects, artifacts. , 2017, Mutation research.
[19] Behide Saltepe,et al. Cellular Biosensors with Engineered Genetic Circuits. , 2017, ACS sensors.
[20] T. Konry,et al. Phenotypic drug profiling in droplet microfluidics for better targeting of drug-resistant tumors. , 2015, Lab on a chip.
[21] Pietro Perona,et al. Microsoft COCO: Common Objects in Context , 2014, ECCV.
[22] M. Hogarth,et al. The effect of temperature on the binding kinetics and equilibrium constants of monoclonal antibodies to cell surface antigens. , 1990, Molecular immunology.
[23] T. Konry,et al. Dynamic analysis of immune and cancer cell interactions at single cell level in microfluidic droplets. , 2016, Biomicrofluidics.
[24] P. Bird,et al. Control of granzymes by serpins , 2010, Cell Death and Differentiation.
[25] M. Caligiuri,et al. TGF-β Utilizes SMAD3 to Inhibit CD16-Mediated IFN-γ Production and Antibody-Dependent Cellular Cytotoxicity in Human NK Cells1 , 2008, The Journal of Immunology.
[26] Seung-Hwan Lee,et al. IL-15–PI3K–AKT–mTOR: A Critical Pathway in the Life Journey of Natural Killer Cells , 2015, Front. Immunol..
[27] Karel J. Zuiderveld,et al. Contrast Limited Adaptive Histogram Equalization , 1994, Graphics Gems.
[28] Juyoung Yoon,et al. Molecular logic gates: the past, present and future. , 2018, Chemical Society reviews.
[29] Björn Önfelt,et al. Classification of human natural killer cells based on migration behavior and cytotoxic response. , 2013, Blood.
[30] A. Beheshti,et al. Dynamic Analysis of Human Natural Killer Cell Response at Single-Cell Resolution in B-Cell Non-Hodgkin Lymphoma , 2017, Front. Immunol..
[31] Sven Becker,et al. Retargeting of natural killer-cell cytolytic activity to ErbB2-expressing cancer cells results in efficient and selective tumor cell destruction. , 2002, Blood.
[32] S. Ménard,et al. Tumor-Initiating Cells of HER2-Positive Carcinoma Cell Lines Express the Highest Oncoprotein Levels and Are Sensitive to Trastuzumab , 2009, Clinical Cancer Research.
[33] M. Boutros,et al. Clustering phenotype populations by genome-wide RNAi and multiparametric imaging , 2010, Molecular systems biology.
[34] Pooja Sabhachandani,et al. Anti-myeloma activity and molecular logic operation by Natural Killer cells in microfluidic droplets. , 2019, Sensors and actuators. B, Chemical.
[35] O. Yamada,et al. IL-2 Increases Human Telomerase Reverse Transcriptase Activity Transcriptionally and Posttranslationally through Phosphatidylinositol 3′-Kinase/Akt, Heat Shock Protein 90, and Mammalian Target of Rapamycin in Transformed NK Cells , 2005, The Journal of Immunology.
[36] R. Gambari,et al. Lysis-on-Chip of Single Target Cells following Forced Interaction with CTLs or NK Cells on a Dielectrophoresis-Based Array , 2013, The Journal of Immunology.
[37] F. Bertucci,et al. Human breast tumor cells induce self-tolerance mechanisms to avoid NKG2D-mediated and DNAM-mediated NK cell recognition. , 2011, Cancer research.
[38] H. Klingemann. Are natural killer cells superior CAR drivers? , 2014, Oncoimmunology.
[39] Yolanda T. Chong,et al. Automated analysis of high‐content microscopy data with deep learning , 2017, Molecular systems biology.
[40] Andreas Krämer,et al. Causal analysis approaches in Ingenuity Pathway Analysis , 2013, Bioinform..
[41] Gregory Batt,et al. Identification of individual cells from z-stacks of bright-field microscopy images , 2018, Scientific Reports.
[42] S. Riddell,et al. Chimeric Antigen Receptor T Cell Therapy: Challenges to Bench-to-Bedside Efficacy , 2018, The Journal of Immunology.
[43] W. Wels,et al. Chimeric Antigen Receptor-Engineered NK-92 Cells: An Off-the-Shelf Cellular Therapeutic for Targeted Elimination of Cancer Cells and Induction of Protective Antitumor Immunity , 2017, Front. Immunol..
[44] Matt J. Whitfield,et al. Live-cell phenotypic-biomarker microfluidic assay for the risk stratification of cancer patients via machine learning , 2018, Nature Biomedical Engineering.
[45] Badrinath Roysam,et al. Antibody Fc engineering improves frequency and promotes kinetic boosting of serial killing mediated by NK cells. , 2014, Blood.
[46] Differential behaviors of trastuzumab-sensitive and -resistant SKBR3 cells treated with menadione reveal the involvement of Notch1/Akt/FOXO1 signaling elements , 2015, Molecular and Cellular Biochemistry.
[47] Weihong Tan,et al. Programmable and Multiparameter DNA-Based Logic Platform For Cancer Recognition and Targeted Therapy , 2014, Journal of the American Chemical Society.
[48] T. Fornstedt,et al. Impact of assay temperature on antibody binding characteristics in living cells: A case study , 2017, Biomedical reports.
[49] J. Orange. Formation and function of the lytic NK-cell immunological synapse , 2008, Nature Reviews Immunology.
[50] P. Pohlmann,et al. Resistance to Trastuzumab in Breast Cancer , 2009, Clinical Cancer Research.
[51] Li Fei-Fei,et al. ImageNet: A large-scale hierarchical image database , 2009, CVPR.
[52] S. Rosenberg,et al. Adoptive cell transfer as personalized immunotherapy for human cancer , 2015, Science.
[53] J. Schlom,et al. ADCC employing an NK cell line (haNK) expressing the high affinity CD16 allele with avelumab, an anti‐PD‐L1 antibody , 2017, International journal of cancer.
[54] R. Eils,et al. NK cells switch from granzyme B to death receptor–mediated cytotoxicity during serial killing , 2019, The Journal of experimental medicine.
[55] Florian Heigwer,et al. Machine learning and image-based profiling in drug discovery , 2018, Current opinion in systems biology.