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Humanized model of the immune system
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iHuPBMC-T
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iHuPBMC-NK
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iHuPBMC-B
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PBMC-LT
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CD34+ HSC
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Winn model
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iHuPBMC-MHC/KO
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iHuPBMC-OncVax
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PBMC mixed inoculation model
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In vivo tumor experimental platform
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CDX
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iHuPDX
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Non-GLP Toxicology
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PK/PD
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Brain in situ model
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Other in situ models
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Hematologic tumor model system inoculation
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Creation of high interstitial tumor models
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In vitro killing experiment platform
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Immune co-culture killing model
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CDC
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In vitro killing experiment platform
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IC50
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PDC High-Throughput In Vitro Pharmacodynamics
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3D organoids
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ADCC
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T cell-mediated killing experiment
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Mouse-derived immune system model
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Tumor vaccine
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Cell therapy
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In vitro testing platform
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Non-GLP Toxicology Platform
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Non-tumor model and drug efficacy evaluation platform
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Systematic Vaccination Model
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Non-tumor model and drug efficacy evaluation platform
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Skin injury model
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Stroke model
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Liver fibrosis model
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Diabetes model
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Gouty Arthritis (GA) Model
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Pulmonary fibrosis model
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Systemic lupus erythematosus (SLE) model
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Inflammatory Bowel Disease (IBD) model
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Rheumatoid Arthritis (RA) Model
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PDX model
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PDX model
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Head and neck cancer
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Eye cancer
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Lung cancer
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Human breast cancer
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Esophageal cancer in humans
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Human gastric cancer
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Colorectal cancer
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Human liver cancer
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Bile duct cancer
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Gallbladder cancer
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Human pancreatic cancer
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Human kidney cancer
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Human Bladder Cancer
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Ureteral cancer
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Prostate cancer
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Uterine cancer
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Cervical cancer in women
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Human Ovarian Cancer
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Human skin cancer
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sarcoma
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Human Nervous System Cancer
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Embryonal carcinoma
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Human Lymphoma
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Human leukemia
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Multiple Myeloma
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Adrenal gland
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Mesothelioma
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Other people
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CDX model
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CDX model
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Head and neck cancer
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Eye cancer
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Lung cancer
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Human breast cancer
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Esophageal cancer in humans
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Human gastric cancer
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Colorectal cancer
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Human liver cancer
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Bile duct cancer
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Gallbladder cancer
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Human pancreatic cancer
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Human kidney cancer
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Human Bladder Cancer
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Ureteral cancer
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Prostate cancer
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Uterine cancer
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Cervical cancer in women
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Human Ovarian Cancer
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Human skin cancer
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sarcoma
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Human Nervous System Cancer
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Embryonal carcinoma
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Human Lymphoma
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Human leukemia
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Multiple Myeloma
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Adrenal gland
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Mesothelioma
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Other people
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Homogeneous Model
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Homogeneous Model
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Head and neck cancer
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Eye cancer
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Lung cancer
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Breast cancer
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Stomach cancer
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Liver cancer
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Bile duct cancer
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Gallbladder cancer
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Pancreatic cancer
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Kidney cancer
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Bladder cancer
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Ureteral cancer
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Prostate cancer
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Uterine cancer
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Cervical cancer
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Ovarian cancer
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Esophageal cancer
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Skin cancer
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sarcoma
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Nervous System Cancer
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Embryonal carcinoma
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Lymphoma
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Leukemia
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Multiple Myeloma
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Adrenal gland
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Mesothelioma
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Other
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Colorectal cancer
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News Center
——
The InnoModels Intracorporeal Tumor Platform: Features and Sub-Platform Introduction
Author:
InnoModels
Release time:
2024-05-16
InnoModels' in vivo tumor experimental platform is a major breakthrough in the field of biotechnology and medical research in recent years. With its highly accurate simulation, accelerated drug development, and support for multidisciplinary research, the platform provides unprecedented experimental conditions and convenience for researchers. In this article, we will introduce in detail the features of the InnoModels BioIntracellular Tumor Experiment Platform and its sub-platforms.
First of all, let's take a look at the main features of InnoModels' in vivo tumor platform. The platform provides researchers with reliable experimental data and results by highly simulating the complexity of tumors in the human body. Whether it is breast cancer, lung cancer or gastrointestinal tumors, the platform provides researchers with a wealth of options to better meet different research needs. In addition, by simulating the in vivo environment, including the immune system, blood supply and other factors, the platform can provide more realistic experimental conditions, which helps to more accurately assess the performance and potential efficacy of drugs in vivo.
In terms of accelerating drug development, the InnoModels Biotechnology in vivo tumor platform offers significant advantages. Researchers can utilize the platform to more rapidly assess the efficacy and safety of drugs, thereby significantly shortening the drug development cycle. This not only helps to accelerate the time to market for new drugs, but also provides patients with more timely and effective treatment options.

Supporting multidisciplinary research is also a major feature of the InnoModels Biotechnology in vivo tumor experimental platform. The platform is not only suitable for basic science research, but also widely used in clinical research and translational medicine. It provides strong support for multidisciplinary collaboration, enabling researchers to more comprehensively understand the occurrence, development and treatment mechanisms of tumors.
Next, let's take a look at the sub-platforms of InnoModels' in vivo tumor experimental platform. Among them, the MHC knockout mouse model is an important sub-platform. This model provides a specific evaluation environment for Car-T cell therapy by knocking out the MHC gene in mice. This model is designed to mimic the actual response of Car-T cells in the human body, thus providing researchers with experimental data closer to the clinic. In addition, the MHC knockout mouse model also effectively reduces GVHD (graft versus host disease) produced by Car-T cells in mice, providing researchers with a safer experimental environment.
In addition to the MHC knockout mouse model, InnoModels also has a stable domestic platform for humanized immune system mouse models (HIS) and a platform for human tumor xenografts (PDX). Together, these sub-platforms provide strong support to the field of oncology and tumor immunopharmacodynamics CRO services, translational medicine research services and individualized medicine. They not only provide new-generation experimental animal models close to the clinic for new drug discovery companies, but also provide more comprehensive services for translational medicine researchers, tumor patients and others.
In conclusion, the InnoModels in vivo tumor experimental platform provides unprecedented convenience for researchers with its highly accurate simulation, accelerated drug development and support for multidisciplinary research. Its sub-platforms, such as the MHC knockout mouse model, the Humanized Immune System (HIS) mouse model platform, and the Human Tumor Xenotransplantation (PDX) platform, provide powerful support for the research and development of tumors and tumor immunotherapies. We have every reason to believe that with the help of InnoModels' in vivo tumor experimental platform, tumor research will achieve even more remarkable results and make greater contributions to the cause of human health.
InnoModels Biotechnology (Beijing) Co., Ltd.
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TEL: +86 15711355061
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E-mail: xuyl@imodels.tech
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Address: Building 14, No. 79 West Shuangying Road, Changping District, Beijing
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